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Verification of the Numerical Algorithm for Parameter Analysis of the Tube Heat Receiver of the Solar Parabolic TVough System

机译:验证太阳抛抛抛抛抛光技术的管热接收机参数分析数值算法

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This paper presents the results of the first stage of verification of the generalized computational algorithm for determining the geometrical, dynamical, and energy parameters of the “parabolic trough concentrator – tube heat receiver” solar receiver system. This algorithm is based on the dimensionless coupled mathematical model of heat and mass exchange in the “Sun – parabolic trough concentrator – tube receiver” system. The Monte Carlo ray tracing method was used to calculate irregular heat flux from the concentrator to the tube receiver surface. The 3D mathematical model of heat exchange in the tube receiver was solved using the finite volume method. The mathematical model took local climatic and geographical features into account, as well as micro- and macroscopic imperfections of the concentrator surface. The dimensional problem of heat exchange in the tube receiver of the solar parabolic trough system was solved at the first stage of verification. A simplified physical model was described. It was assumed that the glass envelope around the tube receiver was removed. The dimensional mathematical model of heat exchange in the tube receiver is based on the system of Navier–Stokes equations for viscous incompressible liquid with constant physical properties. The mathematical model with real boundary conditions was solved numerically. An analytical solution for the test problem with trivial boundary conditions was obtained. The results of the test numerical problem were compared with analytical solution results and were found to be in close agreement. Numerical experiments with real boundary conditions were conducted using the computational algorithm. The numerical data were compared with the results of field experimental studies and showed nearly total agreement, which proved the adequacy of the basic mathematical model and the resulting numerical algorithm.
机译:本文介绍了用于确定“抛物面槽浓缩器 - 管热接收机”太阳能接收机系统的几何,动态和能量参数的广义计算算法验证第一阶段的结果。该算法基于“太阳抛物线槽浓缩器 - 管接收机”系统中的热量和质量交换的无量纲耦合数学模型。 Monte Carlo Ray跟踪方法用于将来自聚光器的不规则热通量计算为管接收器表面。使用有限体积法解决了管接收器中的热交换的3D数学模型。数学模型考虑了本地气候和地理特征,以及聚光器表面的微观和宏观缺陷。在验证的第一阶段解决了太阳抛抛槽系统的管接收机中的热交换的尺寸问题。描述了一种简化的物理模型。假设围绕管接收器的玻璃包络被移除。管接收器中热交换的尺寸数学模型基于具有恒定物理性质的粘性不可压缩液体的Navier-Stokes方程的系统。具有实际边界条件的数学模型在数值上进行了解决。获得了对微界条件的测试问题的分析解决方案。将测试数值问题的结果与分析解决方案结果进行比较,并被发现密切一致。使用计算算法进行实际边界条件的数值实验。将数值数据与现场实验研究的结果进行了比较,并显示了几乎完全一致,证明了基本数学模型和所得数值算法的充分性。

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