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Quantitative Visualization of Sub-Micron Deformations and Stresses at Sub-Microsecond Intervals in Soda-Lime Glass Plates

机译:钠钙玻璃板亚微秒间隔下亚微米变形和应力的定量可视化

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Full-field optical measurement of deformations and stresses on transparent brittle ceramics such as soda-lime glass is rather challenging due to the low toughness and high stiffness characteristics. Particularly, the surface topography and stress field evaluation from measured orthogonal surface slopes and stress gradients could be of considerable significance for visualizing and quantifying deformation of glass plates under dynamic impact loading. In this work, two full-field optical techniques, reflection Digital Gradient Sensing (or r-DGS) and a new DGS method, called transmission-reflection Digital Gradient Sensing (or tr-DGS) are employed to quantify surface slopes and stress gradients, respectively, as glass specimens are subjected dynamic impact loading using a modified Hopkinson pressure bar. These two methods can measure extremely small angular deflections of light rays caused by surface deformations and local stresses in specimens. The tr-DGS methodology is especially more sensitive than r-DGS. Using such optical methods, sub-micron surface deflections and the corresponding stress field, (σ_(xx) + σ_(yy)), can be quantified using a Higher-order Finite-difference-based Least-squares Integration (HFLI) scheme. When used in conjunction with ultrahigh-speed photography, microsecond or sub-microsecond temporal resolution is possible.
机译:由于低韧性和高刚度特性,诸如钠钙玻璃等透明脆性陶瓷的变形和应力的全场光学测量。特别地,来自测量的正交表面斜面和应力梯度的表面形貌和应力场评估对于在动态冲击载荷下可视化和量化玻璃板的变形具有相当大的意义。在这项工作中,使用两个全场光学技术,反射数字梯度感测(或R-DGS)和新的DGS方法,称为传输 - 反射数字梯度感测(或TR-DG)来量化表面斜率和应力梯度,分别使用改进的霍普金森压棒进行玻璃样品进行动态冲击载荷。这两种方法可以测量由样品中表面变形和局部应力引起的光线的极小角度偏转。 TR-DGS方法特别比R-DGS更敏感。使用这种光学方法,子微米表面偏转和相应的应力场(Σ_(XX)+Σ_(YY))可以使用高阶有限差分的最小二乘积分(HFLI)方案来量化。当与超高速摄影结合使用时,可以进行微秒或次微秒的时间分辨率。

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