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针阀结构对冷气体推进器稀薄流场影响的直接模拟蒙特卡洛模拟

Direct Simulation Monte Carlo Simulation of the Effect of Needle Valve Structures on the Rarefied Flow of Cold Gas Thrusters.

作者信息

Lu Songcai, Liu Xuhui, Wang Xudong, Zhang Shurui, Yu Yusong, Li Yong

机构信息

Beijing Institute of Control Engineering, Beijing 100190, China.

Hydrogen Energy and Space Propulsion Laboratory (HESPL), School of Mechanical, Electronic and Control Engineering, Beijing Jiaotong University, Beijing 100044, China.

出版信息

Micromachines (Basel). 2023 Aug 11;14(8):1585. doi: 10.3390/mi14081585.

Abstract

The needle valve, serving as the flow control unit of the thruster system, is a crucial component of the entire thruster. Its performance directly impacts the flow state of the rarefied gas in the micro-nozzle structure of the cold gas micro-thruster, thereby exerting a significant influence on the high precision and stability of the propulsion system as a whole. This study examines the impact of different needle valve structures on the flow and thrust in micro-nozzles using the DSMC method. The analysis includes discussions on the spatial distribution, Kn distribution, slip velocity distribution, and pressure distribution of the micro-nozzle's flow mechanism. Notably, increased curvature of the needle valve enhances the flow velocity in the throat and expansion section. The magnitude of the curvature directly affects the flow velocity, with larger curvatures resulting in higher velocities. Comparing different spool shapes, the conical spool shape minimizes the velocity gradient in the high-speed region at the junction between the spool area and the outlet pipe, particularly with a wide opening. Increasing the curvature of the spool leads to a higher velocity in the expansion section. Consequently, an arc-shaped spool valve maximizes the nitrogen flow at the nozzle during wide openings, thereby enhancing thrust. These research findings serve as a valuable reference for the structural design of the needle valve in the micro-nozzle of the cold gas micro-thruster.

摘要

针阀作为推进器系统的流量控制单元,是整个推进器的关键部件。其性能直接影响冷气体微推进器微喷嘴结构中稀薄气体的流动状态,进而对整个推进系统的高精度和稳定性产生重大影响。本研究采用DSMC方法研究了不同针阀结构对微喷嘴内流动和推力的影响。分析内容包括对微喷嘴流动机制的空间分布、克努森数分布、滑移速度分布和压力分布的讨论。值得注意的是,针阀曲率的增加会提高喉部和扩张段的流速。曲率大小直接影响流速,曲率越大,流速越高。比较不同阀芯形状,锥形阀芯形状可使阀芯区域与出口管交界处高速区域的速度梯度最小,尤其是在开度较大时。阀芯曲率的增加会导致扩张段流速更高。因此,弧形阀芯阀在开度较大时可使喷嘴处的氮气流量最大化,从而提高推力。这些研究结果为冷气体微推进器微喷嘴中针阀的结构设计提供了有价值的参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/585b/10456686/61b6d4f9d563/micromachines-14-01585-g001.jpg

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