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Characterization of Discontinuous Fiber Reinforced Sheet Molding Compounds Under Tension-Tension Fatigue Load

机译:张力疲劳载荷下不连续纤维增强片状模塑料的表征

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Sheet molding compounds (SMC) have long been successfully used for non-structural applications, as for example in the automotive industry. However, the prediction of their fatigue behavior is still proving difficult. This is due to a variety of possible material compositions and their complex microstructure resulting in a complex damage evolution. Comprehensive experimental investigations are still necessary to understand the damage evolution and its impact on the macroscopic material behavior during cyclic loading. In this work the fatigue behavior of discontinuous glass fiber reinforced sheet molding compounds (SMC) was investigated in a load-controlled tension-tension fatigue test for different loads. The material is based on an unsaturated polyester polyurethane hybrid (UPPH) resin system without fillers. The reinforcing glass fibers feature a length of 25.4 mm (1 inch). The macroscopic material behavior shows statistical scattering in the range of two times the power of ten. Due to the manufacturing process, the fiber orientation distribution and volume contents vary within one SMC plate, which influences the fatigue life. The evolution of stiffness was determined for each test. Characteristic stages of damage can be clearly distinguished by means of stiffness reduction. Digital images were captured during fatigue loading to visualize local damage without interrupting the test by triggering the camera via the load signal. The dominant failure mechanisms were matrix cracking and interface failure. These can be observed long before final failure. The results allow a good description of the fatigue behavior throughout all stress ranges and present a good basis for further investigations.
机译:片状模塑料(SMC)长期以来一直成功地用于非结构性应用,例如在汽车工业中。但是,仍然很难预测它们的疲劳行为。这是由于各种可能的材料组成及其复杂的微观结构导致了复杂的损伤演变。仍需要进行全面的实验研究,以了解在循环载荷过程中损伤的演变及其对宏观材料行为的影响。在这项工作中,在负载控制的拉伸-拉伸疲劳试验中研究了不连续玻璃纤维增​​强片状模塑料(SMC)的疲劳行为。该材料基于不含填料的不饱和聚酯聚氨酯杂化(UPPH)树脂体系。增强玻璃纤维的长度为25.4毫米(1英寸)。宏观材料行为显示统计散射范围是十次方的两倍。由于制造工艺的原因,一块SMC板内的纤维取向分布和体积含量会发生变化,这会影响疲劳寿命。确定每个测试的刚度变化。损坏的特征阶段可以通过降低刚度来清楚地区分。在疲劳加载过程中捕获了数字图像,以可视化局部损坏,而不会通过加载信号触发相机来中断测试。主要的失效机制是基体破裂和界面失效。这些可以在最终失败之前很久就被观察到。结果可以很好地描述所有应力范围内的疲劳行为,并为进一步研究提供了良好的基础。

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