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中文核心期刊

材料弹性参数非接触式激光超声表征方法

Non-contact laser ultrasonics for characterization of material elastic parameters

  • 摘要: 材料弹性参数如杨氏模量、泊松比是表征材料力学性能的关键指标。针对传统超声法测量材料弹性参数往往依赖压电探头、耦合条件、试样形状等问题, 利用激光超声的非接触、高响应、宽带以及鲁棒性好的特点, 提出一种基于激光超声技术测量材料杨氏模量、泊松比的全光学式测量方法, 实现了高精度、完全非接触式无损测量固体材料的力学弹性参数。采用对心透射式激励检测系统提取材料纵波波速; 通过瞬态热栅机制在材料表面激励窄带声表面波, 结合表面波波长与窄带频率提取材料表面波波速; 根据固体弹性理论由声速对材料弹性参数进行反演, 从而实现材料弹性参数的表征。检测结果表明其测量值与相关理论值相差约3%, 多样品测量结果的重复性误差在0.5%以内, 验证了该方法对于测量材料弹性参数的可行性与有效性, 未来可将其应用于具有复杂结构的材料弹性参数的实时表征。

     

    Abstract: Elastic parameters such as Young’s modulus and Poisson’s ratio are critical indicators for evaluating the mechanical properties of materials. To address the limitations of conventional ultrasonic methods, such as their reliance on piezoelectric transducers, coupling media, and specimen geometry, this work proposes a fully optical method for measuring elastic constants based on laser ultrasonics. Considering the advantages of laser ultrasonics, including non-contact operation, high responsiveness, wide bandwidth, and strong robustness, the method enables high-precision and nondestructive characterization of solid materials. Narrowband surface acoustic waves are generated via the transient thermal grating mechanism, and their velocities are determined using the known surface wave wavelength and central frequency. Longitudinal wave velocities are obtained using a coaxial transmission and detection configuration. Based on the theory of elasticity, the measured wavespeeds are used to invert the material’s Young’s modulus and Poisson’s ratio. Experimental results show deviations of approximately 3% from theoretical values, with repeatability errors within 0.5% across multiple samples. These findings confirm the feasibility and reliability of the proposed method, which holds promise for real-time characterization of elastic properties in materials with complex structures.

     

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