Mechanical engineer's manual(by. engr. yuri g. melliza)Yuri Melliza
1. This document defines common mechanical engineering terms such as mass, velocity, acceleration, force, pressure, and temperature scales. Conversion factors are provided.
2. Properties of fluids such as density, specific volume, specific gravity, and equations of state for gases are defined. Characteristics including viscosity, elasticity, and surface tension are also explained.
3. Ten sample problems are worked through as examples of applying the definitions and concepts to calculations involving forces, densities, pressures, temperatures, and manometers.
1) The document provides solutions to problems involving pressure distributions in fluids. It calculates normal and shear stresses on a plane cutting through a two-dimensional stress field.
2) It also calculates pressures, stresses, and fluid levels at various points in systems involving combinations of fluids such as water, oil, air and mercury.
3) The problems require use of concepts such as hydrostatic pressure, stress and normal/shear stress relationships, and properties of various fluids to determine unknown values at different points in the systems.
1. The document discusses concepts in thermodynamics including classical vs statistical thermodynamics, conservation of energy, units of mass and force, properties of systems and processes.
2. It provides examples of applying concepts like Newton's laws to calculate weight on different planets, mass and weight of air in a room, and acceleration of objects.
3. Key points covered are properties of open and closed systems, intensive vs extensive properties, conditions of equilibrium, and types of processes like isothermal and isobaric.
1. The document describes a problem involving the elongation of a tapered bar made of plastic that has a hole drilled through part of its length and is under compressive loads at its ends.
2. It provides the dimensions, material properties, and loads and asks for the maximum diameter of the hole if the shortening of the bar is limited to 8 mm.
3. The solution sets up an equation for the shortening of the bar in terms of the hole diameter and substitutes the given values to solve for the maximum hole diameter of 23.9 mm.
This document discusses the boundary work done during various thermodynamic processes involving gases and liquids in closed systems. Several examples are provided to calculate the boundary work done during processes such as compression, expansion, heating and cooling of gases and liquids. The key steps involve using the ideal gas law, gas tables, process lines on P-V and T-s diagrams to determine initial and final states, and then integrating the work equation between these states. EES software is also used in one example to plot the variation of work with pressure for a constant-pressure heating process of R-134a refrigerant.
Mechanical engineer's manual(by. engr. yuri g. melliza)Yuri Melliza
1. This document defines common mechanical engineering terms such as mass, velocity, acceleration, force, pressure, and temperature scales. Conversion factors are provided.
2. Properties of fluids such as density, specific volume, specific gravity, and equations of state for gases are defined. Characteristics including viscosity, elasticity, and surface tension are also explained.
3. Ten sample problems are worked through as examples of applying the definitions and concepts to calculations involving forces, densities, pressures, temperatures, and manometers.
1) The document provides solutions to problems involving pressure distributions in fluids. It calculates normal and shear stresses on a plane cutting through a two-dimensional stress field.
2) It also calculates pressures, stresses, and fluid levels at various points in systems involving combinations of fluids such as water, oil, air and mercury.
3) The problems require use of concepts such as hydrostatic pressure, stress and normal/shear stress relationships, and properties of various fluids to determine unknown values at different points in the systems.
1. The document discusses concepts in thermodynamics including classical vs statistical thermodynamics, conservation of energy, units of mass and force, properties of systems and processes.
2. It provides examples of applying concepts like Newton's laws to calculate weight on different planets, mass and weight of air in a room, and acceleration of objects.
3. Key points covered are properties of open and closed systems, intensive vs extensive properties, conditions of equilibrium, and types of processes like isothermal and isobaric.
1. The document describes a problem involving the elongation of a tapered bar made of plastic that has a hole drilled through part of its length and is under compressive loads at its ends.
2. It provides the dimensions, material properties, and loads and asks for the maximum diameter of the hole if the shortening of the bar is limited to 8 mm.
3. The solution sets up an equation for the shortening of the bar in terms of the hole diameter and substitutes the given values to solve for the maximum hole diameter of 23.9 mm.
This document discusses the boundary work done during various thermodynamic processes involving gases and liquids in closed systems. Several examples are provided to calculate the boundary work done during processes such as compression, expansion, heating and cooling of gases and liquids. The key steps involve using the ideal gas law, gas tables, process lines on P-V and T-s diagrams to determine initial and final states, and then integrating the work equation between these states. EES software is also used in one example to plot the variation of work with pressure for a constant-pressure heating process of R-134a refrigerant.
This document contains a 16 question multiple choice mechanical engineering review problem set. It covers topics including: specific weight calculations, changes in weight due to elevation, pressure and force calculations for scuba diving, determining height using barometer readings, properties of gas mixtures, heat transfer between materials, gas turbine processes, combustion calculations, and thermodynamic processes including changes in temperature, pressure, volume, entropy and heat/work.
6161103 3.4 three dimensional force systemsetcenterrbru
1) Three-dimensional force systems involve resolving forces into x, y, and z components and using the equations of equilibrium to solve for unknown forces.
2) Examples are provided of using free body diagrams and the equations of equilibrium to solve for tensions in cables, magnitudes of applied forces, and stretches of springs in static systems with multiple forces.
3) Unknown forces and stretches are determined by setting the vector sum of the forces in x, y, and z directions equal to zero and solving the resulting simultaneous equations.
1. The document contains worked examples calculating hydrostatic forces and pressures on submerged objects of various shapes, including a ball plugging a hole, portholes on a ship, gates, and a steel pipe.
2. Key concepts covered include calculating hydrostatic pressure as a function of depth, determining buoyant forces, calculating net forces and moments, and sizing structural elements based on allowable stresses.
3. Formulas used include those for pressure, buoyancy, force, moment, stress, and thickness required for a given safety factor.
Fluid tutorial 2_ans dr.waleed. 01004444149 dr walid
This document contains 11 multi-step physics problems involving fluid mechanics concepts like pressure, viscosity, density, and fluid flow. The problems are solved with relevant equations for ideal gases, compressible fluids, laminar flow, and viscometry. Detailed calculations are shown to determine values like mass, pressure, shear stress, drag force, velocity, and viscosity based on given variables like temperature, volume, pressure, velocity, dimensions, torque, and fluid properties.
This document contains 15 problems related to determining stresses in beams undergoing bending and shearing. The problems involve calculating stresses in beams with various cross-sectional shapes under different loading conditions. The beams are made of materials like steel, wood, and brass. Parameters like moment of inertia, shear force, beam dimensions, and material properties are provided to calculate stresses.
This document contains three engineering problems involving determining the required diameter of shafts under different loading conditions. Problem 1 involves calculating the diameter of a solid shaft and hollow shaft transmitting various torques. Problem 2 involves determining the shaft diameter between a motor and gear given the horsepower output and torque at different points as well as the maximum angle of twist allowed. Problem 3 involves calculating the maximum torque a composite shaft made of brass and steel sleeves can withstand given the materials and dimensions.
This document contains a summary of a refresher course covering various structural analysis problems. It includes 5 situations involving calculating reactions, tensions, stresses, and shear forces for different structures. The document tests understanding through multiple choice questions after explaining the concepts and showing the calculations for each situation. The situations involve analyzing forces on a portable seat, cables supporting a ceiling, stresses on an element using Mohr's circle, forces on a bridge girder under loading, and stresses in a hollow circular signage pole.
This document provides an overview of torsion in thin-walled beams. It discusses how torsion arises from loads like engine thrust and control surfaces. Methods are presented for calculating shear stresses and angle of twist in closed and open beam sections under torque loading. An example calculates shear stress distribution in a 3-cell wing section. Understanding shear flow direction is important for sign convention in open sections.
Properties of Fluids, Fluid Static, Buoyancy and Dimensional AnalysisSatish Taji
The presentation includes a brief view of the basic properties of a fluid, fluid statics, Pascal's law, hydrostatic law, fluid classification, pressure measurement devices (manometers and mechanical gauges), hydrostatic forces on different surfaces, buoyancy and metacentric height, and dimensional analysis.
1. The background of Fluid Mechanics
2. Fields of Fluid mechanics
3. Introduction and Basic concepts
4. Properties of Fluids
5. Pressure and fluid statics
6. Hydrodynamics
This document contains a series of engineering problems and questions related to structural analysis. It includes calculation of stresses, required reinforcement, and loads on structural members.
The first problem calculates compressive stress in a circular pole. The second determines development length and total bar length for a reinforced concrete member. The third calculates design moment for a one-way slab.
Additional problems analyze stresses and reinforcement for a footing, and loads on a bridge truss member from moving wheel loads and a uniform load. Diagrams and equations are provided.
This document contains 39 multiple choice questions related to thermodynamics concepts such as power, heat transfer, enthalpy, entropy, ideal gases, and thermodynamic processes. The questions assess understanding of key equations, properties of substances, and calculations involving changes in temperature, pressure, volume, and other thermodynamic variables.
The document discusses shear stresses in beams. It defines shear stress as being due to shear force and perpendicular to the cross-sectional area. Shear stress is derived as τ = F/A, where F is the shear force and A is the cross-sectional area. Shear stress varies across standard beam cross sections like rectangular, circular, and triangular. Shear stress is maximum at the neutral axis for rectangular and circular beams, and at half the depth for triangular beams. Sample problems are included to demonstrate calculating and graphing the variation of shear stress across specific beam cross sections.
This document summarizes information about fans and blowers. It defines fans and blowers, describes common types of fans including axial and centrifugal fans. It discusses fan performance parameters such as pressure, flow rate, power and efficiency. The document also presents relationships called fan laws that describe how these parameters change with speed, size and other variables. Formulas are provided for calculating pressure, power and efficiency. Common applications of fans are also listed.
The document contains 7 problems involving the use of manometers and pressure calculations:
1) Calculating pressure differences using the formula for pressure as a function of depth and density.
2) Finding the pressure at the bottom of a lake using atmospheric pressure and the lake depth.
3) Calculating a pressure difference using a U-tube manometer filled with water and connected between two points in a pipe carrying air.
4) Determining the additional pressure needed to raise the liquid interface in a complicated U-tube manometer system containing two liquids of different densities.
5) Using a U-tube manometer containing mercury to determine the pressure reading of a pressure gauge, given column heights of
The document contains solved problems related to rotodynamic machinery. Problem #11.1 involves calculating blade angles, tangential forces, diagram power, axial thrust, and efficiency for a simple impulse turbine. It considers both frictionless and frictional cases. Problem #11.2 involves similar calculations for another impulse turbine problem. Problem #11.3 calculates the diagram power and efficiency for the impulse stage of a turbine. Problem #11.4 involves drawing a velocity diagram and performing calculations for a two-row impulse turbine. Problem #11.5 provides data for the first stage of a two-row velocity compounded turbine and asks to calculate the diagram and stage efficiencies.
