SlideShare a Scribd company logo
Chapter 4: Energy Balance
The increasing cost of energy has caused the industries to examine means of reducing
energy consumption in processing. Energy balances are used in the examination of the
various stages of a process, over the whole process and even extending over the total
production system from the raw material to the finished product.
Enthalpy balance can be done as
Enthalpy In + Heat added = Enthalpy Out + Heat Removed
Enthalpy for any stream can be found out by
H = m*Cp* T
Where, H = Enthalpy change
m = Stream molar/mass flow rate (kmol/hr)
Cp = Heat capacity (J/ (kmol*K))
T = Tstream – Treference (K)
We cannot calculate enthalpy but instead calculate enthalpy change. Assuming reference
temperature as ambient temperature (Treference = 298.15 K). For any Stream,
H = m*Cp*(Tstream -298.15)
In the entire stream no pure component, so heat capacity of each stream can be found out
by knowing heat capacity of pure component
Cpavg = xi * Cpi
Where, Cpavg= heat capacity of stream
Cpi = Heat capacity of component i
Xi = mole fraction of component i in stream
Physical Properties:
Reference Temperature: 298.15
Stream Temperature (K) Flow rate
(Kg/hr.)
Specific Heat (KJ/Kg
K)
Q (KJ/hr.)
1 658.15 5000 3.2 65189195.9
2 658.15 644 14.57
3 686.15 16451.42 11.188 7141699
4 338.15 10807.4 14.406 6227656.1
6 573.15 7112.5 3.2 6259000
7 375.15 91.67 2.22 15670
8 375.15 241.67 1.67 31076
9 375.15 641.67 2.54 125497
10 463.15 166.67 2.37 65175.1
11 508.15 1989.17 2.35 981653.9
12 573.15 1981.67 2.52 1373295.2
13 616.15 2000 3.04 1933440
14 616.15 308 14.55 142508.5
15 644.15 5647.63 10.536 20517839.7
16 338.15 3339.63 14.56 1945000.5
Specific Heat calculation:
For Reactor 2
For VGO at T = 343O
C
API = 14.09
Specific Gravity = (141.5/ (131.5+API))
= (141.5 / (131.5+ 14.09))
= 0.971
Specific Heat Cp = (1.685+0.0034*T)/ Sqrt(S.G)
= (1.685+ .0034*343)/sqrt(0.971)
= 2.893 kJ/kg K
Make up Hydrogen Specific Heat = 14.55 kJ/kg K
Quench hydrogen specific Heat = 14.4 kJ/kg K
Average Specific Heat for reactor 2 inlet stream:
= (0.35*2.893) + (.05*14.55) + (0.59*14.4)
= 10.39 kJ/kg K
For Reactor 1:
Qin = M * Cp * T
= (16451.4)*(11)*(658.15 - 298.15)
= 65189195.9 KJ/hr.
Qout = M * Cp * T
= (16451.4) * (11.188) * (686.15-298.15)
= 71416990 KJ/hr.
Difference = Oout – Qin
= 71416990-65189195.9
= 6227794.8 kJ/hr.
Calculation of Hydrogen quench requirement:
Q = M * Cp * T
M = Q/Cp / T
= 6227794.8 / 14.6 / (338.15-298.15)
= 10807.4 kg/hr.
For Reactor 2:
Qin = M * Cp * T
= (5647.6)*(10.39)*(616.15 - 298.15)
= 18663709.5 KJ/hr.
Qout = M * Cp * T
= (5647.6) * (10.536) * (644.15-298.15)
= 20588178.3 KJ/hr.
Difference = Oout – Qin
= 205881783.8 – 186637095.5
= 1924468.8 kJ/hr.
Calculation of Hydrogen quench requirement:
Q = M * Cp * T
M = Q/Cp / T
= 1924468.8/ 14.6 / (338.15-298.15)
= 3339.6 kg/hr.

