关于在水下爆炸中具有大电荷的洞穴的动态特性研究
Jun Yu1,2, Xian-Pi Zhang3,4, Yi Hao3
1Laboratory of Explosion Shock and Protection, China Ship Scientific Research Center, Wuxi, 214082, China. feiyue617@163.com.
Scientific reports
|April 13, 2024
概括
水下爆炸 (UNDEX) 产生复杂的洞穴动态. 这项研究使用双流体模型来展示爆炸深度和电荷大小如何显著改变洞穴,影响深水爆炸特征.
科学领域:
- 流体动力学 流体动力学
- 水下声学 水下声学
- 爆炸物理 爆炸物理
背景情况:
- 水下爆炸 (UNDEX) 产生冲击波,与空气-水界面和结构相互作用.
- 深水爆炸涉及冲击波传播,泡动力学和洞穴演变之间的复杂合.
- 洞穴现象,包括泡的生长和崩,显著影响水力动力学特征,如压力和密度.
研究的目的:
- 通过使用两流体相位过渡模型,研究深水爆炸中洞穴的演变.
- 分析爆炸深度和充电量对化特征的影响.
- 确定二相蒸汽液体模型的必要性,以准确模拟蒸发和凝结.
主要方法:
- 在数值模拟中使用了双流体相位过渡模型.
- 分析了冲击波传播,泡运动和洞穴演变.
- 不同的爆炸深度和充电量,以研究它们的影响.
主要成果:
- 一个双相蒸汽-液体相变模型对于准确模拟突出的蒸发或凝结至关重要.
- 洞穴特征和峰值崩压力在相同电荷的不同爆炸深度下显著不同.
- 在恒定的爆炸深度下,孔腔体积不会随着电荷量线性增加.
结论:
- 两流体相位过渡模型有效地捕捉了深水爆炸中的空洞化动态.
- 爆炸的参数,如深度和电荷大小,极大地影响了化行为和相关压力.
- 这些发现为了解和预测深水爆炸的动态特征提供了宝贵的见解.
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