Effects of Multi-Modality on the Dynamic Stability in Milling of Typical Thin-Walled Structural Components

Thin-walled structural components possess low structural stiffness and are prone to regenerative chatter in milling, while continuous material removal leads to time-varying dynamic characteristics during machining. For traditional methods concerning multi-modal stability analysis, neither the minimum envelope method nor the comprehensive modal method is capable of accurately predicting the specific chatter mode within a given cutting region prior to machining. Against this background, this study focuses on the identification of individual modal contributions before machining, aiming to reveal the influence mechanism of different modes on the stability of typical thin-walled structures within a given cutting region. A discretization-based stability lobe prediction model is constructed, which integrates multi-node contact characteristics within the tool–workpiece interaction region and considers the time-varying evolution of dynamic parameters induced by both material removal and variable tool positions. Stability prediction is individually performed for the first three dominant modes under different machining stages and tool positions to quantitatively distinguish the independent contribution of each mode. Milling experiments on typical rectangular thin-walled components are conducted, and the multi-modal stability mechanism is comprehensively illustrated through surface roughness analysis, real-time vibration analysis, and FFT spectra of the signals analysis. The results suggest that the second-order torsional node and the third-order bending–torsion nodes can effectively suppress the corresponding chatter modes within the given cutting region. Further validation demonstrates that multimodal effects are indispensable for reliable stability prediction in thin-walled component milling.

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Publication Details

Journal
Eng—Advances in Engineering
Published
2026-09-20
DOI
https://doi.org/10.3390/eng7090487
Primary Topic
Advanced machining processes and optimization
Type
article
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article

Effects of Multi-Modality on the Dynamic Stability in Milling of Typical Thin-Walled Structural Components

Tengju Li, Jun Liu, Xiaorong Wei, Fei Li et al.
Eng—Advances in Engineering
Advanced machining processes and optimization
article

Effects of Multi-Modality on the Dynamic Stability in Milling of Typical Thin-Walled Structural Components

Tengju Li, Jun Liu, Xiaorong Wei, Fei Li, Zhe Feng
article en

Abstract

Thin-walled structural components possess low structural stiffness and are prone to regenerative chatter in milling, while continuous material removal leads to time-varying dynamic characteristics during machining. For traditional methods concerning multi-modal stability analysis, neither the minimum envelope method nor the comprehensive modal method is capable of accurately predicting the specific chatter mode within a given cutting region prior to machining. Against this background, this study focuses on the identification of individual modal contributions before machining, aiming to reveal the influence mechanism of different modes on the stability of typical thin-walled structures within a given cutting region. A discretization-based stability lobe prediction model is constructed, which integrates multi-node contact characteristics within the tool–workpiece interaction region and considers the time-varying evolution of dynamic parameters induced by both material removal and variable tool positions. Stability prediction is individually performed for the first three dominant modes under different machining stages and tool positions to quantitatively distinguish the independent contribution of each mode. Milling experiments on typical rectangular thin-walled components are conducted, and the multi-modal stability mechanism is comprehensively illustrated through surface roughness analysis, real-time vibration analysis, and FFT spectra of the signals analysis. The results suggest that the second-order torsional node and the third-order bending–torsion nodes can effectively suppress the corresponding chatter modes within the given cutting region. Further validation demonstrates that multimodal effects are indispensable for reliable stability prediction in thin-walled component milling.

Eng—Advances in EngineeringVol. 7(9)
Lanzhou University of Technology (CN), Lanzhou Petrochemical Polytechnic (CN)
Openalex Percentile: Top 20%
Advanced machining processes and optimization
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Effects of Multi-Modality on the Dynamic Stability in Milling of Typical Thin-Walled Structural Components — Tengju Li, Jun Liu, et al. · Eng—Advances in Engineering (2026) | TGRS Research Map | TGRS