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Instrumented indentation and ultrasonic velocity techniques for the evaluation of creep cavitation in silicon nitride

机译:仪器压痕和超声速度技术用于评估氮化硅中的蠕变空化

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摘要

Instrumented indentation and ultrasonic wave velocity techniques combined with precise density change measurements and transmission electron microscopy (TEM) were used to investigate the changes of elastic moduli in silicon nitride after tensile deformation up to 3%. Linear dependencies on strain were also found for the degradation of the indentation modulus, longitudinal and transverse ultrasonic wave velocities, Young's, shear and bulk moduli and Poisson's ratio. The results obtained by indentation technique and ultrasonic method were essentially identical. TEM observation confirmed that multigrain junction cavities were responsible for the density changes and the elastic moduli degradation. The density changes were linearly proportional to tensile strain with the slope of 0.75. Thus, cavitation is the dominant creep mechanism in silicon nitride studied. Instrumented indentation and ultrasound velocity techniques are suitable for non-destructive monitoring of creep damage accumulation in ceramic components. (C) 2003 Kluwer Academic Publishers. [References: 37]
机译:使用仪器压痕和超声波速度技术,结合精确的密度变化测量和透射电子显微镜(TEM),研究了拉伸变形至3%后氮化硅中弹性模量的变化。还发现压痕模量,纵向和横向超声波速度,杨氏模量,剪切模量和体积模量以及泊松比的降低与应变的线性相关性。通过压痕技术和超声方法获得的结果基本相同。 TEM观察证实,多晶粒接合腔是密度变化和弹性模量下降的原因。密度变化与拉伸应变线性相关,斜率为0.75。因此,空化作用是研究的氮化硅的主要蠕变机理。仪器压痕和超声速度技术适用于陶瓷零件蠕变损伤累积的无损监测。 (C)2003 Kluwer学术出版社。 [参考:37]

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