Influence mechanism of K2SO4 addition on microstructure, mechanical properties and abrasion resistance of Fe-2wt%B alloy

Fe2B-type boride exists in Fe–B alloy with a form of netlike, rod-shaped, or fishbone structure. This results in high susceptibility of alloy to fracture. To improve the morphology of Fe2B, various contents of K2SO4 are added into an Fe-2wt%B alloy. The microstructure, mechanical properties and abra...

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Bibliographic Details
Published inMaterials & design Vol. 197; p. 109164
Main Authors Yi, Yanliang, Li, Qiang, Huang, Xiaoyu, Zheng, Baochao, Liu, Yangzhen, Tu, Xiaohui, Li, Wei
Format Journal Article
LanguageEnglish
Published Elsevier Ltd 01.01.2021
Elsevier
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Summary:Fe2B-type boride exists in Fe–B alloy with a form of netlike, rod-shaped, or fishbone structure. This results in high susceptibility of alloy to fracture. To improve the morphology of Fe2B, various contents of K2SO4 are added into an Fe-2wt%B alloy. The microstructure, mechanical properties and abrasion resistance of the modified alloy have been analyzed systematically.The results show that the α-MnS forms in the alloy, and increases with the increased K2SO4 in a relationship of y = 1.68× + 0.03. Moreover, the α-MnS can act as effective heterogeneous nuclei of M2B (where M represents Cr, Mn, and Fe), owing to a low lattice misfit of (111)α-MnS//(110)M2B. Meanwhile, the addition of element K can result in the formation of adsorbed film (K+ film) on the surface of M2B. By the joint action of α-MnS and K+ film, the structure of M2B changes from net-like into isolated block-shaped after heat treatment, and the shape factor K value of M2B increases from 0.13 to 0.44 with an increment of 241%. The change of M2B morphology effectively promotes an improvement of impact toughness and abrasion resistance of the alloy as a result. [Display omitted] •As the K2SO4 content increases from 0 to 3.57 wt%, the shape factor K value of M2B (where M represents Cr, Mn, and Fe) can increase from 0.13 to 0.44 with an increment of 241%.•With the increase of K2SO4 content, the fracture toughness of alloy changes from 6.09 to 14.72 J/cm2 with an increment of about 140%.•The wear rate of alloy decreases rapidly when the K value is less than 0.2, while it trends to flat gradually as long as the K value exceeds 0.2.
ISSN:0264-1275
1873-4197
DOI:10.1016/j.matdes.2020.109164