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Investigation of the effect of adding nano-encapsulated phase change material to water in natural convection inside a rectangular cavity

机译:将纳米封装相变材料在矩形腔内添加纳米封装相变材料与水中的效果

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摘要

The present simulation aims to investigate adding NEPCM nanoparticles to water in the natural convection inside a cavity by using FVM method and SIMPLE algorithm. Nano-encapsulated phase change material (NEPCM) consists of a shell and core with phase change property. The NEPCM particles in base fluid have the ability to transfer heat by absorbing and dissipating heat in the liquid-solid phase change state. In this study, the energy wall phenomenon due to the phase change of NEPCM core has appeared that the whose energy transfer strength is proportional to the latent heat of NEPCM core and the thickness of the energy wall. Moreover, the relationship between the energy wall and the heat transfer rate is payed attention, and the effects of the energy wall parameters including strength, thickness, and event location of energy wall and volume fraction are studied on the energy wall and heat transfer rate. According to the obtained results, adding NEPCM to the water enhances its heat transfer up to 48% in order to increase heat capacity of water-NEPCM mixture. Also, best heat transfer rate happens when the energy wall is at the center of the cavity. Moreover, a relation is presented for the thermal expansion coefficient of NEPCM, which considers the effects of the thermal expansion coefficient of the core and shell material.
机译:本仿真旨在通过使用FVM方法和简单算法研究在腔内的自然对流中添加Nepcm纳米粒子。纳米封装的相变材料(Nepcm)由具有相变性的壳体和核心组成。基础流体中的NEPCM颗粒具有通过在液固相变状态中吸收和散热的热量来传递热量的能力。在这项研究中,由于NEPCM核心的相变的能量壁现象表明,其能量传递强度与NEPCM芯的潜热和能量壁的厚度成比例。此外,在能量壁和传热速率上研究了能量壁和传热速率之间的关系,包括能量壁和体积分数的强度,厚度和事件位置的能量壁参数的影响。根据所得结果,将Nepcm添加到水中增强其热量转移至48%,以提高水 - Nepcm混合物的热量。此外,当能量壁位于腔的中心时,最好的传热速率发生。此外,呈现了Nepcm的热膨胀系数的关系,其考虑了芯和壳材料的热膨胀系数的影响。

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