Learn Aspen plus Simulation from industry expert
Learn Aspen plus Simulation from industry expert, available at $54.99, has an average rating of 4.4, with 51 lectures, based on 64 reviews, and has 349 subscribers.
You will learn about Aspen Plus simulation from begineer to advance level 1) Introduction to process simulation 2) Run the first Aspen Simulation. 3) Physical property environment. 4) Workshop on property analysis in Aspen. 5) Mixer, Splitter, Flash simulation in Aspen 6) Pump, Compressor, Turbine, Control valve, Pipe line simulation in Aspen 7) Heat exchanger simulation 8) Reactor simulation 9) Distillation Column simulation 10) Design Specification. 11) Sensitivity Analysis 12) Calculator Block 13) Optimization 14) Solid models 15) Overview of batch models 16) Overview of manipulators 17) Overview of user defined models. 18) All the modules are backed up by real life case studies from industries. This course is ideal for individuals who are Working Chemical Engineers or Students in chemical engineering, control engineering , biotech, food technology or Process Engineers or oil and gas professional or Teachers in chemical engineering, control engineering , biotech, food technology It is particularly useful for Working Chemical Engineers or Students in chemical engineering, control engineering , biotech, food technology or Process Engineers or oil and gas professional or Teachers in chemical engineering, control engineering , biotech, food technology.
Enroll now: Learn Aspen plus Simulation from industry expert
Summary
Title: Learn Aspen plus Simulation from industry expert
Price: $54.99
Average Rating: 4.4
Number of Lectures: 51
Number of Published Lectures: 51
Number of Curriculum Items: 51
Number of Published Curriculum Objects: 51
Original Price: $19.99
Quality Status: approved
Status: Live
What You Will Learn
- Aspen Plus simulation from begineer to advance level
- 1) Introduction to process simulation
- 2) Run the first Aspen Simulation.
- 3) Physical property environment.
- 4) Workshop on property analysis in Aspen.
- 5) Mixer, Splitter, Flash simulation in Aspen
- 6) Pump, Compressor, Turbine, Control valve, Pipe line simulation in Aspen
- 7) Heat exchanger simulation
- 8) Reactor simulation
- 9) Distillation Column simulation
- 10) Design Specification.
- 11) Sensitivity Analysis
- 12) Calculator Block
- 13) Optimization
- 14) Solid models
- 15) Overview of batch models
- 16) Overview of manipulators
- 17) Overview of user defined models.
- 18) All the modules are backed up by real life case studies from industries.
Who Should Attend
- Working Chemical Engineers
- Students in chemical engineering, control engineering , biotech, food technology
- Process Engineers
- oil and gas professional
- Teachers in chemical engineering, control engineering , biotech, food technology
Target Audiences
- Working Chemical Engineers
- Students in chemical engineering, control engineering , biotech, food technology
- Process Engineers
- oil and gas professional
- Teachers in chemical engineering, control engineering , biotech, food technology
1) Introduction to process simulation
a) Use of simulation
b) What is Flow sheet simulation?
c) Advantage of simulation
d) Understanding the simulation problem
e) Approaches to flowsheet simulation.
f) Sequential modular and equation oriented
g) Structure of a process simulator
h) Flow sheet tropology level
i) Unit operation models and physical property models.
j) Steps in Aspen simulation.
2) Run the first Aspen Simulation.
a) Simulation steps.
b) Case study: Mixer and pumps
c) How to open an Aspen simulation?
d) Different features of Aspen simulation window
e) Open a blank simulation.
f) Define component
g) Specify thermodynamic method
h) Run property analysis
i) Draw flow chart in simulation window
j) Specify feed condition
k) Specify equipment details.
l) Run the simulation.
m) Analyse the results.
n) Accessing variables.
