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Prof. Yi TAN

School of Materials Science and Engineering, Dalian University of Technology, Dalian 116024, China

Research Publications & English Decoded Briefs

Showing 2 publications
Transactions of Nonferrous Metals Society of China (中国有色金属学报)2026DOI: 10.1016/S1003-6326(26)67063-X

Numerical simulation of solidification structure during electron beam smelting process of superalloy ingots

A cellular automaton–finite element (CAFE) model was developed to simulate the solidification structure evolution of DD98M superalloy ingots during electron beam smelting (EBS). The model couples heat transfer, fluid flow, and solute diffusion. Grain nucleation and growth occur opposite to the heat flow direction. Simulation results show good agreement with experimental observations. The influence of nucleation parameters on solidification structure was systematically examined. Increasing the maximum bulk nucleation density reduces grain size and promotes a larger equiaxed grain region while reducing the columnar grain region. Increasing the mean bulk nucleation undercooling results in a smaller equiaxed region and an expanded columnar grain zone. The standard deviation of bulk nucleation undercooling has a negligible effect on grain morphology. The determined nucleation parameters (ΔTs,max=0.5 K, ΔTs,σ=1 K, ns,max=1×10^7 m−2, ΔTv,max=5 K, ΔTv,σ=1 K, nv,max=5×10^9 m−3) were used to simulate large-scale ingots. EBSD analysis confirmed the model's predictive capability. The solidification sequence begins with fine equiaxed crystals at the bottom and sides, followed by columnar growth that decreases in rate as the billet is pulled out, with sidewall heat dissipation eventually dominating and altering grain growth direction.

Nano-Micro Letters2025DOI: 10.1007/s40820-024-01641-9

Advanced Bismuth-Based Anode Materials for Efficient Potassium Storage: Structural Features, Storage Mechanisms and Modification Strategies

Potassium-ion batteries (PIBs) are considered as a promising energy storage system owing to its abundant potassium resources. As an important part of the battery composition, anode materials play a vital role in the future development of PIBs. Bismuth-based anode materials demonstrate great potential for storing potassium ions (K+) due to their layered structure, high theoretical capacity based on the alloying reaction mechanism, and safe operating voltage. However, the large radius of K+ inevitably induces severe volume expansion in depotassiation/potassiation, and the sluggish kinetics of K+ insertion/extraction limits its further development. Herein, we summarize the strategies used to improve the potassium storage properties of various types of materials and introduce recent advances in the design and fabrication of favorable structural features of bismuth-based materials. Firstly, this review analyzes the structure, working mechanism and advantages and disadvantages of various types of materials for potassium storage. Then, based on this, the manuscript focuses on summarizing modification strategies including structural and morphological design, compositing with other materials, and electrolyte optimization, and elucidating the advantages of various modifications in enhancing the potassium storage performance. Finally, we outline the current challenges of bismuth-based materials in PIBs and put forward some prospects to be verified.