Development and Validation of a Wireless Extrasensory BT50 Toolholder for Dynamic Cutting Monitoring of Ni-Based Alloys

Establishing an explicit correlation between dynamic machining instabilities and the terminal functional performance of difficult-to-cut materials remains challenging. Herein, a wireless sensory BT50 toolholder was deployed to in situ monitor the dynamic cutting signatures during the milling process of commercial Inconel 718 superalloy. Real-time spectral analyses captured the intensified thermo-mechanical coupling and dynamic load escalations (e.g., axial force increased from 0.56 kN to 0.65 kN) induced by progressive tool wear and anomalous grain coarsening (average grain size expanding from 45.45 μm to 56.18 μm), driven by a thermal-dominant regime at advanced wear stages and accompanied by pronounced lattice rotations and a sustained predominance of high-angle grain boundaries (HAGBs). This microstructural evolution critically governed the macroscopic corrosion degradation. The diminished grain boundary density hindered the rapid diffusion channels essential for robust passivation kinetics, whereas the highly energetic HAGB networks and reoriented crystallographic planes triggered intense localized micro-galvanic dissolution. The results formulate a comprehensive sensing-microstructure-performance closed-loop framework, offering profound mechanistic insights into the functional deterioration of critical machined components.

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Publication Details

Journal
Metals
Published
2026-09-11
DOI
https://doi.org/10.3390/met16091010
Primary Topic
Advanced machining processes and optimization
Type
article
Field-Weighted Citation Impact
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article

Development and Validation of a Wireless Extrasensory BT50 Toolholder for Dynamic Cutting Monitoring of Ni-Based Alloys

Dawei Guo, Qian Qiao, Hongchang Qian, Lap Mou Tam et al.
Metals
Advanced machining processes and optimization
article

Development and Validation of a Wireless Extrasensory BT50 Toolholder for Dynamic Cutting Monitoring of Ni-Based Alloys

Dawei Guo, Qian Qiao, Hongchang Qian, Lap Mou Tam, Dawei Zhang
article en

Abstract

Establishing an explicit correlation between dynamic machining instabilities and the terminal functional performance of difficult-to-cut materials remains challenging. Herein, a wireless sensory BT50 toolholder was deployed to in situ monitor the dynamic cutting signatures during the milling process of commercial Inconel 718 superalloy. Real-time spectral analyses captured the intensified thermo-mechanical coupling and dynamic load escalations (e.g., axial force increased from 0.56 kN to 0.65 kN) induced by progressive tool wear and anomalous grain coarsening (average grain size expanding from 45.45 μm to 56.18 μm), driven by a thermal-dominant regime at advanced wear stages and accompanied by pronounced lattice rotations and a sustained predominance of high-angle grain boundaries (HAGBs). This microstructural evolution critically governed the macroscopic corrosion degradation. The diminished grain boundary density hindered the rapid diffusion channels essential for robust passivation kinetics, whereas the highly energetic HAGB networks and reoriented crystallographic planes triggered intense localized micro-galvanic dissolution. The results formulate a comprehensive sensing-microstructure-performance closed-loop framework, offering profound mechanistic insights into the functional deterioration of critical machined components.

MetalsVol. 16(9)
University of Macau (MO), Guangdong Polytechnic of Science and Technology (CN), University of Science and Technology Beijing (CN)
Ministry of Industry and Information Technology of the People's Republic of China
Openalex Percentile: Top 20%
Advanced machining processes and optimization
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Development and Validation of a Wireless Extrasensory BT50 Toolholder for Dynamic Cutting Monitoring of Ni-Based Alloys — Dawei Guo, Qian Qiao, et al. · Metals (2026) | TGRS Research Map | TGRS