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Thermal performance of a solar volumetric receiver using the two-energy equation model and radiation boundary condition

机译:利用双能方程模型和辐射边界条件的太阳能体积接收器的热性能

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This work presents numerical results for the thermal performance of a Solar Volumetric Receiver (SVR). The Thermal Non-Equilibrium Model and Rosseland approximation were used. Radiation boundary condition was implemented at the absorber inlet. The numerical technique employed for discretizing the governing equations was the control volume method with a boundary-fitted non-orthogonal coordinate system. The SIMPLE algorithm was used to handle the pressure-velocity coupling. Effects of inlet velocity (u(in)), porosity (phi), medium permeability (K), and thermal conductivity ratio (k(s)/k(f)) on the solid and fluid temperatures were investigated. Reduction of temperatures as porosity increases or thermal conductivity decreases was observed, in addition to an increase in entry length for lower porosities or higher thermal conductivity ratios. Increase in inlet solid temperature as permeability increases was accompanied by a longer entry length and reduced final equilibrium temperature.
机译:这项工作提出了太阳能容积接收器(SVR)的热性能的数值结果。使用了热非平衡模型和Rosseland近似。在吸收器入口处实施了辐射边界条件。用于离散控制方程的数值技术是带有边界拟合的非正交坐标系的控制体积方法。 SIMPLE算法用于处理压力-速度耦合。研究了入口速度(u(in)),孔隙率(phi),介质渗透率(K)和导热系数(k(s)/ k(f))对固体和流体温度的影响。观察到随着孔隙率增加或导热率降低,温度降低,此外对于较低的孔隙率或较高的导热率,入口长度增加。入口固体温度随着渗透率的增加而增加,伴随着更长的入口长度和降低的最终平衡温度。

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