Aspen HYSYS and Process Modeling
Overview:
Introduction:
This training program provides participants with the skills to effectively use Aspen HYSYS software for process simulation and modeling. It enables participants to address real-world engineering challenges and enhance process performance.
Program Objectives:
At the end of this program, participants will be able to:
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Gain proficiency in building, navigating, and optimizing process simulations using Aspen HYSYS, including advanced steady-state simulations.
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Utilize various HYSYS functions efficiently to construct comprehensive process flowsheets, leveraging intuitive solving capabilities for rapid model development.
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Explore multi-flowsheet integration to streamline and organize simulation efforts effectively, using Workbook and Flowsheet interfaces for quick modeling.
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Enhance convergence characteristics of columns and flowsheets, troubleshoot common issues, and improve simulation accuracy.
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Utilize Aspen HYSYS's rating capabilities to evaluate the performance of existing equipment and determine optimum operating points through case studies.
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Learn pipeline hydraulics calculations essential for assessing sizing requirements in gas gathering systems.
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Discover effective methods for reporting simulation results, including the use of Microsoft Excel VB macros, to communicate findings efficiently.
Targeted Audience:
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Process Engineers with Process simulation experience.
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New engineering graduates/technologists who will be using Aspen HYSYS in their daily work.
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Process engineers doing process design and optimization projects and studies.
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Plant engineers checking plant performance under different operating conditions.
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R&D engineers and researchers using Aspen HYSYS for process synthesis.
Program Outlines:
Unit 1:
Propane Refrigeration Loop:
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Add and connect operations to construct a simple flowsheet.
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Use the graphic interface to manipulate flowsheet objects and provide a clearer representation of the process.
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Understand how to process information has propagated both forwards and backward.
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Convert simulation cases to templates.
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Build and analyze a propane refrigeration loop simulation.
Unit 2:
Refrigerated Gas Plant:
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Install and converge heat exchangers.
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Use logical operations: Adjust and Balance.
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Model a simplified version of a refrigerated gas plant.
Unit 3:
NGL Fractionation Train:
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Model distillation columns with the assistance of the Column Input Expert.
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Manipulate column specifications to better represent process constraints.
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Evaluate utility requirements using the Process Utility Manager.
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Model a two-column natural gas liquid (NGL) recovery plant.
Unit 4:
Oil Characterization and HP Separation:
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Introduce Oil Characterization in Aspen HYSYS.
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Use the Aspen HYSYS Spreadsheet and Case Study functionality.
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Use the Oil Environment to characterize a crude assay and then employ the Case Study and Spreadsheet operation to determine how the Gas Oil Ratio (GOR) varies with pressure.
Unit 5:
Gas Gathering System:
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Simulate a gas gathering system located on varied terrain using the steady-state capabilities of Aspen HYSYS.
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Use the pipe segment and the Hydraulics subflowsheet to model a piping network in Aspen HYSYS.
Unit 6:
Two-Stage Compression:
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Introduce the use of the recycling operation.
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Recognize suitable recycling locations.
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Implement performance curves for rotating equipment.
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Utilize the recycle operation to build a two-stage compression flowsheet; define and activate compressor curves.
Unit 7:
Natural Gas Dehydration with TEG:
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Review the recommended methods to saturate single-phase and two-phase hydrocarbon streams.
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Discuss the implications of hydrate formation and the different means available to avoid hydrate problems.
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Model a typical TEG dehydration unit.
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Model a typical TEG dehydration unit and determine water dew point for the dry gas; use the hydrate utility to investigate the effects of methanol injection on hydrate inhibition.
Unit 8:
Rating Heat Exchangers:
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Review heat transfer calculation models in Aspen HYSYS.
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Configure a shell and tube heat exchanger to use a built-in Rating model.
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Integrate rigorous Exchanger Design and Rating (EDR) calculations into an Aspen HYSYS flowsheet.
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Use a Rating model to determine if an existing heat exchanger will meet process specifications; design and rate a heat exchanger using the EDR interface inside Aspen HYSYS.
Unit 9:
Troubleshooting / Best Practices:
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Introduce best practices for product integration and automation.
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Investigate the reasons why a simulation may produce poor results, consistency errors, etc.
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Identify appropriate thermodynamic models for common processes.
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Use suggested tips to debug simulations and columns.
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Troubleshoot existing Aspen HYSYS cases; recognize common problem areas in an Aspen HYSYS case.
Unit 10:
Reporting in Aspen HYSYS:
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Create a variety of customized reports using newly added functionality in the Report Manager.
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Access free Excel utilities designed to extract simulation data.
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Use Aspen Simulation Workbook to deploy models in Microsoft Excel.
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Use the Report Manager, Excel utilities, and Aspen Simulation Workbook to obtain custom reports.