Page 31 - 《爆炸与冲击》2026年第8期
P. 31

第 46 卷          赵春风,等: 动态荷载作用下钠离子电池的失效行为与安全性能分析                                 第 8 期


               参考文献:

               [1]   SHARMA  H,  SHARMA  S,  MISHRA  P  K.  A  critical  review  of  recent  progress  on  lithium  ion  batteries:  challenges,
                    applications, and future prospects [J]. Microchemical Journal, 2025, 212: 113494. DOI: 10.1016/j.microc.2025.113494.
               [2]   GE H, KONG F, JIANG S K, et al. Advancing sodium-ion batteries toward commercialization: a review on phosphate and
                    sulfate-based polyanionic cathodes [J]. Energy Storage Materials, 2025, 81: 104468. DOI: 10.1016/j.ensm.2025.104468.
               [3]   PILALI  E,  NIA  F  F,  YAMINI  E,  et  al.  SWOT  analysis  on  the  transition  from  lithium-ion  batteries  to  sodium-ion
                    batteries [J]. Sustainable Energy Technologies and Assessments, 2025, 80: 104371. DOI: 10.1016/j.seta.2025.104371.
               [4]   QAHTAN T F, ALADE I O, ALARJANI A, et al. Advancements in sodium-ion batteries: an in-depth scientometric review [J].
                    Journal of Energy Storage, 2025, 131: 117490. DOI: 10.1016/j.est.2025.117490.
               [5]   LIU B H, JIA Y K, YUAN C H, et al. Safety issues and mechanisms of lithium-ion battery cell upon mechanical abusive
                    loading: a review [J]. Energy Storage Materials, 2020, 24: 85–112. DOI: 10.1016/j.ensm.2019.06.036.
               [6]   SAHRAEI E, CAMPBELL J, WIERZBICKI T. Modeling and short circuit detection of 18650 Li-ion cells under mechanical
                    abuse conditions [J]. Journal of Power Sources, 2012, 220: 360–372. DOI: 10.1016/j.jpowsour.2012.07.057.
               [7]   WIERZBICKI  T,  SAHRAEI  E.  Homogenized  mechanical  properties  for  the  jellyroll  of  cylindrical  lithium-ion  cells  [J].
                    Journal of Power Sources, 2013, 241: 467–476. DOI: 10.1016/j.jpowsour.2013.04.135.
               [8]   ZHANG  X  W,  WIERZBICKI  T.  Characterization  of  plasticity  and  fracture  of  shell  casing  of  lithium-ion  cylindrical
                    battery [J]. Journal of Power Sources, 2015, 280: 47–56. DOI: 10.1016/j.jpowsour.2015.01.077.
               [9]   ZHANG  C,  XU  J,  CAO  L,  et  al.  Constitutive  behavior  and  progressive  mechanical  failure  of  electrodes  in  lithium-ion
                    batteries [J]. Journal of Power Sources, 2017, 357: 126–137. DOI: 10.1016/j.jpowsour.2017.04.103.
               [10]   XU J, LIU B H, WANG L B, et al. Dynamic mechanical integrity of cylindrical lithium-ion battery cell upon crushing [J].
                    Engineering Failure Analysis, 2015, 53: 97–110. DOI: 10.1016/j.engfailanal.2015.03.025.
               [11]   ZHANG H J, ZHOU M Z, HU L L, et al. Mechanism of the dynamic behaviors and failure analysis of lithium-ion batteries
                    under crushing based on stress wave theory [J]. Engineering Failure Analysis, 2020, 108: 104290. DOI: 10.1016/j.engfailanal.
                    2019.104290.
               [12]   XI S J, ZHAO Q C, CHANG L J, et al. The dynamic failure mechanism of a lithium-ion battery at different impact velocity [J].
                    Engineering Failure Analysis, 2020, 116: 104747. DOI: 10.1016/j.engfailanal.2020.104747.
               [13]   WANG W W, YANG S, LIN C, et al. Investigation of mechanical property of cylindrical lithium-ion batteries under dynamic
                    loadings [J]. Journal of Power Sources, 2020, 451: 227749. DOI: 10.1016/j.jpowsour.2020.227749.
               [14]   ZHANG  X  C,  ZHANG  T,  LIU  N  N,  et  al.  Dynamic  crushing  behaviors  and  failure  of  cylindrical  lithium-ion  batteries
                    subjected to impact loading [J]. Engineering Failure Analysis, 2023, 154: 107653. DOI: 10.1016/j.engfailanal.2023.107653.
               [15]   HUANG J Q, SHEN W X, LU G X. Mechanism of failure behaviour and analysis of 18650 lithium-ion battery under dynamic
                    loadings [J]. Engineering Failure Analysis, 2023, 153: 107588. DOI: 10.1016/j.engfailanal.2023.107588.
               [16]   KISTERS T, SAHRAEI E, WIERZBICKI T. Dynamic impact tests on lithium-ion cells [J]. International Journal of Impact
                    Engineering, 2017, 108: 205–216. DOI: 10.1016/j.ijimpeng.2017.04.025.
               [17]   XIA Y, CHEN G H, ZHOU Q, et al. Failure behaviours of 100% SOC lithium-ion battery modules under different impact
                    loading conditions [J]. Engineering Failure Analysis, 2017, 82: 149–160. DOI: 10.1016/j.engfailanal.2017.09.003.
               [18]   LIU B H, ZHANG J J, ZHANG C, et al. Mechanical integrity of 18650 lithium-ion battery module: packing density and
                    packing mode [J]. Engineering Failure Analysis, 2018, 91: 315–326. DOI: 10.1016/j.engfailanal.2018.04.041.
               [19]   PFAFF J, SCHOPFERER S, MARKÖTTER H, et al. High-speed synchrotron radiography of nail penetration-induced thermal
                    runaway: understanding the explosive behavior of commercial sodium-ion batteries with NFM cathode [J]. Journal of Power
                    Sources Advances, 2025, 36: 100188. DOI: 10.1016/j.powera.2025.100188.
               [20]   马宇哲, 杨军, 曹泽阳, 等. 钠离子电池的平板径向压缩安全特性研究 [J]. 高压物理学报, 2024, 38(6): 065301. DOI:
                    10.11858/gywlxb.20240750.
                    MA Y Z, YANG J, CAO Z Y, et al. Study on the safety characteristics of flat plate compression of sodium-ion batteries [J].
                    Chinese Journal of High Pressure Physics, 2024, 38(6): 065301. DOI: 10.11858/gywlxb.20240750.


                                                         081501-12
   26   27   28   29   30   31   32   33   34   35   36