3) Physical property environment.
a) Use of method assistant to know the physical property method.
b) Identify issues involved in the choice of a property method.
c) Understanding different terms in Aspen property analysis
i) Property method
ii) Property
iii) Property model
iv) Property parameter
v) Property set
d) Different physical property models
i) Ideal
ii) Equation of states
iii) Activity coefficient models
iv) Special models
e) Ideal vs. non ideal behaviour
f) Comparison of Equation of states and activity model
g) Henry’s law
h) Choosing a property method
i) Practical example to choose a property method.
j) How to establish physical property
k) Pure component parameters
l) Binary interaction parameters
m) Property data sources
n) Data regression
o) Property estimation
p) Property analysis
q) Property analysis diagram.
i) Pure component i.e. vapour pressure vs. Temperature
ii) Binary i.e. TXY, PXY, XY
iii) Ternary residue map
r) Predicting non ideal behaviour
s) How to establish physical property in Aspen simulation.
t) Properties included in PROPSETS
u) Specifying property sets
4) Workshop on property analysis in Aspen.
a) Case study: 1. Estimating pure component property as a function of temperature and pressure of any compound in Aspen simulation
b) Case study :2 Estimating XY, TXY, PXY, Gibbs energy of mixing curve of a binary system.
c) Case study :3 Estimating ternary maps showing phase envelop, tie lines and azeotrope of ternary system.
5) Mixer, Splitter, Flash simulation in Aspen
a) Overview of library modules of mixer, splitter and flash separation.
b) Workshop on Flash unit.
c) Workshop on three phase flash unit operation block.
6) Pump, Compressor, Turbine, Control valve, Pipe line simulation in Aspen
a) Overview of pump and turbine simulation.
b) Pump performance curve.
c) Case study of pump simulation.
d) Models of compressor and multistage compressor.
e) Valve model
f) Pipe model
g) Pipeline model
h) Case study of pipe line, pump and valve simulation.
7) Heat exchanger simulation.
a) Overview of Heat exchanger modules available in Aspen.
b) Heater model.
c) Workshop on heater model.
d) HeatX model
e) Workshop on HeatX model
f) HeatX vs. Heater model
g) Rigorous heat exchanger design by EDR module
h) Workshop on EDR module
i) Multistage heater module (MheateX module)
j) HXflux module
k) Heat curve
l) Utilities
8) Reactor simulation
a) Overview of reactor modules available in Aspen.
b) Yield Reactor
c) Stoichiometric Reactor.
d) Equilibrium Reactor
e) Gibbs Reactor
f) Workshop on Gibbs Reactor
g) CSTR
h) Workshop on CSTR in series
i) Plug flow Reactor
j) Workshop on Plug flow reactor
k) Batch Reactor
l) Workshop on Batch Reactor
m) Workshop on industrial Ethyl Acetate Reactor.
n) Workshop on industrial Ethylene Glycol Reactor
9) Distillation Column simulation
a) Overview of different distillation column modules available in Aspen library.
i) DSTWU (Short cut Distillation design)
ii) DISTL (Short cut Distillation rating)
iii) RadFRac (Rigorous Distillation design and rating)
iv) Extract (Extraction column)
v) MultiFrac (Multistage distillation column)
vi) SCFrac (Shortcut Distillation for petroleum refinery)
vii) PetroFrac (Rigorous Distillation for petroleum refinery)
viii) ConSep
ix) BatchSep (Batch distillation column)
b) Workshop on
i) DSTWU
ii) Reflux ratio and number of trays.
iii) DISTL
iv) RadFrac
v) Industrial Benzes Toluene distillation
vi) Design spec.
vii) Optimum feed tray location.
c) Detail design methodology for distillation use in RadFrac.
i) RadFrac inputs
ii) RadFrac flowsheet connectivity
iii) Features of RadFrac.
iv) RadFrac setup configuration sheet.
v) Feed convention.
vi) Plot wizard.
vii) Design spec and vary.
viii) RadFrac convergence problem.
10) Design Specification.
a) Understanding the design specification with a real-life case study
b) Steps for using design specification
c) Design specification example
d) Convergence problem in Design specification.
e) Case study of design spec.
11) Sensitivity Analysis
a) Understanding the Sensitivity analysis with a real-life case study
b) Steps for using Sensitivity analysis
c) Sensitivity analysis example
d) Plotting the sensitivity analysis results.
e) Case study of sensitivity analysis
12) Calculator Block
a) Understanding the calculator block with a real-life case study
b) Steps for using calculator block
c) calculator block example
d) How to use Fortran code in calculator block?
e) How to use excel in calculator block
f) Case study of calculator block
13) Optimization
a) Understanding the Optimization features with a real-life case study
b) Steps for using Optimization.
c) Optimization example
d) Understanding the constraints
e) Local Optima
f) convergence problem.
