An Intelligent System for Online Optimization of the Cylindrical Traverse Grinding Operation

Author:

Kruszyński B W1,Lajmert P1

Affiliation:

1. Intitute of Machine Tools and Production Engineering, Technical University of Łódź, Łódź, Poland

Abstract

This paper presents an intelligent system for optimization of the cylindrical traverse grinding process whose objective is to maximize the material removal rate with constraints on workpiece out-of-roundness and waviness errors, on surface finish, and on grinding temperature. A theoretical analysis of wheel wear development in the traverse grinding process is presented. Next, the results of an experimental test are discussed to establish the most efficient strategy for grinding allowance removal. In the optimization scheme a feedforward neural network is employed to obtain a model which describes relations between the process input parameters and the grinding results. Then this model is used to optimize adaptively the traverse grinding process. The performance of the proposed optimization system is evaluated by simulation research.

Publisher

SAGE Publications

Subject

Industrial and Manufacturing Engineering,Mechanical Engineering

Reference12 articles.

1. Application of intelligent CNC in grinding

2. A Neural Network Approach to the Decision-Making Process for Grinding Operations

3. Manufacturing Process Modeling and Optimization Based on Multi-Layer Perceptron Network

4. Modelling and Simulation of Grinding Processes

5. Kruszy?ski B., Lajmert P. An intelligent system for supervision and control of traverse grinding operation. In Proceedings of the Sixth International Conference on Monitoring and automatic supervision in manufacturing, Warsaw, Poland, 2004, pp. 21–22 (The Institute of Metal Cutting, Kraków, Poland).

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