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Research on a Composite Power-Superimposed Ultrasonic Vibrator for Wire Drawing

机译:拉丝复合功率叠加超声波振子的研究

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摘要

Vibration power and amplitude are essential factors in ultrasonic drawing processes, especially for difficult-to-draw materials like titanium and its alloys. This paper presents a new composite power-superimposed ultrasonic vibrator for wire drawing which was driven by three separate ultrasonic transducers. The transducers were uniformly distributed around the circular cross section of the vibrator, with their axes along the radial direction and pointing to the center. The vibrator can concentrate the vibrational energy of multiple transducers and transform the radial vibration into a longitudinal vibrator because of the Poisson effect and therefore output larger vibration power and amplitude. In the paper, the four-terminal network method was used to establish the vibration equations of the vibrator. The FE model was established in ANSYS to investigate its characteristics under various excitation conditions. A prototype was manufactured and measurements were performed to verify the validation of FEA results. The results matched well with the theoretical results. It was found that the composite vibrator achieved an amplitude of about 40 μm when driven by square wave signals with 120° in phase difference, which implies a potential way of applying ultrasonic vibration to the processing of difficult-to-draw materials.
机译:振动功率和振幅是超声拉伸过程中的重要因素,特别是对于难于拉伸的材料(如钛及其合金)而言。本文提出了一种用于拉丝的新型复合功率叠加超声振动器,该振动器由三个独立的超声换能器驱动。换能器围绕振动器的圆形横截面均匀分布,其轴线沿径向方向并指向中心。由于泊松效应,振动器可以集中多个换能器的振动能量,并将径向振动转换为纵向振动器,从而输出更大的振动功率和振幅。本文采用四端网络法建立振动器的振动方程。在ANSYS中建立了有限元模型,以研究其在各种激励条件下的特性。制造了原型,并进行了测量以验证FEA结果的有效性。结果与理论结果吻合良好。已经发现,当由相位差为120°的方波信号驱动时,复合振动器的振幅约为40μm,这暗示了将超声振动应用于难拉伸材料加工的一种潜在方法。

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