基于Couette-Taylor流的多缸热力发生器结构参数计算

N. Miskiv, A. D. Nazarov, A. Serov, V. N. Mamonov
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引用次数: 0

摘要

将风能直接转化为热能是替代热电工程发展的一个相关方向。本文考虑了一种高效的风热发生器,它由两个转子嵌套在彼此的环形间隙中,形成一个充满粘性工作流体的圆柱形同轴环形通道系统。根据工作流体的性质、转子的速度、环形通道的数量及其几何形状,可以组合参数进行热发生器的优化设计。所提出的同轴转子设计参数的选择方法,可以根据给定的热源功率和粘性工作流体的性质,直接选择转子的最佳设计方案。采用环形库埃特-泰勒流的热源多缸系统的设计以等效的单环形间隙的形式提出,这使得在不同条件下对不同工作流体进行的研究结果有可能以热源的无因次功率与雷诺数的单一依赖的形式进行推广。在实验研究的雷诺数范围内,用线性函数很好地逼近了所得到的依赖关系。提出了一种计算多圆柱环形系统几何设计参数的算法。以10 kW、20 kW和50 kW三种功率值的9种变型热发生器为例,计算了其结构尺寸。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Calculation of the structural parameters of a multi-cylinder thermal generator based on the Couette-Taylor flow
Direct conversion of wind energy into heat is a relevant direction for the development of alternative heat power engineering. The paper considers an efficient wind heat generator that consists of two rotors nested in each other's annular gaps and forming a system of cylindrical coaxial annular channels filled with a viscous working fluid. Depending on the properties of the working fluid, the velocity of the rotors, the number of annular channels and their geometry, there are combinations of parameters for the optimal design of the heat generator. The proposed method for selecting the design parameters of coaxial rotors makes it possible to directly select the optimal design of rotors for a given power of the heat generator and the properties of a viscous working fluid. The design of the multi-cylinder system of the heat generator, which uses the annular Couette–Taylor flow, is presented in the form of an equivalent single annular gap, which made it possible to generalize the results of investigations carried out with different working fluids under various conditions, in the form of a single dependence of the dimensionless power of the heat generator on the number Reynolds. The obtained dependence is well approximated by a linear function in the experimentally studied range of Reynolds numbers. An algorithm for calculating the geometric design parameters of a multi-cylinder annular system is proposed. As an example, calculations of the structural dimensions of nine variants of heat generators for three power values are given: 10 kW, 20 kW and 50 kW.
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