CFRP半径上聚能炮的焦点规律优化及声场模拟

Zhongbing Luo, Feilong Li, Huan-qing Cao, S. Jin, Li Lin
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引用次数: 0

摘要

基于数值模拟研究了碳纤维增强塑料(CFRP)层合板半径相控阵超声检测的焦点规律和超声场。分别考虑几何各向异性和弹性各向异性因素,计算了相应的震源规律。与弹性各向同性平板的结果比较,结果表明,线阵元件的原始延迟时间呈抛物线型分布,在弹性各向同性半径内具有明显的聚焦效应。然而,实际焦点比预设的3毫米对焦深度高出1.6毫米。在相同聚焦规律下,CFRP层合板半径内的聚焦明显恶化,结构噪声明显。考虑几何形状对聚焦规律进行优化后,聚焦光束的能量有所增加,但在地下相当局部。进一步考虑弹性各向异性后,两侧入射声能增大,聚焦效果明显改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Focal Law Optimization and Acoustic Field Simulation of PAUT on CFRP Radii
The focal law and ultrasonic field of phased array ultrasonic testing (PAUT) on carbon fiber reinforced plastic (CFRP) laminates radii were studied based on numerical modeling. The geometrical and elastic anisotropy factors were taken into account respectively and the corresponding focal laws were calculated. Comparing with the results of the elastically isotropic flat plate, the results show that the original delay times of the linear array elements presented parabolic distribution and the focusing effect in the elastically isotropic radii was obvious. The actual focal point, however, was 1.6mm ahead of the preset focus depth of 3 mm. Under the same focus law, the focusing in the radii of CFRP laminates deteriorated significantly, and the structural noise was evident. After the optimization of focus law considering geometric shape, the energy of focusing beam was increased, but it was quite local in the subsurface. With further consideration of the elastic anisotropy, the incident acoustic energy was increased from the both sides, and the focusing was significantly improved.
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