砂轮体积孔径参数的确定

S. A. Krukov, N. V. Baydakova, V. Shumyacher
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引用次数: 0

摘要

在形成砂轮的结构、力学性能和性能标准时,孔隙是一个关键因素。它们随机分布在砂轮的碎片中,在有限的砂轮碎片体积内具有随机的大小和形状,这给确定砂轮内孔隙空间的体积大小参数带来了困难。对陶瓷结合剂上的砂轮进行了实验和分析研究,揭示了孔隙率和孔径取决于砂轮的晶粒尺寸、硬度和结构,同时考虑到磨料的类型和质量指标以及工具修改方法。结果表明,刀具孔隙率随组织数的增加而增大,随硬度和晶粒尺寸的减小而减小。在获得实验数据的基础上,编制了反映系列标准工具孔隙率与其结构特性幂函数关系的方程。通过改变车轮的结构特征,可以确定每个具体情况下磨削过程所需的最佳孔隙率。对不同结构特征刀具孔隙度测定的实验数据与计算数据进行了比较,结果表明,孔隙度测定值的差异在5% ~ 8%之间。考虑到孔径对磨具结构特性的依赖性,对实验数据进行数学和统计处理,使我们能够确定孔径对晶粒尺寸和孔隙率的依赖性。孔径随晶粒尺寸和组织数的增加而增大,随磨具硬度的增加而减小。计算孔径值与实验值相差5 ~ 12%,置信概率为95%。所提出的计算依赖关系和实验数据使作者能够通过gost归一化结构特征确定工具的孔隙率和孔径,并在指定的磨削模式和条件下合理选择工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Determining the Volume-size Pore Space Parameters in the Grinding Wheels
In forming structural and mechanical properties and performance criteria of a grinding wheel, pores are a key player. They are stochastically distributed in the shard of the wheel, have a random size and shape in the limited volume of the wheel shard, which makes it difficult to determine the volume-size parameters of the pore space in the grinding wheel.Experimental and analytical studies of the wheels on the ceramic bond allowed authors to reveal a porosity and pore size dependence on the size of grain, hardness, and structure of wheels, taking into account the type and the quality index of abrasives and also the method of tool modification. It was found that the tool porosity increases with increasing its structure number and decreasing hardness and size of grain.On the basis of obtained experimental data, an equation was compiled that reflects the power relationship between the porosity of a serial standard tool and its structural characteristics. By varying the structural characteristics of wheels, it is possible to determine the optimal porosity required for the grinding process in each concrete case.A comparison of experimental and calculated data on determining porosity of tools with different structural characteristics has shown that the difference in the values of porosity is within the range of 5 ÷ 8 %.Mathematical and statistical processing of experimental data, taking into account the dependence of the pore diameter on structural characteristics of the abrasive tool, allowed us to define a dependence of the pore size on the size of grain and porosity. The pore size grows with increasing size of grains and structure number and decreases with increasing hardness of the abrasive tool. The calculated pore size values differ from those experimentally obtained in the range of 5 – 12% with a confidence probability of 95 %.The presented calculation dependences and experimental data allowed authors to determine the porosity and the pore size of the tool through its GOST-normalized structural characteristics, as well as to make a rational choice of the tool for specified grinding modes and conditions.
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