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Design of wideband tonpilz transducers for underwater SONAR applications with finite element model

机译:具有有限元模型的水下声纳应用的宽带铜区换能器设计

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摘要

This paper describes the designing and optimization of tonpilz type transducers based on number of layers, width and thicknesses and type of active materials, dimensions of head and tail mass by exploiting finite element models for their effective and optimized usage in underwater SONAR applications. Geometry parameters of tonpilz transducers have been studied in terms of active piezoelectric stack and associated components comprised of head and tail masses and optimized structure is explored. Piezoelectric stack including piezoceramic material (PZT-4) and single crystal (PMNPT), is utilized for underwater acoustic generation, while Aluminum is taken as head mass and highly attenuated material stainless steel is used for tail mass. Performance of tonpilz transducer has been investigated and evaluated in terms of total radiating power (TRP), transmitting voltage response (TVR), directivity index and specific acoustic impedance for all designed structures. Comparison is carried out for the optimized structure that provides high sensitive frequency region in form of constant TVR and maximum sound directivity used for accurate under water detection applications. TVR in the sensitive region using PMNPT as the stack material shows enhanced results as compared to PZT-4. Sound intensity level in terms of TRP peaks also rises with a greater number of layers for both PMNPT and PZT-4 driving stack materials. Furthermore, it has been observed that Driving stack material is more effective than the other components of Tonpilz transducer because it effects the flat response and also enhances the TVR response. Secondly, head mass of the Tonpilz transducer is more effective than the remaining because resonance and flexural frequency depend on it. (C) 2021 Elsevier Ltd. All rights reserved.
机译:本文通过利用有限元模型在水下声纳应用中的有效和优化的使用,基于层,宽度和厚度和活性材料的尺寸,头部和尾部型,尺寸和尾部质量的尺寸和尾部质量的设计和优化。已经在有源压电叠层方面研究了TONPILZ换能器的几何参数,并探讨了由头部和尾部肿块组成的相关部件和优化的结构。包括压电陶瓷材料(PZT-4)和单晶(PMNPT)的压电叠层用于水下声学产生,而铝被视为头部质量,并且高度减弱的材料不锈钢用于尾部质量。已经研究了TONPILZ传感器的性能,并根据全部辐射功率(TRP),传输电压响应(TVR),方向性指数和特定声阻抗进行所有设计的结构。对优化结构进行比较,该结构以恒定的TVR形式提供高敏感频率区域和用于在水检测应用下准确的最大声音方向性。随着PMNPT的敏感区域,随着堆叠材料显示与PZT-4相比的增强结果,TVR。在TRP峰值方面的声强水平也升高了PMNPT和PZT-4驱动叠层材料的更多层。此外,已经观察到,驱动堆材料比Tonpilz换能器的其他组件更有效,因为它影响了平坦的响应并且还增强了TVR响应。其次,Tonpilz换能器的头部质量比其余更有效,因为谐振和弯曲频率取决于其。 (c)2021 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Applied Acoustics》 |2021年第12期|108293.1-108293.20|共20页
  • 作者单位

    Pakistan Inst Engn & Appl Sci PIEAS Dept Nucl Engn Islamabad 45650 Pakistan;

    Pakistan Inst Engn & Appl Sci PIEAS Dept Elect Engn Islamabad 45650 Pakistan;

    Natl Yunlin Univ Sci & Technol Future Technol Res Ctr 123 Univ Rd Sect 3 Touliu 64002 Yunlin Taiwan|COMSATS Univ Islamabad Dept Elect & Comp Engn Attock Campus Attock 43600 Pakistan;

    Pakistan Inst Engn & Appl Sci PIEAS Dept Comp & Informat Sci Islamabad 45650 Pakistan|Pakistan Inst Engn & Appl Sci PIEAS Ctr Math Sci Islamabad 45650 Pakistan;

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

    Tonpilz transducer; SONAR; Underwater applications; Finite element modeling;

    机译:Tonpilz换能器;声纳;水下应用;有限元建模;

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