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分析研究的双扩散对流在一个长方形的外,由多孔层与热辐射限制的矩形外
D R Sasi Rekha1, Veena Jawali2, Mansoor Alshehri3
1Department of Mathematics, Dayananda Sagar College of Engineering, Bangalore, 560078, India.
Scientific reports
|July 24, 2024
概括
这项研究分析了多孔介质中的自然对流,发现增加的滑动和辐射增强了热量和质量转移. 更高的雷利数和滑动参数最大限度地提高了热量和质量传输速率.
科学领域:
- 热量和质量转移是热量和质量转移.
- 流体动力学 流体动力学
- 孔隙介质的对流对流是指孔隙介质的对流.
背景情况:
- 自然对流控制了边界层的热量和质量转移.
- 在热交换器和电子冷却等应用中,有孔的外和热辐射至关重要.
- 贝弗斯和约瑟夫条件模型在多孔介质中的流体界面相互作用.
研究的目的:
- 为了分析研究热量和质量转移在自然对流的矩形外中.
- 检查滑动,热辐射和浮力比对对流热和质量转移的影响.
- 为了确定最大化热量和质量转移速率的条件.
主要方法:
- 使用Oseen线性解决方案进行分析研究.
- 在多孔流体界面应用Beavers和Joseph条件.
- 在不同的滑动,辐射和雷利参数下分析热量和质量转移速率.
主要成果:
- 增加的滑动和辐射参数可以提高流速和热量/质量传输,因为表面摩擦减少,速度增加.
- 随着滑动和辐射的增加,温度和度迅速下降.
- 随着辐射,雷利和滑动参数的升高,可以达到最大的努塞尔特和谢尔伍德数.
结论:
- 滑动和辐射显著增强孔隙体中的对流热和质量转移.
- 最佳的热量和质量转移与特定的滑动条件,辐射和雷利号有关.
- 该研究提供了对利用多孔材料和辐射的系统中优化热管理的见解.
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