首页> 外文学位 >Experimental investigation of fatigue behavior of carbon fiber composites using fully-reversed four-point bending test.
【24h】

Experimental investigation of fatigue behavior of carbon fiber composites using fully-reversed four-point bending test.

机译:碳纤维复合材料疲劳行为的全反向四点弯曲试验研究。

获取原文
获取原文并翻译 | 示例

摘要

Carbon fiber reinforced polymers (CFRP) have become an increasingly notable material for use in structural engineering applications. Some of their advantages include high strength-to-weight ratio, high stiffness-to-weight ratio, and good moldability. Prediction of the fatigue life of composite laminates has been the subject of various studies due to the cyclic loading experienced in many applications. Both theoretical studies and experimental tests have been performed to estimate the endurance limit and fatigue life of composite plates. One of the main methods to predict fatigue life is the four-point bending test. In most previous works, the tests have been done in one direction (load ratio, R, > 0). In the current work, we have designed and manufactured a special fixture to perform a fully reversed bending test (R = -1). Static four-point bending tests were carried out on three (0°/90°)15 and (+/- 45°)15 samples to measure the mechanical properties of CFRP. Testing was displacement-controlled at the rate of 10 mm/min until failure. In (0°/90°)15 samples, all failed by cracking/buckling on the compressive side of the sample. While in (+/- 45°)15 all three tests, no visual fracture or failure of the samples was observed. 3.4 times higher stresses were reached during four-point static bending test of (0° /90°)15 samples compared to (+/- 45°)15. Same trend was seen in literature for similar tests. Four-point bending fatigue tests were carried out on (0° /90°)15 sample with stress ratio, R = -1 and frequency of 5 Hz. Applied maximum stresses were approximately 45%, 56%, 67%, 72% and 76% of the measured yield stress for (0° /90°)15 samples. There was visible cracking through the thickness of the samples. The expected downward trend in fatigue life with increasing maximum applied stress was observed in S-N curves of samples. There appears to be a threshold for 'infinite' life, defined as 1.7 million cycles in the current work, at a maximum stress of about 200 MPa. The decay in flexural modulus of the beam as it goes under cyclic loading was calculated and it was seen that flexural modulus shows an exponential decay which can be expressed as: E = E0e AN. Four--point bending fatigue tests were carried out on three (+/-45°)15 samples with stress ratio, R = -1 and frequency of 5 Hz. Maximum applied stress was 85% of the measured yield stress of (+/-45°)15 samples. None of the samples failed, nor any sign of crack was seen. Tests were stopped once the number of cycles passed 1.7x106. In general, current study provided additional insight into the fatigue and static behavior of polymer composites and effect of fiber orientation in their mechanical behavior.
机译:碳纤维增强聚合物(CFRP)已成为结构工程应用中越来越引人注目的材料。它们的一些优点包括高强度重量比,高刚度重量比和良好的成型性。由于许多应用中经历的循环载荷,复合层压板的疲劳寿命的预测已成为各种研究的主题。已经进行了理论研究和实验测试以估计复合板的耐久性极限和疲劳寿命。预测疲劳寿命的主要方法之一是四点弯曲试验。在大多数以前的工作中,测试都是在一个方向上完成的(负载比,R,> 0)。在当前的工作中,我们设计并制造了一种特殊的夹具,可以执行完全反向的弯曲测试(R = -1)。在三个(0°/ 90°)15和(+/- 45°)15样品上进行了静态四点弯曲测试,以测量CFRP的机械性能。测试以10 mm / min的速度进行位移控制,直到失效。在(0°/ 90°)15个样品中,所有样品均因样品压缩侧的开裂/屈曲而失败。在所有三个测试中(+/- 45°)15时,均未观察到样品的视觉断裂或破裂。与(+/- 45°)15相比,在(0°/ 90°)15样品的四点静态弯曲测试中达到的应力高3.4倍。类似的测试在文献中也看到了相同的趋势。对(0°/ 90°)15样品进行了四点弯曲疲劳测试,其应力比为R = -1,频率为5 Hz。对于(0°/ 90°)15样品,施加的最大应力约为所测得屈服应力的45%,56%,67%,72%和76%。在样品的厚度上可见裂纹。在样品的S-N曲线中观察到随着最大外加应力的增加,疲劳寿命预期下降的趋势。 “无限”寿命似乎有一个阈值,在当前工作中定义为170万个循环,最大应力约为200 MPa。计算了梁在循环荷载作用下的弯曲模量衰减,可以看出弯曲模量显示出指数衰减,可以表示为:E = E0e AN。对三个(+/- 45°)15个样品进行了四点弯曲疲劳测试,其应力比为R = -1,频率为5 Hz。最大施加应力为(+/- 45°)15个样品的测量屈服应力的85%。没有样品失败,也没有发现裂纹迹象。一旦循环次数通过1.7x106,测试将停止。总的来说,当前的研究为聚合物复合材料的疲劳和静态性能以及纤维取向对其机械性能的影响提供了更多的见解。

著录项

  • 作者

    Amiri, Ali.;

  • 作者单位

    The University of North Dakota.;

  • 授予单位 The University of North Dakota.;
  • 学科 Mechanical engineering.;Materials science.
  • 学位 M.S.
  • 年度 2012
  • 页码 99 p.
  • 总页数 99
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号