Here are the key steps to solve this problem:
1) Use Bernoulli's equation between points 1 and 2:
P1/γ + V12/2g + Z1 = P2/γ + V22/2g + Z2 + HL
2) Given: P1 = 200 kPa, Q = 30 L/sec, HL = 20 kPa
3) Use continuity equation: A1V1 = A2V2
4) Solve for P2
The pressure at point 2 is 180 kPa.
This document provides objectives and information about pressure measurement techniques. It discusses piezometers, barometers, bourdon gauges, and several types of manometers. The key points are:
- Piezometers, barometers, bourdon gauges, and manometers can be used to measure pressure.
- Piezometers use the height of liquid in a tube to determine pressure. Barometers measure atmospheric pressure using the height of a mercury column.
- Bourdon gauges use the deflection of a curved tube to indicate pressure differences over 1 bar.
- Manometers like the simple and differential types utilize the relationship between pressure and liquid height to measure pressures.
Fox and McDonalds Introduction to Fluid Mechanics 9th Edition Pritchard Solut...KirkMcdowells
Full download : https://alibabadownload.com/product/fox-and-mcdonalds-introduction-to-fluid-mechanics-9th-edition-pritchard-solutions-manual/ Fox and McDonalds Introduction to Fluid Mechanics 9th Edition Pritchard Solutions Manual
This lecture discusses units and dimensions used in food processing technology. It covers the definitions of units and dimensions, the SI system of units including base and derived units, conversion of units using conversion factors, and key process variables like mass, volume, concentration, moisture content and temperature that are important for food technologists. Examples are provided to illustrate calculation of density, specific gravity, concentration, molarity and conversion between different temperature scales.
This document contains a 16 question multiple choice mechanical engineering review problem set. It covers topics including: specific weight calculations, changes in weight due to elevation, pressure and force calculations for scuba diving, determining height using barometer readings, properties of gas mixtures, heat transfer between materials, gas turbine processes, combustion calculations, and thermodynamic processes including changes in temperature, pressure, volume, entropy and heat/work.
6161103 3.4 three dimensional force systemsetcenterrbru
1) Three-dimensional force systems involve resolving forces into x, y, and z components and using the equations of equilibrium to solve for unknown forces.
2) Examples are provided of using free body diagrams and the equations of equilibrium to solve for tensions in cables, magnitudes of applied forces, and stretches of springs in static systems with multiple forces.
3) Unknown forces and stretches are determined by setting the vector sum of the forces in x, y, and z directions equal to zero and solving the resulting simultaneous equations.
1. The document contains worked examples calculating hydrostatic forces and pressures on submerged objects of various shapes, including a ball plugging a hole, portholes on a ship, gates, and a steel pipe.
2. Key concepts covered include calculating hydrostatic pressure as a function of depth, determining buoyant forces, calculating net forces and moments, and sizing structural elements based on allowable stresses.
3. Formulas used include those for pressure, buoyancy, force, moment, stress, and thickness required for a given safety factor.
Fluid tutorial 2_ans dr.waleed. 01004444149 dr walid
This document contains 11 multi-step physics problems involving fluid mechanics concepts like pressure, viscosity, density, and fluid flow. The problems are solved with relevant equations for ideal gases, compressible fluids, laminar flow, and viscometry. Detailed calculations are shown to determine values like mass, pressure, shear stress, drag force, velocity, and viscosity based on given variables like temperature, volume, pressure, velocity, dimensions, torque, and fluid properties.
This document contains 15 problems related to determining stresses in beams undergoing bending and shearing. The problems involve calculating stresses in beams with various cross-sectional shapes under different loading conditions. The beams are made of materials like steel, wood, and brass. Parameters like moment of inertia, shear force, beam dimensions, and material properties are provided to calculate stresses.
This document contains three engineering problems involving determining the required diameter of shafts under different loading conditions. Problem 1 involves calculating the diameter of a solid shaft and hollow shaft transmitting various torques. Problem 2 involves determining the shaft diameter between a motor and gear given the horsepower output and torque at different points as well as the maximum angle of twist allowed. Problem 3 involves calculating the maximum torque a composite shaft made of brass and steel sleeves can withstand given the materials and dimensions.
This document contains a summary of a refresher course covering various structural analysis problems. It includes 5 situations involving calculating reactions, tensions, stresses, and shear forces for different structures. The document tests understanding through multiple choice questions after explaining the concepts and showing the calculations for each situation. The situations involve analyzing forces on a portable seat, cables supporting a ceiling, stresses on an element using Mohr's circle, forces on a bridge girder under loading, and stresses in a hollow circular signage pole.
This document provides an overview of torsion in thin-walled beams. It discusses how torsion arises from loads like engine thrust and control surfaces. Methods are presented for calculating shear stresses and angle of twist in closed and open beam sections under torque loading. An example calculates shear stress distribution in a 3-cell wing section. Understanding shear flow direction is important for sign convention in open sections.
Properties of Fluids, Fluid Static, Buoyancy and Dimensional AnalysisSatish Taji
The presentation includes a brief view of the basic properties of a fluid, fluid statics, Pascal's law, hydrostatic law, fluid classification, pressure measurement devices (manometers and mechanical gauges), hydrostatic forces on different surfaces, buoyancy and metacentric height, and dimensional analysis.
1. The background of Fluid Mechanics
2. Fields of Fluid mechanics
3. Introduction and Basic concepts
4. Properties of Fluids
5. Pressure and fluid statics
6. Hydrodynamics
This document contains a series of engineering problems and questions related to structural analysis. It includes calculation of stresses, required reinforcement, and loads on structural members.
The first problem calculates compressive stress in a circular pole. The second determines development length and total bar length for a reinforced concrete member. The third calculates design moment for a one-way slab.
Additional problems analyze stresses and reinforcement for a footing, and loads on a bridge truss member from moving wheel loads and a uniform load. Diagrams and equations are provided.
This document contains 39 multiple choice questions related to thermodynamics concepts such as power, heat transfer, enthalpy, entropy, ideal gases, and thermodynamic processes. The questions assess understanding of key equations, properties of substances, and calculations involving changes in temperature, pressure, volume, and other thermodynamic variables.
The document discusses shear stresses in beams. It defines shear stress as being due to shear force and perpendicular to the cross-sectional area. Shear stress is derived as τ = F/A, where F is the shear force and A is the cross-sectional area. Shear stress varies across standard beam cross sections like rectangular, circular, and triangular. Shear stress is maximum at the neutral axis for rectangular and circular beams, and at half the depth for triangular beams. Sample problems are included to demonstrate calculating and graphing the variation of shear stress across specific beam cross sections.
This document summarizes information about fans and blowers. It defines fans and blowers, describes common types of fans including axial and centrifugal fans. It discusses fan performance parameters such as pressure, flow rate, power and efficiency. The document also presents relationships called fan laws that describe how these parameters change with speed, size and other variables. Formulas are provided for calculating pressure, power and efficiency. Common applications of fans are also listed.
The document contains 7 problems involving the use of manometers and pressure calculations:
1) Calculating pressure differences using the formula for pressure as a function of depth and density.
2) Finding the pressure at the bottom of a lake using atmospheric pressure and the lake depth.
3) Calculating a pressure difference using a U-tube manometer filled with water and connected between two points in a pipe carrying air.
4) Determining the additional pressure needed to raise the liquid interface in a complicated U-tube manometer system containing two liquids of different densities.
5) Using a U-tube manometer containing mercury to determine the pressure reading of a pressure gauge, given column heights of
The document contains solved problems related to rotodynamic machinery. Problem #11.1 involves calculating blade angles, tangential forces, diagram power, axial thrust, and efficiency for a simple impulse turbine. It considers both frictionless and frictional cases. Problem #11.2 involves similar calculations for another impulse turbine problem. Problem #11.3 calculates the diagram power and efficiency for the impulse stage of a turbine. Problem #11.4 involves drawing a velocity diagram and performing calculations for a two-row impulse turbine. Problem #11.5 provides data for the first stage of a two-row velocity compounded turbine and asks to calculate the diagram and stage efficiencies.
Here are the key steps to solve this problem:
1) Use Bernoulli's equation between points 1 and 2:
P1/γ + V12/2g + Z1 = P2/γ + V22/2g + Z2 + HL
2) Given: P1 = 200 kPa, Q = 30 L/sec, HL = 20 kPa
3) Use continuity equation: A1V1 = A2V2
4) Solve for P2
The pressure at point 2 is 180 kPa.
This document provides objectives and information about pressure measurement techniques. It discusses piezometers, barometers, bourdon gauges, and several types of manometers. The key points are:
- Piezometers, barometers, bourdon gauges, and manometers can be used to measure pressure.
- Piezometers use the height of liquid in a tube to determine pressure. Barometers measure atmospheric pressure using the height of a mercury column.
- Bourdon gauges use the deflection of a curved tube to indicate pressure differences over 1 bar.
- Manometers like the simple and differential types utilize the relationship between pressure and liquid height to measure pressures.
Fox and McDonalds Introduction to Fluid Mechanics 9th Edition Pritchard Solut...KirkMcdowells
Full download : https://alibabadownload.com/product/fox-and-mcdonalds-introduction-to-fluid-mechanics-9th-edition-pritchard-solutions-manual/ Fox and McDonalds Introduction to Fluid Mechanics 9th Edition Pritchard Solutions Manual
This lecture discusses units and dimensions used in food processing technology. It covers the definitions of units and dimensions, the SI system of units including base and derived units, conversion of units using conversion factors, and key process variables like mass, volume, concentration, moisture content and temperature that are important for food technologists. Examples are provided to illustrate calculation of density, specific gravity, concentration, molarity and conversion between different temperature scales.
66.-Merle C. Potter, David C. Wiggert, Bassem H. Ramadan - Mechanics of Fluid...HectorMayolNovoa
This document contains solutions to problems in a textbook on mechanics of fluids. It has 14 chapters that cover topics like fluid statics, fluids in motion, integral and differential forms of fundamental laws, dimensional analysis, internal and external flows, compressible flow, open channel flow, piping systems, and turbomachinery. Each chapter contains problems and their step-by-step solutions to aid instructors and students.
