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Oxidation- and creep-enhanced fatigue of Haynes 188 alloy-oxide scale system under simulated pulse detonation engine conditions

机译:模拟脉冲爆震发动机条件下的Haynes 188合金氧化物尺度系统的氧化和蠕变增强疲劳

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The development of the pulse detonation engine (PDE) requires robust design of the engine components that are capable of enduring harsh detonation environments. In this study, a high cycle thermal fatigue test rig was developed for evaluating candidate PDE combustor materials using a CO_2 laser. The high cycle thermal fatigue behavior of Haynes 188 alloy was investigated under an enhanced pulsed laser test condition of 30 Hz cycle frequency (33 ms pulse period, and 10 ms pulse width including 0.2 ms pulse spike). The temperature swings generated by the laser pulses near the specimen surface were characterized by using one-dimensional finite difference modeling combined with experimental measurements. The temperature swings resulted in significant thermal cyclic stresses in the oxide scale/alloy system, and induced extensive surface cracking. Striations of various sizes were observed at the cracked surfaces and oxide/alloy interfaces under the cyclic stresses. The test results indicated that oxidation and creep-enhanced fatigue at the oxide scale/alloy interface was an important mechanism for the surface crack initiation and propagation under the simulated PDE condition.
机译:脉冲爆炸发动机(PDE)的开发需要能够持久地持久的骚扰爆轰环境的发动机部件的鲁棒设计。在该研究中,开发了一种使用CO_2激光来评估候选PDE燃烧器材料的高循环热疲劳试验台。在增强的脉冲激光测试条件下,在30 Hz循环频率(33ms脉冲周期,10ms脉冲宽度,包括0.2ms脉冲尖峰的10ms脉冲宽度的增强脉冲激光测试条件下,研究了Haynes 188合金的高循环热疲劳行为。通过使用一维有限差异建模与实验测量相结合,表征由样品表面附近的激光脉冲产生的温度摇摆。温度摇摆导致氧化物刻度/合金系统中的显着的热循环应力,并引起了广泛的表面裂化。在循环应力下的裂纹表面和氧化物/合金界面处观察各种尺寸的纹章。测试结果表明,氧化物尺度/合金界面处的氧化和蠕变增强疲劳是在模拟PDE条件下表面裂纹引发和传播的重要机制。

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