SlideShare a Scribd company logo
1 of 11
Download to read offline
QUESTION 
An understanding of the basic laws governing heat transfer is imperative to everything you will 
learn this semester. Write the equation for and explain the following laws governing the three 
basic modes of heat transfer. Do not forget to explain each symbol or constant along with any 
pertinent units. 
a. Fourier’s Law 
b. Newton’s Law of Cooling 
c. The Stefan-Boltzmann Law 
ANSWER 
a. Fourier’s law pertains to conductive heat transfer. A one-dimensional form of this 
law is below. Units are given in brackets. 
This equation allows heat flux ( ) to be put in a rate form with temperature 
( ) and spatial ( ) differentials along with thermal conductivity ( ) 
. The thermal conductivity is a transport property of the medium through 
which the heat travels. Because heat is transferred via a thermal gradient, a negative sign 
is present to signify a heat loss. A more in-depth discussion of Fourier’s law is given on 
page 4 of the text, Fundamentals of Heat Transfer by Incropera, sixth edition. 
b. Newton’s law of cooling pertains to convective heat transfer; it has the following 
form. 
This equation is commonly referred to Newton’s law of cooling, but it is simply another 
rate equation. Here, represents the heat flux, but is not specific to one 
direction as in Fourier’s law. Heat flux is proportional to the temperature difference 
between surface and fluid . The symbol is the convection 
heat transfer coefficient. As described on page 8 of the text, the convection heat transfer 
coefficient “depends on conditions in the boundary layer, which are influenced by surface 
geometry, the nature of the fluid motion, and an assortment of fluid thermodynamic and 
transport properties”. A more in-depth discussion of Newton’s law of cooling is given on 
page 8 of the text, Fundamentals of Heat Transfer by Incropera, sixth edition. 
c. The Stefan-Boltzmann law pertains to radiative heat transfer. The ideal case where 
emissivity is at a maximum is known as blackbody radiation; given by the equation 
below.
Here, emissive power is denoted as and subscript signifying ‘blackbody’ 
radiation. Again, is termed as the surface temperature from which radiation is the 
source. The Stefan-Boltzmann constant is denoted as σ and has a value of 
5.67 E -8 . For a real surface, and not a blackbody, the radiative property of 
emissivity, ε, is added to the equation to become the following. 
Emissivity is a property of the surface from which heat is transferred. The value of 
emissivity is always between zero and one and is unitless; when , blackbody 
radiation is present. A more in-depth discussion of the Stefan-Boltzmann law is given on 
page 9 of the text, Fundamentals of Heat Transfer by Incropera, sixth edition.
PROBLEM 2 
KNOWN: Dimensions, thermal conductivity and surface temperatures of a concrete slab. Efficiency 
of gas furnace and cost of natural gas. 
F IND: Daily cost of heat loss. 
SCHEMATIC: 
A SSUMPTIONS: (1) Steady state, (2) One-dimensional conduction, (3) Constant properties. 
ANALYSIS: The rate of heat loss by conduction through the slab is 
− 
q = k (LW) T1 T2 = 1.4W/m ⋅ K(11m × 8m) 7 ° 
C = 
4312 W 
t 0.2 
0 m 
< 
The daily cost of natural gas that must be combusted to compensate for the heat loss is 
qC 4312W × 
C t $0.01/MJ 24 h / d 3600s / h $4.14 / d 
g ( ) ( ) 
= Δ = × = 
d 6 f 
η 0.9 × 
10 J /MJ 
< 
COMMENTS: The loss could be reduced by installing a floor covering with a layer of insulation 
between it and the concrete.
PROBLEM 3 
KNOWN: Dimensions of freezer compartment. Inner and outer surface temperatures. 
FIND: Thickness of styrofoam insulation needed to maintain heat load below prescribed 
value. 
SCHEMATIC: 
ASSUMPTIONS: (1) Perfectly insulated bottom, (2) One-dimensional conduction through 5 
walls of area A = 4m2, (3) Steady-state conditions, (4) Constant properties. 
ANALYSIS: Using Fourier’s law, Eq. 1.2, the heat rate is 
Δ 
q = q A = k T 
′′ ⋅ Atotal 
L 
Solving for L and recognizing that Atotal = 5×W2, find 
Δ 2 
L = 5 k T W 
q 
5 0.03 W/m K 35 - (-10) C (4m ) 
L = 
× ⋅ ⎡ ⎤ 2 ⎣ ⎦ 
500 W 
D 
L = 0.054m = 54mm. < 
COMMENTS: The corners will cause local departures from one-dimensional conduction 
and a slightly larger heat loss.
PROBLEM 4 
KNOWN: Power required to maintain the surface temperature of a long, 25-mm diameter cylinder 
with an imbedded electrical heater for different air velocities. 
FIND: (a) Determine the convection coefficient for each of the air velocity conditions and display the 
results graphically, and (b) Assuming that the convection coefficient depends upon air velocity as h = 
CV 
n, determine the parameters C and n. 
SCHEMATIC: 
V(m/s) 1 2 4 8 12 
P′ e (W/m) 450 658 983 1507 1963 
h (W/m2⋅K) 22.0 32.2 48.1 73.8 96.1 
ASSUMPTIONS: (1) Temperature is uniform over the cylinder surface, (2) Negligible radiation 
exchange between the cylinder surface and the surroundings, (3) Steady-state conditions. 
ANALYSIS: (a) From an overall energy balance on the cylinder, the power dissipated by the 
electrical heater is transferred by convection to the air stream. Using Newton’s law of cooling on a per 
unit length basis, 
Pe′ = h (π D)(Ts −T∞ ) 
Pe′ 
where is the electrical power dissipated per unit length of the cylinder. For the V = 1 m/s 
condition, using the data from the table above, find 
h = 450W m π ×0.025m(300 − 40)D C = 22.0W m2⋅K < 
Repeating the calculations, find the convection coefficients for the remaining conditions which are 
tabulated above and plotted below. Note that h is not linear with respect to the air velocity. 
(b) To determine the (C,n) parameters, we plotted h vs. V on log-log coordinates. Choosing C = 22.12 
W/m2⋅K(s/m)n, assuring a match at V = 1, we can readily find the exponent n from the slope of the h 
vs. V curve. From the trials with n = 0.8, 0.6 and 0.5, we recognize that n = 0.6 is a reasonable choice. 
Hence, C = 22.12 and n = 0.6. < 
Coefficient, h (W/m^2.K) Data, smooth curve, 5-points 
0 2 4 6 8 10 12 
Air velocity, V (m/s) 
100 
80 
60 
40 
20 
1 2 4 6 8 10 
Air velocity, V (m/s) 
100 
80 
60 
40 
20 
10 
Coefficient, h (W/m^2.K) 
Data , smooth curve, 5 points 
h = C * V^n, C = 22.1, n = 0.5 
n = 0.6 
n = 0.8 
COMMENTS: Radiation may not be negligible, depending on surface emissivity.
PROBLEM 5 
KNOWN: Boiling point and latent heat of liquid oxygen. Diameter and emissivity of container. Free 
convection coefficient and temperature of surrounding air and walls. 
F 
IND: Mass evaporation rate. 
SCHEMATIC: 
ASSUMPTIONS: (1) Steady-state conditions, (2) Temperature of container outer surface equals 
boiling point of oxygen. 
ANALYSIS: (a) Applying mass and energy balances to a control surface about the container, it 
follows that, at any instant, 
dm m = m dE E E q q q 
dt dt 
= −  −  =  −  = + − . (1a,b) 
st st 
out evap in out conv rad evap 
With hf as the enthalpy of liquid oxygen and hg as the enthalpy of oxygen vapor, we have 
Est = msthf qevap = m outhg (2a,b) 
Combining Equations (1a) and (2a,b), Equation (1b) becomes (with hfg = hg – hf) 
m outhfg = qconv + qrad 
( ) ( ) ( 4 4 ) 2 
= + = ⎡ − + − ⎤ 
 ⎣ ⎦ εσ π (3) 
mevap qconv qrad hfg h T∞ Ts Tsur Ts D hfg 
2 ( ) 8 2 4 ( 4 4 ) ( )2 
evap 
⋅ − + × × − ⋅ − 
4 π 
10 W m K 298 263 K 0.2 5.67 10 W m K 298 263 K 0.5 m 
m 
214 kJ kg 
= 
⎡ ⎤ 
 ⎣ ⎦ 
mevap 350 35.2 W/m 0.785 m 214kJ kg 1.41 10 kg s  = + = × − .  
( ) 2 ( 2 ) 3 
(b) Using Equation (3), the mass rate of vapor production can be determined for the range of 
emissivity 0.2 to 0.94. The effect of increasing emissivity is to increase the heat rate into the container 
and, hence, increase the vapor production rate. 
0.2 0.4 0.6 0.8 1 
Surface emissivity, eps 
1.9 
1.8 
1.7 
1.6 
1.5 
1.4 
Evaporation rate, mdot*1000 (kg/s) 
COMMENTS: To reduce the loss of oxygen due to vapor production, insulation should be applied to 
the outer surface of the container, in order to reduce qconv and qrad. Note from the calculations in part 
(a), that heat transfer by convection is greater than by radiation exchange.
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Solutions

