Measurement and modelling of cutting temperature in the rock-cutting process
(2026) 10th Conference on High Performance Cutting, CIRP-HPC 2026 In Procedia CIRP 141. p.382-387- Abstract
Rock-cutting processes are the backbone of the mining, oil and gas, civil engineering, and construction industries. Performance of such cutting operations is controlled by temperature-dependent phenomena of abrasion, phase transformations, and oxidation of tooling. This study develops a novel approach for the measurement of cutting temperature for the case of the rock cutting process in longitudinal turning of granite with a polycrystalline diamond dome cutter. A specially designed setup was built for machining granite with a constant depth of cut. A special toolholder instrumented with embedded temperature sensors was used for temperature measurement in locations away from the cutting point. Inverse heat conduction problem-solving... (More)
Rock-cutting processes are the backbone of the mining, oil and gas, civil engineering, and construction industries. Performance of such cutting operations is controlled by temperature-dependent phenomena of abrasion, phase transformations, and oxidation of tooling. This study develops a novel approach for the measurement of cutting temperature for the case of the rock cutting process in longitudinal turning of granite with a polycrystalline diamond dome cutter. A specially designed setup was built for machining granite with a constant depth of cut. A special toolholder instrumented with embedded temperature sensors was used for temperature measurement in locations away from the cutting point. Inverse heat conduction problem-solving procedures were developed to reconstruct the cutting temperature based on the FEM thermal model of the cutting device, a multi-objective optimization workflow, and the experiment results. Cutting experiments carried out at the cutting speed of vc = 120-160 m/min resulted in dome cutter temperatures of 500-700 °C, approaching the temperature level of diamond wear and/or graphitization.
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- author
- Ye, Jia Xing LU ; Gutnichenko, Oleksandr LU ; Kryzhanivskyy, Vyacheslav ; Mårtensson, Malin ; McKie, Amanda ; Böhm, Anna ; Norgren, Susanne LU ; M’Saoubi, Rachid LU and Bushlya, Volodymyr LU
- organization
- publishing date
- 2026
- type
- Contribution to journal
- publication status
- published
- subject
- keywords
- Cutting, Inverse heat conduction problem, Temperature
- in
- Procedia CIRP
- volume
- 141
- pages
- 6 pages
- publisher
- Elsevier
- 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:105042611473
- ISSN
- 2212-8271
- DOI
- 10.1016/j.procir.2026.03.062
- language
- English
- LU publication?
- yes
- id
- 3a3fcd52-d1b7-4793-9deb-0103cdb5fba4
- date added to LUP
- 2026-06-29 11:23:56
- date last changed
- 2026-08-31 08:27:40
@article{3a3fcd52-d1b7-4793-9deb-0103cdb5fba4,
abstract = {{<p>Rock-cutting processes are the backbone of the mining, oil and gas, civil engineering, and construction industries. Performance of such cutting operations is controlled by temperature-dependent phenomena of abrasion, phase transformations, and oxidation of tooling. This study develops a novel approach for the measurement of cutting temperature for the case of the rock cutting process in longitudinal turning of granite with a polycrystalline diamond dome cutter. A specially designed setup was built for machining granite with a constant depth of cut. A special toolholder instrumented with embedded temperature sensors was used for temperature measurement in locations away from the cutting point. Inverse heat conduction problem-solving procedures were developed to reconstruct the cutting temperature based on the FEM thermal model of the cutting device, a multi-objective optimization workflow, and the experiment results. Cutting experiments carried out at the cutting speed of v<sub>c</sub> = 120-160 m/min resulted in dome cutter temperatures of 500-700 °C, approaching the temperature level of diamond wear and/or graphitization.</p>}},
author = {{Ye, Jia Xing and Gutnichenko, Oleksandr and Kryzhanivskyy, Vyacheslav and Mårtensson, Malin and McKie, Amanda and Böhm, Anna and Norgren, Susanne and M’Saoubi, Rachid and Bushlya, Volodymyr}},
issn = {{2212-8271}},
keywords = {{Cutting; Inverse heat conduction problem; Temperature}},
language = {{eng}},
pages = {{382--387}},
publisher = {{Elsevier}},
series = {{Procedia CIRP}},
title = {{Measurement and modelling of cutting temperature in the rock-cutting process}},
url = {{http://dx.doi.org/10.1016/j.procir.2026.03.062}},
doi = {{10.1016/j.procir.2026.03.062}},
volume = {{141}},
year = {{2026}},
}