The Tribological Behavior of an In-Situ Processed Magnesium …
87
Fig. 7 Three-dimensional (3D) and two-dimensional (2D) surface morphology and roughness for
the RZ5/10 wt.% TiB 2 composite at an applied load of: a, c 10 N and b, d 30 N. (Color figure
online)
3. A higher rate of delamination and deep groove formation was observed with an
increase in applied load. Optical profilometer revealed the deep groove formation
at an applied load of 30 N when compared to 10 N. More oxide debris was
observed on the wear surface for the higher sliding distances.
References
1. Balasubramanian M (2014) Composite materials and processing. CRC Press, Taylor & Francis
Group, Boca Raton
2. Ceschini L, Dahle A, Gupta M, Jarfors AEW, Jayalakshmi S, Morri A et al (2017) Aluminum
and magnesium metal matrix nanocomposites. https://doi.org/10.1007/978-981-10-2681-2
3. Menezes PL, Ingole SP, Nosonovsky M, Kailas SV, Lovell MR (2013) Tribology for scientists
and engineers. https://doi.org/10.1007/978-1-4614-1945-7
87
Fig. 7 Three-dimensional (3D) and two-dimensional (2D) surface morphology and roughness for
the RZ5/10 wt.% TiB 2 composite at an applied load of: a, c 10 N and b, d 30 N. (Color figure
online)
3. A higher rate of delamination and deep groove formation was observed with an
increase in applied load. Optical profilometer revealed the deep groove formation
at an applied load of 30 N when compared to 10 N. More oxide debris was
observed on the wear surface for the higher sliding distances.
References
1. Balasubramanian M (2014) Composite materials and processing. CRC Press, Taylor & Francis
Group, Boca Raton
2. Ceschini L, Dahle A, Gupta M, Jarfors AEW, Jayalakshmi S, Morri A et al (2017) Aluminum
and magnesium metal matrix nanocomposites. https://doi.org/10.1007/978-981-10-2681-2
3. Menezes PL, Ingole SP, Nosonovsky M, Kailas SV, Lovell MR (2013) Tribology for scientists
and engineers. https://doi.org/10.1007/978-1-4614-1945-7
