抛物面槽式集热器中作为工作流体的导热油和水在增强太阳能发电方面的比较评估

H. A. Jabbar, K. Alwan, D. Hachim, Ahmed Al-Manea, R. Al-Rbaihat, Ali Alahmer
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摘要

研究抛物面槽式集热器(PTC)中特定工作流体(即 Syltherm800 和 TherminolVP-1)的热行为对提高发电量至关重要。本研究通过 COMSOL Multiphysics 软件进行计算流体动力学仿真和实验测试,探索在 PTC 中使用导热油比使用水作为工作流体的优势,从而填补了这一重要空白。在伊拉克的水基 PTC 上进行了实验测试,以验证数值模型,测试中考虑了各种工作条件,如输入温度(323.15-423.15 K)和质量流量(0.00926-0.0556 kg/s)。对输出温度、热效率、有用热量和总热量损失等关键参数进行了评估。数值模型与实验数据进行了验证,结果表明两者吻合良好,当前实验的总体差异为 1.7%,文献结果的差异为 3.18%。结果表明,就整体热性能而言,Syltherm800(尤其是在高质流量情况下)优于 TherminolVP-1 和水。最佳 PTC 热效率出现在 7 月份,质量流量为 0.0556 kg/s,输入温度为 348.15 K。导热油的低蒸汽压、出色的热稳定性和较长的使用寿命,为 PTC 中导热油的应用提供了支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparative Assessment of Thermal Oils and Water as Working Fluids in Parabolic Trough Collectors for Enhanced Solar Power Generation
Examining the thermal behavior of specific working fluids, namely Syltherm800 and TherminolVP-1, in parabolic trough collectors (PTCs) is imperative for enhancing power generation. This study addresses a crucial gap by conducting computational fluid dynamics simulations through COMSOL Multiphysics software and experimental tests to explore the advantages of utilizing thermal oils over water as a working fluid in PTCs. Experimental tests were performed on a water-based PTC in Iraq to validate the numerical model, considering various operating conditions such as input temperature (323.15-423.15 K) and mass flow rates (0.00926-0.0556 kg/s). Key parameters including output temperature, thermal efficiency, useful heat, and total heat losses were evaluated. The numerical model was validated against experimental data, showing good agreement with an overall discrepancy of 1.7% for the current experiments and 3.18% for literature results. The results indicated that Syltherm800, particularly with a high mass flow rate, outperformed TherminolVP-1 and water in terms of overall thermal performance. The optimal PTC thermal efficiency was achieved in July with a mass flow rate of 0.0556 kg/s and an input temperature of 348.15 K. The optimal range for PTC thermal efficiency over four months was between 50% and 70%. The endorsement of thermal oils in PTCs is supported by their low vapor pressure, superior thermal stability, and extended lifespan.
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