超级电容器
电解质
电压
功率(物理)
储能
材料科学
二进制数
计算机科学
电容
控制理论(社会学)
电气工程
电极
工程类
数学
物理
热力学
控制(管理)
人工智能
算术
量子力学
作者
Mark W. Verbrugge,Ping Liu
摘要
For hybrid-electric vehicle applications, supercapacitors show promise for providing low cost per unit power, high-efficiency energy storage, substantially temperature-invariant operation, and high cycle life (potentially equating to one supercapacitor pack per vehicle lifetime). Here we provide a microstructural and mathematical analysis for the characterization of a relatively high specific energy supercapacitor. The governing equations and the boundary conditions are generalized so that the cell can be modeled using a current, potential, or power excitation source. An Appendix 1clarifies the role of binary-electrolyte diffusion. The overall analysis allows one to determine the optimal target operating voltage for hybrid vehicle operation, calculate the available energy vs. available power for the system, and clarify the electrode utilization through the examination of the stored charge as a function of position.
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