粘性杰弗里流体流动力学 通过达尔西安介质流动,具有霍尔电流和二次浮力
Mojeed T Akolade1,2, Samson A Agunbiade3, Timothy L Oyekunle2
1Department of Computer Science, Lead City University, Ibadan, Nigeria.
Electrophoresis
|November 11, 2024
概括
霍尔电流在杰弗里流体流中与热辐射和焦尔加热增强了流体运动,但影响了热模式. 较高的放松时间减少了摩擦和传热率.
科学领域:
- 流体动力学 流体动力学
- 热传递是一种热传递.
- 磁动力学是一种磁动力学.
背景情况:
- 霍尔电流在具有磁场的工程应用中至关重要,它会影响流量和热传输.
- 杰弗里流体动力学是复杂的,特别是在各种热和电磁条件下的多孔介质中.
研究的目的:
- 为了研究杰弗里流体流动中的霍尔电流动力学,考虑到辐射热,朱尔加热和达西散热.
- 分析这些因素对流体运动,热传递和剪切应力的影响.
主要方法:
- 支配部分微分方程的衍生和减少到普通微分方程使用相似性变量.
- 应用了加勒金加权余量方法 (GWRM) 来分析霍尔电流和热浮力动态.
主要成果:
- 使用霍尔电流的应用磁场增强了流体运动,但却对热能模式产生了负面影响.
- 分散热和热辐射,以及霍尔电流和焦尔加热,可以优化热传递和剪切应力.
- 较高的杰弗里流体放松时间导致较低的摩擦系数和传热率.
结论:
- 霍尔电流和相关现象显著影响在多孔介质中杰弗里流体的水力动力学和热特性.
- 控制放松时间,辐射和散射等参数为优化传热和流体行为提供了一种手段.
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