首页> 外文期刊>Numerical Heat Transfer, Part A. Application: An International Journal of Computation and Methodology >LATTICE BOLTZMANN METHOD APPLIED TO THE SOLUTION OF ENERGY EQUATION OF A RADIATION AND NON-FOURIER HEAT CONDUCTION PROBLEM
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LATTICE BOLTZMANN METHOD APPLIED TO THE SOLUTION OF ENERGY EQUATION OF A RADIATION AND NON-FOURIER HEAT CONDUCTION PROBLEM

机译:格子Boltzmann方法应用于辐射和非傅里叶热传导问题的能量方程解

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This article concerns the application of the lattice Boltzmann method (LBM) to solve the energy equation of a combined radiation and non-Fourier conduction heat transfer problem. The finite propagation speed of the thermal wave front is accounted by non-Fourier heat conduction equation. The governing energy equation is solved using the LBM. The finite-volume method (FVM) is used to compute the radiative information. The formulation is validated by taking test cases in 1-D planar absorbing, emitting, and scattering medium whose west boundary experiences a sudden rise in temperature, or, with adiabatic boundaries, the medium is subjected to a sudden localized energy source. Results are analyzed for the various values of parameters like the extinction coefficient, the scattering albedo, the conduction-radiation parameter, etc., on temperature distributions in the medium. Radiation has been found to help in facilitating faster distribution of energy in the medium. Unlike Fourier conduction, wave fronts have been found to reflect from the boundaries. The LBM-FVM combination has been found to provide accurate results.
机译:本文涉及晶格玻尔兹曼方法(LBM)在求解辐射与非傅里叶热传导耦合问题的能量方程中的应用。热波阵面的有限传播速度由非傅立叶热传导方程解释。使用LBM求解控制能量方程。有限体积法(FVM)用于计算辐射信息。通过对一维平面吸收,发射和散射介质中的测试案例进行验证,该介质的西边界经历了温度的突然升高,或者在具有绝热边界的条件下,该介质经受了突然的局部能源。分析介质中温度分布的各种参数值(例如消光系数,散射反照率,传导辐射参数等)的结果。已发现辐射有助于促进介质中能量的更快分配。与傅立叶传导不同,已发现波前会从边界反射。已发现LBM-FVM组合可提供准确的结果。

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