...
首页> 外文期刊>Ultrasonics >Eigenfrequency characterization and tuning of Ti-6Al-4V ultrasonic horn at high temperatures for glass molding
【24h】

Eigenfrequency characterization and tuning of Ti-6Al-4V ultrasonic horn at high temperatures for glass molding

机译:玻璃成型高温下TI-6AL-4V超声喇叭的特征初探和调谐

获取原文
获取原文并翻译 | 示例
           

摘要

Glass molding assisted by ultrasonic vibration is a promising yet challenging technique for microoptics fabrication. During glass molding localized high temperatures (300-600 degrees C) often result in transformed eigenfrequencies of the ultrasonic horn, and hence decreased electroacoustic efficiencies of the ultrasonic system. This study proposes a systematic methodology to optimally tune the objective eigenfrequency of the horn at elevated temperatures. Theoretical and numerical analyses are first performed to characterize the thermally disturbed modal characteristics of the horn. Numerical results indicate that the longitudinal eigenfrequency of the horn decreases significantly with the increasing molding temperature Tm. To compensate for this eigenfrequency decrease, numerical size optimization is then conducted and a two-segment cylindrical horn with an optimized tool (68.62 mm in length) is obtained. In situ eigenfrequency measurements of the optimized horn are further implemented at varying molding temperatures. Experimental results suggest that the tuned eigenfrequencies of the optimized Ti-6Al-4V horn are within the prescribed frequency-tracking range (35 +/- 0.5 kHz) over a wide range of molding temperatures (226-641 degrees C). Thus, by merely pre-adjusting the theoretical eigenlength of the horn, a well-tuned and adaptable high-temperature ultrasonic vibration system can be effectively developed. In addition to glass molding, the proposed methodology applies to design and optimization of ultrasonic horns for diverse thermally involved processes.
机译:通过超声波振动辅助的玻璃模塑是一种很有希望的微光学制造技术。在玻璃模塑期间,局部高温(300-600℃)经常导致超声波的转化特征频率,因此降低了超声波系统的电声效率。本研究提出了一种系统的方法,以在升高的温度下最佳地调整喇叭的客观特征频率。首先进行理论和数值分析以表征喇叭的热扰动模态特征。数值结果表明,随着模塑温度Tm的增加,喇叭的纵向特征频率显着降低。为了补偿该特征频率下降,然后进行数值尺寸优化,并获得具有优化工具的双段圆柱形喇叭(长度为68.62mm)。在不同的成型温度下进一步实施优化喇叭的原位射门测量。实验结果表明,优化的Ti-6Al-4V喇叭的调整特征频率在规定的频率跟踪范围内(35 +/- 0.5 kHz),在各种成型温度(226-641摄氏度)。因此,通过预先调整喇叭的理论优点,可以有效地开发良好的调谐和适应的高温超声波振动系统。除了玻璃成型之外,所提出的方法还适用于超声波喇叭的设计和优化,用于多样化的热涉及过程。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号