TY  - JOUR
T1  - Magneto-mechanical coupling analysis of thin-walled gear ring turning under radial permanent magnetic fixture constraint
AU  - Yu, Enxiong
AU  - Qiu, Fangdong
AU  - Sun, Tao
AU  - Liu, Peng
AU  - Zhao, Bin
AU  - Guo, Weijia
AU  - Zhou, Youguo
AU  - Zhou, Tianfeng
N1  - Publisher Copyright:
© The Author(s), under exclusive licence to Springer-Verlag London Ltd., part of Springer Nature 2025.
PY  - 2025/5
Y1  - 2025/5
N2  - This paper conducts a systematic study addressing the challenges of clamping deformation and cutting deformation control in the turning process of ultra-high-strength steel thin-walled gear rings used in heavy-duty vehicle retarders. A magnetic coupling simulation model is developed for analyzing the stress characteristics and deformation mechanisms of thin-walled gear rings under the constraints of permanent magnetic fixtures. This allows to reveal the conical phenomenon during the turning process and the circumferential periodic stress phenomenon of thin-walled gear rings. In addition, the obtained results show that the magnetic field can alter the plastic deformation behavior and thermal conductivity of ultra-high-strength steel workpieces, which significantly reduces the cutting heat and friction during machining, allowing to perform control over the cylindricity of the outer circle of thin-walled gear rings during cutting. The results of this study provide a theoretical basis and practical guidance for the quality control of thin-walled gear ring turning under the constraints of permanent magnetic chucks. Moreover, they have significant application value for increasing the accuracy of the machining of key components in heavy-duty vehicles.
AB  - This paper conducts a systematic study addressing the challenges of clamping deformation and cutting deformation control in the turning process of ultra-high-strength steel thin-walled gear rings used in heavy-duty vehicle retarders. A magnetic coupling simulation model is developed for analyzing the stress characteristics and deformation mechanisms of thin-walled gear rings under the constraints of permanent magnetic fixtures. This allows to reveal the conical phenomenon during the turning process and the circumferential periodic stress phenomenon of thin-walled gear rings. In addition, the obtained results show that the magnetic field can alter the plastic deformation behavior and thermal conductivity of ultra-high-strength steel workpieces, which significantly reduces the cutting heat and friction during machining, allowing to perform control over the cylindricity of the outer circle of thin-walled gear rings during cutting. The results of this study provide a theoretical basis and practical guidance for the quality control of thin-walled gear ring turning under the constraints of permanent magnetic chucks. Moreover, they have significant application value for increasing the accuracy of the machining of key components in heavy-duty vehicles.
KW  - Magnetic-field-assisted manufacturing
KW  - Magneto-mechanical coupling
KW  - Permanent magnet fixture
KW  - Thin-walled gear ring
KW  - Ultra-high strength steel
UR  - http://www.scopus.com/pages/publications/105004462609
U2  - 10.1007/s00170-025-15644-2
DO  - 10.1007/s00170-025-15644-2
M3  - Article
AN  - SCOPUS:105004462609
SN  - 0268-3768
VL  - 138
SP  - 1995
EP  - 2007
JO  - International Journal of Advanced Manufacturing Technology
JF  - International Journal of Advanced Manufacturing Technology
IS  - 5
ER  -