Mechanical properties of mullite/5wt% nano-fly ash feedstock powders produced using mechanical alloying methods for plasma spraying: Towards sustainable coating solutions

Peerawatt Nunthavarawong , Torsak Boonthai , Masaki Fuchiwaki

International Journal of Minerals, Metallurgy, and Materials ›› 2025, Vol. 32 ›› Issue (9) : 2224 -2237.

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International Journal of Minerals, Metallurgy, and Materials ›› 2025, Vol. 32 ›› Issue (9) :2224 -2237. DOI: 10.1007/s12613-025-3137-3
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Mechanical properties of mullite/5wt% nano-fly ash feedstock powders produced using mechanical alloying methods for plasma spraying: Towards sustainable coating solutions

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Abstract

This study examines how ball milling parameters, specifically rotational speeds (20, 40, and 60 r/min) in dry and wet conditions, affect the development of mullite/5wt% nano-fly ash coatings on AISI 410 steel, focusing on their impact on feedstock powders and plasma-sprayed coatings. Optimized milling parameters at 60 r/min under wet conditions yielded high-quality feedstock powders with a particle size of 14 µm and limited size distribution. Coatings produced from wet-milled powders demonstrated a higher deposition efficiency (35%) due to their smaller, uniformly distributed particles, which enhanced melting during the spraying process. These coatings also exhibited significantly lower porosity (7.9%), resulting in denser structures with superior mechanical properties, including a hardness of HV1 647, fracture toughness of 1.41 MPa·m0.5, and a smoother surface finish with a roughness (Ra) of 6.1 µm. Residual stress analysis showed that wet-milled coatings had higher residual stresses, reaching up to 165.95 MPa, compared to dry-milled coatings. This increase is attributed to finer particle sizes and rapid thermal cycling during deposition, which intensified tensile stresses within the coating. These results highlight the importance of optimizing milling parameters to enhance coating performance and process efficiency.

Keywords

mechanical alloying / plasma spray coating / mullite / nano-fly ash / nanocomposite

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Peerawatt Nunthavarawong, Torsak Boonthai, Masaki Fuchiwaki. Mechanical properties of mullite/5wt% nano-fly ash feedstock powders produced using mechanical alloying methods for plasma spraying: Towards sustainable coating solutions. International Journal of Minerals, Metallurgy, and Materials, 2025, 32(9): 2224-2237 DOI:10.1007/s12613-025-3137-3

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References

[1]

G. Pourhashem, Coating a sustainable future, Coatings, 10(2020), No. 8, art. No. 713.

[2]

V. Bhajantri, P. Krishna, and S. Jambagi, A brief review on fly ash and its use in surface engineering, AIP Conf. Proc., 1943(2018), No. 1, art. No. 020028.

[3]

Mondal K, Nuñez LIII, Downey CM, van Rooyen IJ. Thermal barrier coatings overview: Design, manufacturing, and applications in high-temperature industries. Ind. Eng. Chem. Res., 2021, 60(176061

[4]

Sadeghi E, Markocsan N, Joshi S. Advances in corrosion-resistant thermal spray coatings for renewable energy power plants. Part I: Effect of composition and microstructure. J. Therm. Spray Technol., 2019, 28(81749

[5]

Sahith MS, Giridhara G, Kumar RS. Development and analysis of thermal barrier coatings on gas turbine blades–A review. Mater. Today Proc., 2018, 5(12746

[6]

Padture NP, Gell M, Jordan EH. Thermal barrier coatings for gas-turbine engine applications. Science, 2002, 296(5566280

[7]

Kokini K, Takeuchi YR, Choules BD. Surface thermal cracking of thermal barrier coatings owing to stress relaxation: Zirconia vs. mullite. Surf. Coat. Technol., 1996, 82(1–277

[8]

Li SJ, Zhao XQ, Hou GL, et al.. Thermomechanical properties and thermal cycle resistance of plasma-sprayed mullite coating and mullite/zirconia composite coatings. Ceram. Int., 2016, 42(1517447

[9]