The equivalent wind chill temperatures in °F are plotted as a function of wind velocity in the range of 4-100 mph for ambient temperatures of 20, 40, and 60°F using EES. The plots show that equivalent temperature decreases with increasing wind velocity and decreases with decreasing ambient temperature. Wind chill has a greater effect at lower ambient temperatures.
1. A hydraulic lift uses a piston with a diameter of 210 cm to lift a weight of 2500 kg by applying a force of 25 kg to a smaller piston.
2. The pressure and diameter calculations show that the larger piston needs a diameter of 100 cm to lift the 2500 kg weight.
3. Pascal's principle and pressure calculations allow large weights to be lifted with little effort using hydraulic lifts.
This document provides the solution manual for chapter 2 problems from the textbook "Fundamentals of Thermodynamics" by Sonntag, Borgnakke, and Van Wylen. The chapter covers fundamentals, properties and units, force and energy, specific volume, pressure, manometers, temperature, and review problems. This specific problem gives the mass of a steel cylinder and volume and conditions of water it contains.
1. Placing a full glass bottle of water in the freezer would cause it to break because water expands as it freezes and the sealed bottle provides no room for expansion.
2. The phase diagram shows that at higher altitudes, the boiling point of water decreases and the melting point increases due to lower atmospheric pressure. This could require longer cooking times in mountains.
3. If two cylinders made of materials A and B conduct heat at the same rate when subjected to the same temperature difference, and the diameter of A is twice the diameter of B, then the thermal conductivity of A is one fourth that of B.
This document provides the solutions to homework problems assigned in a thermodynamics course. It summarizes the key steps and conclusions for 6 problems involving concepts like approximations for enthalpy of compressed water, properties of water at different temperatures and pressures, heat transfer for a refrigerant, the Rankine cycle diagram, and properties of propane using different equations of state. The last problem calculates about 700 kJ/kg of work done by steam expanding adiabatically between two states.
Jamuna Oil Comany Ltd recruitment question & ans (5th july 2018)Alamin Md
This document contains information about an exam for Jamuna Oil Company Ltd, including:
- The exam date is July 5th and will take place from 3:30-5:00 PM at BUET.
- The exam contains 50 multiple choice questions worth 25 marks and 12 departmental questions worth 50 marks, for a total of 75 marks.
- Sample multiple choice and departmental questions are provided.
- Solutions to two of the departmental questions are provided, calculating the thickness required for a pressure vessel and the velocity of a pendulum bob.
- The document requests feedback on any mistakes found in the solutions.
This document contains the instructions and problems for a homework assignment in a thermodynamics course. It provides details on formatting solutions, calculating work done during a gas compression process using P-V diagrams and analytically, determining final temperature in a closed system after gases mix, calculating work done during isothermal and polytropic compression processes, determining heat transfer through a wall and by radiation, and calculating energy and cost savings from improved water heater insulation. Students are to show all work and approximate answers to one significant figure.
Mechanics Of Fluids 4th Edition Potter Solutions Manualfexerona
This document provides solutions to problems in an instructor's manual for a textbook on fluid mechanics. It contains solutions for 14 problems from Chapter 1 which covers fundamental concepts like units, dimensions, density, viscosity, pressure and temperature relationships. The solutions include step-by-step working to arrive at the final numerical answer for each problem.
This document contains the solutions to 6 homework problems from a thermodynamics course. Problem 1 calculates how high a person could climb using the energy from 1 liter of milk. Problem 2 calculates the minimum amount of dry ice needed to cause a plastic bottle to explode. Problem 3 determines the altitude change from a decrease in air pressure measured by a hiker. The solutions show calculations using concepts like the ideal gas law, kinetic energy of gases, and relationships between pressure, density and altitude.
This document provides an introduction to basic thermodynamics concepts including units, dimensions, and conversions. It defines fundamental and derived physical quantities and their SI units. Examples are provided to demonstrate calculating force, pressure, work, power, and density using the appropriate units and conversion factors. The document also discusses dimensional homogeneity and using unit conversions and prefixes to change between units of the same physical quantity. Multiple practice problems are given for students to test their understanding of applying concepts of units, dimensions, and conversions.
1. A balloon is filled with helium gas at 20°C and 200 kPa. Using the ideal gas law and properties of helium, the mole number of helium is calculated as 9.28 kmol and the mass is 37.15 kg.
2. EES is used to determine the mass of helium in a balloon for diameters from 5-15 m and pressures of 100 kPa and 200 kPa. The mass increases with diameter and is higher for the higher pressure of 200 kPa.
3. An automobile tire heated from 25°C to 35°C, causing the pressure to rise by 26 kPa assuming constant volume. Bleeding off 0.0070 kg of air would
This document contains the chapter outline and answers to questions for a physics and measurement chapter. The chapter outline lists the main topics covered, including standards of length, mass and time, dimensional analysis, and significant figures. The answers to questions section provides worked solutions to sample problems related to these topics, such as density calculations, unit conversions, and dimensional analysis questions.
This document contains the chapter outline and answers to questions for a physics and measurement chapter. The chapter outline lists the main topics covered, including standards of length, mass and time, dimensional analysis, and significant figures. The answers to questions section provides worked solutions to sample problems related to these topics, such as density calculations, unit conversions, and dimensional analysis questions.
This document contains the chapter outline and answers to questions for a physics and measurement chapter. The chapter outline lists the main topics covered, including standards of length, mass and time, dimensional analysis, and significant figures. The answers to questions section provides worked solutions to sample problems related to these topics, such as density calculations, unit conversions, and dimensional analysis questions.
This document contains the chapter outline and answers to questions for a physics and measurement chapter. The chapter outline lists the main topics covered, including standards of length, mass and time, dimensional analysis, and significant figures. The answers to questions section provides worked solutions to sample problems related to these topics, such as density calculations, unit conversions, and dimensional analysis questions.
This document contains the chapter outline and answers to questions for a physics and measurement chapter. The chapter outline lists the main topics covered, including standards of length, mass and time, dimensional analysis, and significant figures. The answers to questions section provides worked solutions to sample problems related to these topics, such as density calculations, unit conversions, and dimensional analysis questions.
This document contains the chapter outline and answers to questions for a physics and measurement chapter. The chapter outline lists the main topics covered, including standards of length, mass and time, dimensional analysis, and significant figures. The answers to questions section provides worked solutions to sample problems related to these topics, such as density calculations, unit conversions, and dimensional analysis questions.
Similar to Engineering Fluid Mechanics 10th Edition Elger Solutions Manual (20)
This presentation was provided by Steph Pollock of The American Psychological Association’s Journals Program, and Damita Snow, of The American Society of Civil Engineers (ASCE), for the initial session of NISO's 2024 Training Series "DEIA in the Scholarly Landscape." Session One: 'Setting Expectations: a DEIA Primer,' was held June 6, 2024.
Thinking of getting a dog? Be aware that breeds like Pit Bulls, Rottweilers, and German Shepherds can be loyal and dangerous. Proper training and socialization are crucial to preventing aggressive behaviors. Ensure safety by understanding their needs and always supervising interactions. Stay safe, and enjoy your furry friends!
ISO/IEC 27001, ISO/IEC 42001, and GDPR: Best Practices for Implementation and...PECB
Denis is a dynamic and results-driven Chief Information Officer (CIO) with a distinguished career spanning information systems analysis and technical project management. With a proven track record of spearheading the design and delivery of cutting-edge Information Management solutions, he has consistently elevated business operations, streamlined reporting functions, and maximized process efficiency.
Certified as an ISO/IEC 27001: Information Security Management Systems (ISMS) Lead Implementer, Data Protection Officer, and Cyber Risks Analyst, Denis brings a heightened focus on data security, privacy, and cyber resilience to every endeavor.
His expertise extends across a diverse spectrum of reporting, database, and web development applications, underpinned by an exceptional grasp of data storage and virtualization technologies. His proficiency in application testing, database administration, and data cleansing ensures seamless execution of complex projects.
What sets Denis apart is his comprehensive understanding of Business and Systems Analysis technologies, honed through involvement in all phases of the Software Development Lifecycle (SDLC). From meticulous requirements gathering to precise analysis, innovative design, rigorous development, thorough testing, and successful implementation, he has consistently delivered exceptional results.
Throughout his career, he has taken on multifaceted roles, from leading technical project management teams to owning solutions that drive operational excellence. His conscientious and proactive approach is unwavering, whether he is working independently or collaboratively within a team. His ability to connect with colleagues on a personal level underscores his commitment to fostering a harmonious and productive workplace environment.
Date: May 29, 2024
Tags: Information Security, ISO/IEC 27001, ISO/IEC 42001, Artificial Intelligence, GDPR
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1. 2.1
Situation: A system is separated from its surrounding by a
a. border
b. boundary
c. dashed line
d. dividing surface
SOLUTION
Answer is (b) boundary. See definition in §2.1.
1
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2. 2.2
Find:
How are density and specific weight related?
PLAN
Consider their definitions (conceptual and mathematical)
SOLUTION
Density is a [mass]/[unit volume], and specific weight is a [weight]/[unit volume].
Therefore, they are related by the equation γ = ρg , and density differs from specific
weight by the factor g, the acceleration of gravity.
2
3. 2.3
Situation:
Density is (select all that apply)
a. weight/volume
b. mass/volume
c. volume/mass
d. mass/weight
SOLUTION
Answer is (b) mass/volume.
3
4. 2.4
Situation:
Which of these are units of density? (Select all that apply.)
a. kg/m3
b. mg/cm3
c. lbm/ft3
d. slug/ft3
SOLUTION
Correct answers are a, b, c, and d. Each of these is a mass/volume.
4
5. 2.5
Situation:
Specific gravity (select all that apply)
a. can have units of N/m3
b. is dimensionless
c. increases with temperature
d. decreases with temperature
SOLUTION
Correct answers are b and d. Specific gravity is a ratio of the density of some liquid
divided by the density of water at 4◦
C. Therefore it is dimensionless. As temperature
goes up, the density of the numerator liquid decreases, but the denominator stays the
same. Therefore the SG decreases as temperature increases. See Table 2.2 in §2.11
of EFM10e.
5
6. 2.6
Situation:
If a liquid has a specific gravity of 1.7,
a) What is the density in slugs per cubic feet?
b) What is the specific weight in lbf per cubic feet?
SOLUTION
SG = 1.7
SG =
ρl
ρwater,4C
a)
ρl = 1.7
µ
1.94
slug
ft3
¶
= 3.3 slug
ft3
b)
32.17 lbm = 1 slug
Therefore
µ
3.3 slug
ft3
¶ µ
32.17 lbm
1 slug
¶
= 106 lbf
ft3
6
7. 2.7
Situation:
What are SG, γ, and ρ for mercury?
