Thermal convective transport energy and environmental applications for magnetised flow with parallel (non-parallel) walls movement simulation of staggered cavity
N. Kousar, S. Bilal, Nosheen Fatima, W. Jamshed, Mohamed R. Eid
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引用次数: 0
Abstract
The liquid suspension's staggered domains affect everyday life engineering. In this way, both parallel/anti-parallel movement of walls of staggered domains complicates formulation, making it difficult for researchers to detect liquid suspension flow field features. The current article is a key effort in this regard. The staggered cavity is equipped with liquid suspension. In a vertical path, a magnetic field is affected externally. To be more precise, we considered three cases for moving the top and bottom walls. In Case-I, just the top wall moves, while the other walls stay still. Case-II has parallel top and bottom walls. Case-III: anti-parallel wall movement. The left wall is chilly, the top wall is adiabatic, and the right side and bottom walls are heated consistently. The continuity, momentum, energy, and boundary constraints equations determine the physical configuration. Finite element analysis discretizes the governing equations. Every contour graphic show velocity, pressure, and temperature with an external magnetic field. Line graphs help describe velocity components. At a finer refinement level, all instances record kinetic energy versus magnetic field parameter and Reynolds number in tabular and bar graphs. Fluid flow length and velocity always decrease with magnetic field parameter. Kinetic energy is reduced with magnetic field intensity.
液体悬浮液的交错畴影响着日常生活工程。因此,交错畴壁的平行/反平行运动使配方变得复杂,导致研究人员难以检测液体悬浮流场特征。本文是这方面的一项重要工作。交错腔内装有液体悬浮液。在垂直路径上,磁场受到外部影响。更准确地说,我们考虑了移动顶壁和底壁的三种情况。在情况 I 中,只有顶壁移动,其他壁保持不动。情况 II:上下壁平行。情况 III:墙壁反平行移动。左侧墙壁是冷的,顶部墙壁是绝热的,而右侧墙壁和底部墙壁则持续受热。连续性、动量、能量和边界约束方程决定了物理配置。有限元分析法将控制方程离散化。每个等值线图都显示了速度、压力和温度与外部磁场的关系。折线图有助于描述速度分量。在更精细的层次上,所有实例都以表格和条形图的形式记录动能与磁场参数和雷诺数的关系。流体的流动长度和速度总是随磁场参数的变化而减小。动能随磁场强度降低。