Li SJ, Xi X, Hou GL, et al.. Preparation of plasma sprayed mullite coating on stainless steel substrate and investigation of its environmental dependence of friction and wear behavior. Tribol. Int., 2015, 91: 32

[10]

Nakamura T, Qian G, Berndt CC. Effects of pores on mechanical properties of plasma-sprayed ceramic coatings. J. Am. Ceram. Soc., 2000, 83(3578

[11]

Thirumalaikumarasamy D, Shanmugam K, Balasub-ramanian V. Effect of atmospheric plasma spraying parameters on porosity level of alumina coatings. Surf. Eng., 2012, 28(10759

[12]

Ganvir A, Curry N, Markocsan N, et al.. Influence of microstructure on thermal properties of axial suspension plasma-sprayed YSZ thermal barrier coatings. J. Therm. Spray Technol., 2016, 25(1202

[13]

Yilmaz B, Alshemary AZ, Evis Z. Co-doped hydroxyapatites as potential materials for biomedical applications. Microchem. J., 2019, 144: 443

[14]

Ekberg J, Ganvir A, Klement U, Creci S, Nordstierna L. The influence of heat treatments on the porosity of suspension plasma-sprayed yttria-stabilized zirconia coatings. J. Therm. Spray Technol., 2018, 27(3391

[15]

Jonnalagadda KP, Eriksson R, Yuan K, et al.. Comparison of damage evolution during thermal cycling in a high purity nano and a conventional thermal barrier coating. Surf. Coat. Technol., 2017, 332: 47

[16]

Chen J, An YL, Zhao XQ, Yan FY, Zhou HD, Chen JM. Effect of Nd2O3 additive on microstructure and tribological properties of plasma-sprayed NiCr–Cr2O3 composite coatings. J. Therm. Spray Technol., 2014, 23(3363

[17]

Dejang N, Watcharapasorn A, Wirojupatump S, Niranatlumpong P, Jiansirisomboon S. Fabrication and properties of plasma-sprayed Al2O3/TiO2 composite coatings: A role of nanosized TiO2 addition. Surf. Coat. Technol., 2010, 204(9–101651

[18]

Ghadami F, Aghdam ASR, Ghadami S. Characterization of MCrAlY/nano-Al2O3 nanocomposite powder produced by high-energy mechanical milling as feedstock for high-velocity oxygen fuel spraying deposition. Int. J. Miner. Metall. Mater., 2021, 28(91534

[19]

Chavana N, Bhajantri V F, Jambagi SC. Improvement in slurry erosion and corrosion resistance of plasma-sprayed fly ash coatings for marine applications. ACS Omega, 2022, 7(3632369

[20]

J.G. Odhiambo, W.G. Li, Y.T. Zhao, and C.L. Li, Porosity and its significance in plasma-sprayed coatings, Coatings, 9(2019), No. 7, art. No. 460.

[21]

Aussavy D, Costil S, Kedim OE, Montavon G, Bonnot AF. Metal matrix composite coatings manufactured by thermal spraying: Influence of the powder preparation on the coating properties. J. Therm. Spray Technol., 2014, 23(1–2190

[22]

Javadi MM, Edris H, Salehi M. Plasma sprayed NiAl intermetallic coating produced with mechanically alloyed powder. J. Mater. Sci. Technol., 2011, 27(9816

[23]

Li YF, Chen C, Han TF, Ranabhat J, Feng XM, Shen YF. Microstructures and oxidation behavior of NiCrAlCoY–Al composite coatings on Ti–6Al–4V alloy substrate via high-energy mechanical alloying method. J. Alloy. Compd., 2017, 697: 268

[24]

Das P, Paul S, Bandyopadhyay PP. Preparation of diamond reinforced metal powders as thermal spray feedstock using ball milling. Surf. Coat. Technol., 2016, 286: 165

[25]

Manojkumar PA, Gandhi AS, Kamaraj M, Tyagi AK. Sliding wear behaviour of alumina coatings prepared from mechanically milled powders. Wear, 2014, 313(1–211

[26]

Pratiwi I, Ardy H, Prawara B, Ramdan RD, Muttaqien F. Synthesis of NiCrAlY nano-scale powder by high-energy ball milling process for thermal spray coating application. East. Eur. J. Enterp. Technol., 2024, 3(1256(129)