State you answers in SI units and in traditional units.
SOLUTION
From table A.4 (EFM10e)
SI Traditional
SG 13.55 13.55
γ 133,000 N/ m3
847 lbf/ ft3
ρ 13,550 kg/ m3
26.3 slug/ ft3
7
8. 2.8
Situation:
If a gas has γ = 15 N/m3
what is its density?
State your answers in SI units and in traditional units.
SOLUTION
Density and specific seight are related according to
γ =
ρ
g
So ρ =
γ
g
For γ = 15
N
m3
In SI ρ =
µ
15 N
m3
¶ µ
1 s2
9.81 m
¶
= 1.53 kg
m3
Converting to traditional units
=
µ
1.53 kg
m3
¶ µ
1 m3
(3.2813) ft3
¶ µ
1 slug
14.59 kg
¶
= 3.0 × 10−3 slug
ft3
8
9. 2.9
Situation:
If you have a bulk modulus of elasticity that is a very large number, then a small
change in pressure would cause
a. a very large change in volume
b. a very small change in volume
SOLUTION
Examination of Eq. 2.6 in EFM10e shows that the answer is b.
9
10. 2.10
Situation:
Dimensions of the bulk modulus of elasticity are
a. the same as the dimensions of pressure/density
b. the same as the dimensions of pressure/volume
c. the same as the dimensions of pressure
SOLUTION
Examination of Eq. 2.6 in EFM10e shows that the answer is c. The volume units in
the denominator cancel, and the remaining units are pressure.
10
11. 2.11
Situation:
Elasticity of ethyl alcohol and water.
Eethyl = 1.06 × 109
Pa.
Ewater = 2.15 × 109
Pa.
Find:
Which substance is easier to compress?
a. ethyl alcohol
b. water
PLAN
Use bulk density equation.
SOLUTION
The bulk modulus of elasticity is given by:
E = −∆p
V
∆V
=
∆p
dρ/ρ
This means that elasticity is inversely related to change in density, and to the negative
change in volume.
Therefore, the liquid with the smaller elasticity is easier to compress.
Correct answer is a. Ethyl alcohol is easier to compress because it has the smaller elasticity ,
because elasticity is inversely related to change in density.
11
12. 2.12
Situation:
Pressure is applied to a mass of water.
V = 2000 cm3
, p = 2 × 106
N/ m2
.
Find:
Volume after pressure applied (cm3
).
Properties:
From Table A.5, E = 2.2 × 109
Pa
PLAN
1. Use modulus of elasticity equation to calculate volume change resulting from
pressure change.
2. Calculate final volume based on original volume and volume change.
SOLUTION
1. Elasticity equation
E = −∆p
V
∆V
∆V = −
∆p
E
V
= −
∙
(2 × 106
) Pa
(2.2 × 109) Pa
¸
2000 cm3
= −1.82 cm3
2. Final volume
Vfinal = V + ∆V
= (2000 − 1.82) cm3
Vfinal = 1998 cm3
12
13. 2.13
Situation:
Water is subjected to an increase in pressure.
Find:
Pressure increase needed to reduce volume by 2%.
Properties:
From Table A.5, E = 2.2 × 109
Pa.
PLAN
Use modulus of elasticity equation to calculate pressure change required to achieve
the desired volume change.
SOLUTION Modulus of elasticity equation
E = −∆p
V
∆V
∆p = E
∆V
V
= −
¡
2.2 × 109
Pa
¢
µ
−0.02 × V
V
¶
=
¡
2.2 × 109
Pa
¢
(0.02)
= 4.4 × 107
Pa
∆p = 44 MPa
13
14. 2.14
Situation:
Open tank of water.
T20 = 20 ◦
C, T80 = 80 ◦
C.
V = 400 l, d = 3 m.
Hint: Volume change is due to temperature.
Find:
Percentage change in volume.
Water level rise for given diameter.
Properties:
From Table A.5: ρ20 = 998 kg
m3 ,and ρ80 = 972 kg
m3 .
PLAN
This problem is NOT solved using the elasticity equation, because the volume change
results from a change in temperature causing a density change, NOT a change in
pressure. The tank is open, so the pressure at the surface of the tank is always
atmospheric.
SOLUTION
a. Percentage change in volume must be calculated for this mass of water at two
temperatures.
For the first temperature, the volume is given as V20 = 400 L = 0.4 m3
.Its density is
ρ20 = 998 kg
m3 . Therefore, the mass for both cases is given by.
m = 998
kg
m3
× 0.4 m3
= 399.2 kg
For the second temperature, that mass takes up a larger volume:
V80 =
m
ρ
=
399.2 kg
972 kg
m3
= 0.411 m3
Therefore, the percentage change in volume is
0.411 m3
− 0.4 m3
0.4 m3
= 0.0275
volume % change = = 2.8%
b. If the tank has D = 3 m, then V = πr2
h = 7.07h.Therefore:
14
15. h20 = .057 m
h80 = .058 m
And water level rise is 0.0581 − 0.0566 m = 0.0015 m = 2 mm.
water level rise is = 0.002 m = 2 mm
REVIEW
Density changes can result from temperature changes, as well as pressure changes.
15
16. 2.15
Find:
Where in this text can you find:
a. density data for such liquids as oil and mercury?
b. specific weight data for air (at standard atmospheric pressure) at different
temperatures?
c. specific gravity data for sea water and kerosene?
SOLUTION
a. Density data for liquids other than water can be found in Table A.4 in EFM10e.
Temperatures are specified.
b. Data for several properties of air (at standard atmospheric pressure) at different
temperatures are in Table A.3 in EFM10e.
c. Specific gravity and other data for liquids other than water can be found in Table
A.4 in EFM10e. Temperatures are specified.
16
17. 2.16
Situation:
Regarding water and seawater:
a. Which is more dense, seawater or freshwater?
b. Find (SI units) the density of seawater (10◦
C, 3.3% salinity).
c. Find the same in traditional units.
d. What pressure is specified for the values in (b) and (c)?
SOLUTION
a. Seawater is more dense, because of the weight of the dissolved salt.
b. The density of seawater (10◦
C, 3.3% salinity) in SI units is 1026 kg/m3
, see Table
A.3 in EFM10e.
c. The density of seawater (10◦
C, 3.3% salinity) in traditional units is 1.99 slugs/ft3
,
see Table A.3 in EFM10e.
d. The specified pressure for the values in (b) and (c) is standard atmospheric pres-
sure; as stated in the title of Table A.3 in EFM10e.
17
18. 2.17
Situation:
If the density, ρ, of air (in an open system at atmospheric pressure) increases by a
factor of 1.4x due to a temperature change,
a. specific weight increases by 1.4x
b. specific weight increases by 13.7x
c. specific weight remains the same
SOLUTION
Since specific weight is the product ρg, if ρ increases by a factor of 1.4, then specific
weight increases by 1.4 times as well. The answer is (a).
18
19. 2.18
Situation:
The following questions relate to viscosity.
Find:
(a) The primary dimensions of viscosity and five common units of viscosity.
(b) The viscosity of motor oil (in traditional units).
SOLUTION
a) Primary dimensions of viscosity are [ M
LT
] .
Five common units are:
i) N· s
m2 ; ii) dyn· s
cm2 ; iii) poise; iv) centipoise; and v) lbf· s
ft2
(b) To find the viscosity of SAE 10W-30 motor oil at 115 ◦
F, there are no tabular data
in the text. Therefore, one should use Figure A.2. For traditional units (because
the temperature is given in Farenheit) one uses the left-hand axis to report that
μ = 1.2 × 10−3 lbf· s
ft2 .
Note: one should be careful to identify the correct factor of 10 for the log cycle that
contains the correct data point. For example, in this problem, the answer is between
1 × 10−3
and 1 × 10−2
. Therefore the answer is 1.2 × 10−3
and not 1 × 10−2
.
19
20. 2.19
Situation:
Shear stress has dimensions of
a. force/area
b. dimensionless
SOLUTION
The answer is (a). See Eq. 2.10 in EFM10e, and discussion.
20
21. 2.20
Situation:
The term dV/dy, the velocity gradient
a. has dimensions of L/T, and represents shear strain
b. has dimensions of T−1
, and represents the rate of shear strain
SOLUTION
The answer is (b). See Eq. 2.14 in EFM10e, and discussion.
21
22. 2.21
Situation:
For the velocity gradient dV/dy
a. The change in velocity dV is in the direction of flow
b. The change in velocity dV is perpendicular to flow
SOLUTION
The answer is (b). See Fig. 2.9 in EFM10e, and related preceding and following
discussion.
22
23. 2.22
Situation:
The no-slip condition
a. only applies to ideal flow
b. only applies to rough surfaces
c. means velocity, V, is zero at the wall
d. means velocity, V, is the velocity of the wall
SOLUTION
The answer is (d); velocity, V, is the velocity of the wall.
23
24. 2.23
Situation:
Kinematic viscosity (select all that apply)
a. is another name for absolute viscosity
b. is viscosity/density
c. is dimensionless because forces are canceled out
d. has dimensions of L2
/T
SOLUTION
The answers are (b) and (d).
24
25. 2.24
Situation:
Change in viscosity and density due to temperature.
T1 = 10 ◦
C, T2 = 70 ◦
C.
Find:
Change in viscosity and density of water.
Change in viscosity and density of air.
Properties:
p = 101 kN/ m2
.
PLAN
For water, use data from Table A.5. For air, use data from Table A.3
SOLUTION
Water
μ70 = 4.04 × 10−4
N · s/ m2
μ10 = 1.31 × 10−3
N· s/ m2
∆μ = −9. 06 × 10−4
N· s/ m2
ρ70 = 978 kg/m3
ρ10 = 1000 kg/m3
∆ρ = −22 kg/ m3
Air
μ70 = 2.04 × 10−5
N · s/m2
μ10 = 1.76 × 10−5
N · s/m2
∆μ = 2. 8 × 10−6
N · s/ m2
ρ70 = 1.03 kg/m3
ρ10 = 1.25 kg/m3
∆ρ = −0.22 kg/m3
25
26. 2.25
Situation:
Air at certain temperatures.
T1 = 10 ◦
C, T2 = 70 ◦
C.
Find:
Change in kinematic viscosity.
Properties:
From Table A.3, ν70 = 1.99 × 10−5
m2
/s, ν10 = 1.41 × 10−5
m2
/s.
PLAN
Use properties found in Table A.3.
