Design and Operation of a Cost-Effective Cooling Chamber for Testing Power Electronics at Cryogenic Temperatures

IF 1.6 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Instrumentation & Measurement Magazine Pub Date : 2023-05-01 DOI:10.1109/MIM.2023.10121411
Stefan Büttner, Julian Windisch, M. März
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Abstract

In recent decades, research in the field of cryogenic power electronics has gained increasing interest, as it promises advantages such as higher power density and higher efficiency. Particularly in the mobility sector, lower weight and smaller size are essential to advance electrification [1]. Another incentive and benefit of lower power losses is the reduction in operating costs. However, the study in [2] has shown that energetic profitability of low-temperature cooling is achieved, in particular, in applications where the necessary cooling for the power electronics is available for free and synergy effects can be realized within the overall system. Interesting areas of application are, therefore, in the field of aviation, where the cold ambient temperature of -55 °C is available, and in the mobility sector. Cryogenically stored fuels such as liquid hydrogen (LH2) or liquid natural gas (LNG) must be heated before they can be used, for example LH2 for application in a fuel cell, for which the power losses generated in a power electronic converter can be used perfectly. This saves energy for extra heaters and increases the efficiency of the power electronics [2]. One challenge when operating power electronics at temperatures below -40 °C is that most electronic components are not specified from the manufacturer for these temperatures. Therefore, a comprehensive characterization of all required electronic components for a deep temperature operation is essential, for which a suitable environment—a cryogenic cooling system—with variably adjustable ambient temperature is required.
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用于在低温下测试电力电子设备的经济高效冷却室的设计和运行
近几十年来,低温电力电子领域的研究越来越受到人们的关注,因为它具有更高的功率密度和更高的效率等优点。特别是在移动领域,较轻的重量和较小的尺寸对推进电气化至关重要[1]。降低电力损耗的另一个激励和好处是降低运营成本。然而,[2]中的研究表明,低温冷却可以实现高能盈利,特别是在电力电子设备的必要冷却可以免费使用的应用中,并且可以在整个系统中实现协同效应。因此,有趣的应用领域是航空领域和移动领域,航空领域的冷环境温度为-55°C。低温储存的燃料,如液氢(LH2)或液态天然气(LNG),在使用之前必须加热,例如用于燃料电池的LH2,功率电子转换器中产生的功率损耗可以完美地用于燃料电池。这为额外的加热器节省了能量,并提高了电力电子设备的效率[2]。在低于-40°C的温度下操作电力电子设备时,一个挑战是大多数电子元件没有从制造商那里指定用于这些温度。因此,对深温操作所需的所有电子部件进行全面表征是至关重要的,为此,需要一个具有可变可调环境温度的合适环境——低温冷却系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
IEEE Instrumentation & Measurement Magazine
IEEE Instrumentation & Measurement Magazine 工程技术-工程:电子与电气
CiteScore
4.20
自引率
4.80%
发文量
147
审稿时长
>12 weeks
期刊介绍: IEEE Instrumentation & Measurement Magazine is a bimonthly publication. It publishes in February, April, June, August, October, and December of each year. The magazine covers a wide variety of topics in instrumentation, measurement, and systems that measure or instrument equipment or other systems. The magazine has the goal of providing readable introductions and overviews of technology in instrumentation and measurement to a wide engineering audience. It does this through articles, tutorials, columns, and departments. Its goal is to cross disciplines to encourage further research and development in instrumentation and measurement.
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