内爆条件下的覆土杂志模型研究

IF 1.2 4区 工程技术 Q3 ACOUSTICS
Cheng Gong, Yan-Yu Qiu, Zhi-Lin Long, Lu Liu, Guan-Gan Xu, Ling-ming Yang
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引用次数: 0

摘要

由于其隐蔽性和成本效益,覆土弹仓(ECM)在防护工程中的使用越来越普遍。为了探索 ECM 的最佳覆土厚度,在相当于 30 千克 TNT 炸药的爆炸下进行了按比例模型试验。测量了模型外 180° 方向的超压。随后,使用 LS-DYNA 软件进行了计算分析,以检验这些实验结果。结果表明,增加后部土壤的厚度可减轻峰值超压,延迟空气冲击波的到达时间,并降低正相的冲力。数值计算结果与实验数据非常吻合,峰值超压偏差保持在 10%以下。冲击波最初冲击模型顶部,然后到达后部,与 180° 方向相比,90° 方向的土壤散射更为明显。此外,还根据能量守恒原理对土壤能量吸收率的变化进行了分析。这些结果为优化 ECM 的设计和建造提供了宝贵的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study on the Earth-Covered Magazine Models under the Internal Explosion
The use of earth-covered magazines (ECMs) is increasingly prevalent in protective engineering due to their concealment and cost-effectiveness. To explore the optimal thickness of earth covering for ECMs, scaled model tests were conducted under explosive charges equivalent to 30 kilograms of TNT. The resulting overpressure outside the model in the 180° direction was measured. Subsequently, computational analyses were conducted employing LS-DYNA software to examine these experimental findings. The findings indicate that increasing the thickness of the rear soil can mitigate peak overpressure, delay the air shock wave’s arrival time, and reduce the impulse of the positive phase. The numerical calculations closely align with experimental data, with peak overpressure deviation remaining under 10%. The shock wave initially impacts the top of the model before reaching the rear, with soil scattering more pronounced in the 90° direction compared to the 180° direction. Furthermore, an analysis of soil energy absorption rate variation was conducted based on energy conservation principles. These results provide valuable insights for optimizing the design and construction of ECMs.
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来源期刊
Shock and Vibration
Shock and Vibration 物理-工程:机械
CiteScore
3.40
自引率
6.20%
发文量
384
审稿时长
3 months
期刊介绍: Shock and Vibration publishes papers on all aspects of shock and vibration, especially in relation to civil, mechanical and aerospace engineering applications, as well as transport, materials and geoscience. Papers may be theoretical or experimental, and either fundamental or highly applied.
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