SOLUTION
∆vair,10→70 = (1.99 − 1.41) × 10−5
∆vair,10→70 = 5.8 × 10−6
m2
/s
REVIEW
Sutherland’s equation could also be used to solve this problem.
26
27. 2.26
Situation:
Viscosity of SAE 10W-30 oil, kerosene and water.
T = 38 ◦
C = 100 ◦
F.
Find:
Dynamic and kinematic viscosity of each fluid.
PLAN
Use property data found in Table A.4, Fig. A.2 and Table A.5.
SOLUTION
Oil (SAE 10W-30) kerosene water
μ(N · s/m2
) 6.7×10−2
1.4×10−3
(Fig. A-2) 6.8×10−4
ρ(kg/m3
) 880 814 993
ν(m2
/s) 7.6×10−5
1.7×10−6
(Fig. A-2) 6.8×10−7
27
28. 2.27
Situation:
Comparing properties of air and water.
Find:
Ratio of dynamic viscosity of air to that of water.
Ratio of kinematic viscosity of air to that of water.
Properties:
Air (20 ◦
C, 1 atm), Table A.3, μ = 1.81 × 10−5
N·s/m2
; ν = 1.51 × 10−5
m2
/s
Water (20 ◦
C, 1 atm), Table A.5, μ = 1.00 × 10−3
N·s/m2
; ν = 1.00 × 10−6
m2
/s
SOLUTION
Dynamic viscosity
μair
μwater
=
1.81 × 10−5
N · s/ m2
1.00 × 10−3 N · s/ m2
μair
μwater
= 1.81 × 10−2
Kinematic viscosity
νair
νwater
=
1.51 × 10−5
m2
/ s
1.00 × 10−6 m2/ s
νair
νwater
= 15.1
REVIEW
1. Water at these conditions (liquid) is about 55 times more viscous than air (gas).
2. However, the corresponding kinematic viscosity of air is 15 times higher than
the kinematic viscosity of water. The reason is that kinematic viscosity includes
density and ρair ¿ ρwater.
3. Remember that
(a) kinematic viscosity (ν) is related to dynamic viscosity (μ) by: ν = μ/ρ.
(b) the labels "viscosity," "dynamics viscosity," and "absolute viscosity" are
synonyms.
28
29. 2.28
Situation:
At a point in a flowing fluid, the shear stress is 1×10−4
psi, and the velocity gradient
is 1 s−1
.
Find:
a. What is the viscosity in traditional units?
b. Convert this viscosity to SI units.
c. Is this fluid more, or less, viscous than water?
SOLUTION
a.
τ = μ
dV
dy
μ =
τ
dV/dy
=
µ
1 × 10−4
lbf
in2
¶ ³ s
1
´
= 1 × 10−4 lbf· s
in2
b. Convert to SI units, using grid method
μ =
µ
1 × 10−4
lbf · s
in2
¶ µ
144 in2
1 ft2
¶ µ
(3.28)2
ft2
1 m2
¶ µ
4.448 N
1 lbf
¶
= 0.689 N· s
m2
c. The fluid is more viscous than water, based upon a comparison to tabular values
for water.
29
30. 2.29
Situation:
SAE 10W30 motor oil is used as a lubricant between two machine parts
μ = 1 × 10−4
lbf · s/ ft2
dV = 6 ft/ s
τmax = 2 lbf/ ft2
Find:
What is the required spacing, in inches?
SOLUTION
1. Use
τ = μ
dV
dy
2. Find dy
dy =
μ · dV
τ
=
µ
1 × 10−4
lbf · s
ft2
¶ µ
6 ft
s
¶ µ
ft2
2 lbf
¶
= (3 × 10−4
ft)
µ
12 in
1 ft
¶
= 3.6 × 10−3
in
The spacing needs to be equal to, or wider than 3.6 × 10−3
in in order for the shear
stress to be less than 2 lbf/ ft2
.
30
31. 2.30
Situation:
Water flows near a wall. The velocity distribution is
u(y) = a
³y
b
´1/6
a = 10 m/ s, b = 2 mm and y is the distance (mm) from the wall.
Find:
Shear stress in the water at y = 1 mm.
Properties:
Table A.5 (water at 20 ◦
C): μ = 1.00 × 10−3
N · s/ m2
.
SOLUTION
Rate of strain (algebraic equation)
du
dy
=
d
dy
∙
a
³y
b
´1/6
¸
=
a
b1/6
1
6y5/6
=
a
6b
µ
b
y
¶5/6
Rate of strain (at y = 1 mm)
du
dy
=
a
6b
µ
b
y
¶5/6
=
10 m/ s
6 × 0.002 m
µ
2 mm
1 mm
¶5/6
= 1485 s−1
Shear Stress
τy=1 mm = μ
du
dy
=
µ
1.00 × 10−3 N · s
m2
¶
¡
1485 s−1
¢
= 1.485 Pa
τ (y = 1 mm) = 1.49 Pa
31
32. 2.31
Situation:
Velocity distribution of crude oil between two walls.
μ = 8 × 10−5
lbf s/ ft2
, B = 0.1 ft.
u = 100y(0.1 − y) ft/ s, T = 100 ◦
F.
Find:
Shear stress at walls.
SOLUTION
Velocity distribution
u = 100y(0.1 − y) = 10y − 100y2
Rate of strain
du/dy = 10 − 200y
(du/dy)y=0 = 10 s−1
and (du/dy)y=0.1 = −10 s−1
Shear stress
τ0 = μ
du
dy
= (8 × 10−5
) × 10
τ0 = 8×10−4
lbf/ft2
τ0.1 = 8×10−4
lbf/ft2
Plot, where distance is in ft, and velocity is in ft/s.
0.00
0.02
0.04
0.06
0.08
0.10
Distance
Velocity
32
33. 2.32
Situation:
A liquid flows between parallel boundaries.
y0 = 0.0 mm, V0 = 0.0 m/ s.
y1 = 1.0 mm, V1 = 1.0 m/ s.
y2 = 2.0 mm, V2 = 1.99 m/ s.
y3 = 3.0 mm, V3 = 2.98 m/ s.
Find:
(a) Maximum shear stress.
(b) Location where minimum shear stress occurs.
SOLUTION
(a) Maximum shear stress
τ = μdV/dy
τmax ≈ μ(∆V/∆y) next to wall
τmax = (10−3
N · s/m2
)((1 m/s)/0.001 m)
τmax = 1.0 N/m2
(b)The minimum shear stress will occur midway between the two walls . Its mag-
nitude will be zero because the velocity gradient is zero at the midpoint.
33
34. 2.33
Situation:
Glycerin is flowing in between two stationary plates. The velocity distribution is
u = −
1
2μ
dp
dx
¡
By − y2
¢
dp/dx = −1.6 kPa/ m, B = 5 cm.
Find:
Velocity and shear stress at a distance of 12 mm from wall (i.e. at y = 12 mm).
Velocity and shear stress at the wall (i.e. at y = 0 mm).
Properties:
Glycerin (20 ◦
C), Table A.4: μ = 1.41 N · s/ m2
.
PLAN
Find velocity by direct substitution into the specified velocity distribution.
Find shear stress using the definition of viscosity: τ = μ (du/dy), where the rate-of-
strain (i.e. the derivative du/dy) is found by differentiating the velocity distribution.
SOLUTION
a.) Velocity (at y = 12 mm)
u = −
1
2μ
dp
dx
¡
By − y2
¢
= −
1
2 (1.41 N · s/ m2)
¡
−1600 N/ m3
¢ ¡
(0.05 m) (0.012 m) − (0.012 m)2¢
= 0.258 7
m
s
u (y = 12 mm) = 0.259 m/ s
Rate of strain (general expression)
du
dy
=
d
dy
µ
−
1
2μ
dp
dx
¡
By − y2
¢
¶
=
µ
−
1
2μ
¶ µ
dp
dx
¶
d
dy
¡
By − y2
¢
=
µ
−
1
2μ
¶ µ
dp
dx
¶
(B − 2y)
Rate of strain (at y = 12 mm)
du
dy
=
µ
−
1
2μ
¶ µ
dp
dx
¶
(B − 2y)
=
µ
−
1
2 (1.41 N · s/ m2)
¶ µ
−1600
N
m3
¶
(0.05 m − 2 × 0.012 m)
= 14.75 s−1
34
35. Definition of viscosity
τ = μ
du
dy
=
µ
1.41
N · s
m2
¶
¡
14.75 s−1
¢
= 20. 798 Pa
τ (y = 12 mm) = 20.8 Pa
b.) Velocity (at y = 0 mm)
u = −
1
2μ
dp
dx
¡
By − y2
¢
= −
1
2 (1.41 N · s/ m2)
¡
−1600 N/ m3
¢ ¡
(0.05 m) (0 m) − (0 m)2¢
= 0.00
m
s
u (y = 0 mm) = 0 m/ s
Rate of strain (at y = 0 mm)
du
dy
=
µ
−
1
2μ
¶ µ
dp
dx
¶
(B − 2y)
=
µ
−
1
2 (1.41 N · s/ m2)
¶ µ
−1600
N
m3
¶
(0.05 m − 2 × 0 m)
= 28.37 s−1
Shear stress (at y = 0 mm)
τ = μ
du
dy
=
µ
1.41
N · s
m2
¶
¡
28.37 s−1
¢
= 40.00 Pa
τ (y = 0 mm) = 40.0 Pa
REVIEW
1. As expected, the velocity at the wall (i.e. at y = 0) is zero due to the no slip
condition.
2. As expected, the shear stress at the wall is larger than the shear stress away
from the wall. This is because shear stress is maximum at the wall and zero
along the centerline (i.e. at y = B/2).
35
36. 2.34
Situation:
Oil (SAE 10W30) fills the space between two plates.
∆y = 1/8 = 0.125 in, u = 25 ft/ s.
Lower plate is at rest.
Find:
Shear stress in oil.
Properties:
Oil (SAE 10W30 @ 150 ◦
F) from Figure A.2: μ = 5.2 × 10−4
lbf·s/ft2
.
Assumptions:
1.) Assume oil is a Newtonian fluid.
2.) Assume Couette flow (linear velocity profile).
SOLUTION
Rate of strain
du
dy
=
∆u
∆y
=
25 ft/ s
(0.125/12) ft
du
dy
= 2400 s−1
Newton’s law of viscosity
τ = μ
µ
du
dy
¶
=
µ
5.2 × 10−4 lbf · s
ft2
¶
×
µ
2400
1
s
¶
= 1. 248
lbf
ft2
τ = 1.25 lbf
ft2
36
37. 2.35
Situation:
Sliding plate viscometer is used to measure fluid viscosity.
