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Development of low-cost inorganic salt hydrate as a thermochemical energy storage material

机译:低成本无机盐水合物作为热化学储能材料的开发

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摘要

Thermochemical storage is based on a reversible chemical reaction; energy can be stored when an endothermic chemical reaction occurs and then, energy is released when it is reversed in an exothermic reaction. According to literature and based on the energy storage density (esd), MgCl2·6H2O is a promising candidate material for thermochemical energy storage. Bischofite is an inorganic salt obtained as a by-product material from extraction processes of non-metallic minerals, from Salar de Atacama in Chile, containing approximately 95% of MgCl2·6H2O. Thus, the purpose of this study was to characterize the dehydration reaction of bischofite ore, studied as a low-cost thermochemical storage material. Thermogravimetric data for bischofite were obtained using a TGA instrument coupled to a DSC, at four different isotherms 70 °C, 80 °C, 90 °C and 100 °C. The results of conversion reaction (alpha-t) from the thermal dehydration experiments, demonstrated the first phase of dehydration with the loss of two water molecules. The study showed a typical sigmoid curve with a significant acceleration in the conversion at the beginning of the reaction until it reaches a maximum rate, where the curve keeps constant. The same behavior was observed for all the temperatures used. The kinetics of bischofite dehydration model was determined using the isothermal kinetics method. For this, the thermogravimetric data were fitted to the most used kinetic models (D, F, R, A) and then their respective correlation coefficients R were evaluated. The results indicated that the dehydration reaction of bischofite was described by the kinetics of chemical reaction of cylindrical particles R2. The rate of dehydration reaction and esd of bischofite are lower as compared to synthetic MgCl2·6H2O, at temperatures higher than 80 °C. However, the cost of materials to store 1 MJ of energy is three times lower for bischofite, which is an evident advantage to promote the reuse of this material left as waste by the non-metallic industry.
机译:热化学存储基于可逆的化学反应。当发生吸热化学反应时可以存储能量,然后在放热反应中逆转时释放能量。根据文献并基于储能密度(esd),MgCl2·6H2O是一种有前途的热化学储能材料。 Bischofite是一种无机盐,它是从智利Salar de Atacama的非金属矿物的提取过程中获得的副产品,其中含有约95%的MgCl2·6H2O。因此,本研究的目的是表征作为一种低成本热化学存储材料而被研究的重水铁矿矿石的脱水反应。使用耦合到DSC的TGA仪器在70°C,80°C,90°C和100°C的四个不同等温线下获得重晶石的热重数据。来自热脱水实验的转化反应(α-t)的结果表明,脱水的第一阶段损失了两个水分子。研究显示了一条典型的S型曲线,在反应开始时转化率就显着加快,直到达到最大速率为止,在此速率保持不变。对于所有使用的温度,观察到相同的行为。使用等温动力学方法确定了Bischofite脱水模型的动力学。为此,将热重数据拟合到最常用的动力学模型(D,F,R,A),然后评估它们各自的相关系数R。结果表明,通过圆柱状颗粒R2的化学反应动力学描述了重水铁矿的脱水反应。在高于80°C的温度下,与合成MgCl2·6H2O相比,水滑石的脱水反应速率和esd较低。但是,储存1 MJ能量的材料成本比重铁矿石要低三倍,这对于促进非金属行业作为废料留下的这种材料的再利用具有明显优势。

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