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Experimental investigation of the thermal control effects of phase change material based packaging strategy for on-board permanent magnet synchronous motors

机译:基于相变材料的车载永磁同步电动机封装策略热控制效果的实验研究

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摘要

An evolution from traditional hydraulic, pneumatic and mechanic components into general electrical system in the airplane featuring an extensive usage of electro-mechanical actuator has been in the spotlight for the last decade. The widespread availability of such actuators which are commonly driven by permanent magnet synchronous motors will, on the one hand, enhance an overall operating economy, yet on the other hand, it will post a newly generated challenge for the current on-board thermal control system since a large amount of waste heat will produce accompanied with the operation of these motors. An ineffective heat rejection path will cause an overheating inside the motors which will lead to a permanent damage easily. It is intolerable for an air-oriented complexity where the reliability, longevity and robustness are the top three priorities. Based on the operating characteristics of the on-board motors, a novel phase change material based motor packaging technology exploiting its huge latent heat is proposed in this paper. Thermal experiments were conducted to analyse the superiority of the proposed strategy quantitatively compared with the conventional fin-based packaging scheme in both constant and intermittent heat generation modes. Systematic design criteria, optimization, performance prediction, etc. were attained via dimensionless studies that aims to acquire a high applicability for more extensive occasions, which is remarked by the discovery of two critical dimensionless factors. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在过去的十年中,从飞机的传统液压,气动和机械组件发展成为具有广泛使用机电致动器功能的通用电气系统已成为人们关注的焦点。通常由永磁同步电动机驱动的这种执行器的广泛使用,一方面将提高整体运行经济性,另一方面,它将对当前的车载热控制系统提出新的挑战。因为这些电动机的运行会产生大量的废热。无效的散热路径将导致电机内部过热,从而容易造成永久性损坏。对于以空气为导向的复杂性是无法忍受的,其中可靠性,寿命和坚固性是头三个要务。基于车载电动机的工作特性,提出了一种利用其潜热的新型相变材料电动机封装技术。进行热实验以定量分析所提出的策略在恒定和间歇生热模式下与传统的基于翅片的封装方案相比的优越性。通过无因次研究获得了系统的设计标准,优化,性能预测等,其目的是在更广泛的场合中获得较高的适用性,这主要是通过发现两个关键的无因次因素来体现的。 (C)2016 Elsevier Ltd.保留所有权利。

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