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Experimental and numerical studies on the expanding fracture behavior of an explosively driven 1045 steel cylinder

机译:爆炸驱动的1045钢筒的扩展断裂行为的实验和数值研究

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The expanding fracture of an explosively driven 1045 steel cylinder was studied. The fracture process and the expanding velocity of the cylinder were recorded by a high-speed camera and a Photonic Doppler Velocimetry (PDV) probe in real time. The fragments were recovered and analyzed by metallurgical examinations. The fracture mechanism, expanding velocity and fragment size were analyzed respectively. We found that the adiabatic shear band (ASB) plays a key role in the fracture process of an expanding 1045 steel cylinder. As the deformation of the cylinder increases, multiple ASBs firstly initiate near the inner surface of the cylinder and then propagate outward along the maximum shear stress direction. After the ASBs arrive at the outer surface of the cylinder, all of the plastic deformation is concentrated in the ASBs, and meanwhile the cracks initiate near the outer surface of the cylinder and propagate inwardly along the developed ASBs. The terminal velocity of the cylinder was accurately predicted by the Gurney model and was found to be little influenced by the fracture mode. The width and thickness of the fragments were measured and found to be controlled by the momentum diffusion. Furtherly, we modeled the expanding fracture process of the cylinder. A three dimensional simulation results suggested that the propagation of the shock wave along the radial direction can't be neglected although the cylinder is very thin. At an early stage, the material near the inner and outer surface is in a compressive and tensile state, respectively, and the material in the middle of the cross-section is alternately in a tensile and compressive state due to the propagation of the shock waves. At a late stage, the whole cylinder is in a tensile state. In a two dimensional plane strain simulation, the initiation and propagation of multiple ASBs in the expanding cylinder were successfully replicated. (C) 2017 Elsevier Ltd. All rights reserved.
机译:研究了爆炸驱动的1045钢筒的扩展断裂。高速相机和光子多普勒测速仪(PDV)探头实时记录圆柱的断裂过程和膨胀速度。回收碎片并通过冶金检查进行分析。分别分析了断裂机理,膨胀速度和碎片尺寸。我们发现,绝热剪切带(ASB)在膨胀的1045钢圆柱体的断裂过程中起关键作用。随着圆柱体变形的增加,多个ASB首先在圆柱体的内表面附近开始,然后沿最大剪切应力方向向外传播。在ASB到达圆柱体的外表面后,所有塑性变形都集中在ASB中,同时裂纹在圆柱体的外表面附近开始并沿着已发展的ASB向内传播。圆柱的最终速度通过格尼(Gurney)模型准确预测,并且几乎不受断裂模式的影响。测量碎片的宽度和厚度,发现其受动量扩散控制。此外,我们对圆柱体的扩展断裂过程进行了建模。三维模拟结果表明,尽管圆柱体非常薄,但冲击波沿径向方向的传播仍不可忽略。在早期阶段,由于冲击波的传播,内表面和外表面附近的材料分别处于压缩状态和拉伸状态,而横截面中间的材料交替处于拉伸状态和压缩状态。 。在后期,整个圆柱体处于拉伸状态。在二维平面应变模拟中,成功地复制了膨胀圆柱体中多个ASB的引发和传播。 (C)2017 Elsevier Ltd.保留所有权利。

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