热失控
热流密度
热的
核工程
发热
渗透(战争)
量热计(粒子物理)
材料科学
热分析
机械
电池(电)
传热
热力学
工程类
电气工程
物理
功率(物理)
探测器
运筹学
作者
William Q. Walker,K.C. Cooper,Peter Hughes,Ian Doemling,Mina Akhnoukh,Sydney Taylor,John J. Darst,Julia Billman,Matthew D. Sharp,David Petrushenko,Rhodri Jervis,Martin Pham,Thomas M. M. Heenan,Alexander Rack,Oxana V. Magdysyuk,Thomas Connolley,Dan J. L. Brett,Paul R. Shearing,Donal P. Finegan,Eric Darcy
标识
DOI:10.1016/j.jpowsour.2021.230645
摘要
Consideration of thermal runaway heat output variability is paramount for the development of safe lithium-ion battery assemblies. This study utilizes data gathered from fractional thermal runaway calorimetry (FTRC) experiments to conduct a comparative analysis of thermal runaway heat output for three cell formats (18650, 21700, and 33600) as a function of trigger method (heaters, internal short-circuiting device, and nail penetration). The analysis is based on comparisons for the calculated total energy yield, fractional energy yield, heat rate, and heat flux. This study reveals that nail penetration tends to result in higher thermal runaway heat output for larger cells (21700 & 33600); these experiments also tended to result in higher fractions of the total energy being released through the cell body. The smaller cells (18650) did not appear to have significant variation in heat output as a function of trigger method. This finding suggests that, for this cell type, worst-case scenario heat output could be achievable in assembly level testing regardless of the utilized trigger method. This study also demonstrates successful translation of FTRC results, as recorded in the Battery Failure Databank, into meaningful analysis that breaks down the influence of specific conditions on thermal runaway heat output.
科研通智能强力驱动
Strongly Powered by AbleSci AI