五元
三元运算
熔盐
电阻率和电导率
二进制数
盐(化学)
电导率
第四纪
材料科学
无机化学
热力学
矿物学
化学
冶金
物理化学
地质学
物理
数学
合金
古生物学
程序设计语言
算术
量子力学
计算机科学
作者
Camilla Sommerseth,Kent-Robert Molvik,Helene Hillestad,Marthe Nybrodahl,Wojciech Gębarowski,Ole S. Kjos
标识
DOI:10.1149/1945-7111/ad83f7
摘要
As intermittent energy sources like solar energy and wind power emerge, the need for energy storage becomes important, energy availability needs to be ensured also when the Sun is not shining, and the wind is not blowing. Energy storage can also be used for peak shaving purposes during periods of high demand. Energy storage solutions need to be inexpensive and reliable. Novel all-liquid batteries are considered one option for stationary energy storage and the Na-Zn battery is currently being investigated. During charging Na metal is formed on the negative electrode from a NaCl containing electrolyte and ZnCl 2 is formed from a Zn pool on the positive electrode. The electrical conductivity of the molten salt is an important factor in the ohmic loss through the electrolyte. The composition of the electrolyte decides the electrical conductivity, and this conductivity also changes during the charge/discharge cycles of the battery as the electrolyte composition changes accordingly. Electrical conductivity has been measured on different compositions of NaCl-CaCl 2 , NaCl-CaCl 2 -LiCl, NaCl-CaCl 2 -BaCl 2 , NaCl-CaCl 2 -ZnCl 2 , NaCl-CaCl 2 -BaCl 2 -SrCl 2, NaCl-CaCl 2 -BaCl 2 -ZnCl 2 and NaCl-CaCl 2 -BaCl 2 -SrCl 2 -ZnCl 2 molten salts in an in-house built apparatus. The smaller ions (Li and Na) give higher electrical conductivity, while the larger ions (Ba, Sr, and Zn) reduce the electrical conductivity.
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