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Optical, 2D thermal modeling and exergy analysis applied for performance prediction of a solar PTC

机译:光学,二维热建模和火用分析用于太阳能PTC的性能预测

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In the present work, a detailed optical and thermodynamic analysis of the solar Parabolic Trough Collector (PTC) is presented. At first, an optical and 2D thermal modeling of a PTC is developed. This thermal modeling is coupled to an exergy analysis to construct a single model for the PTC's overall performances prediction. The results are compared to the experimental measurements carried out at Sandia National Laboratories. Then, a parametric study was first performed by using a commercial PTC (Eurotrough ET-150) and a Schott PTR-70 receiver in order to study the effect of some operating and environmental parameters on the PTC's optical, thermal and exergy efficiencies. The exergy losses and the exergy destruction rates through these parameters are also evaluated. In all cases, the results are in accordance and showed a good agreement with experimental data. The results show that the PTC's performances are very sensitive to the beam solar radiation and the incidence angle as well as to the PTC's aperture width, the heat transfer fluid inlet temperature and the mass flow rate. The main deviations in the performances are caused by heat losses from the heat transfer fluid to the surroundings (exergy losses), and/or by the fact of thermal differential through flow direction (exergy destruction) that is the main of the dissipation in the system process. In addition, the simulation of the performance of four Eurotrough ET-150 mounted in series (one loop) under the running conditions of site of Hassi R'Mel (located at the heart of Algerian Sahara) on two typical days is predicted. On summer solstice, the daily maximum energy efficiency and exergy efficiency are 67.91% and 36.08%, respectively. They, however, decrease to 31% and 22.1%, respectively on winter solstice. The overall performance prediction guarantees the real-time evaluation of the PTC with more accuracy.
机译:在目前的工作中,将对太阳抛物槽收集器(PTC)进行详细的光学和热力学分析。首先,开发了PTC的光学和二维热建模。该热模型与火用分析耦合,以构建用于PTC总体性能预测的单个模型。将结果与在桑迪亚国家实验室进行的实验测量进行比较。然后,首先通过使用商用PTC(Eurotrough ET-150)和Schott PTR-70接收器进行参数研究,以便研究某些操作和环境参数对PTC的光学,热和火用效率的影响。通过这些参数的火用损失和火用破坏率也得到了评估。在所有情况下,结果均与实验数据一致并显示出良好的一致性。结果表明,PTC的性能对光束太阳辐射和入射角以及PTC的孔径宽度,传热流体入口温度和质量流量非常敏感。性能方面的主要偏差是由传热流体到周围环境的热量损失((火能损失))和/或通过流向的热差(火能破坏)造成的,这是系统中主要的散热问题。处理。此外,预测了在两个典型的天数内,在哈西·勒梅尔(位于阿尔及利亚撒哈拉沙漠的中心)的运行条件下,对串联安装的四个Eurotrough ET-150(一个回路)的性能进行仿真。夏至时,日最大能效和火用效率分别为67.91%和36.08%。但是,到冬至时,它们分别下降到31%和22.1%。总体性能预测可确保以更高的准确性对PTC进行实时评估。

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