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Experimental and numerical studies on ultrasonic welding of dissimilar metals

机译:不同金属超声波焊接的实验性和数值研究

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Ultrasonic metal welding (USMW) is gaining popularity for joining thin and dissimilar metal sheets and foils. In the present study, a new type of booster and horn is proposed and modeled with adequate precision. The modal analysis module of finite element method (FEM) is used to analyze the effects of different step lengths and fillet radius on its natural frequency. The dynamic analysis has also been performed to find out the stress distribution in both parts under cyclic loading conditions. It enables to locate the highly stressed nodal regions (hot areas), and the relevant temperature field is consequently determined. A 0.02 and 0.008% errors have been noticed for horn and booster while comparing FEM results with the experimental values respectively. The experiments are conducted on the 0.3Al-0.3Cu specimens with the designed parts to study the effects of various controllable process parameters like vibration amplitude, weld pressure, and weld time on the tensile shear and T-peel strengths. Intermetallic compound of Al2Cu with a layer of 1.5-mu m thickness has been formed for the good weld samples, and it is very much sensitive towards the parameter combinations. This paper provides an insight not only to produce high-quality welds but also to solve many industrial issues by explaining the comprehensive background theories on fatigue and vibro-thermographic analyses of the booster and horn along with detailed microscopic analyses of fractured surface.
机译:超声波金属焊接(USMW)越来越受加入薄型和异种金属板和箔的普及。在本研究中,提出了一种新型的助推器和喇叭,并以足够的精度建模。有限元方法(FEM)的模态分析模块用于分析不同步长和圆角半径对其自然频率的影响。还已经进行了动态分析,以在循环负载条件下找出两个部件中的应力分布。它能够找到高强调的节点区域(热区域),并因此确定相关的温度场。对于喇叭和助推器,喇叭和助推器的误差分别注意到了0.02和0.008%的误差,同时分别将FEM结果与实验值进行比较。实验在0.3al-0.3Cu标本上进行,设计件,研究各种可控过程参数等各种可控过程参数等振动幅度,焊接压力和焊接时间在拉伸剪切和T剥离强度上的影响。为良好的焊接样品形成了具有1.5μm厚度的层的Al2Cu的金属间化合物,并且对参数组合非常敏感。本文不仅能够生产高质量的焊缝,还提供了一种洞察力,而且还通过解释增强器和喇叭的疲劳和振动热成分分析以及骨折表面的详细微观分析来解决许多工业问题。

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