This study investigates the prediction of maraging steel C250 microgrinding forces by incorporating phase transformation effects with the manufacturing process mechanics. The results could consequently increase the accuracy of the prediction and better understand the influence of phase evolution on the materials processing. Based on a detailed analysis of microgrinding mechanics and thermodynamics, an iterative blending scheme integrating phase transformation kinetics and material genome analysis is developed. The physical-based formulation, experimental validation, and computational configuration are presented herein for the microgrinding forces, quantifying phase transformation effects. According to the results, the implementation of the iterative blending scheme can help achieve a higher prediction accuracy of microgrinding forces. Besides, the iterative blending would enable the consideration of the interactive relation between process mechanics and microstructure evolution through materials genome analysis.
Skip Nav Destination
Article navigation
August 2019
Research-Article
Predictive Modeling of Microgrinding Force Incorporating Phase Transformation Effects
Zishan Ding,
Zishan Ding
1
School of Mechanical Engineering,
Department of Mechanical Manufacturing
Mechanical Engineering Academic Building,
516 Jungong Road,
Shanghai 200093,
Department of Mechanical Manufacturing
University of Shanghai for Science and Technology
,Mechanical Engineering Academic Building,
516 Jungong Road,
Shanghai 200093,
China
;George W. Woodruff School of Mechanical Engineering,
Atlanta, GA 30332
e-mails: zishanding1988@gmail.com;dzishan@163.com
Georgia Institute of Technology
,Atlanta, GA 30332
e-mails: zishanding1988@gmail.com;dzishan@163.com
1Corresponding author.
Search for other works by this author on:
Gaoxiang Sun,
Gaoxiang Sun
School of Mechanical Engineering,
Department of Mechanical Manufacturing,
Mechanical Engineering Academic Building,
516 Jungong Road,
Shanghai 200093,
e-mail: sungaoxiang113@163.com
Department of Mechanical Manufacturing,
University of Shanghai for Science and Technology
,Mechanical Engineering Academic Building,
516 Jungong Road,
Shanghai 200093,
China
e-mail: sungaoxiang113@163.com
Search for other works by this author on:
Xiaohui Jiang,
Xiaohui Jiang
School of Mechanical Engineering,
Department of Mechanical Manufacturing,
Mechanical Engineering Academic Building, 516 Jungong Road,
Shanghai 200093,
e-mail: jiangxh@usst.edu.cn
Department of Mechanical Manufacturing,
University of Shanghai for Science and Technology
,Mechanical Engineering Academic Building, 516 Jungong Road,
Shanghai 200093,
China
e-mail: jiangxh@usst.edu.cn
Search for other works by this author on:
Miaoxian Guo,
Miaoxian Guo
School of Mechanical Engineering,
Department of Mechanical Manufacturing,
Mechanical Engineering Academic Building,
516 Jungong Road,
Shanghai 200093,
e-mail: guomx@usst.edu.cn
Department of Mechanical Manufacturing,
University of Shanghai for Science and Technology
,Mechanical Engineering Academic Building,
516 Jungong Road,
Shanghai 200093,
China
e-mail: guomx@usst.edu.cn
Search for other works by this author on:
Steven Y. Liang
Steven Y. Liang
George W. Woodruff School of Mechanical Engineering,
Atlanta, GA 30332
e-mail: steven.liang@me.gatech.edu
Georgia Institute of Technology
,Atlanta, GA 30332
e-mail: steven.liang@me.gatech.edu
Search for other works by this author on:
Zishan Ding
School of Mechanical Engineering,
Department of Mechanical Manufacturing
Mechanical Engineering Academic Building,
516 Jungong Road,
Shanghai 200093,
Department of Mechanical Manufacturing
University of Shanghai for Science and Technology
,Mechanical Engineering Academic Building,
