TY - JOUR
T1 - Plasma sprayed dense Al-B₄C composite coating for corrosion prevention
AU - Rashid, Haroon
AU - Li, Chang Jiu
AU - Ali, Ahsan
AU - Ahmed, Shehzad
AU - Mehboob, Ghazanfar
AU - Narayan, R. Lakshmi
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/9
Y1 - 2026/9
N2 - Achieving dense atmospheric plasma-sprayed (APS) aluminum-based composite coatings is challenging due to interconnected pores in the conventional coatings that create pathways for corrosive media to penetrate, limiting long-term anti-corrosion performance. In this study, a homogeneously reinforced Al-40 vol% B₄C composite feedstock is developed through mechanical alloying to achieve a homogenously reinforced dense APS deposited coating in the as-sprayed state, which eliminates costly post-deposition processing for densification. The relatively high B₄C content can enable multifunctionality in the coating, as previous studies have shown that increased B4C content results in enhanced radiation shielding. The coating was deposited on AZ31B Mg alloy for electrochemical evaluation and on Al7075 alloy for mechanical testing. The deposition, microstructure characterization, electrochemical behavior, and cohesive strength of the coating is studied. Results indicate that the Al-B4C coating appears pore-free and has a uniform distribution of B4C. The open circuit potential (OCP) of Al-B4C coating is −0.76 V, closely matching bulk Al, which is higher than pure APSed porous Al coating (OCP −1.42 V). Negligible open pores and resemblance of OCP with bulk Al indicate that the Al-B4C coating is dense. While the corrosion potential (Ecorr) of Al-B4C coating is higher than that of pure Al coating, the converse is observed for the corrosion current (Icorr), indicating higher corrosion rates in the former on corrosion initiation due to micro-galvanic interactions between B₄C and the Al matrix. Failure at the glue joint during tensile tests suggests that Al-B4C coating has a minimum cohesive strength of 60 MPa. The combination of near pore-free microstructure, corrosion resistance, strong interfacial bonding, and high B₄C loading highlights the potential of the APSed Al-B₄C coating as a lightweight multifunctional protective layer for marine, aerospace, and nuclear applications requiring both environmental durability and radiation shielding capability.
AB - Achieving dense atmospheric plasma-sprayed (APS) aluminum-based composite coatings is challenging due to interconnected pores in the conventional coatings that create pathways for corrosive media to penetrate, limiting long-term anti-corrosion performance. In this study, a homogeneously reinforced Al-40 vol% B₄C composite feedstock is developed through mechanical alloying to achieve a homogenously reinforced dense APS deposited coating in the as-sprayed state, which eliminates costly post-deposition processing for densification. The relatively high B₄C content can enable multifunctionality in the coating, as previous studies have shown that increased B4C content results in enhanced radiation shielding. The coating was deposited on AZ31B Mg alloy for electrochemical evaluation and on Al7075 alloy for mechanical testing. The deposition, microstructure characterization, electrochemical behavior, and cohesive strength of the coating is studied. Results indicate that the Al-B4C coating appears pore-free and has a uniform distribution of B4C. The open circuit potential (OCP) of Al-B4C coating is −0.76 V, closely matching bulk Al, which is higher than pure APSed porous Al coating (OCP −1.42 V). Negligible open pores and resemblance of OCP with bulk Al indicate that the Al-B4C coating is dense. While the corrosion potential (Ecorr) of Al-B4C coating is higher than that of pure Al coating, the converse is observed for the corrosion current (Icorr), indicating higher corrosion rates in the former on corrosion initiation due to micro-galvanic interactions between B₄C and the Al matrix. Failure at the glue joint during tensile tests suggests that Al-B4C coating has a minimum cohesive strength of 60 MPa. The combination of near pore-free microstructure, corrosion resistance, strong interfacial bonding, and high B₄C loading highlights the potential of the APSed Al-B₄C coating as a lightweight multifunctional protective layer for marine, aerospace, and nuclear applications requiring both environmental durability and radiation shielding capability.
KW - Aluminum boron carbide composite
KW - Aluminum matrix composite coating
KW - Atmospheric plasma spray
KW - Corrosion protection
KW - Radiation shielding
UR - https://www.scopus.com/pages/publications/105045445295
U2 - 10.1016/j.jacomc.2026.100229
DO - 10.1016/j.jacomc.2026.100229
M3 - 文章
AN - SCOPUS:105045445295
SN - 2950-2845
VL - 11
JO - Journal of Alloys and Compounds Communications
JF - Journal of Alloys and Compounds Communications
M1 - 100229
ER -