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Monitoring of glass-ceramic composites under static and dynamic loading by combined NDE methods

机译:结合NDE方法监测静态和动态载荷下的玻璃陶瓷复合材料

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Current work deals with the nondestructive evaluation (NDE) of the fracture behavior of ceramic matrix composite (CMCs) materials using combined infrared (IR) thermographic and acoustic emission (AE) characterization. IR thermography as a non-destructive, real-time and non-contact technique, allows the detection of heat waves generated by the thermo-mechanical coupling and the intrinsic energy dissipated during mechanical cyclic loading of the sample. Two different thermographic methodologies, based on the measurement of the surface temperature and on the intrinsically dissipated energy respectively, were applied in order to monitor the crack initiation and propagation and to rapidly assess the fatigue limit of cross-ply SiC/BMAS composites. Simultaneously, AE monitoring was employed to record a wide spectrum of cracking events ranging from matrix cracking to fiber fracture and pull-out. AE event rate, as well as qualitative indices like the rise time and peak frequency reveal crucial information allowing the characterization of the severity of fracture in relation to the applied load. Additionally, rapid assessment of the fatigue limit of CMCs composites was also attempted by AE. Testing a specimen at different load levels for predetermined blocks of cycles shows that the AE acquisition rate remains low for loads below the fatigue limit, while it increases abruptly for higher levels. The thermographic assesment of fatigue limit is in total agreement with the AE results enabling the reliable evaluation of the fatigue limit of the material by testing just one specimen. The application of combined NDE techniques proved very valuable for benchmarking purposes while the sensitivities of the methods act complementarily to each other providing a very detailed assessment of the damage status of the material in real time.
机译:目前的工作涉及使用组合红外线(IR)热成像和声发射(AE)表征的陶瓷基质复合物(CMCS)材料的非破坏性评价(NDE)。 IR热成像作为非破坏性,实时和非接触技术,允许检测由热机械耦合产生的热波和在样品的机械环状载荷期间耗散的固有能量。施加两种不同的热敏方法,基于表面温度的测量和本质上散发能量,以监测裂纹启动和繁殖,并迅速评估交叉层SiC / Bmas复合材料的疲劳极限。同时,采用AE监测来记录从基质裂缝到纤维骨折和拉出的基质裂化的宽光谱。 AE事件率,以及像上升时间和峰值频率的定性指数,揭示了重要信息,允许表征与施加的载荷有关的骨折的严重程度。另外,AE还尝试了对CMCS复合材料的疲劳极限的快速评估。在不同负载水平下测试样品的预定循环块表明,对于疲劳极限的负载,AE采集速率保持低,而突然增加较高水平。疲劳极限的热敏序列与AE的总协定是通过测试只有一个标本测试材料的疲劳极限的可靠性评价。组合NDE技术的应用对于基准测试来证明是非常有价值的,而这些方法的敏感性互补地互相互动,可以实时对材料的损坏状态进行详细评估。

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