首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到18条相似文献,搜索用时 109 毫秒
1.
对钨合金长杆弹垂直侵彻横向运动钢板的偏转角变化规律进行了理论及仿真研究。采用刚体力学理论推导了刚体长杆弹侵彻横向运动钢板的偏转角公式。利用ANSYS/LS-DYNA有限元软件对RIGID及STEINBERG两种材料模型长杆弹垂直侵彻横向运动JOHNSON-COOK模型钢板进行了仿真,根据长杆弹头部和尾部横向相对运动规律,得到了长杆弹的偏转规律。仿真结果表明:板的横向运动速度越大,长杆弹偏转角越大,且偏转角在整个侵彻过程中一直保持增大的趋势。  相似文献   

2.
利用弹体非正侵彻的计算模型对弹体非正侵彻过程中弹头表面阻力进行了分析,提出了弹目非正侵彻控制方程.利用有限元分析软件LS-DYNA对弹引系统在不同攻角下侵彻混凝土靶板时的轴向过载、横向过载、横向偏移以及弹体姿态角等的变化进行了仿真分析,得出了弹体横向过载与姿态角的对应关系.实弹试验结果与理论计算及数值仿真结果吻合较好....  相似文献   

3.
为了研究加筋靶板的运动对半穿甲战斗部侵彻性能的影响,采用ANSYS/LS-DYNA有限元软件对截卵形半穿甲战斗部侵彻运动加筋靶板全过程进行了数值模拟,分析了在不同弹着点处加筋靶板的运动对弹体偏转、弹体剩余动能以及弹体过载的影响。研究结果表明:弹体侵彻运动加筋靶板时发生明显偏转,侵彻性能降低,加速度变化曲线出现新的峰值且该峰值随着靶板速度增大而增大。同时,不同弹着点处弹体偏转角的变化过程,加速度变化规律与峰值大小以及靶板抗弹性能都有显著区别。  相似文献   

4.
利用Ls—DYNA软件对钨合金长杆弹垂直侵彻单层和双层横向运动钢板进行了数值计算。通过分析长杆弹的塑性变形、速度降、动能降和横向速度,得到了单层和双层板横向运动速度与影响长杆弹侵彻能力因素的关系。仿真结果表明:随着运动板速度的增加,运动板对长杆弹的侵蚀加剧,长杆弹的速度降、动能降增大;运动板相同速度下,虽然单层板的冲击能使长杆弹获得较大横向速度,但双层板比单层板对长杆弹的干扰效果更明显。  相似文献   

5.
为分析着靶参数对截锥形半穿甲战斗部侵彻性能的影响程度,通过正交试验制定了试验方案并进行了数值仿真,同时对正交试验结果数据进行了灰关联分析,得到了弹体侵彻过程中着靶参数与弹体最大过载、速度变化量以及弹体偏转角之间的关联程度。分析结果表明:着靶参数对弹体最大过载的影响程度排序为:靶板厚度入射速度入射角度攻角;对弹体速度变化量的影响程度排序为:靶板厚度入射角度入射速度攻角;对弹体偏转角的影响程度排序依次为:弹体攻角入射速度入射角度靶板厚度。分析结论可为着靶姿态的控制及舰船防护提供一定的参考。  相似文献   

6.
利用有限元软件ANSYS/LS-DYNA对钨合金长杆弹侵彻陶瓷复合装甲与均质钢进行了数值仿真。重点分析了长杆弹垂直侵彻复合装甲全过程,研究了钨合金长杆弹体入射速度与弹体剩余动能、损失动能之间的关系。同时,拟合了长杆弹在不同入射速度侵彻均质钢靶下弹体剩余动能与靶板厚度之间的关系。并根据终点效应关系式,建立了弹体在不同入射速度下陶瓷复合装甲的均质钢等效靶板。分析结果表明,陶瓷复合装甲等效均质钢靶板厚度随弹体入射速度呈先增加后稳定趋势。研究结果对毁伤效能试验与战斗部设计等具有一定的参考价值和借鉴意义。  相似文献   

7.
采用数值模拟技术研究了由3种不同截面形状的钨芯外包覆一层钢,形成的钢包覆层复合长杆弹在入射速度为1200m/s~1700m/s时对陶瓷/金属复合靶板的侵彻过程。结果表明:对于同一入射速度、相同弹体长度、同种材料的弹芯和包覆层以及靶板材料而言,等面积的六边形截面钨芯复合长杆弹的侵彻深度明显大于圆形及方形截面,方形及六边形截面与和它们等外接圆形成的圆形截面复合长杆弹侵彻深度没有明显差别,本研究认为这是与不同截面钨芯的外接圆直径直接相关。六边形截面长杆弹侵彻过程中的自锐化现象是其侵彻深度明显大于其它两种弹体的主要原因。  相似文献   

