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Microgrinding of nanostructured materials: Experimentation and theoretical modeling.

机译:纳米结构材料的微粉碎:实验和理论建模。

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摘要

This study is aimed at experimentally investigating the effect of microgrinding on the integrity of thermally sprayed nanostructured WC/12Co and Al2 O3/13TiO2 coatings and theoretically developing a mechanical model to simulate the machining process of ceramics. A comprehensive microgrinding experiment is designed to study the effects of the grinding process parameters, such as abrasive grit size, wheel bond type, wheel depth of cut, and workpiece feedrate, on surface finish, subsurface damage, and residual stresses of these coatings. The correlation between the grinding conditions and the integrity of ground samples helps provide an experimental basis for developing a viable microgrinding technique for nanostructured materials and coated samples. A simple X-ray diffraction technique, glancing incident X-ray diffraction (GIXD), is introduced to measure the depth profiles of residual stresses in the coatings. The results of the experiment show that the effects of the microgrinding process are limited to the surface layer of ground coatings; the wheel depth of cut is the most influential parameter in the cup-type grinding; ductile flow is the dominant material removal mechanism in grinding n-WC/12Co coatings under all conditions and in grinding n-A1 2O3/13TiO2 at a low material removal rate, the residual stresses induced by the microgrinding process are compressive, strongly depend on the grinding direction, and show a strong gradient in the thickness direction for both coatings.; Based on continuum damage mechanics, a theoretical model is developed for predicting the behavior of ceramics under complex loadings. Unlike the linear elastic fracture mechanics, this damage model includes the effects of cracks, microcracks and inelastic deformation. The model is employed to simulate the damage development in ceramic samples during the machining process using a fourth order isotropic damage tensor. The simulated machining process is similar to the interaction between the abrasive grit and a ceramic sample in surface grinding. The final state of damage and residual stresses in the machined ceramic samples is calculated with this model. The simulation results agree well with the experimental results.
机译:本研究旨在通过实验研究微粉碎对热喷涂纳米结构WC / 12Co和Al 2 O 3 / 13TiO 2 的完整性的影响。涂层,并从理论上开发出机械模型来模拟陶瓷的加工过程。设计了一个全面的微研磨实验,以研究磨削工艺参数(例如磨料粒度,砂轮粘结类型,砂轮切割深度和工件进给率)对这些涂层的表面光洁度,亚表面损伤和残余应力的影响。研磨条件与研磨样品完整性之间的相关性有助于为开发可行的纳米结构材料和涂层样品微研磨技术提供实验基础。引入了一种简单的X射线衍射技术,即掠射X射线衍射(GIXD),以测量涂层中残余应力的深度分布。实验结果表明,微粉磨过程的影响仅限于地面涂层的表面层。砂轮切削深度是杯型磨削中影响最大的参数。在所有条件下研磨 n -WC / 12Co涂层以及研磨n-A1 2 O 3 /时,韧性流是主要的材料去除机理。 13TiO 2 在较低的材料去除率下,由微研磨过程引起的残余应力是压缩性的,强烈依赖于研磨方向,并且两种涂层在厚度方向上都显示出很强的梯度。基于连续损伤力学,建立了用于预测复杂载荷下陶瓷行为的理论模型。与线性弹性断裂力学不同,该损伤模型包括裂纹,微裂纹和非弹性变形的影响。该模型用于模拟陶瓷样品在加工过程中使用四阶各向同性损伤张量产生的损伤。模拟的加工过程类似于表面研磨中砂砾和陶瓷样品之间的相互作用。使用此模型可以计算出加工陶瓷样品中的最终损伤状态和残余应力。仿真结果与实验结果吻合良好。

著录项

  • 作者

    Liu, Xianbing.;

  • 作者单位

    The University of Connecticut.;

  • 授予单位 The University of Connecticut.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 152 p.
  • 总页数 152
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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