Unni Megha, Sudagar J
Department of Physics, School of Advanced Sciences (SAS), VIT-AP University, Near Vijayawada, Andhra Pradesh, 522 241, India.
Heliyon. 2024 Sep 5;10(17):e37363. doi: 10.1016/j.heliyon.2024.e37363. eCollection 2024 Sep 15.
The exceptional super elasticity and corrosion-resistance of Ni-Ti alloys have attracted a lot of attention and interest lately for a wide range of applications, and complex alloy components could be prepared effectively by different preparation techniques. Ni(P), Ni-Ti(P), Ni-Zr(P), and Ni-Ti -Zr(P) binary, ternary, and quaternary alloys were coated on mild steel by electroless deposition which is a method of plating metallic films on a substrate by the reduction of metallic complex ions in solution with the aid of reducing agent from an alkaline bath. The ternary Ni-Ti-Zr(P) alloy is considered to be one of the most promising high-temperature SMAs. SEM, XRD and EDS were used to examine the morphology, phase composition and elemental composition which demonstrate the microstructure of the deposits. The mechanical characteristics of the samples were examined through scratch test and micro hardness analysis and the value increased from 261 HV to 405 HV and that the coefficient of friction raised significantly from 0.23 to 3.5 owing to the presences of added elements in Ni(P) matrix. Polarization analysis and EIS were tested to evaluate the corrosion properties of coated samples in a non-deaerated 3.5 %wt. (NaCl) solution. The outcomes indicate that as the amount of Ti-Zr elements in the bath raised, the corrosion potential became more positive and the corrosion current density decreased to 14.903 μA/cm. Furthermore, Ni-Ti-Zr(P) alloy coating strengthens corrosion resistance in comparison to Ni(P).
最近,镍钛合金卓越的超弹性和耐腐蚀性因其广泛的应用而备受关注,并且通过不同的制备技术可以有效地制备复杂的合金部件。通过化学沉积法将Ni(P)、Ni-Ti(P)、Ni-Zr(P)和Ni-Ti-Zr(P)二元、三元和四元合金涂覆在低碳钢上,化学沉积是一种借助碱性镀液中的还原剂还原溶液中的金属络离子,从而在基底上镀覆金属膜的方法。三元Ni-Ti-Zr(P)合金被认为是最有前途的高温形状记忆合金之一。使用扫描电子显微镜(SEM)、X射线衍射仪(XRD)和能谱仪(EDS)来检测沉积物的微观结构、相组成和元素组成。通过划痕试验和显微硬度分析来检测样品的力学性能,由于Ni(P)基体中添加了元素,其硬度值从261 HV增加到405 HV,摩擦系数从0.23显著提高到3.5。通过极化分析和电化学阻抗谱(EIS)测试来评估涂覆样品在非除气的3.5%(质量分数)(NaCl)溶液中的耐腐蚀性能。结果表明,随着镀液中Ti-Zr元素含量的增加,腐蚀电位更正,腐蚀电流密度降至14.903 μA/cm²。此外,与Ni(P)相比,Ni-Ti-Zr(P)合金涂层增强了耐腐蚀性。