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A review of enhancing micro combustion to improve energy conversion performance in micro power system

机译:增强微燃烧提高微功率系统能量转换性能的研究进展

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摘要

With the development of microfabrication technology and micro devices, the demand for Power Micro Electro Mechanical System (Power MEMS) is ever-increasing. However, traditional chemical batteries are not suitable for Power MEMS due to their low energy density. The combustion of hydrogen and hydrocarbon fuels offers a more promising alternative to conventional batteries. However, micro combustion faces the problems of flame instability and low combustion efficiency. Therefore, improving flame stabilization and combustion efficiency in micro combustions is necessary. Studies have made considerable progress in these aspects over the last decade. This paper summarized these studies and classified the optimization schemes according to flame stabilization and combustion efficiency. Besides, research on the Field Synergy Principle was discussed. The synergy between the flow field and temperature gradient field in the micro-scale domain will become a key research area in the future. It is proposed to insert porous media in MTES and MTPVS and adopt catalytic combustion. Adding hydrogen to the mixed gas was recommended. The equivalence ratio of the mixed gas in the range of 0.9-1.1 would be best. The equivalence ratio is the ratio of the theoretical requirement of air with complete combustion to the actual supply of air.
机译:随着微细加工技术和微器件的发展,对功率微机电系统(Power MEMS)的需求不断增加。然而,传统的化学电池由于能量密度低,不适合用于功率MEMS。氢和碳氢化合物燃料的燃烧为传统电池提供了一种更有前途的替代品。然而,微燃烧面临火焰不稳定和燃烧效率低下的问题。因此,提高微燃烧中的火焰稳定性和燃烧效率是必要的。在过去十年中,研究在这些方面取得了相当大的进展。本文总结了这些研究,并根据火焰稳定和燃烧效率对优化方案进行了分类。此外,还讨论了场协同原理的研究。微尺度域的流场与温度梯度场的协同作用将成为未来重点研究领域。建议在MTES和MTPVS中插入多孔介质,并采用催化燃烧。建议在混合气体中加入氢气。混合气体的当量比在0.9-1.1范围内是最好的。当量比是完全燃烧的空气的理论需求量与实际空气供应量之比。

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