Stress field measurements using quantitative schlieren

IF 2.7 3区 物理与天体物理 Q2 PHYSICS, APPLIED Journal of Applied Physics Pub Date : 2024-09-03 DOI:10.1063/5.0223560
S. M. Torres, J. Kimberley, M. J. Hargather
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Abstract

Quantitative schlieren analysis is extended here to optically transparent solids in quasi-static and dynamic experiments to measure stress distributions. The quasi-static experiments in polymethyl methacrylate (PMMA) compared refraction angles and stress gradients calculated from schlieren images to the analytical Flamant solution of a line load on a half-space. The quantitative schlieren measurements of the stress field in the thin sample with a load compared well to the analytical solution. The analysis method was then extended to explosive induced shock waves in PMMA. The explosive induced response of PMMA was experimentally studied using high-speed schlieren to visualize the shock propagation in conjunction with Photon Doppler Velocimetry (PDV) to record surface velocity histories. The stress state estimated from the schlieren images was compared to the stress calculated from the PDV measurements. High-speed imaging limitations caused the shock wave to not be fully resolved in the images, but was resolved in the PDV measurement. The stress state behind the shock calculated from the high-speed images followed a similar trend to the stress calculated from the PDV measurements.
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利用定量离层仪测量应力场
本文将定量裂隙分析扩展到光学透明固体的准静态和动态实验中,以测量应力分布。在聚甲基丙烯酸甲酯(PMMA)中进行的准静态实验中,比较了通过 Schlieren 图像计算出的折射角和应力梯度与半空间上的线载荷的弗拉芒分析法。对带有负载的薄样品中应力场的定量 Schlieren 测量结果与分析解决方案进行了很好的比较。然后,分析方法扩展到 PMMA 中的爆炸诱导冲击波。实验研究了 PMMA 的爆炸诱导响应,使用高速离散仪观察冲击波的传播,并结合光子多普勒测速仪(PDV)记录表面速度历史。将从 Schlieren 图像中估算出的应力状态与从 PDV 测量中计算出的应力进行了比较。由于高速成像的限制,冲击波在图像中无法完全分辨,但在 PDV 测量中得到了分辨。从高速图像中计算出的冲击波后的应力状态与从 PDV 测量中计算出的应力趋势相似。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Applied Physics
Journal of Applied Physics 物理-物理:应用
CiteScore
5.40
自引率
9.40%
发文量
1534
审稿时长
2.3 months
期刊介绍: The Journal of Applied Physics (JAP) is an influential international journal publishing significant new experimental and theoretical results of applied physics research. Topics covered in JAP are diverse and reflect the most current applied physics research, including: Dielectrics, ferroelectrics, and multiferroics- Electrical discharges, plasmas, and plasma-surface interactions- Emerging, interdisciplinary, and other fields of applied physics- Magnetism, spintronics, and superconductivity- Organic-Inorganic systems, including organic electronics- Photonics, plasmonics, photovoltaics, lasers, optical materials, and phenomena- Physics of devices and sensors- Physics of materials, including electrical, thermal, mechanical and other properties- Physics of matter under extreme conditions- Physics of nanoscale and low-dimensional systems, including atomic and quantum phenomena- Physics of semiconductors- Soft matter, fluids, and biophysics- Thin films, interfaces, and surfaces
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