A = 50 × 100 mm, ∆y = 1 mm.
u = 10 m/ s, F = 3 N.
Find:
Viscosity of the fluid.
Assumptions:
Linear velocity distribution.
PLAN
1. The shear force τ is a force/area.
2. Use equation for viscosity to relate shear force to the velocity distribution.
SOLUTION
1. Calculate shear force
τ =
Force
Area
τ =
3 N
50 mm × 100 mm
τ = 600 N/ m2
2. Find viscosity
μ =
τ
³
du
dy
´
μ =
600 N/ m2
[10 m/ s] / [1 mm]
×
1 m
1000 mm
μ = 6 × 10−2 N· s
m2
37
38. 2.36
Situation:
Laminar flow occurs between two horizontal parallel plates. The velocity distrib-
ution is
u = −
1
2μ
dp
ds
¡
Hy − y2
¢
+ ut
y
H
Pressure p decreases with distance s, and the speed of the upper plate is ut. Note
that ut has a negative value to represent that the upper plate is moving to the left.
Moving plate: y = H.
Stationary plate: y = 0.
Find:
(a) Whether shear stress is greatest at the moving or stationary plate.
(b) Location of zero shear stress.
(c) Derive an expression for plate speed to make the shear stress zero at y = 0.
Sketch:
H
u
ut
y
s
PLAN
By inspection, the rate of strain (du/dy) or slope of the velocity profile is larger at
the moving plate. Thus, we expect shear stress τ to be larger at y = H. To check
this idea, find shear stress using the definition of viscosity: τ = μ (du/dy). Evaluate
and compare the shear stress at the locations y = H and y = 0.
SOLUTION
Part (a)
1. Shear stress, from definition of viscosity
τ = μ
du
dy
= μ
d
dy
∙
−
1
2μ
dp
ds
¡
Hy − y2
¢
+ ut
y
H
¸
= μ
∙
−
H
2μ
dp
ds
+
y
μ
dp
ds
+
ut
H
¸
τ (y) = −
(H − 2y)
2
dp
ds
+
μut
H
38
39. Shear stress at y = H
τ (y = H) = −
(H − 2H)
2
dp
ds
+
μut
H
=
H
2
µ
dp
ds
¶
+
μut
H
(1)
2. Shear stress at y = 0
τ (y = 0) = −
(H − 0)
2
dp
ds
+
μut
H
= −
H
2
µ
dp
ds
¶
+
μut
H
(2)
Since pressure decreases with distance, the pressure gradient dp/ds is negative. Since
the upper wall moves to the left, ut is negative. Thus, maximum shear stress occurs
at y = H because both terms in Eq. (1) have the same sign (they are both negative.)
In other words,
|τ (y = H)| > |τ (y = 0)|
.
Maximum shear stress occur at y = H .
Part (b)
Use definition of viscosity to find the location (y) of zero shear stress
τ = μ
du
dy
= −μ(1/2μ)
dp
ds
(H − 2y) +
utμ
H
= −(1/2)
dp
ds
(H − 2y) +
utμ
H
Set τ = 0 and solve for y
0 = −(1/2)
dp
ds
(H − 2y) +
utμ
H
y =
H
2
−
μut
Hdp/ds
Part (c)
39
40. τ = μ
du
dy
= 0 at y = 0
du
dy
= −(1/2μ)
dp
ds
(H − 2y) +
ut
H
Then, at y = 0 : du/dy = 0 = −(1/2μ)
dp
ds
H +
ut
H
Solve for ut : ut = (1/2μ)
dp
ds
H2
Note : because
dp
ds
< 0, ut < 0.
40
41. 2.37
Situation:
A cylinder falls inside a pipe filled with oil.
d = 100 mm, D = 100.5 mm.
= 200 mm, W = 15 N.
Find:
Speed at which the cylinder slides down the pipe.
Properties:
SAE 20W oil (10o
C) from Figure A.2: μ = 0.35 N·s/m2
.
Assumptions:
Assume that buoyant forces can be neglected.
SOLUTION
τ = μ
dV
dy
W
πd
=
μVfall
(D − d)/2
Vfall =
W(D − d)
2πd μ
Vfall =
15 N(0.5 × 10−3
m)
(2π × 0.1 m × 0.2 m × 3.5 × 10−1 N s/ m2)
Vfall = 0.17m/s
41
42. 2.38
Situation:
A disk is rotated very close to a solid boundary with oil in between.
ωa = 1 rad/ s, r2 = 2 cm, r3 = 3 cm.
ωb = 2 rad/ s, rb = 3 cm.
H = 2 mm, μc = 0.01 N s/ m2
.
Find:
(a) Ratio of shear stress at 2 cm to shear stress at 3 cm.
(b) Speed of oil at contact with disk surface.
(c) Shear stress at disk surface.
Assumptions:
Linear velocity distribution: dV/dy = V/y = ωr/y.
SOLUTION
(a) Ratio of shear stresses
τ = μ
dV
dy
=
μωr
y
τ2
τ3
=
μ × 1 × 2/y
μ × 1 × 3/y
τ2
τ3
=
2
3
(b) Speed of oil
V = ωr = 2 × 0.03
V = 0.06m/s
(c) Shear stress at surface
τ = μ
dV
dy
= 0.01 N s/ m2
×
0.06 m/ s
0.002 m
τ = 0.30 N/m2
42
43. 2.39
Situation:
A disk is rotated in a container of oil to damp the motion of an instrument.
Find:
Derive an equation for damping torque as a function of D, S, ω and μ.
PLAN
Apply the Newton’s law of viscosity.
SOLUTION
Shear stress
τ = μ
dV
dy
=
μrω
s
Find differential torque–on an elemental strip of area of radius r the differential
shear force will be τdA or τ(2πrdr). The differential torque will be the product of
the differential shear force and the radius r.
dTone side = r[τ(2πrdr)]
= r
hμrω
s
(2πrdr)
i
=
2πμω
s
r3
dr
dTboth sides = 4
³rπμω
s
´
r3
dr
Integrate
T =
D/2Z
0
4πμω
s
r3
dr
T =
1
16
πμωD4
s
43
44. 2.40
Situation:
One type of viscometer involves the use of a rotating cylinder inside a fixed cylinder.
Tmin = 50 ◦
F, Tmax = 200 ◦
F.
Find:
(a) Design a viscometer that can be used to measure the viscosity of motor oil.
Assumptions:
Motor oil is SAE 10W-30. Data from Fig A-2: μ will vary from about 2×10−4
lbf-
s/ft2
to 8 × 10−3
lbf-s/ft2
.
Assume the only significant shear stress is developed between the rotating cylinder
and the fixed cylinder.
Assume we want the maximum rate of rotation (ω) to be 3 rad/s.
Maximum spacing is 0.05 in.
SOLUTION
One possible design solution is given below.
Design decisions:
1. Let h = 4.0 in. = 0.333 ft
2. Let I.D. of fixed cylinder = 9.00 in. = 0.7500 ft.
3. Let O.D. of rotating cylinder = 8.900 in. = 0.7417 ft.
Let the applied torque, which drives the rotating cylinder, be produced by a force
from a thread or small diameter monofilament line acting at a radial distance rs.
Here rs is the radius of a spool on which the thread of line is wound. The applied
force is produced by a weight and pulley system shown in the sketch below.
h rc
Δr
W
Pulley
The relationship between μ, rs, ω, h, and W is now developed.
T = rcFs (1)
where T = applied torque
44
45. rc = outer radius of rotating cylinder
Fs = shearing force developed at the outer radius of the rotating cylinder but Fs =
τAs where As = area in shear = 2πrch
τ = μdV/dy ≈ μ∆V/∆r where ∆V = rcω and ∆r = spacing
Then T = rc(μ∆V/∆r)(2πrch)
= rcμ(
rcω
∆r
)(2πrch) (2)
But the applied torque T = Wrs so Eq. (2) become
Wrs = r3
c μω(2π)
h
∆r
Or
μ =
Wrs∆r
2πωhr3
c
(3)
The weight W will be arbitrarily chosen (say 2 or 3 oz.) and ω will be determined by
measuring the time it takes the weight to travel a given distance. So rsω = Vfall or
ω = Vfall/rs. Equation (3) then becomes
μ =
µ
W
Vf
¶ µ
r2
s
r3
c
¶ µ
∆r
2πh
¶
In our design let rs = 2 in. = 0.1667 ft. Then
μ =
µ
W
Vf
¶
(0.1667)2
(.3708)3
0.004167
(2π × .3333)
μ =
µ
W
Vf
¶ µ
0.02779
0.05098
¶
μ =
µ
W
Vf
¶
(1.085 × 10−3
) lbf · s/ft2
Example: If W = 2oz. = 0.125lb. and Vf is measured to be 0.24 ft/s then
μ =
0.125
0.24
(1.085 × 10−3
) lbf s/ ft2
= 0.564 × 10−4
lbf · s/ ft2
REVIEW
Other things that could be noted or considered in the design:
1. Specify dimensions of all parts of the instrument.
2. Neglect friction in bearings of pulley and on shaft of cylinder.
3. Neglect weight of thread or monofilament line.
4. Consider degree of accuracy.
5. Estimate cost of the instrument.
45
46. 2.41
Situation:
Questions on the effect of temperature upon different types of fluids.
Find:
(a) If temperature increases, does the viscosity of water increase or decrease? Why?
(b) If temperature increases, does the viscosity of air increase or decrease? Why?
SOLUTION
(a) The viscosity of water decreases with increasing temperature . This is true for
all liquids, and is because the loose molecular lattice within liquids, which provides a
given resistance to shear at a relatively cool temperature, has smaller energy barriers
resisting movement at higher temperatures.
(b) The viscosity of air increases with increasing temperature . This is true for all
gases, and is because gases do not have a loose molecular lattice. The only resistance
to shear provided in gases is due to random collision between different layers. As
the temperature increases, there are more likely to be more collisions, and therefore
a higher viscosity.
46
47. 2.42
Situation:
Sutherland’s equation (select all that apply):
a. relates temperature and viscosity
b. must be calculated using Kelvin
c. requires use of a single universal constant for all gases
d. requires use of a different constant for each gas
SOLUTION
Answers are (a) and (b). Answers c and d are relevant to the ideal gas law, not
Sutherland’s equation.
