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Strain Separation on a Nonplanar Object Using a Luminescent Photoelastic Coating

机译:使用发光光弹性涂层的非平面物体上的应变分离

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摘要

This paper presents the theoretical modeling and corresponding experimental results of the oblique incidence response of a luminescent photoelastic coating (LPC) applied to a cylinder under load. LPC is a measurement technique to acquire full-field maximum shear strain and its principal strain direction. The technique uses an absorption dye and a luminescent dye within a photoelastic coating, and the coating is applied on the surface of the specimen using conventional aerosol techniques. On 3D objects, the response of the emission field is dependent on the excitation orientation due to the surface inclination of the structural component and the out-of-plane strain component within the coating. Full-field strain separated results have been previously demonstrated on a 2D specimen. The extension of the strain separation technique to a 3D specimen—a cylinder in bending—is the focus of this investigation. Two different responses were obtained from normal and oblique excitation. As a result, the principal strain was separated over ±56° of circumference of the cylinder with RMS error relative to the theoretical result of 87 μɛ for maximum principal strain and 78 μɛ for minimum.
机译:本文介绍了在载荷作用下应用于圆柱体的发光光弹性涂层(LPC)的斜入射响应的理论模型和相应的实验结果。 LPC是一种获取全场最大剪切应变及其主应变方向的测量技术。该技术在光弹性涂层内使用吸收染料和发光染料,并使用常规气溶胶技术将涂层施加在样品表面上。在3D对象上,由于涂层中结构组件的表面倾斜和平面外应变组件的缘故,发射场的响应取决于激发方向。全场应变分离结果先前已在2D样品上得到证明。将应变分离技术扩展到3D标本(弯曲的圆柱体)是此研究的重点。从正常和倾斜激励获得两种不同的响应。结果,相对于理论结果,最大主应变为87μl,最小为78μl,理论误差在圆柱体圆周的±56°上分离,且具有RMS误差。

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