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Accessing collision welding process window for titanium/copper welds with vaporizing foil actuators and grooved targets

机译:进入带有汽化箔执行器和开槽目标的钛/铜焊接的碰撞焊接工艺窗口

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摘要

A method for accurate, low-cost, lab-scale determination of the optimal collision angles and velocities for collision welding of a given combination of materials has been introduced. 0.508 mm thick grade 2 CP Ti sheets were launched at various velocities toward a Cu 110 target with grooves of angles ranging from 8 to 28, machined on the collision side. Capacitor bank-driven aluminum vaporizing foil actuators operated at input energy levels up to 12kJ and currents up to 140kA were used to launch the flyer sheets. Velocity was measured with high temporal resolution using a photonic Doppler velocimetry (PDV) system. Collision velocities ranged from 440 m/s to 860 m/s. The welded assemblies were sectioned and the weld interfaces were observed via scanning electron microscopy. For each collision angle there were certain collision velocities which yielded a wavy interface. Welding velocity for transition from smooth to wavy interfaces for each collision angle was used to determine the corresponding transition Reynolds number and was compared to existing results in literature. The uniqueness of this process lies in its small scale and ease of implementation.
机译:介绍了一种精确,低成本,实验室规模确定给定材料组合的最佳碰撞角和速度的方法。将0.508毫米厚的2级CP Ti板以不同的速度朝Cu 110靶发射,该Cu 110靶在碰撞侧加工出角度范围为8到28的沟槽。电容器组驱动的铝汽化铝箔执行器以高达12kJ的输入能量水平和高达140kA的电流运行,用于发射传单。使用光子多普勒测速(PDV)系统以高时间分辨率测量速度。碰撞速度范围为440 m / s至860 m / s。切割焊接组件,并通过扫描电子显微镜观察焊接界面。对于每个碰撞角度,都有一定的碰撞速度,从而产生波浪形的界面。对于每个碰撞角度,从光滑界面到波浪界面过渡的焊接速度用于确定相应的雷诺数过渡,并与文献中的现有结果进行比较。该过程的独特之处在于其规模小且易于实施。

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