8.
利用LS—DYNA软件分析弹体攻角和目标运动对穿甲过程中装药安定性、弹体剩余速度及弹头姿态的影响。在穿甲过程中,弹体速度为300m/s,攻角分别为0°,10°和20°,弹体和目标板选择了考虑应变、应变率和温度效应的Johnson—cook材料模型。结果表明:随攻角的增大,装药局部受力显著增大,弹体剩余速度下降,弹头发生偏转;目标运动使穿甲能力减弱,但目标运动会使装药受到的外力在一定程度上减少。  相似文献   

9.
设计了30mm半穿甲弹斜侵彻陶瓷/钢复合靶的弹道试验,采用高速摄像记录了弹靶作用过程,研究了弹着角、弹丸位移以及背板变形挠度的图像测量方法,通过仿真验证了该方法的可行性与准确性.基于高速摄像序列图像对弹靶作用过程进行了测量分析,结合试验数据研究了弹着角对半穿甲弹侵彻效能的影响.结果表明:弹着角导致弹丸受靶板的不对称阻力作用,侧向力及侧向力矩使得弹丸在侵彻过程中不断偏转,表现为侵彻路径呈曲线;在相同速度条件下,随着弹着角的增大,侵靶时间延长,背板变形挠度减小,侵彻效能降低.  相似文献   

10.
基于动力学相似的动态风洞投放试验研究了尖拱圆柱体从空腔中分离的气动及运动特性,并创新性地采用快响应压敏漆技术对动态运动模型表面上的压力分布测量进行初步探索研究,试验中探究了不同空腔模型攻角(α=0°,-1.5°,-3°)及弹体在空腔内的不同位置(L0=25 mm, 39 mm)对内埋武器机弹分离特性的影响。结果表明:弹体在空腔内的位置对机弹分离运动特性的影响最大,当L0=25 mm时,弹体模型头部区域压力明显高于后部区域压力,产生抬头俯仰力矩,导致弹体模型俯仰角逐渐增大,最终碰撞空腔模型,降低载机攻角并未改变弹体模型碰撞空腔模型的效果。当L0=39 mm时,弹体模型在给定的攻角下均能安全地从空腔中分离。  相似文献   

11.
为研究球形头部弹丸高速侵彻运动靶板的侵彻规律,运用LS-DYNA动力分析软件仿真研究了不同条件下球形头部弹丸对靶板的正侵彻效应,获得了运动靶板厚度、材料和弹丸着速3种参数对侵彻过程中弹丸弹道偏移、翻转角度和剩余速度的响应规律。结果表明,随着着速的提高,弹丸翻转幅度和弹道偏移量逐渐减小;随着靶板厚度的增加,弹丸正向翻转角度和轴向剩余速度显著减小,而弹道偏移量增大;3种材料运动靶板中,4340钢靶对弹丸弹道偏移、翻转角度和剩余速度的影响最大,Weldox460钢次之,LY12铝最小。  相似文献   

12.
《防务技术》2020,16(3):596-608
A perforation model is developed to predict the attitude deflection in the oblique perforation of concrete targets by a rigid projectile, in which the inertial moment of the projectile is introduced, together with taking the attitude deflection during the shear plugging sub-stage into account, and the shape of the plug formed on the rear surface of target is also re-investigated. Moreover, a new classification of concrete targets is proposed based on the target thickness, with which the attitude deflections in different kinds of concrete targets are analyzed. It is found that the numerical results by using the new perforation model are in good agreement with the previous experimental data and simulated results. Furthermore, the variations of the attitude deflection with the initial conditions (the initial attitude angle and the initial impact velocity) are investigated.  相似文献   

13.
为了提高制导炮弹的精确打击能力,研究了一种非线性滑模变结构控制器。利用近似最优控制理论确定了非线性滑模面,并设计了舵面的控制律,使得系统状态快速达到并保持在滑模面,采用指数趋近律和饱和函数减轻了滑模控制带来的抖振,实现对控制指令的跟踪。仿真表明,设计的非线性控制器能有效处理制导炮弹的非线性耦合问题,快速响应控制指令,并且在气动参数摄动时体现出较强的鲁棒性,具有良好的工程应用前景。  相似文献   

