摘要:
Zr基非晶合金具有高强度、高硬度等优异力学性能,作为战斗部破片毁伤元具有重要应用价值。为研究Zr基非晶合金破片在环向聚焦装药爆轰驱动下的飞散特性和变形行为,开展了圆柱形和喇叭形环向聚焦战斗部驱动Zr基非晶合金破片静爆试验,获得两种装药结构下破片的空间分布特性,并使用软回收装置对爆轰驱动的破片进行了回收。结合数值模拟方法,分析了装药母线形状对破片飞散行为的影响规律,探究了隔爆层厚度对破片破碎行为的作用特性。研究结果表明:相较于圆柱装药结构,喇叭形环向聚焦装药可显著降低破片飞散角,在聚焦曲率半径为600 mm时,70%破片所在的聚焦带宽度减小38.4%。在隔爆层厚度为8 mm时,破片虽发生轻度破碎,但主体破片仍能侵彻并贯穿3mm厚Q235钢靶。在一定范围内,减小聚焦母线曲率半径有利于破片汇聚,但曲率半径过小会导致破片间过度挤压而破碎;适当减小装药上端直径既可使聚焦带向靶面中心区域移动,也有利于改善聚焦带内破片分布的均匀性。由于Zr基非晶合金破片在爆轰驱动中易发生破碎,通过控制隔爆层厚度可对其破碎程度进行调控。实现Zr基非晶合金破片相对完整驱动的最佳隔爆层厚度为8 mm,若厚度小于该值,破片将出现严重破碎,若厚度大于该值,又会增加速度损失。本文的研究成果可为Zr基非晶合金材料在杀爆战斗部的工程应用提供数据和技术支撑。
Abstract:
Zr-based amorphous alloy has excellent mechanical properties such as high strength and high hardness. It has important application value as a warhead fragment damage element. To investigate the dispersion characteristics and deformation behavior of Zr-based amorphous alloy fragments driven by detonation of a circumferentially focusing charge, the static explosion tests of Zr-based amorphous alloy fragments driven by cylinder and trumpet-shaped circumferentially focusing warheads were carried out, and the spatial distribution characteristics of fragments under two charge structures were obtained. Using the fragment recovery device, the detonation-driven Zr-based amorphous alloy fragments were recovered. Combined with numerical simulations, the influence of the charge generatrix shape on the dispersion behavior of the fragments was analyzed, and the effect of the flameproof layer thickness on the fragmentation behavior of the fragments was investigated. The results show that, compared with the cylinder charge structure, the trumpet-shaped circumferentially focusing charge significantly reduces the fragment scattering angle. When the focusing radius of curvature is 600 mm, the width of the focusing band containing 70% of the fragments is reduced of 38.4%. Moreover, at the flameproof layer thickness of 8 mm, slight fragmentation occurs, but the main-body fragments can penetrate and damage a 3 mm thick Q235 steel target. Within a certain range, reducing the curvature radius of the focusing generatrix facilitates fragment convergence; However, if the radius is too small, it will cause excessive squeezing and fragmentation of the fragments. Appropriately reducing the diameter of the upper end of the charge can not only shift the focusing band toward the central area of the target, but also improve the uniformity of fragment distribution within the focusing band. Because Zr-based amorphous alloy fragments are prone to fragmentation under detonation loading, the degree of fragmentation can be controlled by adjusting the thickness of the flameproof layer. The optimal flameproof layer thickness for achieving relatively intact driving of Zr-based amorphous alloy fragments is 8 mm. If the thickness is less than this value, the fragments will be severely fragmented; If the thickness is greater than this value, velocity loss will increase. The research results in this paper provide data and technical support for the engineering application of Zr-based amorphous alloy materials in blast-fragmentation warheads.