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Published on: August 5, 2013
A novel electro-aluminothermic route to V-Ni alloys: Ca3(VO4)2 as the vanadium source
Yapeng Zeng1,2,3,4, Zhang Yimin1,2,3,4, Nannan Xue1,2,3,4
1School of Resource and Environmental Engineering, Wuhan University of Science and Technology Wuhan 430081 Hubei Province China zym126135@126.com.
Abstract:
Ca3(VO4)2 enables stable electro-aluminothermic production of V-rich V-Ni alloys through in situ CaO-Al2O3 slag formation that promotes metal-slag separation, while immediate furnace cooling suppresses impurity and inclusion formation. To develop a scalable route, we evaluated NaVO3, NH4VO3, and Ca3(VO4)2 as vanadate precursors for thermite reduction-alloying. NaVO3 forms a Na2O-rich slag that is low-melting and highly hygroscopic, requiring additional flux and aggravating spattering and slag discharge. Direct reduction of untreated NH4VO3 releases NH3 and H2O, which suppresses the self-propagating reaction and leads to the incorporation of N and H into the alloy. These issues markedly narrow the operating window, whereas Ca3(VO4)2 can react smoothly to yield well-separated alloy and slag phases. Therefore, Ca3(VO4)2 was selected for further investigation, and the formation of V-Ni alloys and the evolution of impurities were studied in the Ca3(VO4)2-Al-Ni electro-aluminothermic system. CaO generated combines with Al2O3 to form a stable CaO-Al2O3 slag layer, which buffers the exothermic reaction, suppresses spattering, and eliminates the need for external slag formers. Extending the post-reaction holding time from 0 to 15-30 min does not decrease impurity levels; instead, the contents of O, Al, C, and N increase, accompanied by the formation of more ellipsoidal Al2O3-type inclusions. Immediate furnace shutdown followed by furnace cooling, while minimizing contact with external media, effectively suppresses impurity incorporation and inclusion formation. This work demonstrates a Ca3(VO4)2-enabled route for preparing V-rich V-Ni alloys and provides a mechanistic basis for process control in vanadate-derived alloy production.

