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A systematic parametric thermal analysis of nanofluid-based parabolic trough solar collectors

机译:基于纳米流体抛物线槽太阳能收集器的系统参数热分析

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摘要

The objective of this work is to investigate the thermal enhancement margin with the implementation of (Syltherm 800/Cu) nanofluid in parabolic trough collectors in a systematic way. Three different collector kinds are studied; the evacuated tube receiver, the non-evacuated tube receiver and the bare tube without cover. The study is a systematic parametric investigation for different values of the following parameters: ambient temperature, solar irradiation, solar angle, wind speed, flow rate, inlet temperature, absorber emittance and nanoparticle concentration. Moreover, this study is performed by developing a mathematical model in Engineering Equation Solver which is validated with literature experimental data. The results indicate that the maximum enhancements are found for the cases with higher thermal losses and also the use of nanofluids enhances most of the performance in the bare tube. The maximum enhancements are found in small flow rates and for the cases with higher emittance. The maximum enhancement was found at 7.16% for the bare tube, 4.87% for the nonevacuated receiver and 4.06% for the evacuated receiver when the flow rate is 25 L/min and there is a cermet coating. The respective enhancement values are 17.11%, 12.30% and 12.24% for 25 L/min and for a nonselective absorber.
机译:这项工作的目的是通过以系统的方式在抛物线收集器中实现(Syltherm 800 / Cu)纳米流体的热增强余量。研究了三种不同的收集器种类;抽空管接收器,非抽空管接收器和无盖的裸管。该研究是对以下参数的不同值的系统参数研究:环境温度,太阳照射,太阳角,风速,流速,入口温度,吸收剂发射和纳米颗粒浓度。此外,通过在用文献实验数据验证的工程方程求解器中开发数学模型来执行该研究。结果表明,热损失较高的案例以及纳米流体的情况下发现了最大增强增强了裸管中的​​大部分性能。最大增强功能以​​小的流速和具有较高辐射率的情况。对于裸管的最大增强为7.16%,对于流量为25升/分钟时,对于抽空接收器的监测器为4.87%,对于抽空接收器为4.06%,并且存在金属陶瓷涂层。相应的增强值为25L / min的17.11%,12.30%和12.24%,并且对于非选择性吸收器。

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