首页> 外文期刊>Corrosion science >Erosion-corrosion behavior of nano-particle-reinforced Ni matrix composite alloying layer by duplex surface treatment in aqueous slurry environment
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Erosion-corrosion behavior of nano-particle-reinforced Ni matrix composite alloying layer by duplex surface treatment in aqueous slurry environment

机译:水性浆料环境中双相表面处理纳米颗粒增强Ni基复合合金层的冲蚀腐蚀行为

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摘要

The present study concerns a duplex surface treatment of AISI 316L stainless steel to enhance the erosion-corrosion resistance. The duplex surface treatment consisted of Ni/nano-SiC and Ni/nano-SiO_2 pre-deposited by brush plating and a subsequent surface alloying with Ni-Cr-Mo-Cu by double glow process of the substrate. Results showed that under alloying temperature (1000 ℃) condition, the amorphous nano-SiO_2 particles still kept the amorphous structure, whereas the nano-SiC particles had been completely decomposed and Ni, Cr reacted with SiC to form Cr_(6.5)Ni_(2.5)Si and Cr_(23)C_6. The electrochemical corrosion behaviors of composite alloying layers compared with the single alloying layer and 316L stainless steel were measured under a range of hydrodynamic conditions by recording the current response, open circuit potential, potentiodynamic polarization curves and electrochemical impedance spectroscopy (EIS). Results showed that the increase of the impact velocity had significant influence on the current density of composite alloying layer with brush plating Ni/nano-SiC particles interlayer obtained under flowing condition at a potential of 200 mV, whereas there were only small fluctuations occurred at current response of composite alloying layer with brush plating Ni/nano-SiO_2 particles interlayer. The results of potentiodynamic polarization indicated that, with increasing impact velocity under slurry flow conditions, the corrosion potentials of test materials decreased and the corrosion current densities of test materials increased. The corrosion resistance of composite alloying layer with brush plating Ni/nano-SiO_2 particles interlayer was prominently superior to that of single alloying layer under slurry flow conditions; the corrosion resistance of composite alloying layer with brush plating Ni/nano-SiC particles interlayer was evidently lower than that of single alloying layer, but higher than that of 316L stainless steel under slurry flow conditions. The results of EIS indicated that, with respect to the R_(tot) obtained in sand-free flow, the impacts of sand particles dramatically decreased the R_(tot) values of composite alloying layer with brush plating Ni/nano-SiC particles interlayer, single alloying layer and 316L stainless steel, whereas the impact action slightly decreased that of composite alloying layer with brush plating Ni/ nano-SiO_2 particles interlayer. The weight loss rate studies suggested that the highly dispersive nano-SiO_2 particles were helpful to improve the erosion-corrosion resistance of composite alloying layer, whereas the carbides and silicide phase were deleterious to that of composite alloying layer due to the fact that preferential removal of matrix around the precipitated phase takes place by the chemical attack of aggressive medium.
机译:本研究涉及AISI 316L不锈钢的双相表面处理,以增强耐腐蚀性能。双重表面处理包括通过刷镀预沉积的Ni / nano-SiC和Ni / nano-SiO_2,以及随后通过衬底的双辉光处理与Ni-Cr-Mo-Cu进行表面合金化。结果表明,在合金化温度(1000℃)条件下,非晶态纳米SiO_2粒子仍保持非晶态结构,而纳米SiC粒子已完全分解,Ni,Cr与SiC反应生成Cr_(6.5)Ni_(2.5)。 Si和Cr_(23)C_6。通过记录电流响应,开路电势,电势极化曲线和电化学阻抗谱(EIS),在一定的水动力条件下测量了复合合金层与单合金层和316L不锈钢相比的电化学腐蚀行为。结果表明,冲击速度的增加对在流动条件下以200 mV的电刷镀Ni / nano-SiC颗粒夹层的复合合金层的电流密度有显着影响,而在电流条件下只有很小的波动Ni /纳米SiO_2颗粒夹层复合镀层对复合合金层的响应电位动力极化的结果表明,随着泥浆流动条件下冲击速度的增加,被测材料的腐蚀电位降低,被测材料的腐蚀电流密度增加。刷镀Ni /纳米SiO_2颗粒中间层的复合合金层在浆料流动条件下的耐蚀性明显优于单合金层。刷镀Ni / nano-SiC颗粒中间层的复合合金层的耐蚀性明显低于单一合金层,但在浆液流动条件下高于316L不锈钢。 EIS结果表明,对于无砂流动中获得的R_(tot),砂粒的冲击显着降低了刷镀Ni /纳米SiC颗粒夹层的复合合金层的R_(tot)值,单合金层和316L不锈钢,而冲击作用使带有刷镀Ni /纳米SiO_2颗粒夹层的复合合金层的冲击作用略有降低。失重率研究表明,高度分散的纳米SiO_2颗粒有助于提高复合合金层的耐腐蚀性能,而碳化物和硅化物相则对复合合金层具有优先去除的作用,因此对复合合金层的抗腐蚀性能有害。侵蚀相周围的基质通过侵蚀性介质的化学侵蚀而发生。

著录项

  • 来源
    《Corrosion science》 |2009年第5期|1055-1068|共14页
  • 作者单位

    Department of Material Science and Engineering, Nanjing University of Aeronautics and Astronautics, 29 Yudao Street, Nanjing 210016, PR China;

    Department of Material Science and Engineering, Nanjing University of Aeronautics and Astronautics, 29 Yudao Street, Nanjing 210016, PR China;

    Nanjing Soar New Material Technology Company, 15 High-Tech Development Zone, Nanjing 210061, PR China;

    Department of Material Science and Engineering, Nanjing University of Aeronautics and Astronautics, 29 Yudao Street, Nanjing 210016, PR China;

    Department of Material Science and Engineering, Nanjing University of Aeronautics and Astronautics, 29 Yudao Street, Nanjing 210016, PR China;

    Department of Mechanical Engineering, Southeast University, 2 Si Pai Lou, Nanjing 210096, PR China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    A. composite alloying layer; B. double glow; B. nano-particle-reinforced; B. erosion-corrosion;

    机译:A.复合合金层;B.双辉;B.纳米颗粒增强;B.腐蚀腐蚀;

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