More Related Content

What's hot (19)

Fuels and Combustion
Fuels and CombustionFuels and Combustion
Fuels and Combustion
 
Heat Convection by Latif M. Jiji - solutions
Heat Convection by Latif M. Jiji - solutionsHeat Convection by Latif M. Jiji - solutions
Heat Convection by Latif M. Jiji - solutions
 
Heat conduction through a plane wall
Heat conduction through a plane wallHeat conduction through a plane wall
Heat conduction through a plane wall
 
Free convection
Free convectionFree convection
Free convection
 
Thermo problem set no. 2
Thermo problem set no. 2Thermo problem set no. 2
Thermo problem set no. 2
 
Heat and mass transfer
Heat and mass transfer Heat and mass transfer
Heat and mass transfer
 
Chapter 2 1
Chapter 2 1Chapter 2 1
Chapter 2 1
 
ME 12 F1 Assignment 2 & 3
ME 12 F1 Assignment 2 & 3ME 12 F1 Assignment 2 & 3
ME 12 F1 Assignment 2 & 3
 
J2006 Thermodinamik Unit 1
J2006 Thermodinamik Unit 1J2006 Thermodinamik Unit 1
J2006 Thermodinamik Unit 1
 
11 Heat Transfer
11 Heat Transfer11 Heat Transfer
11 Heat Transfer
 
Thermo problem set no. 1
Thermo problem set no. 1Thermo problem set no. 1
Thermo problem set no. 1
 
Heat transfer
Heat transferHeat transfer
Heat transfer
 
UNIT-1 CONDUCTION
UNIT-1 CONDUCTIONUNIT-1 CONDUCTION
UNIT-1 CONDUCTION
 
Convention and radtiation
Convention and radtiationConvention and radtiation
Convention and radtiation
 
Ch 13 Transfer of Heat
Ch 13 Transfer of Heat Ch 13 Transfer of Heat
Ch 13 Transfer of Heat
 
Chapter 12
Chapter 12Chapter 12
Chapter 12
 
MET 214 Module 8
MET 214 Module 8MET 214 Module 8
MET 214 Module 8
 
Thermodynamics Hw #1
Thermodynamics Hw #1Thermodynamics Hw #1
Thermodynamics Hw #1
 
Assignment thermal 2018 . ...
Assignment thermal 2018                   .                                  ...Assignment thermal 2018                   .                                  ...
Assignment thermal 2018 . ...
 

