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首页> 外文期刊>Science and technology of advanced materials >Application of photon emission technique to the determination of micro-fracture behavior in glass fiber-reinforced epoxy matrix composite
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Application of photon emission technique to the determination of micro-fracture behavior in glass fiber-reinforced epoxy matrix composite

机译:光子发射技术在玻璃纤维增​​强环氧基复合材料微断裂行为测定中的应用

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摘要

A photon emission behavior in a notched plane woven fabric glass fiber-reinforced epoxy matrix composite has been examined through tensile testing of a single-edge-notched composite specimen. Emitted photons during the test were detected and a spectroscopic analysis was also performed on the detected photons to determine the source of the emission. Direct observation of the fracture process of the composite reveals that bundle unit fiber fracture occurs from a notch tip and the fracture accompanies characteristic load drop in the load-displacement curve. Photons are detected about 15–30?μs after the onset of the load drop, which corresponds to the photon emission occurring at the beginning of a bundle unit fiber pullout from the matrix. The emission mechanism is determined to be gaseous ionization discharging of nitrogen molecules, which are contained in ambient air, at a debonded interface. Application of DC potential to the specimen enhances photon intensity and the technique allows photon imaging. Detected photon imaging clearly shows the area of interfacial frictional sliding. It is concluded that the photon emission technique is effective tool to determine interface debonding and sliding behavior in glass fiber-reinforced epoxy matrix composite.
机译:通过单边缘缺口复合材料试样的拉伸试验,研究了缺口的平面机织织物玻璃纤维增​​强的环氧基质复合材料中的光子发射行为。在测试过程中检测到发射的光子,并对检测到的光子进行光谱分析,以确定发射源。对复合材料断裂过程的直接观察表明,束单元纤维断裂是从缺口尖端发生的,并且断裂伴随载荷-位移曲线中的特征载荷下降。在负载下降开始后约15–30?s内检测到光子,这对应于从矩阵中拉出束单元光纤开始时发生的光子发射。确定该发射机理是在脱胶界面处气态电离放电包含在环境空气中的氮分子。将直流电势施加到样品上可增强光子强度,该技术可实现光子成像。检测到的光子成像清楚地显示了界面摩擦滑动的区域。结论是,光子发射技术是确定玻璃纤维增​​强环氧基复合材料界面剥离和滑动行为的有效工具。

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