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Brayton Cycle (Gas Turbine) Ideal vs Real Operation for Power Application Analysis

Brayton Cycle (Gas Turbine) Ideal vs Real Operation for Power Application Analysis

5.0

Created by   Gordan Feric

Category   Engineering   >   Other

Duration 30 minutes
Audience Employees

Description

In this course material, the open, simple Brayton Cycle used for stationary power generation is considered.

The Brayton Cycle thermal efficiency is presented only for the air as the working fluid.The thermal efficiency derivation is presented with a simple mathematical approach.The Brayton Cycle is presented in a T - s diagram and its major performance trends (thermal efficiency, specific power output and power output) are plotted in a few figures as a function of compression ratio, gas turbine inlet temperature, working fluid mass flow rate and both isentropic compression and expansion efficiency.  It should be noted that this course material does not deal with costs (capital, operational or maintenance).

In this course material, the student gets familiar with the Brayton Cycle, its components, T - s diagram, ideal and real operation and major performance trends.

Table of Contents

Brayton Cycle (Gas Turbine) for Power Application
Analysis
Assumptions
Governing Equations
Input Data
Results
Conclusions

What you'll learn

Understand basic energy conversion engineering assumptions and equations

Know basic elements of Brayton Cycle and combustion and their diagrams

Be familiar with Brayton Cycle ideal and real operations

Understand general Brayton Cycle performance trends

Languages

English

Details to know

Certificate
Bookmark

Gordan Feric

His over 25 years engineering experience includes performing analytical modeling and computer modeling of physical properties, power cycles, power cycle components/processes and compressible flow.  Also, conducting conceptual design, analysis and evaluation of energy conversion systems for basic and simple power and propulsion cycles.

Brayton Cycle (Gas Turbine) Ideal vs Real Operation for Power Application Analysis
Price per license
$20.00
No. of licenses
Total
$20.00
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