Viewers also liked

Laws, heat and expansion 2011
Laws, heat and expansion 2011Laws, heat and expansion 2011
Laws, heat and expansion 2011sbarkanic
 
Lord, Kelvin William Thomson
Lord, Kelvin William ThomsonLord, Kelvin William Thomson
Lord, Kelvin William Thomsontams
 
The Kelvin Bridge
The Kelvin  BridgeThe Kelvin  Bridge
The Kelvin BridgeSigmig
 
Thermal Radiation-I - Basic properties and Laws
Thermal Radiation-I - Basic properties and LawsThermal Radiation-I - Basic properties and Laws
Thermal Radiation-I - Basic properties and Lawstmuliya
 
Automotive aerodynamics-optimization---2013-07-17
Automotive aerodynamics-optimization---2013-07-17Automotive aerodynamics-optimization---2013-07-17
Automotive aerodynamics-optimization---2013-07-17Sandeep Sovani, Ph.D.
 
heat conduction equations
heat conduction equationsheat conduction equations
heat conduction equationsZahir Baloch
 
Lectures on Heat Transfer - Introduction - Applications - Fundamentals - Gove...
Lectures on Heat Transfer - Introduction - Applications - Fundamentals - Gove...Lectures on Heat Transfer - Introduction - Applications - Fundamentals - Gove...
Lectures on Heat Transfer - Introduction - Applications - Fundamentals - Gove...tmuliya
 
SSL3 Heat Transfer
SSL3   Heat TransferSSL3   Heat Transfer
SSL3 Heat TransferKeith Vaugh
 
Henry ford presentation
Henry ford presentationHenry ford presentation
Henry ford presentationAustinPayne
 
Heat transfer & heat exchangers
Heat transfer & heat exchangersHeat transfer & heat exchangers
Heat transfer & heat exchangersMohamed Alsalihi
 
Automotive aerodynamics
Automotive aerodynamicsAutomotive aerodynamics
Automotive aerodynamicsPuneet Parihar
 
Aerodynamic cars
Aerodynamic carsAerodynamic cars
Aerodynamic carsDeepak Jha
 
aerodynamic cars(science)
aerodynamic cars(science)aerodynamic cars(science)
aerodynamic cars(science)pparmaei
 
Heat transfer
Heat transferHeat transfer
Heat transferLightkcse
 

Viewers also liked (20)

Laws, heat and expansion 2011
Laws, heat and expansion 2011Laws, heat and expansion 2011
Laws, heat and expansion 2011
 
Presentation on Henry ford
Presentation on Henry fordPresentation on Henry ford
Presentation on Henry ford
 
Lord, Kelvin William Thomson
Lord, Kelvin William ThomsonLord, Kelvin William Thomson
Lord, Kelvin William Thomson
 
Automotive aerodynamics
Automotive aerodynamicsAutomotive aerodynamics
Automotive aerodynamics
 
The Kelvin Bridge
The Kelvin  BridgeThe Kelvin  Bridge
The Kelvin Bridge
 
Thermal Radiation-I - Basic properties and Laws
Thermal Radiation-I - Basic properties and LawsThermal Radiation-I - Basic properties and Laws
Thermal Radiation-I - Basic properties and Laws
 
Automotive aerodynamics-optimization---2013-07-17
Automotive aerodynamics-optimization---2013-07-17Automotive aerodynamics-optimization---2013-07-17
Automotive aerodynamics-optimization---2013-07-17
 
Heat transfer
Heat transferHeat transfer
Heat transfer
 
heat conduction equations
heat conduction equationsheat conduction equations
heat conduction equations
 
laws of radiation
laws of radiationlaws of radiation
laws of radiation
 
Lectures on Heat Transfer - Introduction - Applications - Fundamentals - Gove...
Lectures on Heat Transfer - Introduction - Applications - Fundamentals - Gove...Lectures on Heat Transfer - Introduction - Applications - Fundamentals - Gove...
Lectures on Heat Transfer - Introduction - Applications - Fundamentals - Gove...
 
SSL3 Heat Transfer
SSL3   Heat TransferSSL3   Heat Transfer
SSL3 Heat Transfer
 
Henry ford presentation
Henry ford presentationHenry ford presentation
Henry ford presentation
 
Heat transfer & heat exchangers
Heat transfer & heat exchangersHeat transfer & heat exchangers
Heat transfer & heat exchangers
 
Automotive aerodynamics
Automotive aerodynamicsAutomotive aerodynamics
Automotive aerodynamics
 
Aerodynamic cars
Aerodynamic carsAerodynamic cars
Aerodynamic cars
 
aerodynamic cars(science)
aerodynamic cars(science)aerodynamic cars(science)
aerodynamic cars(science)
 
17th 18th 19th and 20th century architecture ppt
17th 18th  19th and 20th  century architecture ppt17th 18th  19th and 20th  century architecture ppt
17th 18th 19th and 20th century architecture ppt
 