More Related Content

What's hot (9)

Heat transfer area and Heat transfer cofficient (U)
Heat transfer area and Heat transfer cofficient (U)Heat transfer area and Heat transfer cofficient (U)
Heat transfer area and Heat transfer cofficient (U)
 
Mc conkey 11-pb
Mc conkey 11-pbMc conkey 11-pb
Mc conkey 11-pb
 
Impact of Fouling on VCR System
Impact of Fouling on VCR SystemImpact of Fouling on VCR System
Impact of Fouling on VCR System
 
Dryers
DryersDryers
Dryers
 
Hvac formulas
Hvac formulasHvac formulas
Hvac formulas
 
Energy transfer and heat load analysis
Energy transfer and heat load analysisEnergy transfer and heat load analysis
Energy transfer and heat load analysis
 
Design of fischer tropsh reactor zbj -ppt file
Design of fischer tropsh reactor  zbj -ppt fileDesign of fischer tropsh reactor  zbj -ppt file
Design of fischer tropsh reactor zbj -ppt file
 
212 aparna
212 aparna212 aparna
212 aparna
 
Electric power generation excercises
Electric power generation excercisesElectric power generation excercises
Electric power generation excercises
 

Viewers also liked

1.4 material and energy balance
1.4 material  and energy balance1.4 material  and energy balance
1.4 material and energy balance
michjosh
 

Viewers also liked (15)

Diesel Production: Material Balance
Diesel Production: Material BalanceDiesel Production: Material Balance
Diesel Production: Material Balance
 
Diesel Production: Site Location
Diesel Production: Site LocationDiesel Production: Site Location
Diesel Production: Site Location
 
Diesel Production: Process Flow Diagram
Diesel Production: Process Flow DiagramDiesel Production: Process Flow Diagram
Diesel Production: Process Flow Diagram
 
Introduction to Diesel fuel
Introduction to Diesel fuelIntroduction to Diesel fuel
Introduction to Diesel fuel
 
Diesel Production: Cost Estimation
Diesel Production: Cost EstimationDiesel Production: Cost Estimation
Diesel Production: Cost Estimation
 
Diethyl Ether (DEE): Safety and Health Consideration
Diethyl Ether (DEE): Safety and Health ConsiderationDiethyl Ether (DEE): Safety and Health Consideration
Diethyl Ether (DEE): Safety and Health Consideration
 
Diethyl Ether (DEE): Cost estimation of Plant
Diethyl Ether (DEE): Cost estimation of PlantDiethyl Ether (DEE): Cost estimation of Plant
Diethyl Ether (DEE): Cost estimation of Plant
 
Diesel Production: Plant Layout
Diesel Production: Plant LayoutDiesel Production: Plant Layout
Diesel Production: Plant Layout
 
Diethyl Ether (DEE): Introduction
Diethyl Ether (DEE): IntroductionDiethyl Ether (DEE): Introduction
Diethyl Ether (DEE): Introduction
 
Diethyl Ether (DEE): Literature Review
Diethyl Ether (DEE): Literature ReviewDiethyl Ether (DEE): Literature Review
Diethyl Ether (DEE): Literature Review
 
Diethyl Ether (DEE): Site Selection and Plant Layout
Diethyl Ether (DEE): Site Selection and Plant LayoutDiethyl Ether (DEE): Site Selection and Plant Layout
Diethyl Ether (DEE): Site Selection and Plant Layout
 
Diethyl Ether (DEE): Material balance
Diethyl Ether (DEE): Material balanceDiethyl Ether (DEE): Material balance
Diethyl Ether (DEE): Material balance
 
Diesel fuel Literature Review
Diesel fuel Literature ReviewDiesel fuel Literature Review
Diesel fuel Literature Review
 
1.4 material and energy balance
1.4 material  and energy balance1.4 material  and energy balance
1.4 material and energy balance
 
Microeconomics: Utility and Demand
Microeconomics: Utility and DemandMicroeconomics: Utility and Demand
Microeconomics: Utility and Demand
 

Similar to Diesel Production: Energy Balance

Boiler doc 02 principles & heat transfer
Boiler doc 02   principles & heat transferBoiler doc 02   principles & heat transfer
Boiler doc 02 principles & heat transfer
Mars Tsani
 
