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Sensitivity analysis of a comprehensive model for a miniature-scale linear compressor for electronics cooling

机译:用于电子冷却的微型线性压缩机综合模型的灵敏度分析

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摘要

A comprehensive model of a linear compressor for electronics cooling was previously presented by Bradshaw et al. (2011). The current study expands upon this work by first developing methods for predicting the resonant frequency of a linear compressor and for controlling its piston stroke. Key parameters governing compressor performance - leakage gap, eccentricity, and piston geometry - are explored using a sensitivity analysis. It is demonstrated that for optimum performance, the leakage gap and frictional parameters should be minimized. In addition, the ratio of piston stroke to diameter should not exceed a value of one to minimize friction and leakage losses, but should be large enough to preclude the need for an oversized motor. An improved linear compressor design is proposed for an electronics cooling application, with a predicted cooling capacity of 200 W a cylindrical compressor package size of diameter 50.3 mm and length 102 mm.
机译:Bradshaw等人先前提出了用于电子冷却的线性压缩机的综合模型。 (2011)。当前的研究通过首先开发用于预测线性压缩机的共振频率并控制其活塞冲程的方法来扩展这项工作。使用敏感性分析探索了控制压缩机性能的关键参数-泄漏间隙,偏心率和活塞几何形状。结果表明,为获得最佳性能,应将泄漏间隙和摩擦参数降至最低。另外,活塞冲程与直径之比不应超过1的值,以最大程度地减少摩擦和泄漏损失,但应足够大以排除对超大型电动机的需求。提出了一种用于电子冷却应用的改进的线性压缩机设计,其预期冷却能力为200 W,这是直径为50.3 mm,长度为102 mm的圆柱形压缩机组件的尺寸。

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