Heat transfer
Heat transferHeat transfer
Heat transfer
 
Heat exchangers
Heat exchangersHeat exchangers
Heat exchangers
 

Similar to CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Solutions

2- C?>,cllblm,cvblkjbvclkbjlcjblkjlbkjcvlkbjonduction.pdf
2- C?>,cllblm,cvblkjbvclkbjlcjblkjlbkjcvlkbjonduction.pdf2- C?>,cllblm,cvblkjbvclkbjlcjblkjlbkjcvlkbjonduction.pdf
2- C?>,cllblm,cvblkjbvclkbjlcjblkjlbkjcvlkbjonduction.pdfRaviShankar269655
 
Heat Conduction with thermal heat generation.pptx
Heat Conduction with thermal heat generation.pptxHeat Conduction with thermal heat generation.pptx
Heat Conduction with thermal heat generation.pptxBektu Dida
 
Conduction equation cartesian, Cylindrical, spherical (7).pptx
Conduction equation  cartesian, Cylindrical, spherical (7).pptxConduction equation  cartesian, Cylindrical, spherical (7).pptx
Conduction equation cartesian, Cylindrical, spherical (7).pptxYaredAssefa10
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 Solutionssemihypocrite
 
Heat transfer(HT) lab manual
Heat transfer(HT) lab manualHeat transfer(HT) lab manual
Heat transfer(HT) lab manualnmahi96
 
Radiavtive Heat Transfer assignment
Radiavtive Heat Transfer assignmentRadiavtive Heat Transfer assignment
Radiavtive Heat Transfer assignmentAmritChatterjee3
 
03C -Chapter 3 - Sec 3.6.ppt
03C -Chapter 3 - Sec 3.6.ppt03C -Chapter 3 - Sec 3.6.ppt
03C -Chapter 3 - Sec 3.6.pptsomnathmahapatra6
 
Thermodynamics analysis of diffusion in spark plasma sintering welding Cr3C2 ...
Thermodynamics analysis of diffusion in spark plasma sintering welding Cr3C2 ...Thermodynamics analysis of diffusion in spark plasma sintering welding Cr3C2 ...
Thermodynamics analysis of diffusion in spark plasma sintering welding Cr3C2 ...AliFeiz3
 
Solution Manual for Heat Convection second edition by Latif M. Jiji
Solution Manual for Heat Convection second edition by Latif M. JijiSolution Manual for Heat Convection second edition by Latif M. Jiji
Solution Manual for Heat Convection second edition by Latif M. Jijiphysicsbook
 
Biofluid Chapter 3.6.pdf
Biofluid Chapter 3.6.pdfBiofluid Chapter 3.6.pdf
Biofluid Chapter 3.6.pdfAbrarFarhan3
 
Taller 2 diseno de maquinas termicas 2 p.2021
Taller 2 diseno de maquinas termicas 2 p.2021Taller 2 diseno de maquinas termicas 2 p.2021
Taller 2 diseno de maquinas termicas 2 p.2021jhon alvaro guevara
 
Temperature Distribution in a ground section of a double-pipe system in a dis...
Temperature Distribution in a ground section of a double-pipe system in a dis...Temperature Distribution in a ground section of a double-pipe system in a dis...
Temperature Distribution in a ground section of a double-pipe system in a dis...Paolo Fornaseri
 
Building Climatology - HEAT
Building Climatology - HEATBuilding Climatology - HEAT
Building Climatology - HEATAnsif Habib
 

Similar to CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Solutions (20)

2- C?>,cllblm,cvblkjbvclkbjlcjblkjlbkjcvlkbjonduction.pdf
2- C?>,cllblm,cvblkjbvclkbjlcjblkjlbkjcvlkbjonduction.pdf2- C?>,cllblm,cvblkjbvclkbjlcjblkjlbkjcvlkbjonduction.pdf
2- C?>,cllblm,cvblkjbvclkbjlcjblkjlbkjcvlkbjonduction.pdf
 
Heat Conduction with thermal heat generation.pptx
Heat Conduction with thermal heat generation.pptxHeat Conduction with thermal heat generation.pptx
Heat Conduction with thermal heat generation.pptx
 
Conduction equation cartesian, Cylindrical, spherical (7).pptx
Conduction equation  cartesian, Cylindrical, spherical (7).pptxConduction equation  cartesian, Cylindrical, spherical (7).pptx
Conduction equation cartesian, Cylindrical, spherical (7).pptx
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 Solutions
 
Heat transfer(HT) lab manual
Heat transfer(HT) lab manualHeat transfer(HT) lab manual
Heat transfer(HT) lab manual
 
Radiavtive Heat Transfer assignment
Radiavtive Heat Transfer assignmentRadiavtive Heat Transfer assignment
Radiavtive Heat Transfer assignment
 
Problem and solution i ph o 18
Problem and solution i ph o 18Problem and solution i ph o 18
Problem and solution i ph o 18
 
Aaallleeetttaas
AaallleeetttaasAaallleeetttaas
Aaallleeetttaas
 
03C -Chapter 3 - Sec 3.6.ppt
03C -Chapter 3 - Sec 3.6.ppt03C -Chapter 3 - Sec 3.6.ppt
03C -Chapter 3 - Sec 3.6.ppt
 
Thermodynamics analysis of diffusion in spark plasma sintering welding Cr3C2 ...
Thermodynamics analysis of diffusion in spark plasma sintering welding Cr3C2 ...Thermodynamics analysis of diffusion in spark plasma sintering welding Cr3C2 ...
Thermodynamics analysis of diffusion in spark plasma sintering welding Cr3C2 ...
 