[27]

Greving DJ, Shadley JR, Rybicki EF, Greving DJ, Shadley JR, Rybicki EF. Effects of coating thickness and residual stresses on the bond strength of ASTM C633-79 thermal spray coating test specimens. J. Therm. Spray Technol., 1994, 3(4371

[28]

Nayak H, Kollur S, Prasad K, Erannagari S, Prasad CD, Nagabhushana N. Development of equal proportional YSZ + Al2O3 thermal barrier coating and effect of coating thickness on the corrosion behaviour on cast iron substrate. High Temp. Corros. Mater., 2024, 101(2291

[29]

Ramaswamy P, Seetharamu S, Rao KJ, Varma KBR. Thermal shock characteristics of plasma sprayed mullite coatings. J. Therm. Spray Technol., 1998, 7(4497

[30]

Boonthai T, Nunthavarawong P, Sheppard P, Koiprasert H, Phupradit N, Kerdwattha P. Effect of nano-fly ash additive on the mechanical and microstructural properties of plasma-sprayed mullite coatings. J. Therm. Spray Technol., 2024, 33(82578

[31]

Erdoğan NN, Başyiğit AB. An approach on determining micro-strain and crystallite size values of thermal spray barrier coated Inconel 601 super alloy. Int. J. Mater. Eng. Technol., 2023, 6(121

[32]

Venkataraman R, Krishnamurthy R. Evaluation of fracture toughness of as plasma sprayed alumina–13wt.% titania coatings by micro-indentation techniques. J. Eur. Ceram. Soc., 2006, 26(153075

[33]

Gong JH, Wang JQ, Guan ZD. Indentation toughness of ceramics: A modified approach. J. Mater. Sci., 2002, 37(4865

[34]

Matsunaga T, Kim JK, Hardcastle S, Rohatgi PK. Crystallinity and selected properties of fly ash particles. Mater. Sci. Eng. A, 2002, 325(1–2333

[35]

Cojocaru CV, Kruger SE, Lima RS, Moreau C. Mechanical properties and behaviour of BSAS/mullite-based environmental barrier coatings exposed to high temperature in water vapour environment. Thermal Spray 2010: Proceedings from the International Thermal Spray Conference, 2010566

[36]

Mao WG, Wan J, Dai CY, et al.. Evaluation of microhardness, fracture toughness and residual stress in a thermal barrier coating system: A modified Vickers indentation technique. Surf. Coat. Technol., 2012, 206(214455

[37]

Anstis GR, Chantikul P, Lawn BR, Marshall DB. A critical evaluation of indentation techniques for measuring fracture toughness: I, direct crack measurements. J. Am. Ceram. Soc., 1981, 64(9533

[38]

Nunthavarawong P, Sacks N, Botef I. Effect of powder feed rate on the mechanical properties of WC–5wt%Ni coatings deposited using low pressure cold spray. Int. J. Refract. Met. Hard Mater., 2016, 61: 230

[39]

Khan MN, Shah S, Shamim T. Investigation of operating parameters on high-velocity oxyfuel thermal spray coating quality for aerospace applications. Int. J. Adv. Manuf. Technol., 2019, 103(5–82677

[40]

Boonthai T, Nunthavarawong P, Kowitwarangkul P, Fuchiwaki M. Mechanical alloying process design by using DEM simulation and experimental validation. 2024 1st International Conference on Robotics, Engineering, Science, and Technology (RESTCON), 2024133

[41]

H. Yeom, D. Hoelzer, S. Maloy, and K. Sridharan, Cold spray manufacturing of oxide-dispersion strengthened (ODS) steels using gas-atomized and ball-milled 14YWT powders, J. Nucl. Mater., 574(2023), art. No. 154187.

[42]

H.J. Liu, M.K. Fu, S.Z. Pang, et al., Effect of ball-milled feedstock powder on microstructure and mechanical properties of Cu–Ni–Al–Al2O3 composite coatings by cold spraying, Coatings, 13(2023), No. 5, art. No. 948.