14) Solid models
a) Overview of unit operation involving solid models
i) Crystallizer
ii) Crushers
iii) Screen
iv) Single stage washer
v) Counter current decanter
vi) Dryer
vii) Granulator
viii) Classifier
ix) Fluid bed
b) Overview of solid separators
i) Cyclone
ii) Venturi scrubber
iii) Centrifuge
iv) Filter and cross floe filter
v) Hydro cyclone
vi) Bag house filter
vii) Electrostatic precipitator.
15) Overview of batch models
16) Overview of manipulators
17) Overview of user defined models.
Course Curriculum
Chapter 1: Introduction
Lecture 1: Introduction
Chapter 2: Run the first Aspen simulation
Lecture 1: Run the first simulation
Lecture 2: Introduction part 2
Lecture 3: Accessing variables
Chapter 3: Physical Property analysis in Aspen
Lecture 1: How to identify physical property method?
Lecture 2: Physical property environment.
Chapter 4: Case studies on property Analysis
Lecture 1: Pure component properties
Lecture 2: Binary System
Lecture 3: Ternary system
Chapter 5: Mixer, splitter ,flash drum, separator simulations
Lecture 1: Overview Mixer, splitter ,flash drum, separator modules
Lecture 2: Case study of Flash drum simulation
Lecture 3: Case study of separator simulation
Chapter 6: Pump, compressor , pipiline , control valve simulation
Lecture 1: Overview of pressure changer modules
Lecture 2: Case study of Pump simulation
Lecture 3: Case study of Pipe line simulation
Chapter 7: Heat exchanger simulation
Lecture 1: Overview of heat exchanger module
Lecture 2: Case study of Heater module
Lecture 3: Case study of Heatex module
Lecture 4: Case study of EDR module
Chapter 8: Reactor simulation
Lecture 1: Overview of Reactor
Lecture 2: Case study Batch reactor 1
Lecture 3: Case study Batch Reactor 2
Lecture 4: Case study of CSTR
Lecture 5: Case study of Ethyle Acetate Reactor
Lecture 6: Case study of Ethylene Glycol Reactor
Lecture 7: Case study of GIBBS Reactor
Lecture 8: Case study of PFR
Chapter 9: Distillation Column simulation
Lecture 1: Overview of Distillation column
Lecture 2: Case study of Benzene column Distillation
Lecture 3: Case study of Distillation column 1
Lecture 4: Case study of Distillation column 2
Lecture 5: Case study of Distillation column 3
Lecture 6: Case study of Distillation column 4
Lecture 7: Case study of Distillation column 5
Lecture 8: Case study of Distillation column 6
Lecture 9: Case study of DSTWU
Lecture 10: Case study of Feedtray
Lecture 11: Case study of RADFRAC
Lecture 12: Case study of RADFRAC 2
Chapter 10: Design Specification.
Lecture 1: Overview of Design specification
Chapter 11: Sensitivity Analysis
Lecture 1: Overview of Sensitivity Analysis
Lecture 2: Case study of Sensitivity Analysis
Lecture 3: Case study of sensitivity Analysis
Chapter 12: Calculator Block
Lecture 1: Overview of Calculator block
Lecture 2: Case study of Calculator Block
Chapter 13: Optimization
Lecture 1: Overview of Optimization
Chapter 14: Solid models
Lecture 1: Overview of Solid models
Lecture 2: Overview of Solid Separator
Chapter 15: Batch Models
Lecture 1: Overview of batch models
Chapter 16: Manupulator
Lecture 1: Overview of manipulators
Chapter 17: User defined models
Lecture 1: Overview of user defined models.
Instructors
-
NextGenaro -The Team with International Industry Expertise
Global industry experts
Rating Distribution
- 1 stars: 3 votes
- 2 stars: 3 votes
- 3 stars: 5 votes
- 4 stars: 22 votes
- 5 stars: 31 votes
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