Research Progress on Casting Technology and Simulation of High-manganese Steel Liner
Author of the article: SONGHaifen1,2, LI Xiangming1,2, YANG Zhigao1,2, ZHENG Biju1,2, YANG Tianwu1,2, WANGYuanshuang3, GA
Author's Workplace:1. Faculty of Materials Science and Engineering, Kunming University of Science and Technology, Kunming 650093, China; 2. National-local Joint Engineering Research Center for Technology of Advanced Metallic Solidification Forming and Equipment, Kunming University of Science and Technology, Kunming 650093, China; 3. Yunnan Kungang Wear Resistant Material Science Co., Ltd., Yuxi 653400, China
Key Words:high-manganese steel; wear-resistant liner plate; numerical simulation; casting process
Abstract:
High-manganese steel liner plates are widely utilized in heavy-duty service conditions such as mining and
building material industries because of their exceptional wear resistance and impact toughness. The microstructure and
mechanical properties of these materials are highly dependent on heat transfer and solidification behavior during the casting
process. This paper reviews current mainstream casting processes for high-manganese steel liner plates, including sand
casting, metal mold casting, lost foam casting, and V-process casting, while elaborating on the application of numerical
simulation techniques (discrete element method, DEM; finite element method, FEM) in their research. This work explores
the auxiliary role of numerical simulations in process optimization and analyses the technical characteristics and
applicability boundaries of these casting methods in terms of solidification mechanisms, defect control, and microstructure
regulation. The study concludes that the effective integration of numerical simulation technologies with rational casting
processes is a critical pathway for enhancing liner plate quality. Finally, existing research limitations are identified, and
perspectives for future investigations are provided.