Low-density polyethylene extreme deformation in laboratory ballistic launchers

N. V. Bykov, M. S. Tovarnov
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Abstract

The paper is devoted to the study of high-speed extrusion of polyethylene in the conical nozzle of a ballistic laboratory launcher. The acceleration of the assembly, consisting of a cylindrical polyethylene piston and two metal cylinders located in front of and behind it, is carried out using a compressed gas ballistic launcher. For a theoretical description of the assembly acceleration and extrusion of polyethylene, a quasi-one-dimensional mathematical model is utilized. Polyethylene is considered as a viscoplastic fluid. Equations are solved by a numerical method on a moving mesh. The two-dimensional axisymmetric problem is solved using ANSYS Autodyn package. Experimental studies are carried out on a ballistic laboratory setup, accelerating the assembly to speeds of 572 m/s and 900 m/s. Good agreement of theoretical and experimental results are shown. As a result of the study, it was shown that the speed of the front metal element increases one and a half times compared with the speed of entry. The analysis of the possibility of accelerating the projectile was performed using the effect of extrusion and without it. It was shown that extrusion gives an increase in speed for projectiles of small mass.The paper is devoted to the study of high-speed extrusion of polyethylene in the conical nozzle of a ballistic laboratory launcher. The acceleration of the assembly, consisting of a cylindrical polyethylene piston and two metal cylinders located in front of and behind it, is carried out using a compressed gas ballistic launcher. For a theoretical description of the assembly acceleration and extrusion of polyethylene, a quasi-one-dimensional mathematical model is utilized. Polyethylene is considered as a viscoplastic fluid. Equations are solved by a numerical method on a moving mesh. The two-dimensional axisymmetric problem is solved using ANSYS Autodyn package. Experimental studies are carried out on a ballistic laboratory setup, accelerating the assembly to speeds of 572 m/s and 900 m/s. Good agreement of theoretical and experimental results are shown. As a result of the study, it was shown that the speed of the front metal element increases one and a half times compared with the speed of entry. The anal...
实验室弹道发射器中的低密度聚乙烯极端变形
本文研究了聚乙烯在弹道实验室发射装置锥形喷嘴内的高速挤压。该组件由一个圆柱形聚乙烯活塞和位于其前后的两个金属圆柱体组成,使用压缩气体弹道发射器进行加速。采用准一维数学模型对聚乙烯的装配加速度和挤出过程进行了理论描述。聚乙烯被认为是一种粘塑性流体。在运动网格上用数值方法求解方程。利用ANSYS Autodyn软件包对二维轴对称问题进行求解。实验研究在弹道实验室装置上进行,将装配速度加速到572米/秒和900米/秒。理论与实验结果吻合较好。研究结果表明,与进入速度相比,前金属元件的速度增加了1.5倍。分析了在有挤压作用和无挤压作用的情况下,弹丸加速的可能性。结果表明,挤压使小质量弹丸的速度增加。本文研究了聚乙烯在弹道实验室发射装置锥形喷嘴内的高速挤压。该组件由一个圆柱形聚乙烯活塞和位于其前后的两个金属圆柱体组成,使用压缩气体弹道发射器进行加速。采用准一维数学模型对聚乙烯的装配加速度和挤出过程进行了理论描述。聚乙烯被认为是一种粘塑性流体。在运动网格上用数值方法求解方程。利用ANSYS Autodyn软件包对二维轴对称问题进行求解。实验研究在弹道实验室装置上进行,将装配速度加速到572米/秒和900米/秒。理论与实验结果吻合较好。研究结果表明,与进入速度相比,前金属元件的速度增加了1.5倍。肛门……
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