Ying Wujiang, Li Zhuoheng, Liu Pan, Miao Feichao, Zhou Lin, Zhang Xiangrong
State Key Laboratory of Explosion Science and Safety Protection, Beijing Institute of Technology, Beijing, 100081, China.
CSSC System Engineering Research Institute, Beijing, 100094, China.
Sci Rep. 2024 Nov 30;14(1):29825. doi: 10.1038/s41598-024-81240-1.
Laboratory testing with adjustable loading amplitudes and durations remains the primary method for assessment of the safety of explosives under either launch or penetration environment. In this study, a novel impact testing laboratory equipment with loading amplitudes ranging from 0.1 to 1.0 GPa and pulse durations ranging from 1 to 8 ms is established. It was used to investigate the safety of a 2,4-dinitroanisole (DNAN)-based melt-cast explosive subjected to impact loading in either launch or penetration scenarios. The explosive's response to the impact loading depends not only on the loading characteristics (peak pressure and maximum rate of pressure rise) but also on the confinements of the explosives. The ignition events of the explosives exhibited some randomness. A logistic regression analysis method was utilized to analyze such ignition events. This method can predict the ignition events of the DNAN-based melt-cast explosive with a high accuracy, which demonstrates the effectiveness of the method. The effect of the confinements of the explosives on the accuracy of this method was also investigated.
采用具有可调节加载幅度和持续时间的实验室测试,仍然是评估炸药在发射或侵彻环境下安全性的主要方法。在本研究中,建立了一种新型冲击测试实验室设备,其加载幅度范围为0.1至1.0 GPa,脉冲持续时间范围为1至8 ms。该设备用于研究一种基于2,4 - 二硝基苯甲醚(DNAN)的熔铸炸药在发射或侵彻场景下承受冲击载荷时的安全性。炸药对冲击载荷的响应不仅取决于加载特性(峰值压力和最大压力上升速率),还取决于炸药的约束条件。炸药的点火事件表现出一定的随机性。采用逻辑回归分析方法对这类点火事件进行分析。该方法能够高精度地预测基于DNAN的熔铸炸药的点火事件,证明了该方法的有效性。还研究了炸药的约束条件对该方法准确性的影响。