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Numerical investigation into the low-pressure detection sensor performance of hydrogen gas with variable soft sphere molecular model

机译:可变软球分子模型对氢气低压检测传感器性能的数值研究

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Direct Simulation Monte Carlo (DSMC) method is used to simulate the hydrogen detection process with Microscale In-Plane Knudsen Radiometric Actuator (MIKRA). The variable soft sphere (VSS) model is applied to depict molecular diffusion in the gas mixtures that its results are compared with variable soft sphere (VSS) in literature. On the right side of the shuttle arm, the influence of molecular model (VSS and VHS) on the simulation results is small. And the temperature ratio, heat transfer ratio and pressure ratio are highly close to 1. But on the left side of the shuttle arm, the differences are significant resulting from molecular models. Especially, for the heat transfer on the left side of the shuttle arm, heat transfer ratio of VHS model to VSS model is maximally about 4.3. The influence of gas pressures and hydrogen concentrations on the detection performance of MIKRA is also discussed. The decrease of hydrogen concentration and the increase of gas pressure cause the center of the main vortex to move towards the heater arm, and the influence of the gas pressure is more significant. On the other hand, Knudsen force increases with the increase of the hydrogen concentration and its peak value is obtained in a higher gas pressure. For example, the peak value of Knudsen force can be attained for the gas pressure of about 387 Pa in the pure hydrogen domain while in the pure nitrogen domain, the gas pressure of about 260 Pa. Simultaneously, the relation of the linear dependence of Knudsen force on the hydrogen concentration is proposed to detect hydrogen concentration in N-2-H-2 mixtures. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:直接模拟蒙特卡罗(DSMC)方法用于使用微型面内Knudsen放射致动器(MIKRA)模拟氢气检测过程。应用可变软球(VSS)模型来描述气体混合物中的分子扩散,并将其结果与文献中的可变软球(VSS)进行比较。在往复臂的右侧,分子模型(VSS和VHS)对模拟结果的影响很小。而且,温度比,传热比和压力比非常接近1。但是,在穿梭臂的左侧,由于分子模型而产生的差异非常明显。特别是,对于往复臂左侧的传热,VHS模型与VSS模型的传热比最大约为4.3。还讨论了气压和氢气浓度对MIKRA检测性能的影响。氢浓度的降低和气压的增加导致主旋涡的中心向加热器臂移动,气压的影响更为明显。另一方面,克努森力随着氢浓度的增加而增加,并且其峰值在较高气压下获得。例如,对于纯氢域中的约387 Pa的气压,而对于纯氮域中的约260 Pa的气压,则可以达到克努森力的峰值。同时,克努森的线性相关关系建议使用氢浓度的力来检测N-2-H-2混合物中的氢浓度。 (C)2020 Hydrogen Energy Publications LLC。由Elsevier Ltd.出版。保留所有权利。

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