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基于热弹性温度变化相位信息的短碳纤维增强塑料疲劳损伤评估

Fatigue Damage Evaluation of Short Carbon Fiber Reinforced Plastics Based on Phase Information of Thermoelastic Temperature Change.

作者信息

Shiozawa Daiki, Sakagami Takahide, Nakamura Yu, Nonaka Shinichi, Hamada Kenichi

机构信息

Department of Mechanical Engineering, Kobe University, Kobe 657-8501, Japan.

DIC Corporation, Tokyo 103-8233, Japan.

出版信息

Sensors (Basel). 2017 Dec 6;17(12):2824. doi: 10.3390/s17122824.

Abstract

Carbon fiber-reinforced plastic (CFRP) is widely used for structural members of transportation vehicles such as automobile, aircraft, or spacecraft, utilizing its excellent specific strength and specific rigidity in contrast with the metal. Short carbon fiber composite materials are receiving a lot of attentions because of their excellent moldability and productivity, however they show complicated behaviors in fatigue fracture due to the random fibers orientation. In this study, thermoelastic stress analysis (TSA) using an infrared thermography was applied to evaluate fatigue damage in short carbon fiber composites. The distribution of the thermoelastic temperature change was measured during the fatigue test, as well as the phase difference between the thermoelastic temperature change and applied loading signal. Evolution of fatigue damage was detected from the distribution of thermoelastic temperature change according to the thermoelastic damage analysis (TDA) procedure. It was also found that fatigue damage evolution was more clearly detected than before by the newly developed thermoelastic phase damage analysis (TPDA) in which damaged area was emphasized in the differential phase delay images utilizing the property that carbon fiber shows opposite phase thermoelastic temperature change.

摘要

碳纤维增强塑料(CFRP)因其与金属相比具有优异的比强度和比刚度,而被广泛应用于汽车、飞机或航天器等运输车辆的结构部件。短碳纤维复合材料因其优异的成型性和生产率而备受关注,然而,由于纤维取向随机,它们在疲劳断裂中表现出复杂的行为。在本研究中,采用红外热成像技术进行热弹性应力分析(TSA),以评估短碳纤维复合材料中的疲劳损伤。在疲劳试验过程中,测量了热弹性温度变化的分布,以及热弹性温度变化与施加载荷信号之间的相位差。根据热弹性损伤分析(TDA)程序,从热弹性温度变化的分布中检测疲劳损伤的演变。还发现,新开发的热弹性相位损伤分析(TPDA)比以前更能清晰地检测到疲劳损伤的演变,在该分析中,利用碳纤维表现出相反相位热弹性温度变化的特性,在差分相位延迟图像中突出显示损伤区域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4137/5751653/c761c74173d0/sensors-17-02824-g001.jpg

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