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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Time and spatial heat transfer performance around an isothermally heated sphere placed in a uniform, downwardly directed flow (in relation to the enhancement of latent heat storage rate in a spherical capsule)
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Time and spatial heat transfer performance around an isothermally heated sphere placed in a uniform, downwardly directed flow (in relation to the enhancement of latent heat storage rate in a spherical capsule)

机译:围绕均匀加热,向下流动的等温加热球体周围的时间和空间传热性能(与球形胶囊中潜热存储率的提高有关)

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The aim of this study is to reveal the temporal and spatial heat transfer performance of an isothermally heated sphere placed in a uniform, downwardly directed flow using a micro-foil heat flow sensor (HFS). A HFS, whose response time is about 0.02 s, was pasted on the surface of a heated copper sphere. Experiments were carried out using air with a Grashof number of 3.3 × 10{sup}5 and with several Reynolds numbers (Re) up to 1800. Three flow patterns appeared: a chaotic flow at Re < 240; a two-dimensional steady separated flow at 240 ≤ Re < 500, and a three-dimensional unsteady separated flow at Re ≥ 500. In addition, the instantaneous and time-averaged heat transfer performance around the sphere in each of the three regions was clarified. Next, enhancement of the latent heat storage rate of a solid phase change material (PCM) in a spherical capsule was performed. The flow around the spherical capsule, in which the solid PCM was filled and placed in a heated, upwardly directed flow, is the approximate adverse flow phenomenon around the heated sphere which was placed in a downwardly directed flow. In other words, the buoyant flow and the forced flow are in the opposite directions in these two cases. Tests of latent heat storage were run for two Reynolds numbers which represented different flow characteristics in the heat transfer experiments, Re = 150 and 1800, Furthermore, copper plates were inserted into the solid PCM, of which thermal conductivity was considerably low, to enhance the latent heat storage rate fop the two Reynolds number flows.
机译:这项研究的目的是揭示使用微箔热流传感器(HFS)将均匀加热的等温加热球体的时空传热性能。将其响应时间约为0.02 s的HFS粘贴在加热的铜球表面上。实验使用的空气的Grashof值为3.3×10 {sup} 5,雷诺数(Re)最高为1800。出现了三种流动模式:Re <240时的混沌流; Re≤240时的混沌流。在240≤Re <500时二维稳定的分离流,在Re≥500时三维不稳定的分离流。此外,三个区域中每个区域在球体周围的瞬时和时间平均传热性能都得到了阐明。接下来,提高了球形胶囊中的固相变化材料(PCM)的潜热储存率。球形胶囊周围的流动是固体PCM填充并放置在加热的,向上指向的流中,是围绕加热的球形的近似不利的流动现象,加热的球形放置在向下的流中。换句话说,在这两种情况下,浮力流和强制流的方向相反。对传热实验中代表不同流动特性的两个雷诺数进行了潜热存储测试,Re = 150和1800。此外,将铜板插入了导热率很低的固态PCM中,以提高潜在的储热率随两个雷诺数流的关系而变化。

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