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Beilstein J. Nanotechnol. 2024, 15, 925–940, doi:10.3762/bjnano.15.76
Figure 1: (a) Radial distribution function diagram, (b) physical model of the CoCrNi MEA substrate in the cut...
Figure 2: (a–f) Surface morphologies and (g) number of wear atoms for CoCrNi MEAs with various grain size gra...
Figure 3: Force responses for CoCrNi MEAs with various grain size gradients of (a) 2-3-4 nm, (b) 5-7-9 nm, (c...
Figure 4: Shear strain distribution in CoCrNi MEAs with various grain size gradients of (a) 2-3-4 nm, (b) 5-7...
Figure 5: (a–f) Von Mises stress distribution in CoCrNi MEAs with various grain size gradients at a cutting l...
Figure 6: Temperature distribution in CoCrNi MEAs with various grain size gradients of (a) 2-3-4 nm, (b) 5-7-...
Figure 7: Crystal structure evolution in CoCrNi MEAs with various grain size gradients of (a) 2-3-4 nm, (b) 5...
Figure 8: Force responses for GNG CoCrNi MEAs for various cutting depths of (a) 0.5 nm, (b) 1 nm, and (c) 2 n...
Figure 9: Shear strain distribution in GNG CoCrNi MEAs for various cutting depths of (a) 0.5 nm, (b) 1 nm, an...
Figure 10: Crystal structure evolution in GNG CoCrNi MEAs for various tool cutting depths of (a) 0.5 nm, (b) 1...
Figure 11: Force responses for GNG CoCrNi MEAs for various tool cutting-edge radii of (a) 0.5 nm, (b) 1 nm, an...
Figure 12: Shear strain distribution in GNG CoCrNi MEAs for various tool cutting-edge radii of (a) 0.5 nm, (b)...
Figure 13: Crystal structure evolution in CoCrNi MEAs for various tool cutting-edge radii of (a) 0.5 nm, (b) 1...
Figure 14: Force responses for GNG CoCrNi MEAs for various tool rake angles of (a) 20°, (b) 10°, (c) 0°, (d) −...
Figure 15: Shear strain distribution in GNG CoCrNi MEAs for various tool rake angles of (a) 20°, (b) 10°, (c) ...
Figure 16: (a–e) Crystal structure evolution in CoCrNi MEAs for various tool rake angles and (f) the total dis...