A Dual-Anode Electrolytic Codecomposition Approach to Enhance A36 Steel Properties With Zn-13, Rice Husk, and White Clay Coatings

Samuel A. Ajayi, Peter Onu, Nelson S. Madonsela, Anup Pradhan, Olufemi O. Ajide, Oluleke O. Oluwole
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Abstract

The literature on using ceramic particles from agroindustrial wastes to enhance the engineering performance of metallic materials is limited. This study explores using rice husk (RH) and white clay (WC) particulates to develop zinc-based composite coatings on A36 steel. Four cathode specimens (80 × 40 × 2 mm) of A36 steel and two zinc anodes (50 × 30 × 2 mm) were prepared. The steel specimens were coated with Zn-10RHWC(t25), Zn-10RHWC(t30), Zn-15RHWC(t25), and Zn-15RHWC(t30), denoted as S1, S2, S3, and S4, respectively. The concentrations used were 10/15 g/L, with deposition times of 25/30 min at a constant cell voltage of 0.5 V. Corrosion rates (CRs) in 3.5 wt.% NaCl were investigated according to ASTM and NACE standards. The coated samples’ hardness, tensile strength (TS), and wear rate (WR) properties were also examined. Scanning electron microscopy (SEM) and X-ray diffraction (XRD) were employed to study the morphology and crystallization of the coatings. The coated specimens exhibited significantly lower CR than the uncoated steel (CR = 8.45 ± 0.58 mm/year). CR values for S1 to S4 were 5.74 ± 0.41, 2.18 ± 0.42, 3.09 ± 0.38, and 5.92 ± 0.45 mm/year, respectively. All coated specimens showed substantial improvements in TS over the uncoated specimen (4.81%, 2.83%, and 4.29% for upper, middle, and lower sections, respectively). Regarding deformation modulus, the Zn-15RHWC(t25) samples exhibited improvements of about 1.31% and 1.38% in the upper and middle sections, respectively, while the lower section experienced a decrease of 2.03%. The study demonstrates significant enhancements in the engineering properties of A36 steel coated with Zn-13, RH, and WC using the dual-anode electrolytic codeposition technique.

Abstract Image

用锌-13、稻壳和白粘土涂层提高A36钢性能的双阳极电解分解方法
利用农业工业废弃物中的陶瓷颗粒来提高金属材料的工程性能的文献有限。本研究探索利用稻壳(RH)和白粘土(WC)颗粒在A36钢表面制备锌基复合涂层。制备了4个A36钢阴极试样(80 × 40 × 2mm)和2个锌阳极(50 × 30 × 2mm)。钢试样分别镀有Zn-10RHWC(t25)、Zn-10RHWC(t30)、Zn-15RHWC(t25)和Zn-15RHWC(t30),分别记为S1、S2、S3和S4。使用的浓度为10/ 15g /L,在0.5 V恒定电池电压下沉积时间为25/ 30min。腐蚀速率(cr)在3.5 wt。按ASTM和NACE标准测定% NaCl含量。测试了涂层样品的硬度、抗拉强度(TS)和磨损率(WR)性能。利用扫描电子显微镜(SEM)和x射线衍射仪(XRD)研究了涂层的形貌和结晶过程。涂层钢的CR值显著低于未涂层钢(CR = 8.45±0.58 mm/年)。S1 ~ S4的CR值分别为5.74±0.41、2.18±0.42、3.09±0.38和5.92±0.45 mm/年。与未涂覆的标本相比,所有涂覆标本的TS均有显著改善(上、中、下切片分别为4.81%、2.83%和4.29%)。在变形模量方面,Zn-15RHWC(t25)试样的上、中截面分别提高了1.31%和1.38%,下截面降低了2.03%。研究表明,采用双阳极电解共沉积技术对镀有Zn-13、RH和WC的A36钢的工程性能有显著提高。
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CiteScore
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