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A model for the transient performance simulation of solar cavity receivers

机译:太阳腔接收器瞬态性能仿真模型

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In this paper, a detailed model for the transient simulation of solar cavity receivers for concentrating solar power plants is presented. The proposed model aims to consider all the major phenomena influencing the performance of a cavity receiver, including radiation, convection and conduction heat transfer mechanisms. For the radiation heat exchange within the cavity, the radiosity method is implemented, where the view factor calculation for all the active and passive surfaces is performed by a ray tracing algorithm programmed in a free software environment for statistical computing, namely R. A one-dimensional modeling approach is used for the tubes constituting the receiver active panels, through which the heat transfer fluid (HTF) is pumped. The governing partial differential equations are solved numerically by applying the finite volume method. Convective heat losses are modeled through different correlations for natural and forced convection heat losses from the specific literature. Once the thermal behavior has been characterized, the geometry of the model is later fixed to check the consistency of the model and to study its dynamic characteristics. A specific 51.6 MWth, PS10 like receiver is used in this paper, although the implemented model has the flexibility to allow a variable number of panels and geometric configurations. At last, an adaptive neural controller, designed and trained offline, controls the outlet temperature of the molten salts to the desired operating value. Results for transient simulations are shown in the paper, demonstrating the plausibility of the estimations obtained with the developed model. The proposed model has been implemented in the Modelica language and based on the Modelica Standard Library (MSL) modeling approach. (C) 2014 Elsevier Ltd. All rights reserved.
机译:在本文中,提出了用于集中式太阳能发电厂的太阳腔接收器的瞬态仿真的详细模型。提出的模型旨在考虑影响腔接收器性能的所有主要现象,包括辐射,对流和传导热传递机制。对于空腔内的辐射热交换,采用光能传递方法,其中所有主动和被动表面的视场因子计算都是通过在自由软件环境中编程用于统计计算的射线跟踪算法(即R)进行的。三维建模方法用于构成接收器活动面板的管道,通过该管道泵送传热流体(HTF)。通过应用有限体积法对控制的偏微分方程进行数值求解。对流热损失通过特定文献中自然对流和强制对流热损失的不同相关性进行建模。一旦确定了热行为,就可以固定模型的几何形状,以检查模型的一致性并研究其动态特性。尽管所实现的模型具有灵活性,允许可变数量的面板和几何配置,但本文使用的是特定的51.6 MWth PS10接收器。最后,离线设计和培训的自适应神经控制器将熔融盐的出口温度控制到所需的操作值。本文显示了瞬态仿真的结果,证明了通过开发的模型获得的估计值的合理性。所提出的模型已以Modelica语言实现,并基于Modelica标准库(MSL)建模方法。 (C)2014 Elsevier Ltd.保留所有权利。

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