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引用次数: 0
摘要
磨削是机械加工中最重要的方法,属于精密加工工艺的范畴。许多机械结合面都是磨削面。因此,磨削结合面的接触机理对于预测精密机械产品的加载过程和动态特性具有重要意义。本文基于收集到的磨削表面粗糙度数据,分析了非圆表面的轮廓参数和形貌特征,拟合了粗糙表面数据,重构了非圆表面轮廓,建立了圆柱非圆表面模型抛物线 y = nx2 + mx + l。在对磨削过程的粗糙表面数据进行分析后,用高斯分布函数拟合了表面粗糙度分布高度,证明表面粗糙度遵循高斯分布规律。通过对假定模型的非尺寸处理和六个塑性指数的拟合,证实了该模型的有效性。当压力相同时,法向刚度随接合面粗糙度值的减小而增大。实验刚度值与新建立模型的拟合刚度值基本一致,验证了为磨削表面建立的新模型的可靠性和有效性。本文建立了磨削接合面的新模型,并搭建了实验平台来验证模型的有效性。
Analysis, Modeling and Experimental Study of the Normal Contact Stiffness of Rough Surfaces in Grinding
Grinding is the most important method in machining, which belongs to the category of precision machining processes. Many mechanical bonding surfaces are grinding surfaces. Therefore, the contact mechanism of grinding a joint surface is of great significance for predicting the loading process and dynamic characteristics of precision mechanical products. In this paper, based on the collected grinding surface roughness data, the profile parameters and topography characteristics of the asperity were analyzed, the rough surface data were fitted, the asperity profile was reconstructed, and the parabola y = nx2 + mx + l of the cylindrical asperity model was established. After analyzing the rough surface data of the grinding process, the asperity distribution height was fitted with a Gaussian distribution function, which proved that asperity follows the Gaussian distribution law. The validity of this model was confirmed by the non-dimensional processing of the assumed model and the fitting of six plasticity indices. When the pressure is the same, the normal stiffness increases with the decrease in the roughness value of the joint surface. The experimental stiffness values are basically consistent with the fitting stiffness values of the newly established model, which verifies the reliability and effectiveness of the new model established for the grinding surface. In this paper, a new model for grinding joint surface is established, and an experimental platform is set up to verify the validity of the model.
期刊介绍:
This journal is dedicated to the field of Tribology and closely related disciplines. This includes the fundamentals of the following topics: -Lubrication, comprising hydrostatics, hydrodynamics, elastohydrodynamics, mixed and boundary regimes of lubrication -Friction, comprising viscous shear, Newtonian and non-Newtonian traction, boundary friction -Wear, including adhesion, abrasion, tribo-corrosion, scuffing and scoring -Cavitation and erosion -Sub-surface stressing, fatigue spalling, pitting, micro-pitting -Contact Mechanics: elasticity, elasto-plasticity, adhesion, viscoelasticity, poroelasticity, coatings and solid lubricants, layered bonded and unbonded solids -Surface Science: topography, tribo-film formation, lubricant–surface combination, surface texturing, micro-hydrodynamics, micro-elastohydrodynamics -Rheology: Newtonian, non-Newtonian fluids, dilatants, pseudo-plastics, thixotropy, shear thinning -Physical chemistry of lubricants, boundary active species, adsorption, bonding