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Experimental and Numerical Study on the Thermal Performance of a Water/Steam Cavity Receiver

机译:水/蒸汽腔接收器热性能的实验和数值研究

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An experimental platform was designed and built for testing the thermal performance of a water/steam cavity receiver. The experimental platform was utilized to investigate the start-up performance and operation characteristics of the receiver. The electrical heating mode was chosen to simulate the non-uniform distribution of heat flux on the surface of absorber tubes inside the cavity. During start-up the temperature rise rate and the mass flow rate are considered as control variables. A couple of start-up curves under different working pressures were finally obtained. The results showed that the receiver performed at relatively low thermal efficiencies. The main reason for the low thermal efficiency was attributed to the low steam mass flow rate, which causes a high proportional heat loss. In order to study the relationship between thermal efficiency and mass flow rate, a computational model for evaluating the thermal performance of a cavity receiver was built and verified. This model couples three aspects of heat transfer: the radiative heat transfer inside the receiver, the flow boiling heat transfer inside the absorber tubes and the convection heat transfer around the receiver. The water/steam cavity receiver of the experimental platform was studied numerically. The curve of thermal efficiency versus mass flow rate was obtained to show that the thermal efficiency increases with increasing mass flow rate within a certain range, and the increase is more remarkable at low mass flow rates. The purpose of the present study was to determine an appropriate mass flow rate for the receiver of the experimental platform to ensure its efficient operation.
机译:设计并构建了一个用于测试水/蒸汽腔接收器的热性能的实验平台。实验平台被用来研究接收器的启动性能和操作特性。选择电加热模式以模拟腔体内吸收器管表面上的热通量的不均匀分布。在启动期间,将温度上升速率和质量流量视为控制变量。最终获得了在不同工作压力下的两条启动曲线。结果表明,接收器的工作效率相对较低。热效率低的主要原因是蒸汽质量流量低,导致比例热损失高。为了研究热效率与质量流量之间的关系,建立并验证了用于评估腔体接收器热性能的计算模型。该模型耦合了热传递的三个方面:接收器内部的辐射热传递,吸收器管内部的流动沸腾热传递以及接收器周围的对流热传递。对实验平台的水/气腔接收器进行了数值研究。获得了热效率对质量流量的曲线,表明在一定范围内,热效率随质量流量的增加而增加,而在低质量流量下,热效率的增加更为明显。本研究的目的是为实验平台的接收器确定合适的质量流量,以确保其有效运行。

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