Monitoring Initial Tool Damage of PcBN tools during Hard Milling of Vanadis 4E using Acoustic Emission
(2026) 10th Conference on High Performance Cutting, CIRP-HPC 2026 141. p.370-375- Abstract
Tool Coating is a method for enhancing cutting efficiency and extending tool life, essential for machining hard materials. While Polycrystalline Cubic Boron Nitride (PcBN) tools are already well-suited for harsh machining conditions, their durability can be further improved with coatings. However, as the machining operation continues, tool coating loss occurs, reducing the durability of the tool and leading to further, more significant damage. Extensive research has been carried out for significant tool damage like flank wear or crater wear; however, early-stage tool damage is still relatively under-researched. This study proposes a method for real-time detection of initial tool damage during milling using an Acoustic Emission sensor... (More)
Tool Coating is a method for enhancing cutting efficiency and extending tool life, essential for machining hard materials. While Polycrystalline Cubic Boron Nitride (PcBN) tools are already well-suited for harsh machining conditions, their durability can be further improved with coatings. However, as the machining operation continues, tool coating loss occurs, reducing the durability of the tool and leading to further, more significant damage. Extensive research has been carried out for significant tool damage like flank wear or crater wear; however, early-stage tool damage is still relatively under-researched. This study proposes a method for real-time detection of initial tool damage during milling using an Acoustic Emission sensor whose high sensitivity makes it especially suitable for detecting minor changes to the milling process. The proposed method is based on Dynamic Time Warping (DTW), a technique that has been shown to be extremely powerful for analyzing time-series data, yet its application to acoustic emission signals remains underexplored. As verification, accelerometer data from the same experiments were analyzed and compared to the acoustic emission results. The findings suggest that the proposed approach enables the Effective monitoring of early tool degradation, providing a method for predictive maintenance and improving tool life management.
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- author
- Sridhar, Gautam LU ; Persson, Jonatan LU ; Sandsten, Maria LU ; Pozuelo, Sandra Gordon LU and Gutnichenko, Oleksandr LU
- organization
-
- Sentio: Integrated Sensors and Adaptive Technology for Sustainable Products and Manufacturing
- Production and Materials Engineering
- SPI: Sustainable Production Initiative
- Mathematical Statistics
- LU Profile Area: Light and Materials
- LU Profile Area: Natural and Artificial Cognition
- LTH Profile Area: Nanoscience and Semiconductor Technology
- LTH Profile Area: AI and Digitalization
- LTH Profile Area: Engineering Health
- NanoLund: Centre for Nanoscience
- ELLIIT: the Linköping-Lund initiative on IT and mobile communication
- eSSENCE: The e-Science Collaboration
- publishing date
- 2026
- type
- Chapter in Book/Report/Conference proceeding
- publication status
- published
- subject
- keywords
- Acoustic Emission, DTW, Initial Tool Damage, Milling, Signal Processing, Vanadis 4E
- host publication
- Procedia CIRP
- volume
- 141
- pages
- 6 pages
- conference name
- 10th Conference on High Performance Cutting, CIRP-HPC 2026
- conference location
- Cluny, France
- conference dates
- 2026-06-17 - 2026-06-19
- external identifiers
-
- scopus:105042614551
- DOI
- 10.1016/j.procir.2026.03.054
- language
- English
- LU publication?
- yes
- id
- 52a3b289-b7a6-4898-9681-0e333099d020
- date added to LUP
- 2026-09-18 14:21:04
- date last changed
- 2026-09-18 14:21:10
@inproceedings{52a3b289-b7a6-4898-9681-0e333099d020,
abstract = {{<p>Tool Coating is a method for enhancing cutting efficiency and extending tool life, essential for machining hard materials. While Polycrystalline Cubic Boron Nitride (PcBN) tools are already well-suited for harsh machining conditions, their durability can be further improved with coatings. However, as the machining operation continues, tool coating loss occurs, reducing the durability of the tool and leading to further, more significant damage. Extensive research has been carried out for significant tool damage like flank wear or crater wear; however, early-stage tool damage is still relatively under-researched. This study proposes a method for real-time detection of initial tool damage during milling using an Acoustic Emission sensor whose high sensitivity makes it especially suitable for detecting minor changes to the milling process. The proposed method is based on Dynamic Time Warping (DTW), a technique that has been shown to be extremely powerful for analyzing time-series data, yet its application to acoustic emission signals remains underexplored. As verification, accelerometer data from the same experiments were analyzed and compared to the acoustic emission results. The findings suggest that the proposed approach enables the Effective monitoring of early tool degradation, providing a method for predictive maintenance and improving tool life management.</p>}},
author = {{Sridhar, Gautam and Persson, Jonatan and Sandsten, Maria and Pozuelo, Sandra Gordon and Gutnichenko, Oleksandr}},
booktitle = {{Procedia CIRP}},
keywords = {{Acoustic Emission; DTW; Initial Tool Damage; Milling; Signal Processing; Vanadis 4E}},
language = {{eng}},
pages = {{370--375}},
title = {{Monitoring Initial Tool Damage of PcBN tools during Hard Milling of Vanadis 4E using Acoustic Emission}},
url = {{http://dx.doi.org/10.1016/j.procir.2026.03.054}},
doi = {{10.1016/j.procir.2026.03.054}},
volume = {{141}},
year = {{2026}},
}