Tubular cubic polynomial sonotrode for green and sustainable ultrasonic welding technology

Khurram Hameed Mughal, Salman Abubakar Bugvi, Muhammad Fawad Jamil, Muhammad Asif Mahmood Qureshi, Fazal Ahmad Khalid, Asif Ali Qaiser
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Abstract

Ultrasonic Welding has emerged as a sustainable, green, and efficient manufacturing technology. This technique joins unique and advanced materials quickly, with good welding quality through high-intensity vibrations. Ultrasonic welding uses relatively low energy and incurs lower costs compared to various conventional welding systems. One of the key aspects to ensure high welding quality and strength, along with the transmission of high forces, is the design of an efficient ultrasonic sonotrode. This research study is aimed at proposing, evaluating, and testing the design of a tubular cubic polynomial sonotrode using finite element analysis. This novel ultrasonic welding sonotrode operates with low stresses and high displacement amplification. The performance of the proposed ultrasonic welding sonotrode design was compared with the commercially popular sonotrode, as well as cubic Bezier, exponential, and conical designs. This comparison was done in terms of harmonic excitation response, stresses, axial stiffness, displacement amplification, and factor of safety. The performance characteristics were also evaluated along the sonotrode length. The proposed sonotrode was found to be superior in terms of high vibration amplification and axial stiffness within safe stress limits. The benefits of the flexible design as per requirement to attain a higher displacement amplitude at the output end; consequently, lower welding forces were also realized. The proposed design is an improvement towards an efficient and green manufacturing technology involving reduced cost, energy consumption, use of consumables, effort, waste generation, and harm to the environment.
用于绿色可持续超声焊接技术的管状三次多项式声电极
超声波焊接已成为一种可持续、绿色、高效的制造技术。该技术通过高强度振动快速连接独特和先进的材料,并具有良好的焊接质量。与各种传统焊接系统相比,超声波焊接能耗相对较低,成本也较低。确保高焊接质量和强度,以及高力传输的关键方面之一是设计高效的超声波超声电极。本研究旨在利用有限元分析提出、评估和测试管状三次多项式声极管的设计。这种新型超声焊接超声电极具有低应力和高位移放大的特点。将所提出的超声焊接声电极设计的性能与市售的声电极、三次贝塞尔设计、指数设计和锥形设计进行了比较。在谐波激励响应、应力、轴向刚度、位移放大和安全系数方面进行了比较。性能特性也沿着声纳电极的长度进行了评估。所提出的超声电极在高振动放大和轴向刚度方面优于安全应力限制。按要求灵活设计的好处是在输出端获得更高的位移幅值;因此,也实现了较低的焊接力。提出的设计是对高效和绿色制造技术的改进,涉及降低成本、能源消耗、消耗品的使用、努力、废物产生和对环境的危害。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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