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基于概率统计的 BK7 玻璃旋转超声加工切削力的机理预测。

Mechanistic prediction for cutting force in rotary ultrasonic machining of BK7 glass based on probability statistics.

机构信息

Institute of Advanced Manufacturing Technology, Ningbo Institute of Material Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, PR China.

Institute of Advanced Manufacturing Technology, Ningbo Institute of Material Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, PR China; Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, PR China.

出版信息

Ultrasonics. 2020 Feb;101:106006. doi: 10.1016/j.ultras.2019.106006. Epub 2019 Sep 11.

Abstract

Material removal in rotary ultrasonic machining (RUM) of hard-brittle material is an abnormal complicated process, which involves the combination effects of the numerous abrasive grains with the random distributions in the dimensions and penetration depths. These stochastic characteristics result in the evident differences in the extrusion loading between the material and each individual grain, and their aggregate effects serve to significantly affect the cutting force of the diamond tool. However, few mechanistic prediction models of the cutting force have incorporated in the random distribution features of the abrasive grains, restricting the current optimization methods for the reduction of the cutting force during the formal RUM process. Giving consideration to the abrasive processing kinematics and their distribution features on the tool end-face, the number of the effective grains together with their penetration depths was calculated utilizing the probability statistics. Subsequently, the novel theoretical model of the cutting force was established by incorporating the gaussian distribution characteristics of the grain size and their penetration depths. Afterward, the confirmatory experiments were performed for the validation of the proposed cutting force model, revealing that the predicted results were accordant well with the experimental measurements. Furthermore, it was found that the number of the active abrasive grains accounted for 2.972% of the total number on the tool end-face at the specific processing parameters. Additionally, the mechanistic predictions of the developed model represented that the cutting force depicting an irregular decreasing trend with the grain dimension increasing, which was attributed to the coupling effects between the grain size and their number.

摘要

旋转超声加工(RUM)硬脆材料的材料去除是一个异常复杂的过程,涉及到大量磨粒的组合效应,这些磨粒的尺寸和穿透深度具有随机分布的特点。这些随机特征导致材料与每个单独磨粒之间的挤压载荷明显不同,它们的综合效应显著影响金刚石刀具的切削力。然而,很少有切削力的机械预测模型考虑到磨粒的随机分布特征,限制了当前正式 RUM 过程中降低切削力的优化方法。考虑到磨料加工运动学及其在刀具端面上的分布特征,利用概率统计计算了有效磨粒的数量及其穿透深度。随后,结合磨粒尺寸和穿透深度的高斯分布特征,建立了新的切削力理论模型。然后,为了验证提出的切削力模型,进行了验证实验,结果表明预测结果与实验测量值吻合较好。此外,还发现特定加工参数下,刀具端面上的有效磨粒数占总磨粒数的 2.972%。此外,开发模型的力学预测表明,切削力随磨粒尺寸的增加呈现出不规则的减小趋势,这归因于磨粒尺寸和数量之间的耦合效应。

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