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Fracture mechanism of full lamellar TiAl under high-temperature creep and fatigue conditions based on the in situ observational tests

机译:基于原位观察试验的全层状TiAl在高温蠕变和疲劳条件下的断裂机理

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In this paper, crack growth mechanism of full lamellar TiAl intermetallic compound under high temperature creep and fatigue conditions were investigated using in situ observational high temperature creep-fatigue testing machine. Under high temperature creep condition, inter-granular voids were found to be originated and to coalesce, which results in inter-granular cracking. Furthermore, since the grain size is large (1.5–3.0 mm), inter-granular cracks distribute not only around a notch but also the sites apart from the notch. Since the creep crack mechanism is coalescence of distributed inter-granular cracks, the resistance against creep crack growth becomes higher. Under high temperature fatigue condition, a trans-granular crack was found to initially grow along the direction of lamellar structure, which is different from that under creep condition. After that, the crack incubates and the crack opening displacement increases until it takes some critical value. After that, final unstable crack growth occurs along the perpendicular direction of applied load due to the delamination between matrix and lamellar structure. The characteristic of load frequency for fatigue fracture life is found to be dominated by cyclic dependent mechanism and it is not affected by time dependent mechanism even under low frequency.
机译:本文采用现场观察高温蠕变疲劳试验机研究了全片状TiAl金属间化合物在高温蠕变和疲劳条件下的裂纹扩展机理。在高温蠕变条件下,发现了晶间空隙的产生和聚结,从而导致了晶间裂纹。此外,由于晶粒尺寸较大(1.5-3.0 mm),因此晶间裂纹不仅分布在一个缺口附近,而且分布在缺口以外的位置。由于蠕变裂纹机理是分布的晶间裂纹的合并,因此抗蠕变裂纹生长的能力变得更高。在高温疲劳条件下,发现了沿层状结构的方向开始出现跨晶粒裂纹,这与蠕变条件不同。此后,裂纹开始扩展,裂纹扩展位移增大,直到达到某个临界值为止。此后,由于基体和层状结构之间的分层,最终沿施加载荷的垂直方向发生了不稳定的裂纹扩展。发现疲劳断裂寿命的负载频率特性受循环依赖机制支配,即使在低频下也不受时间依赖机制的影响。

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