[43]

M. Trautmann, H. Ahmad, and G. Wagner, Influencing the size and shape of high-energy ball milled particle reinforced aluminum alloy powder, Materials, 15(2022), No. 9, art. No. 3022.

[44]

J.V.S.N. Sripada, D.C. Saha, G.C. Saha, and H. Jahed, Bonding mechanism and microstructural evolution in mechanically-alloyed nanodiamond-reinforced Al6061 composite particle deposits in cold spray, Surf. Coat. Technol., 466(2023), art. No. 129611.

[45]

Lu JY, Ruan SQ, Liu Y, Wang T, Zeng Q, Yan DM. Morphological characteristics of calcium carbonate crystallization in CO2 pre-cured aerated concrete. RSC Adv., 2022, 12(2314610

[46]

Hashemi SM, Parvin N, Valefi Z. Effect of addition of multimodal YSZ and SiC powders on the mechanical properties of nanostructured Cr2O3 plasma-sprayed coatings. J. Therm. Spray Technol., 2019, 28(3544

[47]

Salimijazi H, Hosseini M, Mostaghimi J, et al.. Plasma sprayed coating using mullite and mixed alumina/silica powders. J. Therm. Spray Technol., 2012, 21(5825

[48]

Yang EJ, Luo XT, Yang GJ, Li CX, Li C. A TEM study of the microstructure of plasma-sprayed YSZ near intersplat interfaces. J. Therm. Spray Technol., 2015, 24(6907

[49]

Davis JR. Handbook of Thermal Spray Technology, 2004, Materials Park, OH, ASM International

[50]

Kang SW, Baik KH. Effects of powder melting degree on microstructural features of plasma sprayed Y2O3 coating. Korean. J. Mater. Res., 2016, 26(5229

[51]

Chen H, Lee SW, Du H, Ding CX, Choi CH. Influence of feedstock and spraying parameters on the depositing efficiency and microhardness of plasma-sprayed zirconia coatings. Mater. Lett., 2004, 58(7–81241

[52]

Daram P, Sukunta J, Sukhonket C, Koiprasert H. Some microstructural studies of plasma-sprayed stainless steel 316L/Al2O3–TiO2 produced using two-powder port configuration. Chiang Mai J. Sci., 2013, 40(4798

[53]

Hudomalj U, Sichani EF, Weiss L, Nabavi M, Wegener K. Effect of particle size distribution width on repeatability of coating characteristics in atmospheric plasma spraying. Procedia CIRP, 2022, 113: 530

[54]

Babu PS, Rao DS, Rao GVN, Sundararajan G. Effect of feedstock size and its distribution on the properties of detonation sprayed coatings. J. Therm. Spray Technol., 2007, 16(2281

[55]

Zhao G, Xia L, Zhong B, Wen G, Song L, Wang X. Effect of milling conditions on the properties of HA/Ti feedstock powders and plasma-sprayed coatings. Surf. Coat. Technol., 2014, 251: 38

[56]

Ghara T, Paul S, Bandyopadhyay PP. Effect of grit blasting parameters on surface and near-surface properties of different metal alloys. J. Therm. Spray Technol., 2021, 30(1–2251

[57]

Luo XT, Li CJ. Thermal stability of microstructure and hardness of cold-sprayed cBN/NiCrAl nanocomposite coating. J. Therm. Spray Technol., 2012, 21(3–4578

[58]

Abubakar AA, Arif AFM, Akhtar SS, Mostaghimi J. Splats formation, interaction and residual stress evolution in thermal spray coating using a hybrid computational model. J. Therm. Spray Technol., 2019, 28(3359

[59]

Dwivedi G, Viswanathan V, Sampath S, Shyam A, Curzio EL. Fracture toughness of plasma-sprayed thermal barrier ceramics: Influence of processing, microstructure, and thermal aging. J. Am. Ceram. Soc., 2014, 97(92736

[60]

M.Q. Guo, Y.J. Cui, C.L. Wang, J. Jiao, X.F. Bi, and C.H. Tao, Characterization and control of residual stress in plasma-sprayed silicon coatings on SiC/SiC composites, Coatings, 13(2023), No. 4, art. No. 674.

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