Solution Manual for Heat Convection second edition by Latif M. Jiji
Solution Manual for Heat Convection second edition by Latif M. JijiSolution Manual for Heat Convection second edition by Latif M. Jiji
Solution Manual for Heat Convection second edition by Latif M. Jiji
 
2 marks heat and mass transfer
2 marks   heat and mass transfer2 marks   heat and mass transfer
2 marks heat and mass transfer
 
Biofluid Chapter 3.6.pdf
Biofluid Chapter 3.6.pdfBiofluid Chapter 3.6.pdf
Biofluid Chapter 3.6.pdf
 
Lecture 2
Lecture 2Lecture 2
Lecture 2
 
3 earth atmosphere
3 earth atmosphere3 earth atmosphere
3 earth atmosphere
 
Taller 2 diseno de maquinas termicas 2 p.2021
Taller 2 diseno de maquinas termicas 2 p.2021Taller 2 diseno de maquinas termicas 2 p.2021
Taller 2 diseno de maquinas termicas 2 p.2021
 
Maxwell Equations (2)
Maxwell Equations (2)Maxwell Equations (2)
Maxwell Equations (2)
 
Temperature Distribution in a ground section of a double-pipe system in a dis...
Temperature Distribution in a ground section of a double-pipe system in a dis...Temperature Distribution in a ground section of a double-pipe system in a dis...
Temperature Distribution in a ground section of a double-pipe system in a dis...
 
Chapter1.pdf
Chapter1.pdfChapter1.pdf
Chapter1.pdf
 
Building Climatology - HEAT
Building Climatology - HEATBuilding Climatology - HEAT
Building Climatology - HEAT
 

More from semihypocrite

CH EN 3453 Heat Transfer 2014 Fall Utah
CH EN 3453 Heat Transfer 2014 Fall UtahCH EN 3453 Heat Transfer 2014 Fall Utah
CH EN 3453 Heat Transfer 2014 Fall Utahsemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 11 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 11 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 11 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 11 Assignmentsemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 Solutionssemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 Assignmentsemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 Solutionssemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 Assignmentsemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 Solutionssemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 Assignmentsemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 Solutionssemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 Assignmentsemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 06 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 06 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 06 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 06 Assignmentsemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 Solutionssemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 Assignmentsemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 Solutionssemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 Assignmentsemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 Assignmentsemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 Solutionssemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 Assignmentsemihypocrite
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Assignmentsemihypocrite
 

More from semihypocrite (19)

CH EN 3453 Heat Transfer 2014 Fall Utah
CH EN 3453 Heat Transfer 2014 Fall UtahCH EN 3453 Heat Transfer 2014 Fall Utah
CH EN 3453 Heat Transfer 2014 Fall Utah
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 11 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 11 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 11 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 11 Assignment
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 Solutions
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 10 Assignment
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 Solutions
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 09 Assignment
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 Solutions
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 08 Assignment
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 Solutions
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 07 Assignment
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 06 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 06 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 06 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 06 Assignment
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 Solutions
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 05 Assignment
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 Solutions
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 04 Assignment
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 03 Assignment
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 SolutionsCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 Solutions
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 Solutions
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 02 Assignment
 
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 AssignmentCH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Assignment
CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Assignment
 

Recently uploaded

Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...
Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...
Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...Dr.Costas Sachpazis
 
Call Girls Delhi {Jodhpur} 9711199012 high profile service
Call Girls Delhi {Jodhpur} 9711199012 high profile serviceCall Girls Delhi {Jodhpur} 9711199012 high profile service
Call Girls Delhi {Jodhpur} 9711199012 high profile servicerehmti665
 
Call Girls in Nagpur Suman Call 7001035870 Meet With Nagpur Escorts
Call Girls in Nagpur Suman Call 7001035870 Meet With Nagpur EscortsCall Girls in Nagpur Suman Call 7001035870 Meet With Nagpur Escorts
Call Girls in Nagpur Suman Call 7001035870 Meet With Nagpur EscortsCall Girls in Nagpur High Profile
 
Porous Ceramics seminar and technical writing
Porous Ceramics seminar and technical writingPorous Ceramics seminar and technical writing
Porous Ceramics seminar and technical writingrakeshbaidya232001
 
MANUFACTURING PROCESS-II UNIT-2 LATHE MACHINE
MANUFACTURING PROCESS-II UNIT-2 LATHE MACHINEMANUFACTURING PROCESS-II UNIT-2 LATHE MACHINE
MANUFACTURING PROCESS-II UNIT-2 LATHE MACHINESIVASHANKAR N
 
MANUFACTURING PROCESS-II UNIT-5 NC MACHINE TOOLS
MANUFACTURING PROCESS-II UNIT-5 NC MACHINE TOOLSMANUFACTURING PROCESS-II UNIT-5 NC MACHINE TOOLS
MANUFACTURING PROCESS-II UNIT-5 NC MACHINE TOOLSSIVASHANKAR N
 
Software Development Life Cycle By Team Orange (Dept. of Pharmacy)
Software Development Life Cycle By  Team Orange (Dept. of Pharmacy)Software Development Life Cycle By  Team Orange (Dept. of Pharmacy)
Software Development Life Cycle By Team Orange (Dept. of Pharmacy)Suman Mia
 
IVE Industry Focused Event - Defence Sector 2024
IVE Industry Focused Event - Defence Sector 2024IVE Industry Focused Event - Defence Sector 2024
IVE Industry Focused Event - Defence Sector 2024Mark Billinghurst
 
