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System for Tool-Wear Condition Monitoring in CNC Machines under Variations of Cutting Parameter Based on Fusion Stray Flux-Current Processing

The computer numerical control (CNC) machine has recently taken a fundamental role in the manufacturing industry, which is essential for the economic development of many countries. Current high quality production standards, along with the requirement for maximum economic benefits, demand the use of...

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Autores principales: Jaen-Cuellar, Arturo Yosimar, Osornio-Ríos, Roque Alfredo, Trejo-Hernández, Miguel, Zamudio-Ramírez, Israel, Díaz-Saldaña, Geovanni, Pacheco-Guerrero, José Pablo, Antonino-Daviu, Jose Alfonso
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8705382/
https://www.ncbi.nlm.nih.gov/pubmed/34960525
http://dx.doi.org/10.3390/s21248431
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author Jaen-Cuellar, Arturo Yosimar
Osornio-Ríos, Roque Alfredo
Trejo-Hernández, Miguel
Zamudio-Ramírez, Israel
Díaz-Saldaña, Geovanni
Pacheco-Guerrero, José Pablo
Antonino-Daviu, Jose Alfonso
author_facet Jaen-Cuellar, Arturo Yosimar
Osornio-Ríos, Roque Alfredo
Trejo-Hernández, Miguel
Zamudio-Ramírez, Israel
Díaz-Saldaña, Geovanni
Pacheco-Guerrero, José Pablo
Antonino-Daviu, Jose Alfonso
author_sort Jaen-Cuellar, Arturo Yosimar
collection PubMed
description The computer numerical control (CNC) machine has recently taken a fundamental role in the manufacturing industry, which is essential for the economic development of many countries. Current high quality production standards, along with the requirement for maximum economic benefits, demand the use of tool condition monitoring (TCM) systems able to monitor and diagnose cutting tool wear. Current TCM methodologies mainly rely on vibration signals, cutting force signals, and acoustic emission (AE) signals, which have the common drawback of requiring the installation of sensors near the working area, a factor that limits their application in practical terms. Moreover, as machining processes require the optimal tuning of cutting parameters, novel methodologies must be able to perform the diagnosis under a variety of cutting parameters. This paper proposes a novel non-invasive method capable of automatically diagnosing cutting tool wear in CNC machines under the variation of cutting speed and feed rate cutting parameters. The proposal relies on the sensor information fusion of spindle-motor stray flux and current signals by means of statistical and non-statistical time-domain parameters, which are then reduced by means of a linear discriminant analysis (LDA); a feed-forward neural network is then used to automatically classify the level of wear on the cutting tool. The proposal is validated with a Fanuc Oi mate Computer Numeric Control (CNC) turning machine for three different cutting tool wear levels and different cutting speed and feed rate values.
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spelling pubmed-87053822021-12-25 System for Tool-Wear Condition Monitoring in CNC Machines under Variations of Cutting Parameter Based on Fusion Stray Flux-Current Processing Jaen-Cuellar, Arturo Yosimar Osornio-Ríos, Roque Alfredo Trejo-Hernández, Miguel Zamudio-Ramírez, Israel Díaz-Saldaña, Geovanni Pacheco-Guerrero, José Pablo Antonino-Daviu, Jose Alfonso Sensors (Basel) Article The computer numerical control (CNC) machine has recently taken a fundamental role in the manufacturing industry, which is essential for the economic development of many countries. Current high quality production standards, along with the requirement for maximum economic benefits, demand the use of tool condition monitoring (TCM) systems able to monitor and diagnose cutting tool wear. Current TCM methodologies mainly rely on vibration signals, cutting force signals, and acoustic emission (AE) signals, which have the common drawback of requiring the installation of sensors near the working area, a factor that limits their application in practical terms. Moreover, as machining processes require the optimal tuning of cutting parameters, novel methodologies must be able to perform the diagnosis under a variety of cutting parameters. This paper proposes a novel non-invasive method capable of automatically diagnosing cutting tool wear in CNC machines under the variation of cutting speed and feed rate cutting parameters. The proposal relies on the sensor information fusion of spindle-motor stray flux and current signals by means of statistical and non-statistical time-domain parameters, which are then reduced by means of a linear discriminant analysis (LDA); a feed-forward neural network is then used to automatically classify the level of wear on the cutting tool. The proposal is validated with a Fanuc Oi mate Computer Numeric Control (CNC) turning machine for three different cutting tool wear levels and different cutting speed and feed rate values. MDPI 2021-12-17 /pmc/articles/PMC8705382/ /pubmed/34960525 http://dx.doi.org/10.3390/s21248431 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Jaen-Cuellar, Arturo Yosimar
Osornio-Ríos, Roque Alfredo
Trejo-Hernández, Miguel
Zamudio-Ramírez, Israel
Díaz-Saldaña, Geovanni
Pacheco-Guerrero, José Pablo
Antonino-Daviu, Jose Alfonso
System for Tool-Wear Condition Monitoring in CNC Machines under Variations of Cutting Parameter Based on Fusion Stray Flux-Current Processing
title System for Tool-Wear Condition Monitoring in CNC Machines under Variations of Cutting Parameter Based on Fusion Stray Flux-Current Processing
title_full System for Tool-Wear Condition Monitoring in CNC Machines under Variations of Cutting Parameter Based on Fusion Stray Flux-Current Processing
title_fullStr System for Tool-Wear Condition Monitoring in CNC Machines under Variations of Cutting Parameter Based on Fusion Stray Flux-Current Processing
title_full_unstemmed System for Tool-Wear Condition Monitoring in CNC Machines under Variations of Cutting Parameter Based on Fusion Stray Flux-Current Processing
title_short System for Tool-Wear Condition Monitoring in CNC Machines under Variations of Cutting Parameter Based on Fusion Stray Flux-Current Processing
title_sort system for tool-wear condition monitoring in cnc machines under variations of cutting parameter based on fusion stray flux-current processing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8705382/
https://www.ncbi.nlm.nih.gov/pubmed/34960525
http://dx.doi.org/10.3390/s21248431
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