首页> 外文会议>International Conference on Advanced Manufacture; 20051128-1202; Taipei(CT) >Effect of loading rate on the delamination behavior of carbon/epoxy laminated composites
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Effect of loading rate on the delamination behavior of carbon/epoxy laminated composites

机译:加载速率对碳/环氧层压复合材料脱层行为的影响

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Previous studies show that fracture toughness of carbon/epoxy composite is affected by hydrostatic pressure. The fracture toughness of carbon/epoxy composite is also affected by strain rate. To date, no study has been made on the combined effects of hydrostatic pressure and strain rate on the fracture toughness of carbon/epoxy composite. This work investigates the compressive fracture behavior of carbon/epoxy composite subjected to low and high strain rates in the hydrostatic pressure environment. Compressive fracture tests were performed in the atmospheric pressure and hydrostatic pressure environment of 270MPa. The compliance and fracture load were determined from load-displacement curves as a function of applied strain rate. Fracture toughness was determined from the elastic work factor approach. The results showed that the compliance decreased as the applied strain rate increased. However, the fracture load is less affected by the strain rate. The toughness decreased with increasing strain rate. Specifically, for 270 MPa hydrostatic pressure environment, fracture toughness decreased from 4.64 kJ/m~2 to 4.05 kJ/m~2 (12.7% decrease) as the strain rate increased from 0.05% to 0.55%. The decrease of fracture toughness with an increase in the strain rate is due to the epoxy becoming brittle as there is not sufficient time for the stress to be relieved.
机译:先前的研究表明,碳/环氧树脂复合材料的断裂韧性受静水压力的影响。碳/环氧树脂复合材料的断裂韧性也受应变速率的影响。迄今为止,尚未对静水压力和应变速率对碳/环氧树脂复合材料的断裂韧性的综合影响进行研究。这项工作研究了在静水压力环境中,低/高应变速率下碳/环氧复合材料的压缩断裂行为。在270MPa的大气压和静水压环境下进行了压缩断裂试验。根据载荷-位移曲线确定了顺应性和断裂载荷,作为施加应变率的函数。断裂韧性是通过弹性功因子法确定的。结果表明,顺应性随施加应变率的增加而降低。但是,断裂载荷受应变率的影响较小。韧性随着应变率的增加而降低。具体而言,对于270 MPa静水压力环境,随着应变率从0.05%增加到0.55%,断裂韧性从4.64 kJ / m〜2降低到4.05 kJ / m〜2(降低12.7%)。断裂韧性随着应变速率的增加而降低是由于环氧树脂没有足够的时间来消除应力而变得脆性。

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