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Thermal Energy Recovery through Optimal Salt concentration in a Parabolic Trough Systems

机译:通过抛物线槽系统中最佳盐浓度的热能回收

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Making a PVT system hybrid is to support the use of thermal and electrical energy simultaneously or independently, to control the thermal effect to improve electrical efficiency or vice-versa. This project makes use of the Parabolic Trough design with emphasis on making the system to be sustainable and also increasing the thermal efficiency of the system. Polystyrene and acrylic foam is utilized to maximize the heat retention capability of the system. To power, the pump that moves the heat transfer fluid (tested with salt water proportions) within the copper tube, a set of solar PV panel is to support its power demand making it sustainable. The closed loop setup designed achieved an improved thermal efficiency level of 66.2%, which contributes to having a reliable heat energy source for applications such as hot showers. The novel setup design also makes use of PV cells to support other energy demands through power electronic control designs. Using a similar heat dissipation technique, a novel setup has been designed to improve the voltage supply by making use of liquid cooling and translucent glass PV panels. Cooling the PV panel restored up to 11.7% of its rated voltage supply. This is achieved by keeping the PV panels within its best thermal operating conditions using an energy efficient electronically controlled cooling system.
机译:使PVT系统成为混合动力是为了支持同时或独立使用热能和电能,以控制热效应以提高电效率,反之亦然。该项目利用抛物线槽设计,重点是使系统具有可持续性,并提高系统的热效率。利用聚苯乙烯和丙烯酸泡沫可最大程度地提高系统的保温能力。为了供电,需要在铜管内移动传热流体(经过盐水比例测试)的泵,一套太阳能PV面板可满足其电力需求,从而使其可持续发展。设计的闭环设置提高了66.2%的热效率,这有助于为诸如淋浴之类的应用提供可靠的热能源。新颖的设置设计还利用PV电池通过电力电子控制设计来满足其他能源需求。使用类似的散热技术,已设计出一种新颖的装置,以通过使用液体冷却和半透明的玻璃PV面板来改善电压供应。冷却光伏电池板最多可恢复其额定电压的11.7%。这是通过使用节能的电子控制冷却系统将光伏面板保持在最佳热运行条件下来实现的。

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