Ch6 z5e thermo
Ch6 z5e thermoCh6 z5e thermo
Ch6 z5e thermo
blachman
 
Module 7 - Energy Balance chemical process calculations
Module 7 - Energy Balance chemical process calculationsModule 7 - Energy Balance chemical process calculations
Module 7 - Energy Balance chemical process calculations
balaaguywithagang1
 

Similar to Diesel Production: Energy Balance (20)

R134
R134R134
R134
 
HdhdPM3125_Lectures_16to17_Evaporation.ppt
HdhdPM3125_Lectures_16to17_Evaporation.pptHdhdPM3125_Lectures_16to17_Evaporation.ppt
HdhdPM3125_Lectures_16to17_Evaporation.ppt
 
Chapter 5 gen chem
Chapter 5 gen chemChapter 5 gen chem
Chapter 5 gen chem
 
Pinch analysis technique to optimize heat exchanger
Pinch analysis technique to optimize heat exchangerPinch analysis technique to optimize heat exchanger
Pinch analysis technique to optimize heat exchanger
 
Process Calculation - simple distillation
Process Calculation - simple distillationProcess Calculation - simple distillation
Process Calculation - simple distillation
 
Combustion and fules
Combustion and fulesCombustion and fules
Combustion and fules
 
Ch19 ssm
Ch19 ssmCh19 ssm
Ch19 ssm
 
Gas power-09
Gas power-09Gas power-09
Gas power-09
 
M371content
M371contentM371content
M371content
 
Assessment of boiler performance
Assessment of boiler performanceAssessment of boiler performance
Assessment of boiler performance
 
Boiler doc 02 principles & heat transfer
Boiler doc 02   principles & heat transferBoiler doc 02   principles & heat transfer
Boiler doc 02 principles & heat transfer
 
AP_Chem_Thermodynamics.pptx
AP_Chem_Thermodynamics.pptxAP_Chem_Thermodynamics.pptx
AP_Chem_Thermodynamics.pptx
 
Steam Power Cycle and Basics of Boiler
Steam Power Cycle and Basics of BoilerSteam Power Cycle and Basics of Boiler
Steam Power Cycle and Basics of Boiler
 
Ch6 z5e thermo
Ch6 z5e thermoCh6 z5e thermo
Ch6 z5e thermo
 
Comparison of Thermal Performance of Rankine Cycle, Reheat Cycle, Regenerativ...
Comparison of Thermal Performance of Rankine Cycle, Reheat Cycle, Regenerativ...Comparison of Thermal Performance of Rankine Cycle, Reheat Cycle, Regenerativ...
Comparison of Thermal Performance of Rankine Cycle, Reheat Cycle, Regenerativ...
 
2 gas turbinepp
2 gas turbinepp2 gas turbinepp
2 gas turbinepp
 
gas power plant problem.pdf
gas power plant problem.pdfgas power plant problem.pdf
gas power plant problem.pdf
 
Boiler design-calculation 3
Boiler design-calculation 3Boiler design-calculation 3
Boiler design-calculation 3
 
1. ejemplos y problemas evaporadores
1. ejemplos y problemas evaporadores 1. ejemplos y problemas evaporadores
1. ejemplos y problemas evaporadores
 
Module 7 - Energy Balance chemical process calculations
Module 7 - Energy Balance chemical process calculationsModule 7 - Energy Balance chemical process calculations
Module 7 - Energy Balance chemical process calculations
 

Recently uploaded

CFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptx
CFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptxCFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptx
CFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptx
R&R Consult
 
Online blood donation management system project.pdf
Online blood donation management system project.pdfOnline blood donation management system project.pdf
Online blood donation management system project.pdf
Kamal Acharya
 
Fruit shop management system project report.pdf
Fruit shop management system project report.pdfFruit shop management system project report.pdf
Fruit shop management system project report.pdf
Kamal Acharya
 
Digital Signal Processing Lecture notes n.pdf
Digital Signal Processing Lecture notes n.pdfDigital Signal Processing Lecture notes n.pdf
Digital Signal Processing Lecture notes n.pdf
AbrahamGadissa
 
Laundry management system project report.pdf
Laundry management system project report.pdfLaundry management system project report.pdf
Laundry management system project report.pdf
Kamal Acharya
 

