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Experimental investigation on CO_2 hydrate formation/dissociation for cold thermal energy harvest and transportation applications

机译:冷热能收集和运输应用中CO_2水合物形成/分解的实验研究

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摘要

Based on growing demand for the CO2 capture issue, CO2 hydrate formation/dissociation technologies for carbon capture have been highly spotlighted. CO2 hydrate can be applied to the cold thermal energy storage since CO2 hydrate has relatively higher dissociation enthalpy (459 kJ/kg) than ice slurries (333 kJ/kg). In this study, a lab-scale cold thermal energy harvest and transportation system using the CO2 hydrate is tested. This system contains both hydrate formation and dissociation processes to study the effects of each component on the cold thermal energy harvest and transportation applications. Tetrahydrofuran (THF) based absorbents with various concentrations of tetrahydrofuran is produced and applied to the CO2 hydrate system. COP (coefficient of performance), required work, heat transfer rate, and density of hydrate slurry are measured to improve the cold thermal energy harvest and transportation performances of the CO2 hydrate system. The performance of CO2 hydrate system is evaluated under various experimental conditions such as temperatures, pressures, and tetrahydrofuran concentrations. From the experimental results, it is found that the COP of 7.03 is obtained under tetrahydrofuran concentration of 1.5 mol% and formation pressure of 4 bar. It is also concluded that the CO2 emission of the CO2 hydrate system is estimated to be 7986 tCO(2)/year, which is 31.3% of the conventional district cooling system with the cooling capacity of 51,600 RT.
机译:基于对二氧化碳捕获问题日益增长的需求,用于二氧化碳捕获的二氧化碳水合物形成/离解技术已受到高度关注。由于水合二氧化碳的解离焓(459 kJ / kg)比冰浆(333 kJ / kg)相对较高,因此可将CO2水合物应用于冷热能存储。在这项研究中,测试了使用二氧化碳水合物的实验室规模的冷热能收集和运输系统。该系统同时包含水合物的形成和分解过程,以研究每种成分对冷热能收集和运输应用的影响。生产具有各种浓度的四氢呋喃的基于四氢呋喃(THF)的吸收剂,并将其应用于CO2水合物系统。测量COP(性能系数),所需功,传热速率和水合物浆料的密度,以改善CO2水合物系统的冷热能收集和运输性能。在各种实验条件下(例如温度,压力和四氢呋喃浓度)评估了CO2水合物系统的性能。从实验结果发现,在1.5mol%的四氢呋喃浓度和4巴的形成压力下获得7.03的COP。还得出结论,CO2水合物系统的CO2排放估计为7986 tCO(2)/年,这是常规区域供冷系统的制冷能力的31.3%,制冷量为51,600 RT。

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