基于大气热发电系统开发的co2水合物生成特性研究

T. Kawasaki, S. Obara, Y. Uemura
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引用次数: 0

摘要

本研究旨在利用co2水合物的解离和膨胀特性,开发一种低环境负荷的发电系统。所提出的发电系统利用几十度的小温差引起的co2水合物生成和解离反应的大压差来驱动执行器。本研究采用不同导热系数的反应容器进行co2水合物生成和解离实验,通过考察co2水合物生成量来比较co2水合物生成特性。此外,还分析了该系统发电量的增加情况。通过实验考察了co2水合物的生成实验,测量了co2水合物的生成量,并利用反应容器和缓冲罐模拟了所提出的系统。反应容器采用不锈钢圆柱形装置(导热系数20.9 W/(m·K))和铜圆柱形装置(导热系数402 W/(m·K))。通过使用两种反应容器,我们研究了由于热导率的差异而产生的co2水合物的量和解离效率。结果表明,提高反应容器的导热系数可使CO2水合物产量提高约67%,CO2水合物解离效率提高约1%。因此,作为所提出的发电系统增加发电量的一种方法,可以提高反应容器的导热系数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of CO2hydrate generation characteristics based on the development of a power generation system using atmospheric heat
This research aims at the development of a power generation system with low environmental load using the dissociation and expansion characteristics of CO2hydrate. The proposed power generation system drives the actuator by making use of large pressure difference in the generation and dissociation reaction of CO2hydrate caused by small temperature difference of several tens of degrees. In this study, CO2hydrate generation and dissociation tests are carried out using reaction vessels with different thermal conductivity, and the C02 hydrate generation characteristics are compared by examining the CO2hydrate generation amounts. In addition, an increase in the power generation amount of the proposed system is analyzed. Experiments were conducted to examine the production experiment of CO2hydrate to measure the amount of CO2hydrate production and experiments simulating the proposed system using reaction vessels and buffer tanks. A stainless steel cylindrical device (thermal conductivity 20.9 W/(m·K)) and a copper cylindrical device (thermal conductivity 402 W/(m·K)) were used for the reaction vessel. By using two reaction vessels, we investigate the amount of CO2hydrate produced and the efficiency of dissociation due to the difference in thermal conductivity. As a result of the survey, it was confirmed that increasing the thermal conductivity of the reaction vessel increases the CO2hydrate production by about 67% and the CO2 hydrate dissociation efficiency increases by about 1 %. Therefore, as one method to increase the power generation amount of the proposed power generation system, it is possible to increase the thermal conductivity of the reaction vessel.
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