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Modelling of Heat Transfer in a Trapezoidal Cavity Receiver for a Linear Fresnel Solar Collector with Fixed / Narrow Reflectors

机译:具有固定/窄反射器的线性菲涅耳太阳能收集器的梯形腔接收器中传热建模

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In this research, the optical and thermal behavior of a Compact Linear Fresnel Receiver is studied with the aid of Computational Fluid Dynamics (CFD) and ray tracing methods respectively. This study aims at developing a new type of Linear Fresnel Collector (LFC) with azimuth angle tracking system. The optical analysis is performed using TracePro, a mature ray-tracing tool, in which the optical performance of the reflectors and receiver are simulated in order to obtain the optimum geometry along with the heat flux distribution on the receiver surfaces. The result of the optical analysis is used as a boundary condition for CFD modeling where the receiver located in the air stream is modeled in ANSYS Fluent. The main objectives of the thermal analysis are, firstly, to study the heat loss rate from the receiver at different absorber temperatures, and secondly, to determine the stagnation temperature under no-flow condition as an important factor contributed to thermal expansion and durability of the materials used. Further optimization is performed through examining the impact of the inner pressure and type of the gas content including air, argon and nitrogen over stratification and heat dissipation mechanism. The results indicate that a wellstablished stratification is achievable even in the atmospheric air-filled cavity. Once the conductive and convective losses are efficiently suppressed in a well-insulated receiver with a proper inner stratification state, the radiative part becomes dominant by allocating 82% of the overall heat loss. This study highlights the importance of reducing the long-wave radiative losses from the receiver to the surrounding to achieve high performance.
机译:在这项研究中,压缩线性菲涅耳接收机的光学和热行为研究了计算流体动力学(CFD)和分别射线追踪方法的帮助。这项研究的目的是发展与方位角跟踪系统的新型线性菲涅尔收集器(LFC)的。使用TracePro中,成熟的射线追踪工具,其中,所述反射器和接收器的光学性能进行仿真,以获得最佳的几何形状与所述接收器表面上的热通量分布沿着进行光学分析。所述光学分析的结果被用作其中位于空气流中的接收器在ANSYS流利被建模为CFD模拟的边界条件。热分析的主要目的是,首先,以研究从接收器以不同的吸收器温度下的热损失率,其次,以确定无流动条件下停滞温度是一个重要的因素促成的热膨胀性和耐久性使用的材料。进一步的优化是通过检查气体含量包括空气,氩气和氮气在分层和散热机构的内部压力和类型的影响来执行。结果表明,一个wellstablished分层是可实现的,即使在大气中填充的空腔。一旦传导和对流损失在一个绝缘良好的接收器有效地抑制用适当的内分层状态下,辐射部分成为通过分配的总的热损失的82%占主导地位。这项研究强调减少的重要性长波从接收器辐射损失到周围实现高性能。

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