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首页> 外文期刊>Journal of the Mechanics and Physics of Solids >Tensile and mixed-mode strength of a thin film-substrate interface under laser induced pulse loading
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Tensile and mixed-mode strength of a thin film-substrate interface under laser induced pulse loading

机译:激光诱导脉冲载荷下薄膜-基底界面的拉伸和混合模强度

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Laser induced stress waves are used to characterize intrinsic interfacial strength of thin films under both tensile and mixed-mode conditions. A short-duration compressive pulse induced by pulsed-laser ablation of a sacrificial layer on one side of a substrate is allowed to impinge upon a thin test film on the opposite surface. Laser-interferometric measurements of test film displacement enable calculation of the stresses generated at the interface. The tensile stress at the onset of failure is taken to be the intrinsic tensile strength of the interface. Fused-silica substrates, with their negative nonlinear elasticity, cause the compressive stress wave generated by the pulse laser to evolve a decompression shock, critical for generation of the fast fall times needed for significant loading of surface film interfaces. By allowing the stress pulse to mode convert as it reflects from an oblique surface, a high amplitude shear wave with rapid fall time is generated and used to realize mixed-mode loading of thin film interfaces. We report intrinsic strengths of an aluminum/fused silica interface under both tensile and mixed-mode conditions. The failure mechanism under mixed-mode loading differs significantly from that observed under pure tensile loading, resulting in a higher interfacial strength for the mixed-mode case. Inferred strengths are found to be independent, as they should be, of experimental parameters.
机译:激光诱导的应力波用于表征在拉伸和混合模式条件下薄膜的固有界面强度。由脉冲激光烧蚀衬底一侧的牺牲层引起的短时压缩脉冲撞击在相对表面的薄测试膜上。测试膜位移的激光干涉测量可以计算界面处产生的应力。失效开始时的拉伸应力被认为是界面的固有拉伸强度。熔融石英基底具有负的非线性弹性,可引起脉冲激光产生的压缩应力波产生减压冲击,这对于产生大量的表面膜界面载荷所需的快速下降时间至关重要。通过使应力脉冲从倾斜表面反射时进行模转换,可以生成具有快速下降时间的高振幅剪切波,并用于实现薄膜界面的混合模式加载。我们报道了在拉伸和混合模式条件下铝/熔融二氧化硅界面的固有强度。混合模式载荷下的破坏机理与纯拉伸载荷下的破坏机理明显不同,导致混合模式情况下的界​​面强度更高。发现推断的强度应该独立于实验参数。

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