A Multi-Cavity Iterative Modeling Method for the Exhaust Systems of Altitude Ground Test Facilities
Abstract
:1. Introduction
2. Component Model of the Exhaust System
2.1. Exhaust Diffuser Model
2.1.1. Ejection Model
2.1.2. Mixture Model
2.1.3. Expansion Model
2.2. Cooler Model
2.3. Butterfly Valve Model
2.4. Test Chamber Model and Pipe Volume Model
3. Iterative Model of the Exhaust System
4. Model Simulation and Verification
4.1. Model Verification with Experimental Data and Observed Engine Parameters
4.2. Simulation Results Compared with Lumped-Parameter Model
4.3. Closed-Loop Simulation Results
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Hou, M.J. Aero-Engine Altitude Simulating Test Techniquesl; Aviation Industry Press: Beijing, China, 2014; p. 1. [Google Scholar]
- Zhu, M. Thermal Fluid Mechanism Analysis and the Research of Modern Control Methods for Altitude Ground Test Facilities; Beihang University: Beijing, China, 2021. [Google Scholar]
- Gerald, A.; Joseph, K. Numerical modeling of altitude diffusers. In Proceedings of the 19th Advanced Measurement and Ground Testing Technology Conference, New Orleans, LA, USA, 17–20 June 1996. [Google Scholar]
- Li, G.; Zhang, J. Aeronautic Ejector/Mixer; National Defense Industry Press: Beijing, China, 2007; pp. 15–26. [Google Scholar]
- Byung, H.; Jihwan, L.; Sunghyun, P.; Ji, H.; Woongsup, Y. Design and Analysis of a Second-Throat Exhaust Diffuser for Altitude Simulation. J. Propuls. Power 2012, 28, 1091–1104. [Google Scholar]
- Montgomery, P.A.; Burdette, R.; Krupp, B. A Real-Time Turbine Engine Facility Model and Simulation for Test Operations Modernization and Integration. In Proceedings of the ASME Turbo Expo 2000: Power for Land Sea, and Air, Munich, Germany, 8–11 May 2000. [Google Scholar]
- Montgomery, P.A.; Burdette, R.; Wilhite, L.; Salita, S. Modernization of a Turbine Engine Test Facility Utilizing a Real-Time Facility Model and Simulation. In Proceedings of the ASME Turbo Expo 2001: Power for Land Sea, and Air, New Orleans, LA, USA, 4–7 June 2001. [Google Scholar]
- Davis, M.; Montgomery, P. A Flight Simulation Vision for Aeropropulsion Altitude Ground Test Facilities. In Proceedings of the ASME Turbo Expo 2002: Power for Land Sea, and Air, Amsterdam, The Netherlands, 3–6 June 2002. [Google Scholar]
- Boraira, M.; Van Every, D. Design and Commissioning of a Multivariable Control System for a Gas Turbine Engine Test Facility. In Proceedings of the 25th AIAA Aerodynamic Measurement Technology and Ground Testing Conference, San Francisco, CA, USA, 5–8 June 2006. [Google Scholar]
- Bierkamp, J.; Köcke, S.; Staudacher, S.; Fiola, R. Influence of ATF Dynamics and Controls on Jet Engine Performance. In Proceedings of the ASME Turbo Expo 2007: Power for Land Sea, and Air, Montreal, QC, Canada, 14–17 May 2007. [Google Scholar]
- Weisser, M.; Bolk, S.; Staudacher, S. Hard-in-the-Loop-Simulation of a Feedforward Multivariable Controller for the Altitude Test Facility at the University of Stuttgart. 2013. Available online: https://www.dglr.de/publikationen/2013/301179 (accessed on 9 February 2022).
