Elshenawy Tamer, Abdo Gamal M, Elbeih Ahmed
Technical Research Center, Cairo, Egypt.
Mechanical Engineering department, Faculty of Engineering and Technology, Badr University, Cairo, Egypt.
Sci Rep. 2024 Nov 1;14(1):26282. doi: 10.1038/s41598-024-75727-0.
Different explosive materials have been studied numerically and experimentally to assess the efficiency of a small diameter shaped charge in terms of produced jet characteristics and penetration depth into RHA steel targets. 26 different explosives have been simulated numerically using Autodyn hydrocode, whereas recommended explosives have been loaded into small diameter shaped charges by pressing technique and tested by static firing against RHA targets in order to validate the numerical calculations. The numerical analysis has presented an intensive global view about the variation of the shaped charge jets as a potential of the loaded explosive charge efficiencies. A successful trial has been performed to measure the shaped charge jet velocity using detonation velocity VOD 812 apparatus, where its measured value was only 3.6% different from the numerical one for HMX-V5 explosive. Besides, TITAN (L3) flash X-ray radiograph has also been implemented to explore the jet profile using the same explosive type and to measure its jet tip velocity, which has only 2.1% different from that estimated numerically. Extensive fragmentation analysis has been presented, which showed increase in both the fragment number and the fragment speed when the used explosive charge is of high detonation velocity. CL-20 explosive exhibited the largest jet tip velocity and its scaled collapse velocity was found to be 140% of TNT explosive. The calculated average fragment speed has been validated and the measured fragment speed has only 2.3% difference when compared to the SPH calculations.
已对不同的爆炸材料进行了数值模拟和实验研究,以根据产生的射流特性和对RHA钢靶的侵彻深度来评估小直径聚能装药的效率。使用Autodyn流体动力学代码对26种不同的炸药进行了数值模拟,同时通过压制技术将推荐的炸药装入小直径聚能装药中,并通过对RHA靶进行静态射击进行测试,以验证数值计算结果。数值分析全面展示了聚能装药射流的变化情况,这是装药爆炸效率的一种体现。已成功进行了一次试验,使用爆速VOD 812装置测量聚能装药射流速度,对于HMX-V5炸药,其测量值与数值计算值仅相差3.6%。此外,还使用TITAN(L3)闪光X射线射线照相技术,采用相同类型的炸药来研究射流轮廓并测量其射流尖端速度,该测量值与数值估计值仅相差2.1%。已进行了广泛的破片分析,结果表明,当使用的装药为高爆速炸药时,破片数量和破片速度都会增加。CL-20炸药表现出最大的射流尖端速度,其折合塌缩速度为TNT炸药的140%。计算得到的平均破片速度已得到验证,与光滑粒子流体动力学(SPH)计算结果相比,测量得到的破片速度仅相差2.3%。