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Erschienen in: International Journal of Automation and Computing 3/2013

01.06.2013

Condition Monitoring of CNC Machining Using Adaptive Control

verfasst von: B. Srinivasa Prasad, D. Siva Prasad, A. Sandeep, G. Veeraiah

Erschienen in: Machine Intelligence Research | Ausgabe 3/2013

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Abstract

In this work, an adaptive control constraint system has been developed for computer numerical control (CNC) turning based on the feedback control and adaptive control/self-tuning control. In an adaptive controlled system, the signals from the online measurement have to be processed and fed back to the machine tool controller to adjust the cutting parameters so that the machining can be stopped once a certain threshold is crossed. The main focus of the present work is to develop a reliable adaptive control system, and the objective of the control system is to control the cutting parameters and maintain the displacement and tool flank wear under constraint valves for a particular workpiece and tool combination as per ISO standard. Using Matlab Simulink, the digital adaption of the cutting parameters for experiment has confirmed the efficiency of the adaptively controlled condition monitoring system, which is reflected in different machining processes at varying machining conditions. This work describes the state of the art of the adaptive control constraint (ACC) machining systems for turning. AISI4140 steel of 150 BHN hardness is used as the workpiece material, and carbide inserts are used as cutting tool material throughout the experiment. With the developed approach, it is possible to predict the tool condition pretty accurately, if the feed and surface roughness are measured at identical conditions. As part of the present research work, the relationship between displacement due to vibration, cutting force, flank wear, and surface roughness has been examined.

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Metadaten
Titel
Condition Monitoring of CNC Machining Using Adaptive Control
verfasst von
B. Srinivasa Prasad
D. Siva Prasad
A. Sandeep
G. Veeraiah
Publikationsdatum
01.06.2013
Verlag
Springer-Verlag
Erschienen in
Machine Intelligence Research / Ausgabe 3/2013
Print ISSN: 2731-538X
Elektronische ISSN: 2731-5398
DOI
https://doi.org/10.1007/s11633-013-0713-1

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