Timilsina Suman, Jo Cheol Woo, Lee Kwang Ho, Sohn Kee-Sun, Kim Ji Sik
KNU Research Institute of Artificial Intelligent Diagnosis Technology of Multi-scale Organic and Inorganic Structure, Kyungpook National University, Kyeongbuk, 37224, Republic of Korea.
School of Advanced Science and Technology Convergence, Kyungpook National University, Kyeongbuk, 37224, Republic of Korea.
Adv Sci (Weinh). 2025 Jan;12(2):e2409384. doi: 10.1002/advs.202409384. Epub 2024 Oct 24.
Mechanoluminescence (ML) and digital image correlation (DIC) have emerged as promising optical methods to visualize and measure deformation fields. In this study, a dual-modal sensing skin, called the ML-DIC skin is introduced, that is capable of emitting ML and facilitating DIC measurements under various lighting conditions, including daylight, night or darkness, and UV irradiation. Four ML-DIC skins are fabricated with or without carbon nanotubes (CNTs) using a composite powder consisting of SrAl2O4: Eu,Dy (SAO), and acrylic resin, with CNT milling times of 48, 72, and 96 h for three of four skins, respectively. DIC measurements are performed under multiple lighting conditions for measuring photoluminescence, persistence luminescence, and reflection. Uniaxial tension tests demonstrate the superior performance of ML-DIC skins with CNTs compared with pristine SAO skins, with the skin subjected to 48 h of CNT dispersion exhibiting optimal performance. Further investigations focus on ML emission and DIC measurements near the crack-tip vicinity of static and propagating cracks as well as on surfaces above subsurface cracks. The integration of ML and DIC techniques offers a versatile approach for comprehensive deformation analysis applicable to diverse environments, with implications for materials science, engineering, and structural health monitoring.
机械发光(ML)和数字图像相关(DIC)已成为用于可视化和测量变形场的有前途的光学方法。在本研究中,引入了一种称为ML-DIC皮肤的双模态传感皮肤,它能够发射ML并在包括日光、夜间或黑暗以及紫外线照射在内的各种光照条件下促进DIC测量。使用由SrAl2O4:Eu,Dy(SAO)和丙烯酸树脂组成的复合粉末,分别在四种皮肤中的三种皮肤的碳纳米管(CNT)研磨时间为48、72和96小时的情况下,制备了有无CNT的四种ML-DIC皮肤。在多种光照条件下进行DIC测量,以测量光致发光、余辉发光和反射。单轴拉伸试验表明,与原始SAO皮肤相比,含CNT的ML-DIC皮肤具有优异的性能,其中经过48小时CNT分散处理的皮肤表现出最佳性能。进一步的研究集中在静态和扩展裂纹尖端附近以及亚表面裂纹上方表面的ML发射和DIC测量。ML和DIC技术的整合为适用于各种环境的综合变形分析提供了一种通用方法,对材料科学、工程和结构健康监测具有重要意义。