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Ultrasonic plate waves in wood-based composite panels.

机译:人造板中的超声板波。

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摘要

Two key shortcomings of current ultrasonic nondestructive evaluation (NDE) techniques for plywood, medium density fiberboard (MDF), and oriented strandboard are the reliance on empirical correlations and the neglect of valuable waveform information. The research reported herein examined the feasibility of using fundamental physical relationships along with advanced signal analysis to evaluate material properties and locate defects in wood-based composite panels. Dispersion curves were constructed exhibiting the variation of ultrasonic flexural plate wave phase velocity with frequency. Based on shear deformation plate wave theory, flexural and transverse shear rigidity values for a variety of wood-based composite panels were obtained from the dispersion curves. Axial rigidity values were obtained directly from extensional plate wave phase velocity. Excellent agreement (within 5%) of flexural rigidity values was obtained between NDE and mechanical testing for thin panels (less than or equal to 6.4 mm). Transverse shear rigidity values were obtained from NDE, but no reliable mechanical results were obtained for comparison. Tensile and compressive axial rigidity values obtained from NDE were from 12% to 31% and from 22% to 41% higher than mechanical tension and compression test results, respectively. These differences between NDE and axial mechanical testing results are likely due to load-rate effects. Nondestructive rigidity results for thicker panels using the setup described herein were either unreliable or not interpretable due to highly attenuated signals and/or violation of plate wave assumptions. Shear deformation laminated plate theory was used to predict flexural and axial laminate rigidity values of wood-based laminates from NDE measurements to within 3% and 25%, respectively. Plate wave NDE was also used to successfully locate a 60-mm square delaminated area within a 6.4-mm thick MDF laminate. This fundamental research advances the state-of-the-art of wood-based NDE by replacing empirical techniques with a technique based on fundamental mechanics, shear deformation laminated plate theory, and plate wave propagation theory.
机译:当前用于胶合板的超声无损评估(NDE)技术,中密度纤维板(MDF)和定向刨花板的两个主要缺点是依赖于经验相关性和对有价值的波形信息的忽视。本文报道的研究检查了使用基本物理关系以及先进的信号分析来评估材料性能并定位人造板中的缺陷的可行性。构造了分散曲线,显示出超声弯曲板波相速度随频率的变化。基于剪切变形板波理论,从色散曲线获得了各种人造板的挠曲和横向剪切刚度值。轴向刚度值直接从扩展板波相速度获得。在NDE和薄板(小于或等于6.4 mm)的机械测试之间,弯曲刚度值达到了极佳的一致性(5%之内)。从NDE获得了横向剪切刚度值,但没有可靠的机械结果进行比较。从NDE获得的拉伸和压缩轴向刚度值分别比机械拉伸和压缩测试结果高12%至31%和22%至41%。 NDE和轴向机械测试结果之间的这些差异可能是由于负载率效应引起的。由于高度衰减的信号和/或违反板波假设,使用本文所述设置的较厚面板的非破坏性刚度结果不可靠或无法解释。剪切变形层压板理论用于根据NDE值分别预测木材基层压板的弯曲和轴向层压板刚性值,分别在3%和25%之内。平板波NDE还可成功地在6.4毫米厚的MDF层压板中找到60平方毫米的分层区域。这项基础研究通过将经验技术替换为基于基本力学,剪切变形叠层板理论和板波传播理论的技术,从而推动了木质NDE的最新发展。

著录项

  • 作者

    Tucker, Brian James.;

  • 作者单位

    Washington State University.;

  • 授予单位 Washington State University.;
  • 学科 Engineering Civil.; Agriculture Wood Technology.; Physics Acoustics.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 114 p.
  • 总页数 114
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;森林采运与利用;声学;工程材料学;
  • 关键词

  • 入库时间 2022-08-17 11:47:03

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