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Numerical investigation on performance of solar chimney power plant by varying collector slope and chimney diverging angle

机译:改变集热器斜率和烟囱发散角的太阳能烟囱发电厂性能的数值研究

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In this study, a parametric three dimensional computational fluid dynamics (CFD) analysis of solar chimney power plant was performed to illustrate the effects of collector's slope and chimney diverging angle on performance of Manzanares prototype. Numerical models were incorporated with solar load, DO (discrete ordinates) and RNG k-epsilon turbulence models. Firstly, CFD simulations results were validated by comparing them with the experimental data of Manzanares prototype and then, on the basis of robustness of numerical methods adopted, several numerical simulations were performed on varying collector's slope and chimney diverging angles to improve the performance of solar chimney. Numerical simulations were performed at chimney diverging angle = 1 degrees-3 degrees and at collector slope = 4 degrees, 6 degrees, 8 degrees and 10 degrees sequentially, while all other parameters were kept constant. Based on computed results, it was discovered that both velocity and temperature increases with increasing collector's slope due to enhanced heat transfer and mass flow rate, but simultaneously higher collector slopes also deteriorate the smooth air flow by developing vortices and recirculation of air, which obstructs the air flow and may reduce the overall performance. In addition, chimney diverging angle =1 degrees raises the velocity from 9.1 m/s to a remarkable value of 11.6 m/s; therefore, this diverging chimney approach is conceived to be a beneficial tool in improving performance of solar chimney power plant. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在这项研究中,对太阳能烟囱发电厂进行了参数化三维计算流体动力学(CFD)分析,以说明收集器的斜率和烟囱发散角对曼萨纳雷斯原型机性能的影响。数值模型与太阳负荷,DO(离散坐标)和RNGk-ε湍流模型结合在一起。首先,通过将CFD模拟结果与Manzanares原型的实验数据进行比较来验证其结果,然后,在采用数值方法的鲁棒性的基础上,对不同的集热器斜率和烟囱散布角进行了若干数值模拟,以改善太阳能烟囱的性能。 。依次进行了烟囱发散角= 1度至3度和收集器倾斜度= 4度,6度,8度和10度的数值模拟,而所有其他参数均保持不变。根据计算结果,发现由于传热和质量流率的提高,速度和温度都随着集热器斜率的增加而增加,但同时更高的集热器斜率也会通过产生涡流和空气再循环而破坏顺畅的气流,从而阻碍了空气的流动。气流可能会降低整体性能。此外,烟囱发散角= 1度会使速度从9.1 m / s升高到11.6 m / s的显着值;因此,这种分散的烟囱方法被认为是改善太阳能烟囱发电厂性能的有益工具。 (C)2017 Elsevier Ltd.保留所有权利。

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