A Detailed Modular Governor-Turbine Model for Multiple-Spool Gas Turbine With Scrutiny of Bleeding Effect

Author:

Balaghi Enalou Hossein1,Abbasi Soreshjani Eshagh2,Rashed Mohamed3,Shen Yeoh Seang4,Bozhko Serhiy3

Affiliation:

1. Faculty of Engineering, University of Nottingham, Aerospace Technology Centre, Nottingham NG8 1BB, UK e-mail:

2. Engineering Department, MAPNA Turbine Engineering & Manufacturing Company (TUGA), Karaj 3167643594, Iran e-mail:

3. Faculty of Engineering, University of Nottingham, Nottingham NG8 1BB, UK e-mail:

4. University of Nottingham, Nottingham NG8 1BB, UK e-mail:

Abstract

Multiple-spool gas turbines are usually utilized for power supply in aircrafts, ships, and terrestrial electric utility plants. As a result, having a reliable model of them can aid with the control design process and stability analysis. Since several interconnected components are coupled both thermodynamically and through shafts, these engines cannot be modeled linearly as single shaft gas turbines. In this paper, intercomponent volume method (ICV) has been implemented for turbine modeling. A switched feedback control system incorporating bump-less transfer and antiwindup functionality is employed as governor for the engine. Validation with test results from a three spool gas turbine highlights high accuracy of turbine-governor model in various maneuvers. Results show that over-speed after load rejection is considerable due to the fact that in this arrangement, the power turbine (PT) is not coupled with the compressor which acts like a damper for single shaft gas turbines. To address this problem, bleed valves (mainly before combustion chamber) are used to arrest the over-speed by 20%. In addition, a switch is employed into the governor system to rapidly shift fuel to permissible minimum flow.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference11 articles.

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2. Validated Models for Gas Turbines Based on Thermodynamic Relationships;IEEE Trans. Power Syst.,2011

3. DYNGEN: A Program for Calculating Steady State and Transient Performance of Turbojet and Turbofan Engines,1975

4. Development of a Turbofan Engine Simulation in a Graphical Simulation Environment,2003

5. A Modular Aero-Propulsion System Simulation of a Large Commercial Aircraft Engine,2008

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