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A Bound Vortex Surface Impingement Method for Adhered Dust Particle Removal

机译:束缚涡旋表面撞击去除附着尘埃的方法

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摘要

Methods of dust mitigation in Martian and Lunar environments are an increasingly active area of research within the uid dynamic and aerospace community. Martian and Lunar environments produce electrically charged particles, which easily adhere to exposed surfaces. Adhered regolith particles can interfere with human comfort and mechanical functionality. In this work we investigate the potential to enhance particle removal through bound vortex surface impingement. A bound vortex ow condition is created using a specialized nozzle con guration where a combination of positive pressure inlets and a central negative pressure outlet are used to control ow dynamics. Using the techniques of computational uid dynamic simulations and physical experiments, the e ectiveness of vortex-induced ow conditions is evaluated. A parametric study is performed to explore bound vortex formation over a range of nozzle con gurations and pressure conditions. Visualization of pathlines and measurement of shear stress under various geometric and pressure conditions provide insight into ow characteristics. It is found that an optimal range of key geometric and pressure parameters exist in the creation of bound vortex ow and such ow enhances particle transportation and removal. A subset of optimal computational con gurations is recreated experimentally to support the existence of bound vortex ow and its positive impact on the removal of particles.
机译:在火星和月球环境中减少粉尘的方法是uid动态和航空航天界越来越活跃的研究领域。火星和月球环境会产生带电粒子,该粒子很容易附着在暴露的表面上。附着的硬石膏颗粒会干扰人体舒适度和机械功能。在这项工作中,我们研究了通过约束涡旋表面撞击增强去除颗粒的潜力。使用专门的喷嘴配置可创建边界涡流条件,其中使用正压入口和中央负压出口的组合来控制流动力学。使用计算流体动力学模拟和物理实验技术,评估了涡流引起的流动条件的有效性。进行了参数研究,以探索在一系列喷嘴配置和压力条件下束缚涡的形成。在各种几何和压力条件下,路径的可视化和剪切应力的测量可提供对流动特性的洞察力。发现在形成束缚涡流中存在关键几何和压力参数的最佳范围,并且这种涡流增强了颗粒的运输和去除。通过实验重新创建最佳计算配置的子集,以支持束缚涡流的存在及其对粒子去除的积极影响。

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    Vachon Nicholas;

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  • 年度 2010
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