...
首页> 外文期刊>Energy Conversion & Management >Nanofluid based photovoltaic thermal systems integrated with phase change materials: Numerical simulation and thermodynamic analysis
【24h】

Nanofluid based photovoltaic thermal systems integrated with phase change materials: Numerical simulation and thermodynamic analysis

机译:基于纳米流体的光伏热系统与相变材料集成:数值模拟和热力学分析

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

In the current research, a three-dimensional photovoltaic thermal system integrated with phase change material system with nanofluids is investigated. The working fluids involved in this study include nano-magnesium oxide, multiwall carbon nano tube and hybrid (mixture of nano-magnesium oxide and nano-multiwall carbon nano tube) nanofluids dispersed in pure water. After comparing single-phase model and mixture model, the mixture model is used in the study and fluid flow regime in the collector is assumed to be laminar, fully develop, uniform and incompressible, to model the nanofluid in the system. A parametric analysis is conducted to examine the effect of various parameters such as working fluid type, mass fraction of nanofluid and phase change layer thickness on thermal and electrical performance of system. Moreover, the temperature distribution of phase change in the system for different sections is investigated. According to the results, the surface temperature of the system with multiwall carbon nanofluid only reduces by 0.3 degrees C, with an increase in a mass fraction from 3% to 6%. Moreover, multiwall carbon nanofluid has the highest overall energy efficiency, and magnesium oxide nanofluid has the lowest overall energy efficiency. For the mass fraction of 6% wt, the overall energy efficiency of system with working fluids of water, magnesium oxide nanofluid, multiwall carbon nanofluid, and hybrid nanofluid is 55.24%, 60.08%, 61.07%, and 60.66%, respectively. In addition, it is observed that by increasing phase change layer thickness, both outflow and surface temperature of the system reduce.
机译:在目前的研究中,研究了一种与纳米流体的相变材料系统一体化的三维光伏热系统。涉及该研究的工作流体包括纳米氧化镁,多壁碳纳米管和杂种(纳米镁氧化物和纳米多壁碳纳米管的混合物)纳米流体分散在纯水中。在比较单相模型和混合模型之后,混合物模型用于研究中的研究和集电器中的流体流动状态被假定为层状,完全发育,均匀和不可压缩,以模拟系统中的纳米流体。进行参数分析以检查各种参数,例如工作流体型,纳米流体和相变层厚度的各种参数对系统的热和电性能的影响。此外,研究了对不同部分的系统中相变的温度分布。根据结果​​,具有多壁碳纳米流体的系统的表面温度仅减少0.3℃,质量分数增加3%至6%。此外,多壁碳纳米流体具有最高的总能效,氧化镁纳米流体具有最低的总能效。对于6%WT的质量分数,水,氧化镁纳米流体,多壁碳纳米流体和杂交纳米流体的整体能量效率分别为55.24%,60.08%,61.07%和60.66%。另外,观察到通过增加相变层厚度,系统的流出和表面温度减少。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号