516 Jungong Road,
Shanghai 200093,
China
;George W. Woodruff School of Mechanical Engineering,
Atlanta, GA 30332
e-mails: zishanding1988@gmail.com;dzishan@163.com
Georgia Institute of Technology
,Atlanta, GA 30332
e-mails: zishanding1988@gmail.com;dzishan@163.com
Gaoxiang Sun
School of Mechanical Engineering,
Department of Mechanical Manufacturing,
Mechanical Engineering Academic Building,
516 Jungong Road,
Shanghai 200093,
e-mail: sungaoxiang113@163.com
Department of Mechanical Manufacturing,
University of Shanghai for Science and Technology
,Mechanical Engineering Academic Building,
516 Jungong Road,
Shanghai 200093,
China
e-mail: sungaoxiang113@163.com
Xiaohui Jiang
School of Mechanical Engineering,
Department of Mechanical Manufacturing,
Mechanical Engineering Academic Building, 516 Jungong Road,
Shanghai 200093,
e-mail: jiangxh@usst.edu.cn
Department of Mechanical Manufacturing,
University of Shanghai for Science and Technology
,Mechanical Engineering Academic Building, 516 Jungong Road,
Shanghai 200093,
China
e-mail: jiangxh@usst.edu.cn
Miaoxian Guo
School of Mechanical Engineering,
Department of Mechanical Manufacturing,
Mechanical Engineering Academic Building,
516 Jungong Road,
Shanghai 200093,
e-mail: guomx@usst.edu.cn
Department of Mechanical Manufacturing,
University of Shanghai for Science and Technology
,Mechanical Engineering Academic Building,
516 Jungong Road,
Shanghai 200093,
China
e-mail: guomx@usst.edu.cn
Steven Y. Liang
George W. Woodruff School of Mechanical Engineering,
Atlanta, GA 30332
e-mail: steven.liang@me.gatech.edu
Georgia Institute of Technology
,Atlanta, GA 30332
e-mail: steven.liang@me.gatech.edu
1Corresponding author.
Manuscript received December 12, 2018; final manuscript received May 18, 2019; published online June 13, 2019. Assoc. Editor: Radu Pavel.
J. Manuf. Sci. Eng. Aug 2019, 141(8): 081009 (9 pages)
Published Online: June 13, 2019
Article history
Received:
December 12, 2018
Revision Received:
May 18, 2019
Accepted:
May 18, 2019
Citation
Ding, Z., Sun, G., Jiang, X., Guo, M., and Liang, S. Y. (June 13, 2019). "Predictive Modeling of Microgrinding Force Incorporating Phase Transformation Effects." ASME. J. Manuf. Sci. Eng. August 2019; 141(8): 081009. https://doi.org/10.1115/1.4043839
Download citation file:
Get Email Alerts
Acoustic Streaming-Assisted Underwater Laser Micromachining Process
J. Manuf. Sci. Eng (September 2025)
Feed Rate Improvement for Face Hobbing on a Six-Axis CNC Bevel Gear-Cutting Machine
J. Manuf. Sci. Eng (September 2025)
Related Articles
Phase Transformation Prediction Considering Crystallographic Orientation in Microgrinding Multiphase Material
J. Manuf. Sci. Eng (October,2020)
Physics-Based Microstructure Simulation for Drilled Hole Surface in Hardened Steel
J. Manuf. Sci. Eng (August,2014)
A Semi-Physical Model for the Dissipative Mechanisms Present in the Rail Grinding Process
J. Tribol (October,2025)
Coupled Temperature-Microstructure Model for Predicting Temperature Distribution and Phase Transformation in Steel for Arbitrary Cooling Curves
J. Thermal Sci. Eng. Appl (June,2021)
Related Proceedings Papers
Related Chapters
Chitosan-Based Drug Delivery Systems
Chitosan and Its Derivatives as Promising Drug Delivery Carriers
On the Evaluation of Thermal and Mechanical Factors in Low-Speed Sliding
Tribology of Mechanical Systems: A Guide to Present and Future Technologies
Effect of Chromium Content on the On-Cooling Phase Transformations and Induced Prior-β Zr Mechanical Hardening and Failure Mode (in Relation to Enhanced Accident-Tolerant Fuel Chromium-Coated Zirconium-Based Cladding Behavior upon and after High-Temperature Transients)
Zirconium in the Nuclear Industry: 20th International Symposium