平板微热管相变蓄热/释热装置的传热性能研究

Peiqin Dong , Gang Wang , Wan Yu , Erwei Liu , Yu Han
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引用次数: 0

摘要

在低碳/零碳能源领域,结合相变存储和释放技术的船舶储能系统具有重要意义。利用扁平微热管作为主要传热元件,促使我们为储热装置开发测试平台和瞬态传热模型。这是为了应对当前储热技术中存在的挑战,如结构单一、温度均匀性差和热效率低等。研究深入探讨了不同温度和导热液体流速对蓄热装置整体性能和传热效率的影响。研究结果表明,与单平面微热管结构的蓄热装置相比,交错双板微热管结构可将总蓄热量提高 11%,平均蓄热功率提高 19%,蓄热效率提高 21%。由此可见,采用交错双热管结构的蓄热装置要优于同类产品。此外,温度和流速对相变材料的传热性能起着关键作用。随着导热流体与相变材料之间的温差增大,相变速率和等效努塞尔特数也随之升高,这为研究相变材料在不同相变阶段的传热特性提供了重要依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation on heat transfer performance of flat plate micro-heat pipe phase change heat storage/release device

In the domains of low/zero carbon energy, the ship energy storage system, coupled with phase-change storage and release technology, holds significant importance. The utilization of a flat micro-heat pipe as the primary heat transfer element prompts the development of a test platform and a transient heat transfer model for the heat storage device. This is in response to existing challenges such as a single structure, poor temperature uniformity, and low thermal efficiency in current heat storage technology. The study delves into the impact of varying temperatures and flow rates of heat transfer fluids on the overall performance of heat storage devices and heat transfer efficiency. The findings highlight that the staggered double plate micro-heat pipe structure can enhance total heat storage by 11%, average heat storage power by 19%, and heat storage efficiency by 21% compared to the heat storage device with a single flat micro-heat pipe structure. It becomes evident that the heat storage device with the staggered double heat pipe structure outperforms its counterpart. Additionally, Temperature and flow velocity play pivotal roles in determining the heat transfer performance of phase change materials. As the temperature difference between the heat transfer fluid and the phase change material increases, both the phase transition rate and the equivalent Nusselt number also rise, providing a crucial foundation for examining the heat transfer characteristics of phase change materials during different stages of phase transition.

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