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A direct heating immersed boundary-lattice Boltzmann method for thermal flows

机译:直接加热浸没边界格子玻尔兹曼法求解热流

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Purpose - The purpose of the current paper is to develop a numerical methodology, based on the immersed boundary-lattice Boltzmann computational framework, for the Neumann and Dirichlet boundary conditions in problems involving natural and forced convection heat transfer. Design/methodology/approach - The direct forcing immersed boundary method is extended to study the heat transfer by incompressible flow within the thermal lattice Boltzmann method (LBM) computational framework. The direct forcing and heating immersed boundary-LBM introduces a heat source term to the thermal LBM to account for the heat transfer occurring at the immersed boundary. New numerical treatments for the Neumann type of boundary condition and for the calculation of the local Nusselt number are developed. The developed methodologies have been applied to flows around immersed bodies with natural and forced convection, including steady as well as unsteady flows. Findings - Numerical experiments involving immersed bodies in natural and forced convection have been performed in order to assess the validity of the direct heating IB-LBM. The flow cases studied also include steady and transient flow phenomena. Flow velocity field and isotherms have been used for qualitative comparisons with existing, published results. The surface averaged Nusselt number, Strouhal number, and lift coefficient (for the unsteady flow cases) have been used for quantitative comparison with published results. The results show that there are satisfactory agreements, qualitatively and quantitatively, between the results obtained by using the present method and those previously published. Originality/value - Limited application of immersed boundary to thermal flows within the LBM has been studied by researchers; the few past studies were limited to Dirichlet boundary conditions and/or using of feedback forcing and heating approaches. In the current paper, the direct forcing and heating approach was used which helps to eliminate the arbitrary constants used in the feedback approaches. The developed new numerical treatments for the Neumann type of boundary condition and for the calculation of the local Nusselt number eliminate the need to determine surface normal and temperature gradient in the normal direction for heat transfer calculation, which is particularly beneficial in cases with deforming or changing boundaries.
机译:目的-本文的目的是在沉浸式边界格子Boltzmann计算框架的基础上,为涉及自然和强迫对流换热问题的Neumann和Dirichlet边界条件开发一种数值方法。设计/方法/方法-扩展了直接强迫沉浸边界方法,以研究热晶格Boltzmann方法(LBM)计算框架内不可压缩流的传热。直接强迫和加热浸入边界-LBM将热量源项引入热LBM,以说明在浸入边界处发生的热传递。开发了用于Neumann型边界条件和计算局部Nusselt数的新数值方法。已开发的方法已应用于具有自然对流和强制对流的沉没物体周围的流动,包括稳定流动和不稳定流动。研究结果-为了评估直接加热IB-LBM的有效性,已经进行了将物体浸入自然和强制对流的数值实验。研究的流动情况还包括稳态和瞬态流动现象。流速场和等温线已用于与现有已发表结果进行定性比较。表面平均Nusselt数,Strouhal数和升力系数(对于非恒定流动情况)已用于与已发表的结果进行定量比较。结果表明,使用本方法获得的结果与先前发表的结果在质量和数量上都具有令人满意的一致性。原创性/价值-研究人员研究了浸入边界在LBM内部热流中的有限应用;过去的一些研究仅限于Dirichlet边界条件和/或使用反馈强迫和加热方法。在当前的论文中,使用了直接强迫和加热方法,这有助于消除反馈方法中使用的任意常数。为Neumann类型的边界条件和局部Nusselt数的计算开发的新数值处理方法消除了确定表面法线和法向方向上的温度梯度以进行传热的需要,这在变形或改变的情况下特别有用边界。

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