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The Investigation of Heat Absorber on the Efficiency of Slanted Double-Slope Solar Distillation Unit

机译:吸热器对倾斜双坡太阳蒸馏装置效率的研究

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A rise in utility consumption in rural areas have promoted the demand for the development of solar-based technologies for water purification system. This research aimed to develop a slanted double-slope solar distillation unit (SDSD) assisted by heat absorbers, which is employed as a distillation unit for generating clear distilled water from underground water. The prototype SDSD distillation unit developed in this research was evaluated based on production efficiency, productivity, distillation rate and temperature measured at different locations inside the device. Significant parameters that were varied included the types of heat absorber used (gasket, rubber, aluminum, high carbon steel and zinc) and the size of heat absorber (10 to 90% of surface area inside the SDSD). Results demonstrated an increase in the production of distilled water as the surface area of heat absorber decreases. This is because a reduction in surface area of the heat absorber allowed a more intense sunlight to enter the system. Maximum productivity peaked at 1.2 liter per day (24.9% efficiency). Monitored data in both the upper and bottom part of the distillation unit revealed the highest distillation rate at 15:00 each day. Distillation rate decreases with water height and insulator's thermal conductivity, but increase with water speed. Additionally, a mathematical model was proposed which was capable of accurately predicting the production efficiency and productivity as a function of the heat absorber's size and distillation time. Under the same operating conditions, aluminum was found to generate the best results relative to other types of heat absorber.
机译:农村地区的效用消费量升幅促进了对水净化系统的太阳能技术发展的需求。该研究旨在开发由吸热器辅助的倾斜的双斜率太阳蒸馏单元(SDSD),其用作从地下水产生透明蒸馏水的蒸馏装置。在该研究中开发的原型SDSD蒸馏装置基于在装置内的不同位置测量的生产效率,生产率,蒸馏速率和温度进行评估。改变的显着参数包括所用的吸热器(垫圈,橡胶,铝,高碳钢和锌)和吸热器的尺寸(SDSD内部的10至90%)。结果表明,随着吸热器的表面积降低,蒸馏水的产生增加。这是因为吸热器的表面积减小允许更强烈的阳光进入系统。最高生产率在每天1.2升(24.9%的效率)上达到1.2升(24.9%)。蒸馏装置的上部和底部的监测数据在每天15:00揭示了最高的蒸馏速率。蒸馏速率随水分和绝缘体的导热率降低,但随水速度而增加。另外,提出了一种数学模型,其能够准确地预测生产效率和生产率,作为吸热器尺寸和蒸馏时间的函数。在相同的操作条件下,铝被发现相对于其他类型的吸热器产生最佳结果。

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