The heat energy dissipated in a control volume to correlate the crack propagation rate in stainless steel specimens

G. Meneghetti, M. Ricotta
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引用次数: 2

Abstract

Metallic materials dissipate thermal energy when subjected to fatigue. Some of them, due a favorable combination of thermo-physical material properties, exhibit a significant temperature rise, which can be easily measured in-situ by means of thermocouples or infrared cameras. The heat energy dissipated in a unit volume of material per cycle (the Q parameter) has proven to be effective as a fatigue damage index in case of AISI 304L plain and notched specimens. Originally conceived and applied as a point-related quantity, recently Q has been averaged at the tip of propagating fatigue cracks (the Q* parameter) in order to correlate crack growth data gathered from fracture mechanics tests. The use of Q* seems interesting because (i) it can be evaluated in-situ from infrared temperature maps and (ii) crack acceleration due to excessive plasticity is likely to be accounted for.
在控制体积内耗散的热能与不锈钢试样裂纹扩展速率相关
金属材料在受到疲劳作用时会散发热能。其中一些,由于热物理材料性能的良好组合,表现出显着的温升,这可以很容易地通过热电偶或红外摄像机进行现场测量。在aisi304l平切试件中,单位体积材料每循环耗散的热能(Q参数)被证明是有效的疲劳损伤指标。最初的设想和应用是一个与点相关的量,最近,为了关联从断裂力学测试中收集到的裂纹扩展数据,Q在扩展疲劳裂纹的尖端被取平均值(Q*参数)。Q*的使用似乎很有趣,因为(i)它可以从红外温度图中进行原位评估,(ii)由于过度塑性导致的裂纹加速可能被解释。
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