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Effect of geometrical and material imperfections on damping flexural vibrations in plates with attached wedges of power law profile

机译:几何和材料缺陷对附有幂律轮廓楔形板的阻尼弯曲振动的影响

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摘要

In the present paper, an efficient method of damping structural vibrations using the acoustic black hole effect is further investigated experimentally. This method is based on some specific properties of flexural wave propagation in tapered plates (wedges) of power-law profile that have to be partially covered by narrow thin strips of absorbing layers. Ideally, if the power-law exponent of the profile is equal or larger than two, the flexural wave never reaches the sharp edge and therefore never reflects back, which constitutes the acoustic black hole effect. It has been previously established theoretically and confirmed experimentally that this method of damping structural vibrations is very efficient even in the presence of edge truncations. The present work describes the results of the experimental studies of the effects of manufacturing intolerances on damping flexural vibrations in wedge-like structures of power-law profile. In particular, the effect of mechanical damage resulting from the use of cutting tools to wedge tips is investigated, including tip curling and early truncation, as well as the placement of absorbing layers on different wedge surfaces. Also, the effects of welded and glued bonding of wedge attachments to basic rectangular plates (strips) are investigated. The results show that, although the above-mentioned geometrical and material imperfections reduce the damping efficiency by varying degrees, the method of damping structural vibrations using the acoustic black hole effect is robust enough and can be used widely without the need of high precision manufacturing.
机译:在本文中,通过实验进一步研究了利用声学黑洞效应来衰减结构振动的有效方法。该方法基于弯曲波在幂律轮廓的锥形板(楔形)中的某些特定传播特性,这些弯曲特性必须被吸收层的狭窄细条部分覆盖。理想情况下,如果轮廓的幂律指数等于或大于2,则弯曲波将永远不会到达尖锐边缘,因此也不会反射回来,这构成了声学黑洞效应。先前已经在理论上建立并通过实验证实,即使在存在边缘截断的情况下,这种阻尼结构振动的方法也是非常有效的。本工作描述了制造公差的影响对幂律轮廓的楔形结构中的阻尼弯曲振动的影响的实验研究结果。特别地,研究了由于使用切削工具对楔形尖端造成的机械损坏的影响,包括尖端卷曲和早期截断,以及吸收层在不同楔形表面上的放置。此外,还研究了楔形附件与基本矩形板(条)的焊接和胶合粘合的影响。结果表明,尽管上述几何和材料缺陷在不同程度上降低了阻尼效率,但是利用声学黑洞效应来阻尼结构振动的方法足够鲁棒,并且可以在不需要高精度制造的情况下被广泛使用。

著录项

  • 来源
    《Applied Acoustics》 |2012年第5期|p.514-523|共10页
  • 作者单位

    Department of Aeronautical and Automotive Engineering, Loughborough University, loughborough, Leicestershire LEI1 3TU, UK;

    Department of Aeronautical and Automotive Engineering, Loughborough University, loughborough, Leicestershire LEI1 3TU, UK;

    Department of Aeronautical and Automotive Engineering, Loughborough University, loughborough, Leicestershire LEI1 3TU, UK;

    Department of Aeronautical and Automotive Engineering, Loughborough University, loughborough, Leicestershire LEI1 3TU, UK;

  • 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

    vibration damping; acoustic black hole effect; wedges of power-law profile; geometrical and material imperfections;

    机译:减振;声学黑洞效应;幂律轮廓的楔形;几何和材料缺陷;

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