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Investigation of high-temperature ultrasonic transducer design using lithium niobate piezocomposite

机译:铌酸锂压电复合材料高温超声换能器设计研究

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摘要

The design and fabrication of lithium niobate piezocomposite transducers aims to achieve high-temperature ultrasonic NDT measurements at 400℃. In this paper, three aspects are investigated: exploring design parameters at room temperature by a comparison of experimental and modelled results for lithium niobate piezocomposites with an epoxy matrix; high-temperature electromechanical testing of lithium niobate piezocomposites with a cement matrix; and fabrication and testing of a high-temperature transducer operating at 400℃ for defect detection. The piezocomposites were made with a 1 -3 structure using a y/36°-cut lithium niobate single-crystal material. The typical piezocomposite thickness was 1 mm, with a pillar width of 0.4-0.8 mm, a kerf width of 0.5 mm, a volume fraction of lithium niobate of 30-40% and a pillar aspect ratio (pillar height to pillar width) ranging from 1 to 6. The operating frequency of the samples was between 1 MHz and 4 MHz. The results of the lithium niobate piezocomposite with an epoxy matrix and pillar aspect ratios of 3,4 and 6 indicated that a high coupling coefficien t k_r should be achievable, even with a low pillar aspect ratio. The piezocomposite material was heated in air to 400-500℃ over several thermal cycles and showed good stability of the electromechanical impedance spectrum. A 13 × 13 mm~2 transducer with an operating frequency of 3 MHz was used to demonstrate the detection of an artificial defect in a steel block using a high-temperature couplant on a hot plate at 400℃.
机译:铌酸锂压电复合换能器的设计与制造旨在实现在400℃下的高温超声NDT测量。本文从三个方面进行了研究:通过比较实验结果和模型结果比较铌酸锂压电复合材料与环氧基质的室温设计参数;水泥基铌酸锂压电复合材料的高温机电测试;于400℃工作的高温传感器的制造和测试,以进行缺陷检测。使用y / 36°切割的铌酸锂单晶材料制成具有1-3结构的压电复合材料。压电复合材料的典型厚度为1 mm,柱宽为0.4-0.8 mm,切口宽度为0.5 mm,铌酸锂的体积分数为30-40%,柱长宽比(柱高与柱宽)为1至6。样品的工作频率在1 MHz至4 MHz之间。环氧基质和柱长宽比为3,4和6的铌酸锂压电复合材料的结果表明,即使柱长宽比低,也应可获得高耦合系数t k_r。在数个热循环中将压电复合材料在空气中加热至400-500℃,并显示出良好的机电阻抗谱稳定性。使用工作频率为3 MHz的13×13 mm〜2传感器演示了在400℃的热板上使用高温耦合剂检测钢块中的人工缺陷的方法。

著录项

  • 来源
    《Insight》 |2015年第4期|193-199|共7页
  • 作者单位

    School of Engineering and Computing, University of the West of Scotland, Paisley Campus, Paisley, Renfrewshire PA1 2BE, UK;

    School of Chemical Engineering and Analytical Science, University of Manchester, Oxford Road, Manchester M13 9PL, UK;

    IntelligeNDT Systems & Services GmbH, AREVA NDE Solutions, Paul-Gossen-Str 100,91052 Erlangen, Germany;

    School of Engineering and Computing, University of the West of Scotland, Paisley Campus, Paisley, Renfrewshire PA1 2BE, UK;

    School of Engineering and Computing, University of the West of Scotland, Paisley Campus, Paisley, Renfrewshire PA1 2BE, UK;

    School of Engineering and Computing, University of the West of Scotland, Paisley Campus, Paisley, Renfrewshire PA1 2BE, UK;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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