Research on Thermal Runaway Mechanism and Reaction Kinetics Analysis for NCM622 Ternary Battery
Xu Chengrong1,2, Sun Bingxiang1,2, Zhou Xingzhen1,2, Zhu Xiyan1,2, Zhang Weige1,2
1. National Active Distribution Network Technology Research Center (NANTEC) Beijing Jiaotong University Beijing 100044 China; 2. Key Lab of Vehicular Multi-Energy Drive Systems (VMEDS) Ministry of Education Beijing Jiaotong University Beijing 100044 China
Abstract:With the widespread adoption of high-nickel ternary lithium-ion batteries in electric vehicles and unmanned aerial vehicles, the thermal runaway risks associated with high energy density have become increasingly prominent. Current research on the thermal stability of high-nickel ternary cathode materials predominantly focuses on systems with NCM811 or higher nickel content, whereas thermal runaway mechanisms in NCM622 batteries remain underexplored. In particular, there is a significant lack of complete kinetic parameters for material side reactions throughout the thermal runaway process. This paper examines a commercial 50 A·h NCM622/graphite ternary pouch cell, providing theoretical support for battery safety design and thermal-runaway early-warning systems. The experimental procedure involved adiabatic thermal-runaway tests with EV-ARC operating in the “Heat-Wait-Seek” (HWS) mode. It enabled the acquisition of key thermal parameters, including the self-heating onset temperature (T1≈75℃), thermal runaway trigger temperature (T2≈180℃), and maximum temperature (T3>1 000℃). Simultaneously, the thermal flow of various battery components and their combinations was analyzed using differential scanning calorimetry (DSC). The results identified the “anode-electrolyte reaction” and the “cathode-anode reaction” as the two primary heat sources during thermal runaway, with specific heat generation values of 1 201.11 J·g-1 and 3 061.25 J·g-1, respectively. By integrating the observed separator shrinkage temperature (approximately 150℃) with the multi-stage exothermic behavior, the battery thermal runaway process was categorized into five distinct characteristic stages. Then, an autocatalytic concentration function, $f_{x}\left(c_{x}\right)=c_{x}^{m_{x}}\left(1-c_{x}\right)^{n_{x}}$, was introduced to construct the reaction kinetic equations. This function describes the self-accelerating reaction behavior of battery materials during thermal runaway. For the nine key exothermic reactions (Q1~Q9) identified in the “anode+electrolyte” and “cathode+anode” sample groups, a hybrid parameter identification method was employed. The Kissinger method was combined with the particle swarm optimization (PSO) algorithm to determine the kinetic parameters for each reaction, including activation energy (Ea), pre-exponential factor (Ax), reaction orders (mx, nx), and reaction enthalpy (ΔHx). Simulation results with different heating rates (5, 10, 15, and 20℃/min) agree with experimental DSC data. The root-mean-square errors (RMSEs) for the two sample groups were 0.107 5 and 0.300 1, respectively. This approach achieved quantitative decoupling of the heat generation from all exothermic reactions. This research analyzed the thermal runaway mechanism in NCM622 batteries and decoupled thermal contributions, providing critical data for early warning of thermal runaway and safety management of NCM622 batteries. Future work will focus on integrating these results with intelligent diagnostic algorithms that fuse multiple parameters, thereby advancing battery management systems (BMS).
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