- Pei, X.T.; Zhang, S.; Dan, Z.H.; Zhu, M.Y.; Qian, Q.M.; Wang, X. Study on Digital Modeling and Simulation of Altitude Test Facility Flight Environment Simulation System. J. Propul. Technol. 2019, 40, 1144–1152. [Google Scholar]
- Zhu, M.; Zhang, S.; Dan, Z.; Pei, X.; Wang, W.; Wang, X. A coordinate positioning and regression algorithm for the flow characteristics of a large butterfly valve. Gas Turbine Exp. Res. 2017, 30, 39–44. [Google Scholar]
- Sosunov, V. The history of aviation engine development in the USSR and the 60th anniversary of CIAM. In Proceedings of the 26th Joint Propulsion Conference, Orlando, FL, USA, 16–18 July 1990. [Google Scholar]
- Pei, X.; Liu, J.; Wang, X.; Zhu, M.; Zhang, L.; Dan, Z. Quasi-One-Dimensional Flow Modeling for Flight Environment Simulation System of Altitude Ground Test Facilities. Processes 2022, 10, 377. [Google Scholar] [CrossRef]
- Sheeley, J.M.; Sells, D.A.; Bates, L.B. Experiences with Coupling Facility Control Systems with Control Volume Facility Models. In Proceedings of the 42nd AIAA Aerospace Sciences Meeting and Exhibit, Reno, NE, USA, 5–8 January 2004. [Google Scholar]
- Zhu, M.; Wang, X.; Zhang, S.; Dan, Z.; Pei, X.; Miao, K.; Jiang, Z. PI Gain Scheduling Control for Flight Environment Simulation System of Altitude Ground Test Facilities Based on LMI Pole Assignment. J. Propuls. Technol. 2019, 40, 2587–2597. [Google Scholar]
- Qian, Q.; Dan, Z.; Zhang, S.; Pei, X.; Wang, W. Linear active disturbance rejection control method for intake pressure control in aero-engine transient test. J. Aerosp. Power 2019, 34, 2271–2279. [Google Scholar]
- Zhu, M.; Wang, X.; Dan, Z.; Zhang, S.; Pei, X. Two freedom linear parameter varying u synthesis control for flight environment testbed. Chin. J. Aeronaut. 2018, 32, 1204–1214. [Google Scholar] [CrossRef]
- Pan, J.; Shan, P. Fundamentals of Gasdynamics; National Defense Industry Press: Beijing, China, 2011; pp. 87–95. [Google Scholar]
Variable | Meaning | Units |
---|---|---|
p | Pressure | Pa |
T | Temperature | K |
A | Area | m2 |
d | Diameter | m |
V | Volume | m3 |
v | Velocity | m/s |
W | Mass flow | kg/s |
m | Mass | kg |
c | Specific heat | J/(kg*°C) |
R | Gas constant | J/(kg*°C) |
ht | Unit enthalpy | J/kg |
h | Heat transfer coefficient | W/(m2*°C) |
E | Energy | J |
U | Internal energy | J |
Heat transfer rate | J/s |
Variable | Meaning |
---|---|
u | Ejection factor |
Ps2 | Static pressure at Section 2 |
Pt3 | Total pressure at Section 3 |
λ4 | Velocity coefficient at Section 4 |
Type | Variable | Meaning |
---|---|---|
Inlet conditions | pamb | Environment pressure |
Tamb | Environment temperature | |
We | Mass flow of engine nozzle exit | |
Te | Temperature of engine nozzle exit | |
pe | Pressure of engine nozzle exit | |
λe | Velocity coefficient of engine nozzle exit | |
Ae | Flow area of engine nozzle exit | |
Wc | Mass flow of cooling water | |
Tc | Temperature of cooling water | |
pc | Pressure of cooling water | |
p7 | Pressure after Valve 3 | |
System states | p1s | Static pressure in test chamber |
p6 | Static pressure in pipe volume | |
Control values | α1 | Opening of Valve 1 |
α2 | Opening of Valve 2 | |
α3 | Opening of Valve 3 |
Type | Manufacturer | Accuracy |
---|---|---|
Orifice meter | Chuanyi | ±1% |
Temperature sensor | Therncway | ±0.5% |
Pressure sensor | Honeywell | ±0.1% |
Linear displacement sensor | MTS | ±0.1% |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Miao, K.; Wang, X.; Zhu, M.; Zhang, S.; Dan, Z.; Liu, J.; Yang, S.; Pei, X.; Wang, X.; Zhang, L. A Multi-Cavity Iterative Modeling Method for the Exhaust Systems of Altitude Ground Test Facilities. Symmetry 2022, 14, 1399. https://doi.org/10.3390/sym14071399
Miao K, Wang X, Zhu M, Zhang S, Dan Z, Liu J, Yang S, Pei X, Wang X, Zhang L. A Multi-Cavity Iterative Modeling Method for the Exhaust Systems of Altitude Ground Test Facilities. Symmetry. 2022; 14(7):1399. https://doi.org/10.3390/sym14071399
Chicago/Turabian StyleMiao, Keqiang, Xi Wang, Meiyin Zhu, Song Zhang, Zhihong Dan, Jiashuai Liu, Shubo Yang, Xitong Pei, Xin Wang, and Louyue Zhang. 2022. "A Multi-Cavity Iterative Modeling Method for the Exhaust Systems of Altitude Ground Test Facilities" Symmetry 14, no. 7: 1399. https://doi.org/10.3390/sym14071399
APA StyleMiao, K., Wang, X., Zhu, M., Zhang, S., Dan, Z., Liu, J., Yang, S., Pei, X., Wang, X., & Zhang, L. (2022). A Multi-Cavity Iterative Modeling Method for the Exhaust Systems of Altitude Ground Test Facilities. Symmetry, 14(7), 1399. https://doi.org/10.3390/sym14071399