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首页> 外文期刊>Journal of Computational Physics >A new approach for conjugate heat transfer problems using immersed boundary method for curvilinear grid based solvers
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A new approach for conjugate heat transfer problems using immersed boundary method for curvilinear grid based solvers

机译:基于曲线网格求解器的浸入边界方法解决共轭传热问题的新方法

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摘要

Use of immersed boundary method (IBM) based techniques have helped considerably in easing the grid generation process in flows involving complex geometries and/or large boundary movements. Body fitting grid based techniques still, however, are advantageous in terms of accuracy and efficiency. In this work, we have developed an IBM scheme applicable to curvilinear coordinates, aiming at taking advantage of both the methodologies. The framework uses efficient algorithms for search, locate, and interpolate operations. A new method of implementing the conjugate heat transfer (CHT) boundary condition is proposed which is a direct extension of the method used for other boundary conditions and does not involve any complex interpolations like previous CHT implementations using IBM. The developed scheme is shown to be applicable to complex geometries on curvilinear grids, while also being very efficient, consuming less than 1% of the total simulation time per time-step. Very good scalability on massive computations is demonstrated using strong scaling study up to 1024 cores. Detailed code verification process is undertaken to show that the method is second-order accurate for both the velocity and temperature fields for all the boundary conditions considered. Further, validation studies involving uniform flow over stationary and oscillating cylinders are carried out to demonstrate the accuracy of the developed method. Lastly, simulations are performed to study flow and conjugate heat transfer through thick-walled micro-channels using body-fitted background grids and the results are shown to be in excellent agreement with previously published results.
机译:基于沉浸边界方法(IBM)的技术的使用大大简化了涉及复杂几何形状和/或大边界运动的流中的网格生成过程。然而,基于身体拟合网格的技术在准确性和效率方面仍然是有利的。在这项工作中,我们开发了一种适用于曲线坐标的IBM方案,旨在利用这两种方法。该框架使用高效的算法进行搜索,定位和内插操作。提出了一种实现共轭传热(CHT)边界条件的新方法,该方法是对用于其他边界条件的方法的直接扩展,并且不涉及任何复杂的插值,就像以前使用IBM的CHT实现一样。事实表明,所开发的方案适用于曲线网格上的复杂几何图形,同时效率很高,每个时间步消耗的总仿真时间不到1%。通过对多达1024个内核的强大扩展研究,证明了大规模计算具有非常好的可伸缩性。进行了详细的代码验证过程,以表明对于所考虑的所有边界条件,该方法对于速度场和温度场都是二阶准确的。此外,进行了涉及均匀流过固定缸和摆动缸的验证研究,以证明所开发方法的准确性。最后,进行了模拟,以使用适合人体的背景网格来研究通过厚壁微通道的流动和共轭传热,结果表明该结果与先前发表的结果非常吻合。

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