HARMONY IN THE NATURE AND EXISTENCE - Unit-IV
HARMONY IN THE NATURE AND EXISTENCE - Unit-IVHARMONY IN THE NATURE AND EXISTENCE - Unit-IV
HARMONY IN THE NATURE AND EXISTENCE - Unit-IVRajaP95
 
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...ranjana rawat
 
ZXCTN 5804 / ZTE PTN / ZTE POTN / ZTE 5804 PTN / ZTE POTN 5804 ( 100/200 GE Z...
ZXCTN 5804 / ZTE PTN / ZTE POTN / ZTE 5804 PTN / ZTE POTN 5804 ( 100/200 GE Z...ZXCTN 5804 / ZTE PTN / ZTE POTN / ZTE 5804 PTN / ZTE POTN 5804 ( 100/200 GE Z...
ZXCTN 5804 / ZTE PTN / ZTE POTN / ZTE 5804 PTN / ZTE POTN 5804 ( 100/200 GE Z...ZTE
 
APPLICATIONS-AC/DC DRIVES-OPERATING CHARACTERISTICS
APPLICATIONS-AC/DC DRIVES-OPERATING CHARACTERISTICSAPPLICATIONS-AC/DC DRIVES-OPERATING CHARACTERISTICS
APPLICATIONS-AC/DC DRIVES-OPERATING CHARACTERISTICSKurinjimalarL3
 
VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130
VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130
VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130Suhani Kapoor
 
(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service
(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service
(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Serviceranjana rawat
 
Coefficient of Thermal Expansion and their Importance.pptx
Coefficient of Thermal Expansion and their Importance.pptxCoefficient of Thermal Expansion and their Importance.pptx
Coefficient of Thermal Expansion and their Importance.pptxAsutosh Ranjan
 
High Profile Call Girls Nashik Megha 7001305949 Independent Escort Service Na...
High Profile Call Girls Nashik Megha 7001305949 Independent Escort Service Na...High Profile Call Girls Nashik Megha 7001305949 Independent Escort Service Na...
High Profile Call Girls Nashik Megha 7001305949 Independent Escort Service Na...Call Girls in Nagpur High Profile
 
SPICE PARK APR2024 ( 6,793 SPICE Models )
SPICE PARK APR2024 ( 6,793 SPICE Models )SPICE PARK APR2024 ( 6,793 SPICE Models )
SPICE PARK APR2024 ( 6,793 SPICE Models )Tsuyoshi Horigome
 
Microscopic Analysis of Ceramic Materials.pptx
Microscopic Analysis of Ceramic Materials.pptxMicroscopic Analysis of Ceramic Materials.pptx
Microscopic Analysis of Ceramic Materials.pptxpurnimasatapathy1234
 
OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...
OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...
OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...Soham Mondal
 

Recently uploaded (20)

Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...
Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...
Sheet Pile Wall Design and Construction: A Practical Guide for Civil Engineer...
 
Call Girls Delhi {Jodhpur} 9711199012 high profile service
Call Girls Delhi {Jodhpur} 9711199012 high profile serviceCall Girls Delhi {Jodhpur} 9711199012 high profile service
Call Girls Delhi {Jodhpur} 9711199012 high profile service
 
Call Girls in Nagpur Suman Call 7001035870 Meet With Nagpur Escorts
Call Girls in Nagpur Suman Call 7001035870 Meet With Nagpur EscortsCall Girls in Nagpur Suman Call 7001035870 Meet With Nagpur Escorts
Call Girls in Nagpur Suman Call 7001035870 Meet With Nagpur Escorts
 
Porous Ceramics seminar and technical writing
Porous Ceramics seminar and technical writingPorous Ceramics seminar and technical writing
Porous Ceramics seminar and technical writing
 
MANUFACTURING PROCESS-II UNIT-2 LATHE MACHINE
MANUFACTURING PROCESS-II UNIT-2 LATHE MACHINEMANUFACTURING PROCESS-II UNIT-2 LATHE MACHINE
MANUFACTURING PROCESS-II UNIT-2 LATHE MACHINE
 
MANUFACTURING PROCESS-II UNIT-5 NC MACHINE TOOLS
MANUFACTURING PROCESS-II UNIT-5 NC MACHINE TOOLSMANUFACTURING PROCESS-II UNIT-5 NC MACHINE TOOLS
MANUFACTURING PROCESS-II UNIT-5 NC MACHINE TOOLS
 
Software Development Life Cycle By Team Orange (Dept. of Pharmacy)
Software Development Life Cycle By  Team Orange (Dept. of Pharmacy)Software Development Life Cycle By  Team Orange (Dept. of Pharmacy)
Software Development Life Cycle By Team Orange (Dept. of Pharmacy)
 
IVE Industry Focused Event - Defence Sector 2024
IVE Industry Focused Event - Defence Sector 2024IVE Industry Focused Event - Defence Sector 2024
IVE Industry Focused Event - Defence Sector 2024
 
HARMONY IN THE NATURE AND EXISTENCE - Unit-IV
HARMONY IN THE NATURE AND EXISTENCE - Unit-IVHARMONY IN THE NATURE AND EXISTENCE - Unit-IV
HARMONY IN THE NATURE AND EXISTENCE - Unit-IV
 
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
(ANVI) Koregaon Park Call Girls Just Call 7001035870 [ Cash on Delivery ] Pun...
 
