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Whole-field strain analysis and strength prediction of fiber laser machined CFRP laminate at elevated temperature

机译:纤维激光加工CFRP层压板在高温下的全场应变分析及强度预测

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摘要

High power fiber laser was proved to be feasible to cut carbon fiber reinforced plastic (CFRP) laminate with high efficiency, while the machined quality on mechanical performance was not fully understood. This paper studied the effect of high temperature up to 220 degrees C on tensile strength degradation and strain distribution of unidirectional CFRP laminate with open hole machined with fiber laser. Differential scanning calorimetry (DSC) was firstly employed to determine the glass transition temperature (T-g) of polymer-matrix composite. Digital image correlation technique was applied to evaluate whole-field strain distribution and crack propagation/evolution of CFRP laminate featured with open hole under tensile loading. Results showed that the tensile strength of laser machined CFRP laminate degraded significantly during working in high temperature above 100 degrees C. The value of strains distributed around center hole was highly related to the elevated temperature and applied load levels. Splitting was the prevalent failure mode of CFRP laminate under elevated temperature up to 180 degrees C. Finally, semi-empirical model was developed for evaluating tensile performance of laser machined CFRP laminate at elevated temperature based on regression analysis.
机译:据证明,高功率光纤激光器可行,以高效地切割碳纤维增强塑料(CFRP)层压板,而机械性能的加工质量尚未完全理解。本文研究了高温高达220℃的效果对纤维激光器开放孔的单向CFRP层压板的拉伸强度降解和应变分布。首先使用差分扫描量热法(DSC)以确定聚合物 - 基质复合材料的玻璃化转变温度(T-G)。应用数字图像相关技术,以评价抗拉荷载下孔隙孔中CFRP层压板的全场应变分布及裂纹繁殖/演化。结果表明,在高于100摄氏度的高温下工作期间激光加工CFRP层压材料的拉伸强度显着降低。围绕中心孔分布的菌株的值与升高的温度和施加的载荷水平高度相关。分裂是CFRP层压板的普遍失效模式在高达180℃的升高下,最终,开发了半经验模型,用于评估激光加工CFRP层压板的拉伸性能,基于回归分析。

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