小型太阳能热化学储能系统的研制

Griffin Drake, K. Harris, Monica Heng, Ben Appleby, Lucas Freiberg, P. Harding, Nick AuYeung
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引用次数: 1

摘要

太阳能热能有潜力为加热或烹饪等应用提供清洁能源,然而,高太阳强度的时间往往与热能的昼夜或季节性需求不一致。基于可逆反应的太阳能热化学储能系统(ess)由于其高体积能量密度和无限期存储能量的能力而成为有前途的解决方案。可逆的盐水合物反应在低分解温度下起作用,并且比显热或潜热储存具有更高的能量密度。为了加强传热、提高耐久性和防止结块,使用非反应性基质材料,通常由多孔物质制成,如活性炭、蛭石或膨胀石墨。这里展示的是一个概念验证,它解决了在季节性或昼夜时间框架内使用混合式真空管-太阳能集中反应堆存储热能的挑战。原型机的排放温度与普遍存在的住宅热需求有关,如热水或烹饪。实验测试证明该材料具有足够的缩放能力。室外试验表明,这种反应器设计可以在所需的温度下以最小的跟踪努力实现显著的解吸,特别是在增加质量流量的条件下。书中还讨论了能源贫困地区如何从这一概念中受益的未来愿景。
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Development of a small-scale solar thermochemical energy storage system
Solar thermal energy has the potential to supply clean energy for applications such as heating or cooking, however times of high solar intensity are often misaligned with the diurnal or seasonal demand for thermal energy. Solar thermochemical energy storage systems (STESS) based on reversible reactions are promising solutions due to their high volumetric energy density and ability to store energy indefinitely. Reversible salt hydrate reactions are functional at low decomposition temperatures and have higher energy densities than sensible or latent heat storage. To enhance heat transfer, improve durability, and prevent agglomeration, a non-reactive matrix material is used, typically made of porous substances such as activated carbon, vermiculite, or expanded graphite. Presented here is a proof-of-concept which addresses the challenge of storing thermal energy on a seasonal or diurnal timeframe with a hybrid evacuated tube-solar concentrator reactor. Discharge temperatures of the prototype are relevant for ubiquitous residential thermal needs such as hot water or cooking. Experimental testing has proven the material can be sufficiently scaled. Outdoor trials showed that this reactor design can achieve significant desorption at the required temperatures with minimal tracking efforts, especially when augmented with provisions to increase mass flow. Included is a discussion of a future vision of how energy impoverished areas can benefit from this concept.
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