class='kwd-title'>Method name: Coupling net-radi'/> Modeling and optimization method of an indirectly irradiated solar receiver
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Modeling and optimization method of an indirectly irradiated solar receiver

机译:间接辐射太阳能接收器的建模与优化方法

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摘要

class="kwd-title">Method name: Coupling net-radiation method using infinitesimals areas and CFD code an, Coupling of the Kriging surface response method and the MOGA class="kwd-title">Keywords: CSP, Air solar receiver, Net-radiation method, CFD modeling, Response Surface Method optimization, MOGA class="head no_bottom_margin" id="abs0010title">AbstractThis work presents the modeling and optimization of an indirectly irradiated solar receiver. A numerical model of the cavity-absorber block is put forward with the coupling of the net-radiation method using infinitesimal areas and a CFD code. An iterative method with a relaxation factor made it possible to obtain the temperature distribution and the developed code was implemented in the form of UDF and used as boundary conditions in the CFD model of the absorber to simulate the flow of air and heat transfer. The good ability of the receiver to transfer heat to the fluid is proved with a 92% thermal efficiency obtained. Then the combination of the Kriging surface response method and the MOGA allowed the mathematical optimization of the receiver. The multi-objective optimization made it possible to obtain 3 candidates giving the best combinations of design parameters from the fixed objectives.Three bullet points, highlighting the customization of the procedure. class="first-line-outdent" id="lis0005">
  • • A practical analysis using the net-radiation method using infinitesimal areas is applied for cavity radiative exchange model.
  • • The code developed for the cavity is implemented in the boundary conditions at the level of the ANSYS Fluent CFD model allowing the simulation of the conjugated transfers within the absorber.
  • • The optimization method proposed is the combination of the Kriging surface response method for quantitative and qualitative analysis of the design parameters and MOGA to obtain different combinations seeking to maximize or to minimize the chosen parameters.
  • 机译:<!-fig ft0-> <!-fig @ position =“ anchor” mode =文章f4-> <!-fig mode =“ anchred” f5-> <!-fig / graphic | fig / alternatives / graphic mode =“ anchored” m1-> class =“ kwd-title”>方法名称:使用无穷小区域和CFD代码耦合净辐射方法,耦合克里格表面响应方法和MOGA class =“ kwd-title”>关键字: CSP,空气太阳能接收器,净辐射方法,CFD建模,响应面方法优化,MOGA class =“ head no_bottom_margin” id =“摘要这项工作介绍了间接辐射太阳能接收器的建模和优化。利用无穷大面积和CFD代码,结合净辐射方法,提出了空腔吸收块的数值模型。带有松弛因子的迭代方法使得可以获得温度分布成为可能,并且所开发的代码以UDF的形式实现,并用作吸收器CFD模型中的边界条件,以模拟空气流动和热传递。接收器具有良好的将热量传递到流体的能力,并获得了92%的热效率。然后,将克里格表面响应方法和MOGA相结合,可以对接收器进行数学优化。多目标优化可以从固定目标中获得3个候选对象,这些候选对象可以提供最佳的设计参数组合。三个要点,突出了过程的定制。 class =“ first-line-outdent” id =“ lis0005 “> <!-list-behavior =简单的前缀-word = mark-type = none max-label-size = 9->
  • •使用无穷小值的使用净辐射方法的实用分析
  • •为腔体开发的代码在ANSYS Fluent CFD模型级别的边界条件下实现,从而可以模拟共轭传递
  • •提出的优化方法是将Kriging表面响应方法用于设计参数的定量和定性分析,并结合MOGA以获得试图最大化或最大化的不同组合。最小化所选参数。
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