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Integration of solar latent heat storage towards optimal small-scale combined heat and power generation by Organic Rankine Cycle

机译:太阳能潜热存储朝向最佳小规模综合热量和功率产生的有机朗肯循环

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Thermal energy and distributed electricity demand are continuously increased in areas poorly served by a centralized power grid. In many cases, the deployment of the electricity grid is not economically feasible. Small-scale Organic Rankine Cycle (ORC) appears as a promising technology that can be operated by solar energy, providing combined heat and power (CHP) generation. Additionally, thermal energy storage can ensure stable and continuous operation in case of scarce thermal energy availability. This paper evaluates the potential application of latent heat storage to enhance solar ORC performance at operating temperatures between 80 degrees C and 140 degrees C, aiming at improving the efficiency and capacity of ORC for low-cost non-concentrating solar-thermal collectors. Three thermal energy storage scenarios are considered. Scenario 1 and 2 consist of reference cases based on a solar ORC system integrated with a conventional hot water tank and a pressurised water tank. Scenario 3 implements a storage unit based on a phase change material. The simulation was carried out through models developed in TRNSYS for solar energy balance and ASPEN for ORC system performance. The results show that solar latent heat storage tank can provide 54% of useful collector gains with a higher and narrower temperature range in the evaporator, increasing the annual thermal energy capacity by 19%, reducing annual heat losses by 66% and decreasing the investment cost by 50% in comparison with a pressurised water tank. It also allows increasing the efficiency of ORC cycle by approximately 18% (from 8.9% to 10.5%) with a higher net generated power than a conventional water tank integration, scaled up from 498 W to 1628 W. These results highlight the potential benefits that latent heat integration provides to improve the low-cost solar ORC performance for powering electricity and thermal energy supply.
机译:热能和分布式电量在集中电网服务不良的区域中不断增加。在许多情况下,电网部署在经济上不可行。小规模的有机朗肯循环(ORC)看起来是一种有希望的技术,可通过太阳能运行,提供混合热量和功率(CHP)。此外,在稀缺热能可用性的情况下,热能储存可以确保稳定和连续的操作。本文评估了潜热存储的潜在应用,以提高80℃和140摄氏度的工作温度下的太阳能兽人性能,旨在提高兽人的效率和容量,用于低成本的非集中太阳能热收集器。考虑了三种热能存储场景。场景1和2包括基于与传统热水箱和加压水箱集成的太阳能兽人系统的参考案例。场景3基于相变材料实现存储单元。通过Trnsys中开发的模型进行了模拟,用于太阳能平衡和用于ORC系统性能的Aspen。结果表明,太阳能潜热储罐可以在蒸发器中提供54%的有用收集器,蒸发器温度范围更高,更窄,将年度热能量增加19%,降低了66%的年度热量损失并降低了投资成本与加压水箱相比,50%。它还允许将ORC循环的效率提高约18%(从8.9%到10.5%),净产生的功率高于传统的水箱集成,从498 W扩大到1628W。这些结果突出了潜在的好处潜热集成提供了提高电力和热能供应的低成本太阳能兽人性能。

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