Evaluation of the Cavitation Fluid Characteristics of the Bullet across the Medium into the Water at Different Velocities

IF 1.1 4区 工程技术 Q4 MECHANICS
Y. Liu, L. Wang, X. Peng, Y. Gu, Z. Zhou, P. Liu, L. Huang
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引用次数: 0

Abstract

This paper studies the evolution and fluid distribution characteristics of a high-speed projectile’s cavity in the water based on joint research, a method involving experiment and numerical simulation. Specifically, we develop an experimental platform and a numerical calculation model for a high-speed projectile to observe its initial cavity evolution characteristics in the water at different velocities and close ranges. Additionally, this work investigates the evolution mechanism of the cavitation process and its fluid distribution law inside the cavity and studies the evolution characteristics of the cavitation stage under different velocities. The results reveal that after the projectile enters the water, the cavity is gourd-shaped and symmetrical, with a necking phenomenon at the tail and the cavity falling off. The cavitation process can be divided into the surface closure, saturation, deep closure, and collapse stages according to the fluid distribution changes in the cavity. Suppose the projectile has a certain speed with the water, its velocity increases. In that case, the cavity generation rate decreases, the growth rate of the water vapor volume in the cavity decreases, the peak water vapor volume content reduces, and the volume of air in the saturation phase of the cavity becomes increases having a range of 6% to 9%. Additionally, the cavity surface closure dimensionless time grows logarithmically as the velocity changes from 0 m/s to 500 m/s, the cavity saturation dimensionless time decreases approximately linearly, and the cavity depth closure dimensionless time is unaffected by velocity changes.
评估子弹以不同速度穿过介质进入水中时的空化流体特性
本文采用实验和数值模拟相结合的方法,在联合研究的基础上研究了高速弹丸在水中的空腔演化和流体分布特征。具体而言,我们建立了高速弹丸的实验平台和数值计算模型,以观察其在不同速度和近距离下的水中初始空腔演化特征。此外,本研究还探讨了空化过程的演化机理及其在空腔内的流体分布规律,并研究了不同速度下空化阶段的演化特征。结果表明,弹丸入水后,空腔呈葫芦状对称分布,尾部出现缩颈现象,空腔脱落。根据空腔内流体分布的变化,空化过程可分为表面封闭阶段、饱和阶段、深层封闭阶段和塌陷阶段。假设弹丸在水中有一定的速度,其速度会增加。在这种情况下,空腔产生率降低,空腔中水蒸气体积增长率降低,水蒸气体积含量峰值降低,空腔饱和阶段的空气体积增加,增加幅度为 6% 至 9%。此外,当速度从 0 米/秒变化到 500 米/秒时,空腔表面闭合无量纲时间呈对数增长,空腔饱和无量纲时间近似线性下降,空腔深度闭合无量纲时间不受速度变化的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Applied Fluid Mechanics
Journal of Applied Fluid Mechanics THERMODYNAMICS-MECHANICS
CiteScore
2.00
自引率
20.00%
发文量
138
审稿时长
>12 weeks
期刊介绍: The Journal of Applied Fluid Mechanics (JAFM) is an international, peer-reviewed journal which covers a wide range of theoretical, numerical and experimental aspects in fluid mechanics. The emphasis is on the applications in different engineering fields rather than on pure mathematical or physical aspects in fluid mechanics. Although many high quality journals pertaining to different aspects of fluid mechanics presently exist, research in the field is rapidly escalating. The motivation for this new fluid mechanics journal is driven by the following points: (1) there is a need to have an e-journal accessible to all fluid mechanics researchers, (2) scientists from third- world countries need a venue that does not incur publication costs, (3) quality papers deserve rapid and fast publication through an efficient peer review process, and (4) an outlet is needed for rapid dissemination of fluid mechanics conferences held in Asian countries. Pertaining to this latter point, there presently exist some excellent conferences devoted to the promotion of fluid mechanics in the region such as the Asian Congress of Fluid Mechanics which began in 1980 and nominally takes place in one of the Asian countries every two years. We hope that the proposed journal provides and additional impetus for promoting applied fluids research and associated activities in this continent. The journal is under the umbrella of the Physics Society of Iran with the collaboration of Isfahan University of Technology (IUT) .
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