Quasi-One-Dimensional Flow Modeling for Flight Environment Simulation System of Altitude Ground Test Facilities
Abstract
:1. Introduction
2. Component Models of the FESS
2.1. Pipe Model
2.1.1. Quasi-One-Dimensional Flow in Pipe
- The fluid in control volume has uniform properties at each streamwise location.
- The axial heat transfer process and gravitational potential energy of the fluid are ignored.
2.1.2. Heat Transfer Model of Pipe
2.2. Regulating Valve Model
2.3. Volume Model
2.4. Other Related Models
2.4.1. Air Source Model
2.4.2. Engine Model
3. Simulation Model of the FESS
4. Model Simulation and Verification
4.1. Model Verification
4.2. Closed-Loop Control Simulation of Intake Air Temperature and Pressure
5. Conclusions
- The simulation results under typical working conditions are compared with the experimental data to verify that the model has high confidence, in which the relative error of mass flow is no more than 4.4%, and the relative error of pressure at the specified cross section is no more than 0.9%. The model can meet the actual needs in engineering.
- The model has the ability to verify and test the system control algorithm and can support the development and verification of advanced technology of the FESS.
- The model is affected by the flow coefficient of the regulating valve and other parameters. With the accumulation of a large number of experimental data and the calculation of high-precision three-dimensional simulation data, the accuracy of the model can be further improved.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
A | = | Area | p | = | Pressure |
= | Contact area between pipe inner | = | Heat transfer rate | ||
wall and airflow | = | Heat transfer rate of the shell | |||
= | Regulating valve circulation area | = | Heat transfer rate of throttle | ||
= | Heat transfer contact area | element | |||
between regulating valve and | = | Heat transfer rate of external | |||
external environment | environment | ||||
= | Specific heat capacity of metal in | R | = | Perfect gas constant | |
pipe | T | = | Temperature | ||
CS | = | Control volume surface | = | Pipe wall temperature | |
CV | = | Control volume | = | Environment temperature | |
D | = | Diameter | = | Shell temperature | |
e | = | Energy per unit mass | = | Throttle element temperature | |
E | = | Total energy | u | = | Velocity |
f | = | Friction coefficient | vb | = | Behind regulating valve |
F | = | Force | vf | = | In front of regulating valve |
= | Heat transfer coefficient | V | = | Volume | |
i | = | Control volume boundary index | = | Power | |
I | = | Control volume center index | = | Axial distance between the | |
K | = | Local pressure loss coefficient | centers of adjacent control | ||
volumes | |||||
m | = | Mass | = | Specific heat ratio | |
= | Mass of pipe | = | Pressure ratio | ||
= | Mass of shell | = | Density | ||
= | Mass flow rate | = | Flow coefficient | ||
= | Regulating valve flow rate |
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Sensors | Accuracy | Acquisition Frequency |
---|---|---|
pressure sensor 1 | 0.05 kPa | 20 Hz |
pressure sensor 2 | 0.05 kPa | 50 Hz |
pressure sensor 3 | 0.05 kPa | 20 Hz |
temperature sensor 2 | 0.1 K | 50 Hz |
temperature sensor 3 | 0.1 K | 20 Hz |
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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. https://doi.org/10.3390/pr10020377
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(2):377. https://doi.org/10.3390/pr10020377
Chicago/Turabian StylePei, Xitong, Jiashuai Liu, Xi Wang, Meiyin Zhu, Louyue Zhang, and Zhihong Dan. 2022. "Quasi-One-Dimensional Flow Modeling for Flight Environment Simulation System of Altitude Ground Test Facilities" Processes 10, no. 2: 377. https://doi.org/10.3390/pr10020377
APA StylePei, X., Liu, J., Wang, X., Zhu, M., Zhang, L., & Dan, Z. (2022). Quasi-One-Dimensional Flow Modeling for Flight Environment Simulation System of Altitude Ground Test Facilities. Processes, 10(2), 377. https://doi.org/10.3390/pr10020377