14.
《防务技术》2020,16(1):77-87
The effects of metallic material on the penetration resistances of ceramic-metal hybrid structures against vertical long-rod tungsten projectiles were studied by artillery-launched experiments and numerical simulation. Hybrid structures with rectangular cores in transverse orthogonal arrangement and slide-fitting ceramic inserts of zirconia toughened alumina prisms were fabricated with titanium alloy TC4 (Ti6Al4V), AISI 4340 steel and 7075 aluminum alloy panels, respectively. The results showed that the hybrid structure of Ti6Al4V exhibited the highest penetration resistance, followed by that of 7075 aluminum alloy with the same area density. The penetration resistance of the hybrid structure of AISI 4340 steel was the lowest. The underlying mechanisms showed that the metallic material of a ceramic-metal hybrid structure can directly affect its energy absorption from the impact projectile, which further affects its penetration resistance. Different metallic frames exhibited different failure characteristics, resulting in different constraint conditions or support conditions for ceramic prisms. The high penetration resistance of the Ti6Al4V hybrid structure was due to its stronger back support to ceramic prisms as compared with that of AISI 4340 steel hybrid structure, and better constraint condition for ceramic prisms by metallic webs as compared with that of 7075 aluminum alloy hybrid structure. The results of mass efficiency and thickness efficiency showed that the Ti6Al4V hybrid structure has advantages in reducing both the thickness and the mass of protective structure. In addition, because the ceramic-metal hybrid structures in the present work were heterogeneous, impact position has slight influence on their penetration resistances.  相似文献   

15.
本文以实验结果为依据,首先分析了塑料弹体影响弹丸膛内运动的物理性能,然后结合旋转弹丸的膛内运动特征,经过模拟试验,采用数学拟合法,初步建立旋转稳定弹塑料弹体工程设计计算的数学模型(包括结构尺寸设计计算、强度计算和内弹道计算)。  相似文献   

16.
《防务技术》2020,16(1):50-68
The interface defeat phenomenon always occurs when a long-rod projectile impacting on the ceramic target with certain velocity, i.e., the projectile is forced to flow radially on the surface of ceramic plates for a period of time without significant penetration. Interface defeat has a direct effect upon the ballistic performance of the armor piercing projectile, which is studied numerically and theoretically at present. Firstly, by modeling the projectiles and ceramic targets with the SPH (Smoothed Particle Hydrodynamics) particles and Lagrange finite elements, the systematic numerical simulations on interface defeat are performed with the commercial finite element program AUTODYN. Three different responses, i.e., complete interface defeat, dwell and direct penetration, are reproduced in different types of ceramic targets (bare, buffered, radially confined and oblique). Furthermore, by adopting the validated numerical algorithms, constitutive models and the corresponding material parameters, the influences of projectile (material, diameter, nose shape), constitutive models of ceramic (JH-1 and JH-2 models), buffer and cover plate (thickness, constraints, material), as well as the prestress acted on the target (radial and hydrostatic) on the interface defeat (transition velocity and dwell time) are systematically investigated. Finally, based on the energy conservation approach and taking the strain rate effect of ceramic material into account, a modified model for predicting the upper limit of transition velocity is proposed and validated. The present work and derived conclusions can provide helpful reference for the design and optimization of both the long-rod projectile and ceramic armor.  相似文献   

17.
为了研究运动参数和弹头外形对弹体斜入水过程的影响规律,采用气液两相流体积分数和水汽空化模型,通过嵌套网格实现刚体三自由度运动学和动力学耦合,模拟了弹体以80~100 m/s速度倾斜入水开空泡阶段的运动过程。经文献实验验证,入水弹体速度与位移的误差为0~6%和-8%~0,转动角度误差为-6%~0。通过对入水速度和入水角度的多工况模拟研究,发现入水速度增大,弹体轴向冲击载荷增大,最大载荷与速度的平方呈线性关系,弹体速度非线性衰减率大;入水角增大,弹体转动角速率减小,运动稳定性强,速度衰减率不受入水角影响。与圆锥头部弹体相比,采用头部阶梯状修型后的弹体的平均速度衰减率、转动角速率和最大轴向冲击载荷分别降低到66.7%、40%和77.2%,显著提高了运动稳定性。  相似文献   

18.
分析了高原环境低空气密度对弹丸动态稳定性的影响。给出了弹道坐标系中的力方程组和非滚转弹体坐标系中的力矩方程组,并通过线性化方法得到弹丸角运动的状态空间模型。列出了角运动状态矩阵的四个特征根,并利用复数平方根计算方法得到特征根实部的表达式。提出弹丸动态稳定性稳定因子的新定义,并证明新的动态稳定条件与传统的动态稳定条件是一致的。讨论了低空气密度对尾翼稳定弹和旋转稳定弹动态稳定性的影响,并通过仿真说明弹丸在高原条件和平原条件下的动态稳定性存在差异。  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号