Effect of pH on mechanical, physical and tribological properties of electroless Ni-P-Al2O3 composite deposits for marine applications

被引:11
作者
Julka S. [1 ]
Ansari M.I. [1 ]
Thakur D.G. [1 ]
机构
[1] Department of Mechanical Engineering, Defence Institute of Advanced Technology (DU), Pune
关键词
composite deposits; corrosion resistance; deposition rate; ENi-P-Al[!sub]2[!/sub]O[!sub]3[!/sub; microhardness; pH; surface roughness; wear resistance; wettability;
D O I
10.1007/s11804-016-1385-3
中图分类号
学科分类号
摘要
Successful co-deposition of fine particulate matter within an Electroless Nickel-Phosphorous (ENi-P) matrix is dependent on various factors like bath composition, particle compatibility with metallic matrix, bath reactivity (pH), particle size and their distribution. ENi-P deposits incorporating Al2O3/Alumina in a disperse phase have varied effects on properties and attributes like surface roughness (Ra), microhardness, wear resistance, corrosion resistance and surface morphology of the deposits obtained. This paper experimentally investigates the effect of alumina (1.55 g/L) on Ra, microhardness, surface morphology, deposition rate, wettability, wear resistance and corrosion resistance of ENi-P-Al2O3 composite deposits on mild steel substrates at bath pH 5, 7 and 9. Study reveals that optimum deposit parameters and deposition rates are achieved with bath pH. However, not much study has been undertaken concerning composite deposits obtained from higher bath pH or basic bath. This is attributable to the fact that at higher bath pH or alkaline baths, the bath gets unstable and eventually degrades or decomposes, thereby resulting in sub optimal or poor deposition. Hence, experimental investigations carried out by preparing suitable baths, operating under optimum conditions, and enabling successful composite deposition in acidic and alkaline baths have revealed that there is a significant improvement in the above mentioned properties of the as-deposited composite deposits, as the pH is increased from pH 5 to pH 9. This aspect can therefore be advantageously utilized for preparing various marine components like fasteners, nuts, bolts, washers, pipes, cables, components having relative motion etc. © 2016, Harbin Engineering University and Springer-Verlag Berlin Heidelberg.
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页码:484 / 492
页数:8
相关论文
共 26 条
[1]  
Aal A.A., Zaki Z.I., Hamid Z.A., Novel composite coatings containing (TiC–Al2O3) powder, Materials Science and Engineering, 447, 1-2, pp. 87-94, (2007)
[2]  
Alirezaei S.H., Monirvaghefi S.M., Salehi M., Saatchi A., Effect of alumina content on surface morphology and hardness of Ni–P–Al2O3 electroless composite coatings, Surface and Coatings Technology, 184, 2-3, pp. 170-175, (2004)
[3]  
Apachitei I., Duszczyk J., Katgerman L., Overkamp P.J.B., Particles co-deposition by electroless nickel, Scripta Materialia, 38, 9, pp. 1383-1389, (1998)
[4]  
Athauda T.J., Decker D.S., Ozer R.R., Effect of surface metrology on the wettability of SiO<sub>2</sub> nanoparticle coating, Materials Letters, 67, 1, pp. 338-341, (2012)
[5]  
Balaraju J.K., Rajam K.S., Influence of particle size on the microstructure, hardness and corrosion resistance of electroless Ni–P–Al<sub>2</sub>O<sub>3</sub> composite coatings, Surface & Coatings Technology, 200, 12-13, pp. 3933-3941, (2006)
[6]  
Balaraju J.N., Sankara T.S.N., Seshadri S.K., Electroless Ni–P composite coatings, Journal of Applied Electrochemistry, 33, 9, pp. 807-816, (2003)
[7]  
Balaraju J.N., Seshadri S.K., Preparation and characterization of electroless Ni-P and Ni-P-Si composite coatings, Transactions of the Institute of Metal Finishing, 77, 2, pp. 84-86, (1999)
[8]  
Baudrand D.W., Electroless Nickel plating, surface engineering. ASM Hand Book, (1994)
[9]  
Campestrini P., Westing E.P.M., Hovestad A., De Wit J.H.W., Investigation of the chromate conversion coating on Alclad 2024 aluminium alloy: effect of the pH of the chromate bath, Electrochimica Acta, 47, 7, pp. 1097-1113, (2002)
[10]  
Dervos C.T., Novakovic J., Vassiliou P., Electroless Ni-B and Ni-P coatings with high fretting resistance for electrical contact applications, IEEE Holm Conference on Electrical Contacts & the International Conference on Electrical Contacts, pp. 281-288, (2004)