47
48. 2.43
Situation:
When looking up values for density, absolute viscosity, and kinematic viscosity, which
statement is true for BOTH liquids
and gases?
a. all 3 of these properties vary with temperature
b. all 3 of these properties vary with pressure
c. all 3 of these properties vary with temperature and pressure
SOLUTION
Answer is (a). The absolute and kinematic viscosities of liquids do not vary with
pressure.
48
49. 2.44
Situation:
Common Newtonian fluids are:
a. toothpaste, catsup, and paint
b. water, oil and mercury
c. all of the above
SOLUTION
The answer is (b). Toothpaste, catsup, and paint are not Newtonian, but are shear-
thinning; see Fig. 2.14 in EFM10e.
49
50. 2.45
Situation:
Which of these flows (deforms) with even a small shear stress applied?
a. a Bingham plastic
b. a Newtonian fluid
SOLUTION
The answer is (b); see Fig. 2.14 in EFM10e.
50
51. 2.46
Situation:
Sutherland’s equation and the ideal gas law describe behaviors of common gases.
Find:
Develop an expression for the kinematic viscosity ratio ν/νo, where ν is at temper-
ature T and pressure p.
Assumptions:
Assume a gas is at temperature To and pressure po, where the subscript ”o” defines
the reference state.
PLAN
Combine the ideal gas law and Sutherland’s equation.
**Note that S = Sutherland’s constant (and not specific gravity).
SOLUTION
The ratio of kinematic viscosities is
ν
νo
=
μ
μo
ρo
ρ
=
µ
T
To
¶3/2
To + S
T + S
po
p
T
To
ν
νo
=
po
p
µ
T
To
¶5/2
To + S
T + S
51
52. 2.47
Situation:
The dynamic viscosity of air.
μo = 1.78 × 10−5
N·s/m2
.
To = 15 ◦
C, T = 100 ◦
C.
Find:
Dynamic viscosity μ.
Properties:
From Table A.2, S = 111K.
SOLUTION
Sutherland’s equation
μ
μo
=
µ
T
To
¶3/2
To + S
T + S
=
µ
373 K
288 K
¶3/2
288 K + 111 K
373 K + 111 K
μ
μo
= 1.22
Thus
μ = 1.22μo
= 1.22 ×
¡
1.78 × 10−5
N · s/ m2
¢
μ = 2.17 × 10−5
N·s/m2
52
53. 2.48
Situation:
Methane gas.
vo = 1.59 × 10−5
m2
/ s.
To = 15 ◦
C, T = 200 ◦
C.
po = 1 atm, p = 2 atm.
Find:
Kinematic viscosity ( m2
/ s).
Properties:
From Table A.2, S = 198 K.
PLAN
Apply the ideal gas law and Sutherland’s equation.
SOLUTION
ν =
μ
ρ
ν
νo
=
μ
μo
ρo
ρ
Ideal-gas law
ν
νo
=
μ
μo
po
p
T
To
Sutherland’s equation
ν
νo
=
po
p
µ
T
To
¶5/2
To + S
T + S
so
ν
νo
=
1
2
µ
473 K
288 K
¶5/2
288 K + 198 K
473 K + 198 K
= 1.252
and
ν = 1.252 × 1.59 × 10−5
m2
/s
ν = 1.99 × 10−5
m2
/ s
53
54. 2.49
Situation:
Nitrogen gas.
μo = 3.59 × 10−7
lbf · s/ ft2
.
To = 59 ◦
F, T = 200 ◦
F.
Find:
μ using Sutherland’s equation.
Properties:
From Table A.2, S =192o
R.
SOLUTION
Sutherland’s equation
μ
μo
=
µ
T
To
¶3/2
To + S
T + S
=
µ
660o
R
519oR
¶3/2
519o
R + 192o
R
660oR + 192oR
= 1.197
μ = 1.197 ×
µ
3.59 × 10−7 lbf · s
ft2
¶
= 4. 297 × 10−7
μ = 4.30 × 10−7
lbf-s/ft2
54
55. 2.50
Situation:
Helium gas.
vo = 1.22 × 10−3
ft2
/ s.
To = 59 ◦
F, T = 30 ◦
F.
po = 1 atm, p = 1.5 atm.
Find:
Kinematic viscosity using Sutherland’s equation.
Properties:
From Table A.2, S =143o
R.
PLAN
Combine the ideal gas law and Sutherland’s equation.
SOLUTION
ν
νo
=
po
p
µ
T
To
¶5/2
To + S
T + S
=
1.5
1
µ
490o
R
519oR
¶5/2
519o
R + 143o
R
490oR + 143oR
= 1.359
ν = 1.359 ×
µ
1.22 × 10−3 ft2
s
¶
= 1. 658 × 10−3 ft2
s
ν = 1.66 × 10−3
ft2
/ s
55
56. 2.51
Situation:
Ammonia at room temperature.
To = 68 ◦
F, μo = 2.07 × 10−7
lbf s/ ft2
.
T = 392 ◦
F, μ = 3.46 × 10−7
lbf s/ ft2
.
Find:
Sutherland’s constant.
SOLUTION
Sutherland’s equation
S
To
=
μ
μo
¡To
T
¢1/2
− 1
1 − μ
μo
¡To
T
¢3/2
(1)
Calculations
μ
μo
=
3.46 × 10−7
lbf s/ ft2
2.07 × 10−7 lbf s/ ft2 = 1.671 (a)
To
T
=
528 ◦
R
852 ◦R
= 0.6197 (b)
Substitute (a) and (b) into Eq. (1)
S
To
= 1.71
S = 903 o
R
56
57. 2.52
Situation:
SAE 10W30 motor oil.
To = 38 ◦
C, μo = 0.067 N s/ m2
.
T = 99 ◦
C, μ = 0.011 N s/ m2
.
Find:
The viscosity of motor oil, μ(60o
C), using the equation μ = Ceb/T
.
PLAN
Use algebra and known values of viscosity (μ) to solve for the constant b. Then,
solve for the unknown value of viscosity.
SOLUTION
Viscosity variation of a liquid can be expressed as μ = Ceb/T
. Thus, evaluate μ at
temperatures T and To and take the ratio:
μ
μo
= exp
∙
b(
1
T
−
1
To
)
¸
Take the logarithm and solve for b.
b =
ln (μ/μo)
( 1
T
− 1
To
)
Data
μ/μo =
0.011 N s/ m2
0.067 N s/ m2
= 0.164
T = 372 K
To = 311 K
Solve for b
b = 3429 (K)
Viscosity ratio at 60o
C
μ
μo
= exp
∙
3429
µ
1
333 K
−
1
311 K
¶¸
= 0.4833
μ = 0.4833 × 0.067 N s/ m2
μ = 0.032 N · s/ m2
57
58. 2.53
Situation:
Viscosity of grade 100 aviation oil.
To = 100 ◦
F, μo = 4.43 × 10−3
lbf s/ ft2
.
T = 210 ◦
F, μ = 3.9 × 10−4
lbf s/ ft2
.
Find:
μ(150o
F), using the equation μ = Ceb/T
.
PLAN
Use algebra and known values of viscosity (μ) to solve for the constant b. Then,
solve for the unknown value of viscosity.
SOLUTION
Viscosity variation of a liquid can be expressed as μ = Ceb/T
. Thus, evaluate μ at
temperatures T and To and take the ratio:
μ
μo
= exp
∙
b(
1
T
−
1
To
)
¸
Take the logarithm and solve for b
b =
ln (μ/μo)
( 1
T
− 1
To
)
Data
μ
μo
=
0.39 × 10−3
lbf s/ ft2
4.43 × 10−3 lbf s/ ft2 = 0.08804
T = 670o
R
To = 560o
R
Solve for b
b = 8288 (o
R)
Viscosity ratio at 150o
F
μ
μo
= exp
∙
8288
µ
1
610oR
−
1
560oR
¶¸
= 0.299
μ = 0.299 ×
µ
4.43 × 10−3 lbf · s
ft2
¶
μ = 1.32 × 10−3 lbf· s
ft2
58
59. 2.54
Situation:
Properties of air and water.
T = 40 ◦
C, p = 170 kPa.
Find:
Kinematic and dynamic viscosities of air and water.
Properties:
Air data from Table A.3, μair = 1.91 × 10−5
N·s/m2
Water data from Table A.5, μwater = 6.53 × 10−4
N·s/m2
, ρwater = 992 kg/m3
.
PLAN
Apply the ideal gas law to find density. Find kinematic viscosity as the ratio of
dynamic and absolute viscosity.
SOLUTION
A.) Air
Ideal gas law
ρair =
p
RT
=
170, 000 Pa
(287 J/ kg K) (313.2 K)
= 1.89 kg/m3
μair = 1.91 × 10−5 N· s
m2
ν =
μ
ρ
=
1.91 × 10−5
N s/ m2
1.89 kg/ m3
νair = 10.1 × 10−5
m2
/ s
B.) water
μwater = 6.53 × 10−5
N·s/m2
ν =
μ
ρ
ν =
6.53 × 10−4
N s/ m2
992 kg/ m3
νwater = 6.58 × 10−7
m2
/s
59
60. 2.55
Situation:
Oxygen at 50 ◦
F and 100 ◦
F.
Find:
Ratio of viscosities: μ100
μ50
.
SOLUTION
Because the viscosity of gases increases with temperature μ100/μ50 > 1. Correct
choice is (c) .
60
61. 2.56
Situation:
Surface tension: (select all that apply)
a. only occurs at an interface, or surface
b. has dimensions of energy/area
c. has dimensions of force/area
d. has dimensions of force/length
e. depends on adhesion and cohesion
f. varies as a function of temperature
SOLUTION
Answers are a, b, d, e, and f.
61
62. 2.57
Situation:
Very small spherical droplet of water.
Find:
Pressure inside.
SOLUTION
Refer to Fig. 2-6(a). The surface tension force, 2πrσ, will be resisted by the pressure
force acting on the cut section of the spherical droplet or
p(πr2
) = 2πrσ
p =
2σ
r
p =
4σ
d
62
63. 2.58
Situation:
A spherical soap bubble.
Inside radius R, wall-thickness t, surface tension σ.
Special case: R = 4 mm.
Find:
Derive a formula for the pressure difference across the bubble
Pressure difference for bubble with R = 4 mm.
Assumptions:
The effect of thickness is negligible, and the surface tension is that of pure water.
PLAN
Apply equilibrium, then the surface tension force equation.