Recently uploaded (20)

fundamentals of drawing and isometric and orthographic projection
fundamentals of drawing and isometric and orthographic projectionfundamentals of drawing and isometric and orthographic projection
fundamentals of drawing and isometric and orthographic projection
 
WATER CRISIS and its solutions-pptx 1234
WATER CRISIS and its solutions-pptx 1234WATER CRISIS and its solutions-pptx 1234
WATER CRISIS and its solutions-pptx 1234
 
ASME IX(9) 2007 Full Version .pdf
ASME IX(9)  2007 Full Version       .pdfASME IX(9)  2007 Full Version       .pdf
ASME IX(9) 2007 Full Version .pdf
 
Introduction to Casting Processes in Manufacturing
Introduction to Casting Processes in ManufacturingIntroduction to Casting Processes in Manufacturing
Introduction to Casting Processes in Manufacturing
 
Toll tax management system project report..pdf
Toll tax management system project report..pdfToll tax management system project report..pdf
Toll tax management system project report..pdf
 
Scaling in conventional MOSFET for constant electric field and constant voltage
Scaling in conventional MOSFET for constant electric field and constant voltageScaling in conventional MOSFET for constant electric field and constant voltage
Scaling in conventional MOSFET for constant electric field and constant voltage
 
Arduino based vehicle speed tracker project
Arduino based vehicle speed tracker projectArduino based vehicle speed tracker project
Arduino based vehicle speed tracker project
 
CFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptx
CFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptxCFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptx
CFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptx
 
Online blood donation management system project.pdf
Online blood donation management system project.pdfOnline blood donation management system project.pdf
Online blood donation management system project.pdf
 
Introduction to Machine Learning Unit-5 Notes for II-II Mechanical Engineering
Introduction to Machine Learning Unit-5 Notes for II-II Mechanical EngineeringIntroduction to Machine Learning Unit-5 Notes for II-II Mechanical Engineering
Introduction to Machine Learning Unit-5 Notes for II-II Mechanical Engineering
 
Fruit shop management system project report.pdf
Fruit shop management system project report.pdfFruit shop management system project report.pdf
Fruit shop management system project report.pdf
 
Democratizing Fuzzing at Scale by Abhishek Arya
Democratizing Fuzzing at Scale by Abhishek AryaDemocratizing Fuzzing at Scale by Abhishek Arya
Democratizing Fuzzing at Scale by Abhishek Arya
 
NO1 Pandit Amil Baba In Bahawalpur, Sargodha, Sialkot, Sheikhupura, Rahim Yar...
NO1 Pandit Amil Baba In Bahawalpur, Sargodha, Sialkot, Sheikhupura, Rahim Yar...NO1 Pandit Amil Baba In Bahawalpur, Sargodha, Sialkot, Sheikhupura, Rahim Yar...
NO1 Pandit Amil Baba In Bahawalpur, Sargodha, Sialkot, Sheikhupura, Rahim Yar...
 
İTÜ CAD and Reverse Engineering Workshop
İTÜ CAD and Reverse Engineering WorkshopİTÜ CAD and Reverse Engineering Workshop
İTÜ CAD and Reverse Engineering Workshop
 
Digital Signal Processing Lecture notes n.pdf
Digital Signal Processing Lecture notes n.pdfDigital Signal Processing Lecture notes n.pdf
Digital Signal Processing Lecture notes n.pdf
 
Top 13 Famous Civil Engineering Scientist
Top 13 Famous Civil Engineering ScientistTop 13 Famous Civil Engineering Scientist
Top 13 Famous Civil Engineering Scientist
 
A CASE STUDY ON ONLINE TICKET BOOKING SYSTEM PROJECT.pdf
A CASE STUDY ON ONLINE TICKET BOOKING SYSTEM PROJECT.pdfA CASE STUDY ON ONLINE TICKET BOOKING SYSTEM PROJECT.pdf
A CASE STUDY ON ONLINE TICKET BOOKING SYSTEM PROJECT.pdf
 
Laundry management system project report.pdf
Laundry management system project report.pdfLaundry management system project report.pdf
Laundry management system project report.pdf
 
