Wu Haonian , Qu Meijiao , Yan Li , Tang Yuyuan , Xu Ming , Nie Xiangfan
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引用次数: 0
摘要
激光冲击界面粘合力检测技术在评估粘合复合结构的粘合强度方面具有显著优势。然而,目前的研究方法依赖于对冲击过程的动态监测,并结合冲击后的显微成像来确定损伤状态。这种方法面临着诸多挑战,如过程繁琐、难以统一损坏尺度、实验室和现场数据类型及其物理意义不一致,以及测试结果的通用性有限。本文建立了激光冲击复合板结构的 "质量-弹簧-阻尼 "响应理论模型,并引入了新的损伤表征参数 R。通过建立激光参数与 R 值之间的关系,该模型有助于快速识别损伤阶段,并利用已建立的阈值模型量化内部损伤状态。利用两组 T300 复合材料层压板的激光冲击数据验证了模型的准确性。该方法解决了直接量化和跨参数统一评估的难题,为工程应用中的参数选择提供了可靠的依据。
Study on impact damage characteristic parameters and threshold model for composite material laminates
Laser shock interface bonding force detection technology has significant advantages in assessing the bonding strength of adhesively bonded composite structures. However, current research methods rely on dynamic monitoring of the shock process combined with post-impact microscopic imaging for damage status determination. This approach presents challenges such as a cumbersome process, difficulty in standardizing damage scales, inconsistency between laboratory and field data types and their physical meanings, and limited generalizability of test results. This paper establishes a “mass-spring-damper” response theory model for laser-shocked composite plate structures and introduces a new damage characterization parameter, R. This parameter reflects the residual vibrational energy post-impact and can serve as a threshold indicator for damage determination. By establishing a relationship between laser parameters and the R value, the model facilitates rapid identification of damage stages and quantifies internal damage status with the established threshold model. The model accuracy is validated using laser shock data from two sets of T300 composite laminates. This method addresses the challenges of direct quantification and unified assessment across parameters, providing a reliable basis for parameter selection in engineering applications.
期刊介绍:
ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.