ZXCTN 5804 / ZTE PTN / ZTE POTN / ZTE 5804 PTN / ZTE POTN 5804 ( 100/200 GE Z...
ZXCTN 5804 / ZTE PTN / ZTE POTN / ZTE 5804 PTN / ZTE POTN 5804 ( 100/200 GE Z...ZXCTN 5804 / ZTE PTN / ZTE POTN / ZTE 5804 PTN / ZTE POTN 5804 ( 100/200 GE Z...
ZXCTN 5804 / ZTE PTN / ZTE POTN / ZTE 5804 PTN / ZTE POTN 5804 ( 100/200 GE Z...
 
APPLICATIONS-AC/DC DRIVES-OPERATING CHARACTERISTICS
APPLICATIONS-AC/DC DRIVES-OPERATING CHARACTERISTICSAPPLICATIONS-AC/DC DRIVES-OPERATING CHARACTERISTICS
APPLICATIONS-AC/DC DRIVES-OPERATING CHARACTERISTICS
 
VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130
VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130
VIP Call Girls Service Kondapur Hyderabad Call +91-8250192130
 
(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service
(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service
(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service
 
Coefficient of Thermal Expansion and their Importance.pptx
Coefficient of Thermal Expansion and their Importance.pptxCoefficient of Thermal Expansion and their Importance.pptx
Coefficient of Thermal Expansion and their Importance.pptx
 
High Profile Call Girls Nashik Megha 7001305949 Independent Escort Service Na...
High Profile Call Girls Nashik Megha 7001305949 Independent Escort Service Na...High Profile Call Girls Nashik Megha 7001305949 Independent Escort Service Na...
High Profile Call Girls Nashik Megha 7001305949 Independent Escort Service Na...
 
SPICE PARK APR2024 ( 6,793 SPICE Models )
SPICE PARK APR2024 ( 6,793 SPICE Models )SPICE PARK APR2024 ( 6,793 SPICE Models )
SPICE PARK APR2024 ( 6,793 SPICE Models )
 
DJARUM4D - SLOT GACOR ONLINE | SLOT DEMO ONLINE
DJARUM4D - SLOT GACOR ONLINE | SLOT DEMO ONLINEDJARUM4D - SLOT GACOR ONLINE | SLOT DEMO ONLINE
DJARUM4D - SLOT GACOR ONLINE | SLOT DEMO ONLINE
 
Microscopic Analysis of Ceramic Materials.pptx
Microscopic Analysis of Ceramic Materials.pptxMicroscopic Analysis of Ceramic Materials.pptx
Microscopic Analysis of Ceramic Materials.pptx
 
OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...
OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...
OSVC_Meta-Data based Simulation Automation to overcome Verification Challenge...
 

