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Dynamic modeling and simulation of an integral bipropellant propulsion double-valve combined test system

  • Yang Chen*
  • , Huasheng Wang
  • , Jixia Xia
  • , Guobiao Cai
  • , Zhenpeng Zhang
  • *Corresponding author for this work
  • Queen Mary University of London
  • CAS - Beijing Institute of Control Engineering
  • Beihang University

Research output: Contribution to journalArticlepeer-review

Abstract

For the pressure reducing regulator and check valve double-valve combined test system in an integral bipropellant propulsion system, a system model is established with modular models of various typical components. The simulation research is conducted on the whole working process of an experiment of 9 MPa working condition from startup to rated working condition and finally to shutdown. Comparison of simulation results with test data shows: five working conditions including standby, startup, rated pressurization, shutdown and halt and nine stages of the combined test system are comprehensively disclosed; valve-spool opening and closing details of the regulator and two check valves are accurately revealed; the simulation also clarifies two phenomena which test data are unable to clarify, one is the critical opening state in which the check valve spools slightly open and close alternately in their own fully closed positions, the other is the obvious effects of flow-field temperature drop and temperature rise in pipeline network with helium gas flowing. Moreover, simulation results with consideration of component wall heat transfer are closer to the test data than those under the adiabatic-wall condition, and more able to reveal the dynamic characteristics of the system in various working stages.

Original languageEnglish
Pages (from-to)346-374
Number of pages29
JournalActa Astronautica
Volume133
DOIs
StatePublished - 1 Apr 2017

Keywords

  • Double-valve combined test system
  • Dynamic system simulation
  • Finite volume method
  • Integral bipropellant propulsion
  • Modularization modeling

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