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Fabrication of Catalyst-Insertion-Type Microelectromechanical Systems Monopropellant Thruster

机译:催化剂插入式微机电系统单推进器的制造

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A microelectromechanical systems monopropellant thruster having a design thrust of 100 mN was fabricated and tested. Hydrogen peroxide (90 wt %), which is a green propellant, was selected as the monopropellant Platinum was used to decompose the hydrogen peroxide, and it was coated on A1_2O_3 via impregnation. Three catalyst loading conditions were tested and experimentally optimized. The optimized catalyst was directly inserted into the thruster chamber to enhance decomposition performance because its surface-to-mass ratio significantly affected its performance. The microelectromechanical systems thruster was composed of eight photosensitive cylindrical-type glasses. An additional reduction process was carried out after the thermal bonding procedure because performance degradation of the catalyst was detected at this stage. The microelectromechanical systems thruster decomposed hydrogen peroxide well. However, chamber instability was observed. This instability resulted from an insufficient pressure drop at the injector. Therefore, it is necessary to increase the feeding pressure and reinforce the injector wafer to decrease chamber instability.
机译:制造并测试了设计推力为100 mN的微机电系统单推进器推进器。选择作为绿色推进剂的过氧化氢(90 wt%)作为单推进剂,铂用于分解过氧化氢,并通过浸渍将其涂覆在Al_2O_3上。测试了三种催化剂的负载条件,并进行了实验优化。优化的催化剂直接插入推进器室以提高分解性能,因为其表面质量比显着影响其性能。微机电系统推进器由八个感光圆柱型玻璃组成。由于在此阶段检测到催化剂的性能下降,因此在热粘合步骤之后进行了另外的还原过程。微机电系统推进器很好地分解了过氧化氢。但是,观察到室不稳定。这种不稳定性是由喷油器处的压降不足引起的。因此,有必要增加进料压力并增强注入器晶片以减小腔室的不稳定性。

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