IMECH-IR  > 非线性力学国家重点实验室
AAC theory for ultrasonic vibration-assisted grinding
Hu, Zhongwei1,2; Chen, Yue1,2; Lai, Zhiyuan1,2; Zhang, Yuqiang1,2; Yu, Yiqing2; Jin, Jianfeng3; Peng Q(彭庆)4,5; Xu, Xipeng1,2
Corresponding AuthorHu, Zhongwei([email protected]) ; Peng, Qing([email protected])
Source PublicationINTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY
2024-06-03
Pages12
ISSN0268-3768
AbstractUltrasonic vibration-assisted grinding (UVG) has several advantages, such as small grinding force, good surface quality, and high grinding efficiency, outperforming conventional grinding (CG). However, it is sensitive to process parameters, making optimal processing parameters crucial and a major challenge. Therefore, in this study, we introduce a model based on the AAC theory, which uses only three quantities (vibration Angle, contact Area, and influence Coefficient of adjacent abrasive particles) to assess the forces during UVG. These three quantities depend on the movement trajectory, mutual contact relationship between the workpiece and abrasive particles, and spacing between abrasive particles. The effects of these three quantities on the scratch force were examined using molecular dynamics (MD) simulations. The reduction ratios of forces (tangential and normal directions) gradually increased with increasing angle, while the differences in the force reduction ratios for the different contact areas were not significant. As the influence coefficient increased, the reduction ratio of the tangential force increased and then flattened, and the reduction of the normal force increased and then slightly decreased. Spearman's correlation analysis shows that the vibration angle has the most effect on the reduction ratio of the scratch force. And the AAC theory was verified by UVG experiments.
KeywordUltrasonic vibration-assisted grinding Molecular dynamics Scratch force Process parameters optimization
DOI10.1007/s00170-024-13795-2
Indexed BySCI ; EI
Language英语
WOS IDWOS:001237828100009
WOS KeywordSILICON-CARBIDE ; SURFACE ; OPTIMIZATION ; PARAMETERS ; MECHANISM ; CERAMICS ; FORCE ; WHEEL ; EUAG
WOS Research AreaAutomation & Control Systems ; Engineering
WOS SubjectAutomation & Control Systems ; Engineering, Manufacturing
Funding ProjectNational Natural Science Foundation of China
Funding OrganizationNational Natural Science Foundation of China
ClassificationQ3
Ranking1
ContributorHu, Zhongwei ; Peng, Qing
Citation statistics
Document Type期刊论文
Identifierhttp://dspace.imech.ac.cn/handle/311007/95469
Collection非线性力学国家重点实验室
Affiliation1.Huaqiao Univ, Inst Mfg Engn, Xiamen 361021, Peoples R China;
2.Huaqiao Univ, Inst Mech Engn & Automat, Xiamen 361021, Peoples R China;
3.Northeastern Univ, Key Lab Anisotropy & Texture Mat, Shenyang 110004, Peoples R China;
4.Chinese Acad Sci, Inst Mech, State Key Lab Nonlinear Mech, Beijing 100190, Peoples R China;
5.Univ Chinese Acad Sci, Sch Engn Sci, Beijing 100190, Peoples R China
Recommended Citation
GB/T 7714
Hu, Zhongwei,Chen, Yue,Lai, Zhiyuan,et al. AAC theory for ultrasonic vibration-assisted grinding[J]. INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY,2024:12.Rp_Au:Hu, Zhongwei, Peng, Qing
APA Hu, Zhongwei.,Chen, Yue.,Lai, Zhiyuan.,Zhang, Yuqiang.,Yu, Yiqing.,...&Xu, Xipeng.(2024).AAC theory for ultrasonic vibration-assisted grinding.INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY,12.
MLA Hu, Zhongwei,et al."AAC theory for ultrasonic vibration-assisted grinding".INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY (2024):12.
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