Design simulation of modular abrasive tool

D. Lobanov, V Yu Skeeba, I. Golyushov, Valentin Smirnov, Egor Zverev
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Abstract

Introduction. Grinding is one of the most common types of finishing. It allows the production of surfaces with the required quality parameters and is one of the most available and productive methods for machining high-strength and difficult-to-machine materials. Grinding wheels represent the most prevalent application of grinding technology in mechanical engineering. The use of this abrasive tool helps to increase processing productivity by ensuring the removal of a significant layer of material. In addition, grinding wheels have a longer service life and are widely used in the implementation of hybrid technologies based on the combination of mechanical (abrasive), electrical, chemical, and thermal effects in various combinations. A variety of tool body shapes and types of abrasives allow the use of wheels in a wide variety of production areas. One of the ways to analyze and design a new tool is numerical simulation. In this research, graphic modeling was selected as the most appropriate method for representing the future design of the tool. This approach allows for a more straightforward conceptualization process compared to other modeling techniques. The purpose of the work is to simulate a modular abrasive tool in order to analyze and synthesize structures to increase the efficiency of tool support for the manufacture of products made of high-strength and difficult-to-process materials using traditional or hybrid processing technologies. Research methodology. Theoretical studies are carried out using the basic principles of system analysis, geometric theory of surface formation, cutting tool design, graph theory, mathematical and computer simulation. To solve the problem, we have studied the available designs of modular grinding wheels. There has also been the analysis of the types of abrasive parts, methods of fastening of the abrasive cutting part on the wheel’s body, the materials used for the manufacture of the body, the characteristics of the body of the wheel, and fastening schemes. Results and discussions. A simulation technique based on graphic modelling theory has been developed. A comprehensive investigation of the existing design of the grinding wheel has enabled the identification of the key structural elements that define its design. The data obtained has been used to create a generalized graphic simulation of a modular abrasive tool. This simulation integrates all the components and displays a conditional constructive relationship between them. The developed design methodology was tested on an example of two designs of modular grinding wheels. The theoretical studies established that the design efficiency of modular abrasive tools can be increased by 2–4 times by using the developed simulation technique.
模块化磨具的设计模拟
介绍。磨削是最常见的精加工类型之一。它可以加工出符合质量参数要求的表面,是加工高强度和难加工材料的最有效和最有成效的方法之一。砂轮是磨削技术在机械工程中最普遍的应用。使用这种研磨工具可确保去除大量材料层,从而有助于提高加工生产率。此外,砂轮的使用寿命更长,并广泛应用于基于机械(磨料)、电气、化学和热效应各种组合的混合技术。多种多样的工具体形状和磨料类型使砂轮可用于各种生产领域。数值模拟是分析和设计新工具的方法之一。在这项研究中,图形建模被选为表示未来工具设计的最合适方法。与其他建模技术相比,这种方法允许更直接的概念化过程。这项工作的目的是对模块化磨具进行模拟,以便分析和合成结构,提高工具支持的效率,从而使用传统或混合加工技术制造高强度和难加工材料制成的产品。研究方法。利用系统分析、表面形成几何理论、切削刀具设计、图论、数学和计算机模拟的基本原理进行理论研究。为了解决这个问题,我们研究了现有的模块化砂轮设计。此外,我们还分析了磨料部件的类型、磨料切割部件在砂轮主体上的紧固方法、制造主体所用的材料、砂轮主体的特性以及紧固方案。结果与讨论。开发了一种基于图形建模理论的模拟技术。通过对现有砂轮设计的全面调查,确定了砂轮设计的关键结构元素。获得的数据被用于创建模块化磨具的通用图形模拟。该模拟集成了所有组件,并显示了它们之间的条件构造关系。所开发的设计方法在两个模块化砂轮设计实例中进行了测试。理论研究表明,使用所开发的模拟技术,模块化磨具的设计效率可提高 2-4 倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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