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Fibre-Reinforced Geopolymer Concretes for Sensible Heat Thermal Energy Storage: Simulations and Environmental Impact

机译:用于合理热热能储存的纤维增强地缘聚合物混凝土:模拟和环境影响

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摘要

Power plants based on solar energy are spreading to accomplish the incoming green energy transition. Besides, affordable high-temperature sensible heat thermal energy storage (SHTES) is required. In this work, the temperature distribution and thermal performance of novel solid media for SHTES are investigated by finite element method (FEM) modelling. A geopolymer, with/without fibre reinforcement, is simulated during a transient charging/discharging cycle. A life cycle assessment (LCA) analysis is also carried out to investigate the environmental impact and sustainability of the proposed materials, analysing the embodied energy, the transport, and the production process. A Multi-Criteria Decision Making (MCDM) with the Analytical Hierarchy Process (AHP) approach, taking into account thermal/environmental performance, is used to select the most suitable material. The results show that the localized reinforcement with fibres increases thermal storage performance, depending on the type of fibre, creating curvatures in the temperature profile and accelerating the charge/discharge. High-strength, high-conductivity carbon fibres performed well, and the simulation approach can be applied to any fibre arrangement/material. On the contrary, the benefit of the fibres is not straightforward according to the three different scenarios developed for the LCA and MCDM analyses, due to the high impact of the fibre production processes. More investigations are needed to balance and optimize the coupling of the fibre material and the solid medium to obtain high thermal performance and low impacts.
机译:基于太阳能的发电厂正在蔓延,以完成进入的绿色能源转换。此外,还需要经济实惠的高温明智热储能(SHTES)。在这项工作中,通过有限元方法(FEM)建模研究了用于SHTES的新型固体介质的温度分布和热性能。在瞬态充电/放电循环期间模拟具有/不具有纤维增强的地质聚合物。还进行了生命周期评估(LCA)分析,以研究所提出的材料的环境影响和可持续性,分析所体现的能量,运输和生产过程。使用分析层次处理(AHP)方法的多标准决策(MCDM)用于考虑热/环境性能,用于选择最合适的材料。结果表明,根据光纤的类型,用纤维的局部加固增加了热储存性能,从而在温度曲线中产生曲率并加速充电/放电。表现良好的高强度,高导电碳纤维,并且模拟方法可以应用于任何纤维布置/材料。相反,由于纤维生产过程的高影响力,纤维的益处并不是根据为LCA和MCDM分析开发的三种不同场景。需要更多的调查来平衡和优化纤维材料和固体介质的偶联,以获得高热性能和低冲击。

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