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Implementation and Development of the Incremental Hole Drilling Method for the Measurement of Residual Stress in Thermal Spray Coatings

机译:增量钻孔法测量热喷涂涂层残余应力的实现与发展

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摘要

The experimental measurement of residual stresses originating within thick coatings deposited by thermal spray on solid substrates plays a role of fundamental relevance in the preliminary stages of coating design and process parameters optimization. The hole-drilling method is a versatile and widely used technique for the experimental determination of residual stress in the most superficial layers of a solid body. The consolidated procedure, however, can only be implemented for metallic bulk materials or for homogeneous, linear elastic, and isotropic materials. The main objective of the present investigation was to adapt the experimental method to the measurement of stress fields built up in ceramic coatings/metallic bonding layers structures manufactured by plasma spray deposition. A finite element calculation procedure was implemented to identify the calibration coefficients necessary to take into account the elastic modulus discontinuities that characterize the layered structure through its thickness. Experimental adjustments were then proposed to overcome problems related to the low thermal conductivity of the coatings. The number of calculation steps and experimental drilling steps were finally optimized.
机译:在涂层设计和工艺参数优化的初始阶段,通过热喷涂在固体基材上沉积的厚涂层中产生的残余应力的实验测量起着根本的作用。钻孔法是一种用于实验确定固体最表面层中残余应力的通用且广泛使用的技术。但是,合并程序只能对金属散装材料或均质,线性弹性和各向同性的材料实施。本研究的主要目的是使实验方法适合于测量通过等离子喷涂沉积制造的陶瓷涂层/金属结合层结构中建立的应力场。实施了有限元计算程序来确定校准系数,该校准系数必须考虑到通过其厚度表征层状结构的弹性模量不连续性。然后提出实验调整以克服与涂层的低导热率有关的问题。最终优化了计算步骤和实验钻孔步骤的数量。

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