Cylindrical body temperature field simulation which made in the transitional thermal process conditions out of polymer material

L. Petrova, T. Gavrilova
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Abstract

The advancing requirements for strength, relaxation, thermophysical, electrical, and other structural elements characteristics actualizes the polymer composite material use for the soft part and node point manufacture, which improves performance index. This paper reported the need to take into account relaxation phenomena in predicting the body’s thermal field development that is made of polymeric materials, and the thermal relaxation time and the thermal damping time proportional to the duration of transient thermal process certain periods. In this article three-period thermal process in a cylindrical body mathematical model is presented. cylindrical body made of a low-heat-conducting material by using a heat conduction hyperbolic equation that is reflecting the heat flow relaxation and thermal damping phenomenon. A numerical solution to the problem of unsteady heat conduction in a circular disk for a two-phase delay equation is presented, which is based on the grid method implementation by using a three-layer implicit difference scheme and the finite difference method use. Calculation formulas for the run-through coefficients as well as the temperature values at the outer boundaries are concluded using the boundary conditions approximation for the intermediate and upper time layers, taking into account the multi-period of the process. The implementation of the modified run-through method when solving the non-stationary heat conduction problem in a cylindrical body, taking into account the finite heat propagation speed and thermal damping is described. The calculation results for the cylindrical body temperature field are obtained by using the polymethyl methacrylate example upon sudden heating based on a model with a two-phase delay. The results presented in this paper aid in an increase in predicting temperature field accuracy in polymer composite materials in the transient thermal processes study.
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对高分子材料在过渡热过程条件下的圆柱体温度场进行了模拟
对强度、弛豫、热物理、电学等结构元件特性的要求不断提高,实现了聚合物复合材料在软件和节点制造中的应用,提高了性能指标。本文报道了在预测高分子材料体的热场发展时需要考虑弛豫现象,以及热弛豫时间和热阻尼时间与瞬态热过程的持续时间成正比。本文建立了圆柱体三周期热过程的数学模型。采用导热双曲方程对低导热材料制成的圆柱体进行热传导,反映热流松弛和热阻尼现象。采用三层隐式差分格式和有限差分方法实现网格法,对两相延迟方程的非定常圆盘热传导问题进行了数值求解。考虑到过程的多周期性,采用中间和上层时间层的边界条件近似,得出了贯穿系数和外边界温度值的计算公式。描述了考虑有限热传播速度和热阻尼的圆柱体非定常热传导问题的改进穿越法的实现。基于两相延迟模型,以聚甲基丙烯酸甲酯为例,得到了突然加热时圆柱体温度场的计算结果。本文的研究结果有助于提高聚合物复合材料在瞬态热过程研究中的温度场预测精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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