IMPROVING THE STRENGTH OF ABRASIVE WHEELS AND OPTIMIZING THE CONTROL OVER THE STRENGTH OF COMPOSITE ABRASIVE MATERIALS

Authors

DOI:

https://doi.org/10.14529/met200406

Keywords:

abrasive tools, durability, composite abrasive materials, strength tests

Abstract

The strength of abrasive wheels is one of the key factors affecting the performance of abrasive machining. The paper discusses ways to improve the strength of abrasive wheels. The stress-state mathematical model presented herein is a generalization of the existing models. It is used herein to find for the first time that there are numerous optimal combinations of the elastic modulus and reinforcing material density, which result in the same minimum value of the objective function. It is found out that increasing the radius of the reinforcing component while also optimizing the mechanical properties of its material may increase the permissible breaking speed of the wheel several times. We herein present a regression equation and a nomogram for finding the optimal combination of control factors.
Conventional methods for testing the mechanical properties of materials, which have been proven reliable for testing metals and alloys, are not as reliable for testing abrasive materials, as the test results they generate are not sufficiently stable or accurate. We therefore propose an alternative method that does not require any special equipment or special studies.

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Published

2020-12-12

Issue

Section

Powder Metallurgy and Composite Materials