提高储能混凝土装置的储能和循环性能的电极设计

Takuya Eguchi , Yusuke Fujikura , Yoshikazu Araki , Sanjay Pareek
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摘要

由于储能混凝土装置(ESCs)的发展仍处于起步阶段,其电化学性能在很大程度上仍然未知。阐明ESCs的基本机制将导致通用设计技术的建立。本文基于电容器静电场理论,研究了电极设计对ESCs电化学性能的影响,并阐明了ESCs的部分储能机理。此外,研究还表明,通过合理的电极设计可以显著提高ESCs的储能性能,并提出了提高ESCs储能性能的电极选择指南。研究发现,缩小电极之间的距离可以提高ESCs的储能性能。这一结果表明,电极附近钾地聚合物基质的极化在ESCs的储能机制中起着重要作用。研究还发现,采用细网格电极可以提高储能性能,增加储能的有效接触面积。另一方面,如果网孔太小,耐用性就会成为一个问题,因为较小的网孔会导致更薄的网线。因此,需要在储能性能和耐用性之间进行权衡。通过选择合适的电极网格尺寸,即使在100,000次循环后也可以实现充放电循环性能,从而实现了ESCs的卓越性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Electrode design of energy storage concrete devices for improving energy storage and cyclic performance

Electrode design of energy storage concrete devices for improving energy storage and cyclic performance
As the development of energy storage concrete devices (ESCs) is still nascent, their electrochemical properties remain largely unknown. Elucidation of the basic mechanism of ESCs will lead to the establishment of general-purpose design technology. In this paper, based on the electrostatic field theory of capacitors, we investigated the effect of electrodes design on the electrochemical properties of ESCs and clarified part of the energy storage mechanism of ESCs. In addition, it was shown that the energy storage capacity of ESCs can be dramatically improved by appropriate electrode design, and a guideline for electrode selection to improve the energy storage performance of ESCs was also presented. It was found that the energy storage performance of ESCs can be improved by narrowing the distance between the electrodes. This result suggests that polarization of potassium geopolymer matrix near the electrodes plays a influential role in the energy storage mechanism of ESCs. It was also found that the energy storage performance can be improved by using fine mesh electrodes, which increases the effective contact area for energy storage. On the other hand, durability becomes an issue if the mesh opening is too small because smaller mesh opening leads to thinner mesh wires. The tradeoff therefore needs to be considered between energy storage performance and durability. A remarkable performance of ESCs was achieved by selecting an appropriate electrode mesh size for cyclic performance of charging and discharging even after 100,000 cycles.
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