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Cutting Force Estimation in Sensor-Equipped Metal Cutting Tools Using Strain-Force Transfer Function
Blekinge Institute of Technology, Faculty of Engineering, Department of Mechanical Engineering. AB Sandvik Coromant, Sweden.ORCID iD: 0009-0004-1764-4678
AB Sandvik Coromant, Sweden.
Blekinge Institute of Technology, Faculty of Engineering, Department of Mechanical Engineering.
Sandvik Teeness AS, Norway.
2025 (English)In: Dynamic Substructuring & Transfer Path Analysis, Vol. 4: Proceedings of the 43rd IMAC, a Conference and Exposition on Structural Dynamics 2025 / [ed] Walter D'Ambrogio, Dan Roettgen, Maarten van der Seijs, River Publishers, 2025Conference paper, Published paper (Refereed)
Abstract [en]

Sensor-equipped cutting tools are becoming more common in the metal cutting industry as the demand for process monitoring and automation grows. These products are used for monitoring cutting forces and vibrations during machining with the objective of providing valuable insight into tool deflection, tool wear, surface finish, and process stability. The number of sensors and their position in the cutting tool, are often restricted by price and the thermo-mechanical loads acting in the cutting zone. Obtaining accurate measurements is a challenge due to mechanical filtering between the sensor positions and the tool tip as well as due to measurement noise from the sensors and electronics. This paper presents a method to estimate dynamic loads and tool tip vibrations using recorded data from strain sensors in a cutting tool. This is achieved through output-only calibration of an analytical model of the cutting tool, which defines the strain-force relationship based solely on the measured strain response data. This approach provides key parameters, including the first resonance frequency and the damping ratio of the cutting tool. The model is then applied to eliminate unwanted dynamic effects from the measured strain data, enhancing the accuracy of predictions of forces and tool tip displacement.

Place, publisher, year, edition, pages
River Publishers, 2025.
Keywords [en]
Cutting force estimation, Deflection prediction, Metal cutting dynamics, Sensor-equipped cutting tools, Strainforce transfer function
National Category
Manufacturing, Surface and Joining Technology
Identifiers
URN: urn:nbn:se:bth-27621ISBN: 9788743801610 (electronic)OAI: oai:DiVA.org:bth-27621DiVA, id: diva2:1945586
Conference
International Modal Analysis Conference IMAC-XLIII, Orlando, Feb 10-13, 2025
Available from: 2025-03-18 Created: 2025-03-18 Last updated: 2025-11-10Bibliographically approved
In thesis
1. Enhanced Measurement and Prediction in Sensor-Equipped Metal Cutting Tools: A Model Based Approach for Force Estimation and Tool Wear Monitoring
Open this publication in new window or tab >>Enhanced Measurement and Prediction in Sensor-Equipped Metal Cutting Tools: A Model Based Approach for Force Estimation and Tool Wear Monitoring
2025 (English)Licentiate thesis, comprehensive summary (Other academic)
Abstract [en]

Sensor-equipped cutting tools enhance metal machining by allowing real-time monitoring of cutting forces, tool deflection, vibrations, and tool condition, improving process control and tool life. However, challenges such as noise, transfer path distortion, and inaccurate force estimation due to tool wear limit current solutions. This research integrates cutting force models, signal processing, and system identification to enhance measurement accuracy, prediction capabilities, and real-time monitoring for machining optimization.

This thesis establishes a framework to enhance the performance and reliability of sensor-equipped cutting tools by addressing how tool dynamics affect sensor data. Improving measurement quality improves the predictive capabilities of these tools, making them adaptable to various cutting tool configurations and applications.

A key contribution is an extended Kienzle-Sağlam force model that incorporates tool wear effects, enabling precise cutting force predictions and real-time tool wear monitoring. Additionally, an analytical approach for modeling strain-force transfer functions in metal cutting tools, combined with inverse filtering, corrects signal distortions in dynamic load estimations caused by tool dynamics. The developed methods can be used to improve the accuracy when estimating dynamic loads and tool-tip deflection, addressing limitations of statically calibrated systems.

This thesis presents a model-based method that accurately estimates dynamic loads and displacements in sensor-equipped cutting tools using strain response data. Validated through simulations and experiments, this method provides a foundation for continuing research aimed at adapting it for real-world applications, supporting the in-process monitoring of tool condition, machining stability, and surface quality.

Place, publisher, year, edition, pages
Karlskrona: Blekinge Tekniska Högskola, 2025. p. 99
Series
Blekinge Institute of Technology Licentiate Dissertation Series, ISSN 1650-2140 ; 2025:06
Keywords
Sensor-embedded cutting tools, Cutting process modeling, Signal processing, Dynamic load estimation, Experimental dynamic testing
National Category
Mechanical Engineering
Identifiers
urn:nbn:se:bth-27624 (URN)978-91-7295-500-4 (ISBN)
Presentation
2025-04-29, J1630, Karlskrona, 10:00 (English)
Opponent
Supervisors
Available from: 2025-03-21 Created: 2025-03-20 Last updated: 2025-09-30Bibliographically approved

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Wu, PengMagnevall, Martin

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