CH EN 3453 Heat Transfer 2014 Fall Utah Homework HW 01 Solutions

  • 1. QUESTION An understanding of the basic laws governing heat transfer is imperative to everything you will learn this semester. Write the equation for and explain the following laws governing the three basic modes of heat transfer. Do not forget to explain each symbol or constant along with any pertinent units. a. Fourier’s Law b. Newton’s Law of Cooling c. The Stefan-Boltzmann Law ANSWER a. Fourier’s law pertains to conductive heat transfer. A one-dimensional form of this law is below. Units are given in brackets. This equation allows heat flux ( ) to be put in a rate form with temperature ( ) and spatial ( ) differentials along with thermal conductivity ( ) . The thermal conductivity is a transport property of the medium through which the heat travels. Because heat is transferred via a thermal gradient, a negative sign is present to signify a heat loss. A more in-depth discussion of Fourier’s law is given on page 4 of the text, Fundamentals of Heat Transfer by Incropera, sixth edition. b. Newton’s law of cooling pertains to convective heat transfer; it has the following form. This equation is commonly referred to Newton’s law of cooling, but it is simply another rate equation. Here, represents the heat flux, but is not specific to one direction as in Fourier’s law. Heat flux is proportional to the temperature difference between surface and fluid . The symbol is the convection heat transfer coefficient. As described on page 8 of the text, the convection heat transfer coefficient “depends on conditions in the boundary layer, which are influenced by surface geometry, the nature of the fluid motion, and an assortment of fluid thermodynamic and transport properties”. A more in-depth discussion of Newton’s law of cooling is given on page 8 of the text, Fundamentals of Heat Transfer by Incropera, sixth edition. c. The Stefan-Boltzmann law pertains to radiative heat transfer. The ideal case where emissivity is at a maximum is known as blackbody radiation; given by the equation below.
  • 2. Here, emissive power is denoted as and subscript signifying ‘blackbody’ radiation. Again, is termed as the surface temperature from which radiation is the source. The Stefan-Boltzmann constant is denoted as σ and has a value of 5.67 E -8 . For a real surface, and not a blackbody, the radiative property of emissivity, ε, is added to the equation to become the following. Emissivity is a property of the surface from which heat is transferred. The value of emissivity is always between zero and one and is unitless; when , blackbody radiation is present. A more in-depth discussion of the Stefan-Boltzmann law is given on page 9 of the text, Fundamentals of Heat Transfer by Incropera, sixth edition.
  • 3. PROBLEM 2 KNOWN: Dimensions, thermal conductivity and surface temperatures of a concrete slab. Efficiency of gas furnace and cost of natural gas. F IND: Daily cost of heat loss. SCHEMATIC: A SSUMPTIONS: (1) Steady state, (2) One-dimensional conduction, (3) Constant properties. ANALYSIS: The rate of heat loss by conduction through the slab is − q = k (LW) T1 T2 = 1.4W/m ⋅ K(11m × 8m) 7 ° C = 4312 W t 0.2 0 m < The daily cost of natural gas that must be combusted to compensate for the heat loss is qC 4312W × C t $0.01/MJ 24 h / d 3600s / h $4.14 / d g ( ) ( ) = Δ = × = d 6 f η 0.9 × 10 J /MJ < COMMENTS: The loss could be reduced by installing a floor covering with a layer of insulation between it and the concrete.
  • 4. PROBLEM 3 KNOWN: Dimensions of freezer compartment. Inner and outer surface temperatures. FIND: Thickness of styrofoam insulation needed to maintain heat load below prescribed value. SCHEMATIC: ASSUMPTIONS: (1) Perfectly insulated bottom, (2) One-dimensional conduction through 5 walls of area A = 4m2, (3) Steady-state conditions, (4) Constant properties. ANALYSIS: Using Fourier’s law, Eq. 1.2, the heat rate is Δ q = q A = k T ′′ ⋅ Atotal L Solving for L and recognizing that Atotal = 5×W2, find Δ 2 L = 5 k T W q 5 0.03 W/m K 35 - (-10) C (4m ) L = × ⋅ ⎡ ⎤ 2 ⎣ ⎦ 500 W D L = 0.054m = 54mm. < COMMENTS: The corners will cause local departures from one-dimensional conduction and a slightly larger heat loss.
  • 5. PROBLEM 4 KNOWN: Power required to maintain the surface temperature of a long, 25-mm diameter cylinder with an imbedded electrical heater for different air velocities. FIND: (a) Determine the convection coefficient for each of the air velocity conditions and display the results graphically, and (b) Assuming that the convection coefficient depends upon air velocity as h = CV n, determine the parameters C and n. SCHEMATIC: V(m/s) 1 2 4 8 12 P′ e (W/m) 450 658 983 1507 1963 h (W/m2⋅K) 22.0 32.2 48.1 73.8 96.1 ASSUMPTIONS: (1) Temperature is uniform over the cylinder surface, (2) Negligible radiation exchange between the cylinder surface and the surroundings, (3) Steady-state conditions. ANALYSIS: (a) From an overall energy balance on the cylinder, the power dissipated by the electrical heater is transferred by convection to the air stream. Using Newton’s law of cooling on a per unit length basis, Pe′ = h (π D)(Ts −T∞ ) Pe′ where is the electrical power dissipated per unit length of the cylinder. For the V = 1 m/s condition, using the data from the table above, find h = 450W m π ×0.025m(300 − 40)D C = 22.0W m2⋅K < Repeating the calculations, find the convection coefficients for the remaining conditions which are tabulated above and plotted below. Note that h is not linear with respect to the air velocity. (b) To determine the (C,n) parameters, we plotted h vs. V on log-log coordinates. Choosing C = 22.12 W/m2⋅K(s/m)n, assuring a match at V = 1, we can readily find the exponent n from the slope of the h vs. V curve. From the trials with n = 0.8, 0.6 and 0.5, we recognize that n = 0.6 is a reasonable choice. Hence, C = 22.12 and n = 0.6. < Coefficient, h (W/m^2.K) Data, smooth curve, 5-points 0 2 4 6 8 10 12 Air velocity, V (m/s) 100 80 60 40 20 1 2 4 6 8 10 Air velocity, V (m/s) 100 80 60 40 20 10 Coefficient, h (W/m^2.K) Data , smooth curve, 5 points h = C * V^n, C = 22.1, n = 0.5 n = 0.6 n = 0.8 COMMENTS: Radiation may not be negligible, depending on surface emissivity.
  • 6. PROBLEM 5 KNOWN: Boiling point and latent heat of liquid oxygen. Diameter and emissivity of container. Free convection coefficient and temperature of surrounding air and walls. F IND: Mass evaporation rate. SCHEMATIC: ASSUMPTIONS: (1) Steady-state conditions, (2) Temperature of container outer surface equals boiling point of oxygen. ANALYSIS: (a) Applying mass and energy balances to a control surface about the container, it follows that, at any instant, dm m = m dE E E q q q dt dt = − − = − = + − . (1a,b) st st out evap in out conv rad evap With hf as the enthalpy of liquid oxygen and hg as the enthalpy of oxygen vapor, we have Est = msthf qevap = m outhg (2a,b) Combining Equations (1a) and (2a,b), Equation (1b) becomes (with hfg = hg – hf) m outhfg = qconv + qrad ( ) ( ) ( 4 4 ) 2 = + = ⎡ − + − ⎤ ⎣ ⎦ εσ π (3) mevap qconv qrad hfg h T∞ Ts Tsur Ts D hfg 2 ( ) 8 2 4 ( 4 4 ) ( )2 evap ⋅ − + × × − ⋅ − 4 π 10 W m K 298 263 K 0.2 5.67 10 W m K 298 263 K 0.5 m m 214 kJ kg = ⎡ ⎤ ⎣ ⎦ mevap 350 35.2 W/m 0.785 m 214kJ kg 1.41 10 kg s = + = × − . ( ) 2 ( 2 ) 3 (b) Using Equation (3), the mass rate of vapor production can be determined for the range of emissivity 0.2 to 0.94. The effect of increasing emissivity is to increase the heat rate into the container and, hence, increase the vapor production rate. 0.2 0.4 0.6 0.8 1 Surface emissivity, eps 1.9 1.8 1.7 1.6 1.5 1.4 Evaporation rate, mdot*1000 (kg/s) COMMENTS: To reduce the loss of oxygen due to vapor production, insulation should be applied to the outer surface of the container, in order to reduce qconv and qrad. Note from the calculations in part (a), that heat transfer by convection is greater than by radiation exchange.