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首页> 外文期刊>Journal of Energy Storage >Long-term performance results of concrete-based modular thermal energy storage system
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Long-term performance results of concrete-based modular thermal energy storage system

机译:基于混凝土的模块化热能存储系统的长期性能结果

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The performance of a 2 x 500 kWh(th) thermal energy storage (TES) technology has been tested at the Masdar Institute Solar Platform (MISP) at temperatures up to 380 degrees C over a period of more than 20 months. The TES is based on a novel, modular storage system design, a new solid-state concrete-like storage medium, denoted HEATCRETE (R) vp1, - and has cast-in steel pipe heat exchangers. Measured data after specific intervals during various operation modes are analysed, and validation of system performance is done through direct comparison between measured values and numerically simulated performance. The demonstrated and measured long-term performance of the TES matches predictions based on performance simulations and proves the operational feasibility of the modular TES design. After accumulating close to 6 000 operational hours, inspection of extracted thermal elements prove that there is no degradation of the storage material, and no separation between steel pipes and storage material is observed. Measurements of core samples of the storage medium extracted from the TES confirms the material properties and stability. The thermal element design and storage material as demonstrated in the TES pilot has thus been proved to work in its final form with expected conditions and shows absolutely no sign of performance degradation. The modularity and simplicity of the TES design enables flexibility in scaling high temperature TES systems for among others industrial waste heat recovery, thermal power plants and concentrating solar power applications, thermal power plant.
机译:2 x 500 kWh(th)热能存储(TES)技术的性能已在Masdar Institute太阳平台(MISP)上在高达380摄氏度的温度下进行了20多个月的测试。 TES基于新颖的模块化存储系统设计,一种新型的类似于HEATCRETE(v)p1的固态混凝土存储介质,并且具有嵌入式钢管式热交换器。分析各种操作模式下特定时间间隔后的测量数据,并通过直接比较测量值和数值模拟性能来验证系统性能。 TES的已证明和测量的长期性能与基于性能模拟的预测相符,并证明了模块化TES设计的操作可行性。经过近6000个工作小时的积累,抽出的热元素的检查证明存储材料没有降解,在钢管和存储材料之间也没有分离。从TES中提取的存储介质核心样品的测量结果证实了材料的性能和稳定性。因此,已证明TES试验中证明的热敏元件设计和存储材料可以在预期的条件下以最终形式工作,并且绝对不会出现性能下降的迹象。 TES设计的模块化和简单性使得可以灵活地扩展高温TES系统的规模,以用于工业余热回收,火力发电厂和聚光太阳能应用,火力发电厂。

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