首页> 外文会议>International Conference on Energy Sustainability >A NOVEL COMPOSITE MATERIAL OF HYGROSCOPIC SALT STABILIZED BY NANOCELLULOSE FOR THERMOCHEMICAL ENERGY STORAGE
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A NOVEL COMPOSITE MATERIAL OF HYGROSCOPIC SALT STABILIZED BY NANOCELLULOSE FOR THERMOCHEMICAL ENERGY STORAGE

机译:用纳米纤维素稳定的吸湿盐的新型复合材料,用于热化学能量储存

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Thermochemical energy storage is promising due to its advantages of high-energy density and low-self discharging. One promising reaction material is the hydration and dehydration of hygroscopic salts. However, many pure salts have poor cycle stability. The present work investigates the development of a new composite material for thermochemical storage by impregnating a framework of crystalline nanocellulose (CNC) with calcium chloride (CaCl_2) Various weight ratios of CNC∶CaCl_2 were prepared by dispersing the salt and CNC in deionized water and using mechanical stirring and ultrasonication processes followed by drying at ambient temperature. The attachment of the salt to the CNC was determined by TEM and FTIR analyses. The enthalpy of dehydration and water uptake were measured. The stability of the composite material was determined by subjecting it to multiple cycles. The results show that the nanocellulose binds to the salt crystals and provide a nano-scale architecture to stabilize the salt. The CNC-salt material shows improved energy density and stability compared to pure salt. For example, for the given hydration conditions, the specific enthalpy of dehydration for the formulation 1∶2 weight ratio of CSC to salt is 117 J/g while for the pure CaCh the enthalpy of dehydration is 86J/g. Thus, the CNC-salt material shows -1.36-x improvement in energy density. Additionally, over the course of multiple cycles, that caused the pure CaCh to deliquesce, formulations of the CNC-salt material retained their structural integrity and energy density.
机译:由于其高能量密度和低自放电的优点,热化学储能是有前途的。一个有希望的反应材料是吸湿盐的水化和脱水。然而,许多纯盐的循环稳定性差。本作者通过浸渍氯化钙(CaCl_2)通过将盐和CNC分散在去离子水中并使用中,通过将氯化钙(CaCl_2)施加氯化钙(CaCl_2)的框架来调查用于热化学储存的新复合材料的开发。通过将盐和CNC分散在去离子水中并使用机械搅拌和超声处理,然后在环境温度下干燥。通过TEM和FTIR分析测定盐与CNC的附着。测量脱水和水吸收的焓。通过使其进行多个循环来确定复合材料的稳定性。结果表明,纳米纤维素与盐晶体结合并提供纳米级架构以稳定盐。与纯盐相比,CNC-盐材料显示出改善的能量密度和稳定性。例如,对于给定的水合条件,用于制剂的脱水的比焓为1:2的CSC与盐的重量比为117J / g,而纯凝聚的脱水焓为86J / g。因此,CNC-盐材料显示--1.36-x的能量密度提高。另外,在多个循环过程中,使纯CACH脱司,CNC-盐材料的配方保留了它们的结构完整性和能量密度。

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