Thickness Evaluation of Ceramic Coatings Formed by Microarc Oxidation

Metallurgist ◽  
2021 ◽  
Vol 64 (11-12) ◽  
pp. 1300-1306
Author(s):  
Y. A. Kuznetsov ◽  
M. A. Markov ◽  
I. N. Kravchenko ◽  
V. P. Lyalyakin ◽  
A. V. Krasikov ◽  
...  
1999 ◽  
Vol 15 (2) ◽  
pp. 109-111 ◽  
Author(s):  
Y.K. Wang ◽  
L. Sheng ◽  
R.Z. Xiong ◽  
B.S. Li

2013 ◽  
Vol 2013 ◽  
pp. 1-14 ◽  
Author(s):  
Mohannad M. S. Al Bosta ◽  
Keng-Jeng Ma ◽  
Hsi-Hsin Chien

High emitter MAO ceramic coatings were fabricated on the Al 6061 alloy, using different bipolar anodic current densities, in an alkali silicate electrolyte. We found that, as the current density increased from 10.94 A/dm2 to 43.75 A/dm2, the layer thickness was increased from 10.9 μm to 18.5 μm, the surface roughness was increased from 0.79 μm to 1.27 μm, the area ratio of volcano-like microstructure was increased from 55.6% to 59.6%, the volcano-like density was decreased from 2620 mm−2 to 1420 mm−2, and the γ-alumina phase was decreased from 66.6 wt.% to 26.2 wt.%, while the α-alumina phase was increased from 3.9 wt.% to 27.6 wt.%. The sillimanite and cristobalite phases were around 20 wt.% and 9 wt.%, respectively, for 10.94 A/dm2 and approximately constant around 40 wt.% and less than 5 wt.%, respectively, for the anodic current densities 14.58, 21.88, and 43.75 A/dm2. The ceramic surface roughness and thickness slightly enhanced the IR emissivity in the semitransparent region (4.0–7.8 μm), while the existing phases contributed together to raise the emissivity in the opaque region (8.6–16.0 μm) to higher but approximately the same emissivities.


2019 ◽  
Vol 1 (5) ◽  
pp. 109-111
Author(s):  
M. A. Markov ◽  
B. V. Farmakovsky ◽  
A. V. Krasikov ◽  
A. D. Bykova ◽  
S. N. Perevislov ◽  
...  

The results of the development of the technology of electrolytic deposition of protective and electrical insulating ceramic coatings are presented. The developed technology consists in the combination of microarc oxidation with the imposition of overpressure in a closed autoclave with the introduction of nanoparticles into the probe of the formation of coatings.


2017 ◽  
Vol 31 (16-19) ◽  
pp. 1744026
Author(s):  
Feng Xiao ◽  
Hui Chen ◽  
Jingguo Miao ◽  
Juan Du

Under the sodium aluminates’ system, microarc oxidation treatment was conducted on the superhard aluminum alloy 7A04 for different times. The microstructure of microarc oxidation ceramic layer was investigated by using scanning electron microscopy (SEM) and X-ray diffraction (XRD). The influences of different oxidation times on the adhesion strength of ceramic layer and substrate, the morphology of surface and cross-section, the phase composition and the electrochemical properties were studied. The results indicated that the connection of the coating and substrate appears to be metallurgical bonding and dense ceramic layer, and the surface is in a “volcanic vent” morphology, which is composed of [Formula: see text]-Al2O3 and little [Formula: see text]-Al2O3. The corrosion resistance of ceramic layer is improved significantly in contrast with that of the substrate.


2019 ◽  
Vol 822 ◽  
pp. 752-759
Author(s):  
M.A. Markov ◽  
Aleksandr D. Kashtanov ◽  
Aleksei V. Krasikov ◽  
A.D. Bykova ◽  
Dmitry A. Gerashchenkov ◽  
...  

This Article Presents the Results of the Development of Multilayer Ceramic Coatings to Protect Metal Products from Corrosion in Aggressive Liquid Metal Environments. the Development is Based on the Integrated Use of Low-Temperature Heterophase Transfer and Microarc Oxidation Methods. the Results of Corrosion Tests of Coatings in the Interaction with Molten Lead in the Temperature Range of 400-600°C are Presented. the Structural Characteristics of the Coatings are Considered.


2015 ◽  
Vol 713-715 ◽  
pp. 2880-2888 ◽  
Author(s):  
Yong Jun Zhang ◽  
Cui Ling Zhao ◽  
Sheng Tao ◽  
Shu Gong Jia ◽  
Zheng Chun Liu

Microarc oxidation (MAO) surface modification course on high-purity Mg at constant DC and the resultant ceramic coatings were investigated. MAO was the course in which the pre-existing film/coating was modified or substituted and strengthened repeatedly. SEM disclosed the inhomogeneous formation rate of ceramic coating in different micro-regions at anode surface during MAO. Three-stage behavior of MAO including pre-microarc discharge stage, transitional stage and then further modifying stage was put forward. The latter two stages proceeded under continuous discharge conditions, accompanied by intensive evolution of gas. EDS analyses indicated that the resultants of MAO consisted mainly of Mg, O and Si elements. XRD analyses revealed the dependence of phase composition on treatment time and coating layer depth.


Author(s):  
N. S. Chernyshov ◽  
Yu. A. Kuznetsov ◽  
M. A. Markov ◽  
A. V. Krasikov ◽  
A. D. Bykova

The results of experimental studies of the corrosion resistance of aluminum and its alloys modified with ceramic coatings based on the microarc oxidation method in some aggressive environments are presented. The mechanism of destruction of the coating is considered. Recommendations on increasing corrosion resistance are given.


2020 ◽  
Vol 21 (3) ◽  
pp. 545-551
Author(s):  
V.V. Subbotina ◽  
V.V. Belozerov

By the method of microarc oxidation for different types of electrolytes (which include KOH, Na2SiO3, Н2О2, NaOH, NaAlO2, Na5P3O10, NaF) and electrolysis conditions, multifunctional ceramic coatings on a magnesium alloy were obtained. The phase composition of the coating includes magnesium oxide (MgO), spinel MgAl2O4, Mg2SiO4 and Мg3(РО4)2 compounds. The phase composition of the coatings is determined by the composition of the electrolyte. The obtained MAO coatings provide high hardness, which is 1500 to 7300 MPa, as well as high corrosion resistance. The results obtained make it possible to recommend MAO coatings on magnesium alloys both as an external (functional) layer and for the formation of an underlayer for the subsequent application of protective coatings (varnishes, polymers, polytetrafluoroethylene, in particular).


2019 ◽  
Vol 60 (3) ◽  
pp. 268-270
Author(s):  
M. A. Markov ◽  
B. V. Farmakovskii ◽  
A. V. Krasikov ◽  
A. D. Bykova ◽  
S. N. Perevislov ◽  
...  

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