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Figure/Table detail

Effect of microscale W elements on microstructure and properties of CoCrFeNiMnAl high entropy alloys
Hao ZHANG, Hao WU, Xiaotian TANG, Tao LUO, Renqin DENG
Journal of Materials Engineering, 2022, 50(3): 50-59.   DOI: 10.11868/j.issn.1001-4381.2021.000748

Fig.6 Friction coefficient-time curves (a) and average wear volume (b) of Wx-HEA (x=0.12, 0.15, 0.19) alloys
Other figure/table from this article
  • Table 1 Molar ratio of elements in CoCrFeNiMnAlWx with different W contents
  • Fig.1 Diagram of thermite reaction device[23]
  • Fig.2 XRD patterns of Wx-HEA(x=0.12, 0.15, 0.19) alloys (a) and lattice constant of BCC1 and BCC2 phases(b)
  • Fig.3 SEM images of W0.12-HEA(a), W0.15-HEA(b) and W0.19-HEA(c) alloys
  • Fig.4 Element distribution images of W0.12-HEA(a), W0.15-HEA(b) and W0.19-HEA(c) alloys
  • Table 2 Chemical composition of Wx-HEA(x=0.12, 0.15, 0.19) alloys
  • Fig.5 Hardness of Wx-HEA (x=0.12, 0.15, 0.19) alloys
  • Table 3 Friction coefficient and wear rate of Wx-HEA (x=0.12, 0.15, 0.19) alloys
  • Fig.7 Surface morphologies of W0.12-HEA(a), W0.15-HEA(b) and W0.19-HEA(c) alloys after wear test
  • Fig.8 Dynamic potential polarization curves of Wx-HEA (x=0.12, 0.15, 0.19) alloys
  • Table 4 Corrosion potential, corrosion current density and corrosion rate of Wx-HEA (x=0.12, 0.15, 0.19) alloys
  • Fig.9 Schematic diagrams of BCC1 and BCC2 phase structure distributions in microstructure with different W element contents (a)x=0.12;(b)x=0.15;(c)x=0.19

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    About Journal

  • About Journal
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  • Open Access

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  • Just Accepted
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    Most Article

  • Most Viewed
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