Evolution of microstructure and elastic modulus of EB-PVD thermal barrier coating induced by sintering
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摘要:
针对电子束物理气相沉积(EB-PVD)热障涂层的烧结行为研究了陶瓷层微结构及弹性模量演化。开展了EB-PVD热障涂层
1150 ℃下的烧结试验,并利用扫描电子显微镜(SEM)对烧结后的试验件进行微结构观测,获取了陶瓷层柱状晶间隙演化过程。采用纳米压痕法测量试验件陶瓷层弹性模量,结果表明陶瓷层弹性模量在烧结初期迅速增加随后趋于平稳。为将陶瓷层弹性模量与微结构演化联系起来,结合制备态微结构建立了陶瓷层柱状晶模型,采用基于微结构演化的烧结力学模型计算得到了弹性模量的演化规律。结果表明烧结诱发的陶瓷层微结构致密化导致了其弹性模量的演化,基于微结构演化所建立的烧结力学模型能准确地预测弹性模量随烧结时间的演化规律,测试值与计算值误差小于±20%。Abstract:The microstructure and elastic modulus evolution of electron beam-physical vapor deposition (EB-PVD) thermal barrier coating were studied. The sintering test of EB-PVD thermal barrier coating at
1150 ℃ was carried out, and the microstructure of the test piece after sintering was observed by scanning electron microscope (SEM), and the evolution of columnar crystal gap in ceramic layer was obtained. The elastic modulus of ceramic layer was measured by nanoindenter. The results showed that the elastic modulus of ceramic layer increased rapidly at the initial stage of sintering and then became stable. In order to relate the elastic modulus of ceramic layer with the micro-structure evolution, a simplified cylindrical crystal model of ceramic layer was established based on the prepared microstructure, and the evolution law of the elastic modulus was obtained by using the sintering model based on the microstructure evolution. The results showed that the microstructure evolution induced by sintering led to the change of elastic modulus of ceramic layer. The sintering model based on the microstructure evolution can accurately predict the evolution law of elastic modulus with sintering time, and the error between the measured value and the calculated value was less than ±20%. -
表 1 纳米压痕测试结果
Table 1. Nanoindentation test results
试验件状态 E/GPa 标准偏差/GPa 制备态 100.3 16.4 烧结1 h 121.2 24.8 烧结2 h 148.3 20.2 烧结5 h 155.1 24.9 烧结10 h 157.5 17.7 烧结40 h 169.4 9.2 烧结55 h 158.3 15.4 烧结80 h 167.3 10.8 烧结100 h 158.7 14.0 -
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