SOLUTION
Force balance
p
2 x 2 Rπ σ
Surface tension force
X
F = 0
∆pπR2
− 2(2πRσ) = 0
Formula for pressure difference
∆p =
4σ
R
Pressure difference
∆p4mm rad. =
4 × 7.3 × 10−2
N/m
0.004 m
∆p4mm rad. = 73.0 N/m2
63
64. 2.59
Situation:
A water bug is balanced on the surface of a water pond.
n = 6 legs, = 5 mm/leg.
Find:
Maximum mass of bug to avoid sinking.
Properties:
Surface tension of water, from Table A.4, σ = 0.073 N/m.
PLAN
Apply equilibrium, then the surface tension force equation.
SOLUTION
Force equilibrium
Upward force due to surface tension = Weight of Bug
FT = mg
To find the force of surface tension (FT ), consider the cross section of one leg of the
bug:
θ
F F
Surface tension
force on one
side of leg
Cross section
of bug leg
Assume is small
Then cos =1; F cos = F
θ
θ θ
Surface tension force
FT = (2/leg)(6 legs)σ
= 12σ
= 12(0.073 N/m)(0.005 m)
= 0.00438 N
Apply equilibrium
FT − mg = 0
m =
FT
g
=
0.00438 N
9.81 m2/ s
= 0.4465 × 10−3
kg
m = 0.447 g
64
65. 2.60
Situation:
A water column in a glass tube is used to measure pressure.
d1 = 0.25 in, d2 = 1/8 in, d3 = 1/32 in.
Find:
Height of water column due to surface tension effects for all diameters.
Assumptions:
Assume that θ = 0.
Properties:
From Table A.4: surface tension of water is 0.005 lbf/ft.
SOLUTION
Surface tension force
∆h =
4σ
γd
=
4 × 0.005 lbf/ ft
62.4 lbf/ ft3
× d ft
=
3.21 × 10−4
ft2
d ft
d =
1
4
in. =
1
48
ft.; ∆h =
3.21 × 10−4
ft2
1/48 ft
= 0.0154 ft. = 0.185 in.
d =
1
8
in. =
1
96
ft.; ∆h =
3.21 × 10−4
ft2
1/96 ft
= 0.0308 ft. = 0.369 in.
d =
1
32
in. =
1
384
ft.; ∆h =
3.21 × 10−4
ft2
1/384 ft
= 0.123 ft.= 1.48 in.
65
66. 2.61
Situation:
Two vertical glass plates
t = 1 mm
Find:
Capillary rise (h) between the plates.
Properties:
From Table A.4, surface tension of water is 7.3 × 10−2
N/m.
PLAN
Apply equilibrium, then the surface tension force equation.
SOLUTION
Equilibrium
X
Fy = 0
Force due to surface tension = Weight of fluid that has been pulled upward
(2 ) σ = (h t) γ
Solve for capillary rise (h)
66
67. 2σ − h tγ = 0
h =
2σ
γt
h =
2 × (7.3 × 10−2
N/ m)
9810 N/ m3 × 0.001 m
= 0.0149 m
h = 14.9 mm
67
68. 2.62
Situation:
A spherical water drop.
d = 1 mm
Find:
Pressure inside the droplet (N/m2
)
Properties:
From Table A.4, surface tension of water is 7.3 × 10−2
N/m
PLAN
Apply equilibrium, then the surface tension force equation.
SOLUTION
Equilibrium (half the water droplet)
Force due to pressure = Force due to surface tension
pA = σL
∆pπR2
= 2πRσ
Solve for pressure
∆p =
2σ
R
∆p =
2 × 7.3 × 10−2
N/ m
(0.5 × 10−3 m)
∆p = 292 N/m2
68
69. 2.63
Situation:
A tube employing capillary rise is used to measure temperature of water
T0 = 0 ◦
C, T100 = 100 ◦
C
σ0 = 0.0756 N/ m, σ100 = 0.0589 N/ m
Find:
Size the tube (this means specify diameter and length).
Assumptions:
Assume for this problem that differences in γ,due to temperature change, are negli-
gible.
PLAN
Apply equilibrium and the surface tension force equation.
SOLUTION
The elevation in a column due to surface tension is
∆h =
4σ
γd
where γ is the specific weight and d is the tube diameter. For the change in surface
tension due to temperature, the change in column elevation would be
∆h =
4∆σ
γd
=
4 × 0.0167 N/ m
9810 N/ m3 × d
=
6.8 × 10−6
d m
2
m2
=
6.8 mm2
d mm
The change in column elevation for a 1-mm diameter tube would be 6.8 mm . Spe-
cial equipment, such the optical system from a microscope, would have to be used to
measure such a small change in deflection It is unlikely that smaller tubes made of
transparent material can be purchased to provide larger deflections.
69
70. 2.64
Situation:
Capillary rise is the distance water will rise above a water table, because the intercon-
nected pores in the soil act like capillary tubes. This means that deep-rooted plants
in the desert need only grow to the top of the “capillary fringe” in order to get water;
they do not have to extend all the way down to the water table.
a. Assuming that interconnected pores can be represented as a continuous capillary
tube, how high is the capillary rise in a soil consisting of a silty soil, with pore diameter
of 10 μm?
b. Is the capillary rise higher in a soil with fine sand (pore d approx. 0.1 mm), or
in fine gravel (pore d approx. 3 mm)?
c. Root cells extract water from soil using capillarity. For root cells to extract
water from the capillary zone, do the pores in a root need to be smaller than, or
greater than, the pores in the soil?
SOLUTION
a. Apply principals of surface tension, using Eq. 2.26 from EFM10e:
∆h =
4σ
γd
From Table A.5 in EFM10e, bottom line, σair/water = 7.3 × 10−2
N/ m
∆h =
µ
4(7.3 × 10−2
) N
m
¶ µ
m3
9810 N
¶ µ
1
10 × 10−6 m
¶
= 3.0 m
b. By inspection of Eq. 2.26 of EFM10e, the pore diameter, d, is in the denomina-
tor, so as d gets smaller, ∆h increases. Therefore, capillary rise is higher in a clay
than in a gravel, because the pores are smaller.
c. In order to "wick" water from the soil, the pores in the roots need to be smaller
than the pores in the soil.
70
71. 2.65
Situation:
A soap bubble and a droplet of water of equal diameter falling in air
d = 2 mm, σbubble = σdroplet
Find:
Which has the greater pressure inside.
SOLUTION
The soap bubble will have the greatest pressure because there are two surfaces (two
surface tension forces) creating the pressure within the bubble. The correct choice is
a)
71
72. 2.66
Situation:
A hemispherical drop of water is suspended under a surface
Find:
Diameter of droplet just before separation
Properties:
Table A.5 (20 ◦
C): γ = 9790 N/ m3
, σ = 0.073 N/ m.
SOLUTION
Equilibrium
Weight of droplet = Force due to surface tension
µ
πD3
12
¶
γ = (πD) σ
Solve for D
D2
=
12σ
γ
=
12 × (0.073 N/m)
9790 N/m3 = 8. 948 × 10−5
m2
D = 9. 459 × 10−3
m
D = 9.46 mm
72
73. 2.67
Situation:
Surface tension is being measured by suspending liquid from a ring
Di = 10 cm, Do = 9.5 cm
m = 10 g, F = 16 g × g, where g is the acceleration of gravity
Find:
Surface tension ( N/ m)
PLAN
1. Force equilibrium on the fluid suspended in the ring. For force due to surface
tension, use the form of the equation provided in the text for the special case of a
ring being pulled out of a liquid.
2. Solve for surface tension - all the other forces are known.
SOLUTION
1. Force equilibrium
(Upward force) = (Weight of fluid) + (Force due to surface tension)
F = W + σ(πDi + πDo)
2. Solve for surface tension
σ =
F − W
π(Di + Do)
σ =
(0.016 − 0.010) kg × 9.81 m/ s2
π(0.1 + 0.095) m
σ = 9.61 × 10−2 kg
s2
σ = 0.0961 N/m
73
74. 2.68
Situation:
If liquid water at 30◦
C is flowing in a pipe and the pressure drops to the vapor
pressure, what happens in the water?
a. the water begins condensing on the walls of the pipe
b. the water boils
c. the water flashes to vapor
SOLUTION
The answer is (b), it boils. Answer (c) is not correct. Flash vaporization is an
industrial process used to separate volatile hydrocarbons; see the internet.
74
75. 2.69
Find:
How does vapor pressure change with increasing temperature?
a. it increases
b. it decreases
c. it stays the same
SOLUTION
The answer is (a).
REVIEW Vapor pressure increases with increasing temperature. To get an every-
day feel for this, note from the Appendix that the vapor pressure of water at 212 ◦
F
(100 ◦
C) is 101 kPa (14.7 psia). To get water to boil at a lower temperature, you
would have to exert a vacuum on the water. To keep it from boiling until a higher
temperature, you would have to pressurize it.
75
76. 2.70
Situation:
T = 20 ◦
C,fluid is water.
Find:
The pressure that must be imposed to cause boiling
Properties:
Water (60 ◦
F), Table A.5: Pv = 2340 Pa abs
SOLUTION
Bubbles will be noticed to be forming when P = Pv.
P = 2340 Pa abs
76
77. 2.71
Situation:
Water in a closed tank
T = 20 ◦
C, p = 10400 Pa
Find:
Whether water will bubble into the vapor phase (boil).
Properties:
From Table A.5, at T = 20 ◦
C, Pv = 2340 Pa abs
SOLUTION
The tank pressure is 10,400 Pa abs, and Pv = 2340 Pa abs. So the tank pressure is
higher than the Pv. Therefore the water will not boil .
REVIEW
The water can be made to boil at this temperature only if the pressure is reduced
to 2340 Pa abs. Or, the water can be made to boil at this pressure only if the
temperature is raised to approximately 50 ◦
C.
77
78. 2.72
Situation:
The boiling temperature of water decreases with increasing elevation
∆p
∆T
= −3.1 kPa
oC
.
Find:
Boiling temperature at an altitude of 3000 m
Properties:
T = 100o
C, p = 101 kN/ m2
.
z3000 = 3000 m, p3000 = 69 kN/ m2
.
Assumptions:
Assume that vapor pressure versus boiling temperature is a linear relationship.
PLAN
Develop a linear equation for boiling temperature as a function of elevation.
SOLUTION
Let BT = "Boiling Temperature." Then, BT as a function of elevation is
BT (3000 m) = BT (0 m) +
µ
∆BT
∆p
¶
∆p
Thus,
BT (3000 m) = 100 ◦
C +
µ
−1.0 ◦
C
3.1 kPa
¶
(101 − 69) kPa
= 89. 677 ◦
C
Boiling Temperature (3000 m) = 89.7 ◦
C
78
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