Enhanced mechanical properties and tribological performance of anodic oxide coating by using thermal power plant waste material

被引:0
|
作者
Mustapar, Norliyana [1 ]
Liza, Shahira [1 ]
Fukuda, Kanao [1 ]
Tahir, Noor Ayuma Mat [1 ]
Ishimatsu, Jun [1 ]
Yaakob, Yazid [2 ]
Othman, Intan Sharhida [3 ]
机构
[1] Univ Teknol Malaysia, Malaysia Japan Int Inst Technol, Jalan Sultan Yahya Petra, Kuala Lumpur 54100, Malaysia
[2] Univ Putra Malaysia, Fac Sci, Dept Phys, Serdang 43400, Selangor, Malaysia
[3] Univ Teknikal Malaysia Melaka, Fac Mfg Engn, Adv Mfg Ctr, Hang Tuah Jaya, Durian Tunggal 76100, Malaysia
关键词
Industrial waste; Fly ash (FA); Silicon dioxide (SiO2); Anodizing; Surface properties; Tribology application; PLASMA ELECTROLYTIC OXIDATION; FLY-ASH; COMPOSITE COATINGS; ALUMINUM COATINGS; SUPERFINE AL2O3; MAGNESIUM; WEAR; FILMS; MICROSTRUCTURE; MORPHOLOGY;
D O I
10.1016/j.ceramint.2024.07.203
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Numerous researchers have dedicated their efforts to exploring the utilization of industrial waste, specifically fly ash (FA), as a reinforcement for developing economical composites and minimizing ecological pollution problems. FA consists of multiple phases, including quartz (SiO2) and mullite (3Al(2)O(3)<middle dot>2SiO(2)), which can significantly enhance the mechanical properties of materials. In tribological applications, incorporating FA into surface coatings can offer a cost-effective alternative to enhance surface properties. Meanwhile, the usage of FA and its difference from other commercial ceramics (e.g., SiO2) is still unknown. Thus, the present study aims to clarify the role of FA and factors that contribute to improving mechanical properties and tribological performance with commercial SiO2 as a comparison using electrochemical anodization. The growth mechanism was investigated by varying the anodizing times while maintaining a constant (100 g/L FA) in the electrolyte for the first phase. Meanwhile, the mechanical and tribological properties of different reinforcement content (0, 10, 50, and 100 g/L) were determined for the second phase. Then, evaluations were conducted on the surface morphology, chemical composition, surface hardness, and tribological properties. The results revealed that growth of oxide coating was initiated within the first 5-10 min by forming the barrier layer. Pores began to appear visibly after 30 min of anodizing time, while the complete formation of porous anodic oxide coating was achieved at 60-min with pores dimension (width: 30.75 +/- 14.45 mu m and depth: 13.4 +/- 6.43 mu m). Interestingly, 100 g/L of FA-reinforced anodic oxide coating demonstrated lower surface roughness (4.08 +/- 0.41 mu m), higher surface hardness (444.4 +/- 8.63 HV), lowest coefficient of friction (COF) (0.46), and low wear rate (reduction almost 31.8 %) compared to 100 g/L of commercial SiO2 reinforced anodic oxide coating. The electrophoretic deposition effect, combined with the quartz (SiO2) and mullite (3Al(2)O(3)<middle dot>2SiO(2)) phase structure, enhances mechanical properties and tribological performance.
引用
收藏
页码:38372 / 38390
页数:19
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