Explosives Industry manufacturing process.pdf
Explosives Industry manufacturing process.pdfExplosives Industry manufacturing process.pdf
Explosives Industry manufacturing process.pdf
 
HYDROPOWER - Hydroelectric power generation
HYDROPOWER - Hydroelectric power generationHYDROPOWER - Hydroelectric power generation
HYDROPOWER - Hydroelectric power generation
 

Diesel Production: Energy Balance

  • 1. Chapter 4: Energy Balance The increasing cost of energy has caused the industries to examine means of reducing energy consumption in processing. Energy balances are used in the examination of the various stages of a process, over the whole process and even extending over the total production system from the raw material to the finished product. Enthalpy balance can be done as Enthalpy In + Heat added = Enthalpy Out + Heat Removed Enthalpy for any stream can be found out by H = m*Cp* T Where, H = Enthalpy change m = Stream molar/mass flow rate (kmol/hr) Cp = Heat capacity (J/ (kmol*K)) T = Tstream – Treference (K) We cannot calculate enthalpy but instead calculate enthalpy change. Assuming reference temperature as ambient temperature (Treference = 298.15 K). For any Stream, H = m*Cp*(Tstream -298.15) In the entire stream no pure component, so heat capacity of each stream can be found out by knowing heat capacity of pure component Cpavg = xi * Cpi Where, Cpavg= heat capacity of stream Cpi = Heat capacity of component i Xi = mole fraction of component i in stream Physical Properties: Reference Temperature: 298.15
  • 2. Stream Temperature (K) Flow rate (Kg/hr.) Specific Heat (KJ/Kg K) Q (KJ/hr.) 1 658.15 5000 3.2 65189195.9 2 658.15 644 14.57 3 686.15 16451.42 11.188 7141699 4 338.15 10807.4 14.406 6227656.1 6 573.15 7112.5 3.2 6259000 7 375.15 91.67 2.22 15670 8 375.15 241.67 1.67 31076 9 375.15 641.67 2.54 125497 10 463.15 166.67 2.37 65175.1 11 508.15 1989.17 2.35 981653.9 12 573.15 1981.67 2.52 1373295.2 13 616.15 2000 3.04 1933440 14 616.15 308 14.55 142508.5 15 644.15 5647.63 10.536 20517839.7 16 338.15 3339.63 14.56 1945000.5 Specific Heat calculation: For Reactor 2 For VGO at T = 343O C API = 14.09
  • 3. Specific Gravity = (141.5/ (131.5+API)) = (141.5 / (131.5+ 14.09)) = 0.971 Specific Heat Cp = (1.685+0.0034*T)/ Sqrt(S.G) = (1.685+ .0034*343)/sqrt(0.971) = 2.893 kJ/kg K Make up Hydrogen Specific Heat = 14.55 kJ/kg K Quench hydrogen specific Heat = 14.4 kJ/kg K Average Specific Heat for reactor 2 inlet stream: = (0.35*2.893) + (.05*14.55) + (0.59*14.4) = 10.39 kJ/kg K For Reactor 1: Qin = M * Cp * T = (16451.4)*(11)*(658.15 - 298.15) = 65189195.9 KJ/hr. Qout = M * Cp * T = (16451.4) * (11.188) * (686.15-298.15) = 71416990 KJ/hr. Difference = Oout – Qin = 71416990-65189195.9 = 6227794.8 kJ/hr. Calculation of Hydrogen quench requirement: Q = M * Cp * T M = Q/Cp / T = 6227794.8 / 14.6 / (338.15-298.15) = 10807.4 kg/hr.
  • 4. For Reactor 2: Qin = M * Cp * T = (5647.6)*(10.39)*(616.15 - 298.15) = 18663709.5 KJ/hr. Qout = M * Cp * T = (5647.6) * (10.536) * (644.15-298.15) = 20588178.3 KJ/hr. Difference = Oout – Qin = 205881783.8 – 186637095.5 = 1924468.8 kJ/hr. Calculation of Hydrogen quench requirement: Q = M * Cp * T M = Q/Cp / T = 1924468.8/ 14.6 / (338.15-298.15) = 3339.6 kg/hr.