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SEM in situ laboratory investigations on damage growth in GFRP composite under three-point bending tests 被引量:3

SEM in situ laboratory investigations on damage growth in GFRP composite under three-point bending tests
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摘要 Glass fiber-reinforced polymer (GFRP) composites are widely used in low-weight constructions.SEM (scanning electron microscopy) in situ experiments of damage growth in GFRP composite under three-point bending loads are carried out.By summarizing the experimental results of three groups of samples with different orientation angles of fibers,the dependence of mechanical parameters on the orientation angles of fibers are analyzed.The regression analysis show that the peak strengths,the elastic strengths and the elastic modulus of the composites decease with the orientation angles of fibers almost linearly.Moreover,the damage growth and meso-scale structure changes in GFRP composites during three-point bending loading are analyzed. Glass fiber-reinforced polymer (GFRP) composites are widely used in low-weight constructions. SEM (scanning electron microscopy) in situ experiments of damage growth in GFRP composite under three-point bending loads are carried out. By summarizing the experimental results of three groups of samples with different orientation angles of fibers, the dependence of mechanical parameters on the orientation angles of fibers are analyzed. The regression analysis show that the peak strengths, the elastic strengths and the elastic modulus of the composites decease with the orientation angles of fibers almost linearly. Moreover, the damage growth and meso-scale structure changes in GFRP composites during three-point bending loading are analyzed.
出处 《Chinese Science Bulletin》 SCIE EI CAS 2010年第12期1199-1208,共10页
基金 supported by the Commission of the European through 6th Framework Programme (Grant No. SES6-019945) Program of Inter national S & T Cooperation,MOST (Grant No. 52010NR0894)
关键词 玻璃钢复合材料 三点弯曲试验 实验室 扫描电镜 现场调查 损伤 纤维增强聚合物 扫描电子显微镜 scanning electron microscopy (SEM), experiment, GFRP composite, three-point bending, damage growth
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