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Localized Corrosion Resistance of Fe-Cr-Mo-W-B-C Bulk Metallic Glasses Containing Mn+Si or Y in Neutral and Acidified Chloride Solutions

机译:中性和酸性氯化物溶液中含Mn + Si或Y的Fe-Cr-Mo-W-B-C大块金属玻璃的局部耐蚀性

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The localized corrosion properties of a series of iron-based metallic glasses containing either the elements Fe-Cr-Mn-Mo-W-B-C-Si or Fe-Cr-Mo-W-B-C-Y have been studied in near-neutral pH, sodium chloride (NaCl) solution, and concentrated hydrochloric acid (HCl) solution over a range of temperatures. Findings were compared to Ni-based Alloy 625 (UNS N06625), Alloy 22 (UNS N06022), and other Fe-based alloys exposed to the same environment. Excellent resistance to pitting corrosion was observed in 0.6 M NaCl at 25, 50, and 85° C in the fully amorphous state during both upward potentiodynamic scans and when activated pits were formed. E-I data was also acquired by the artificial pit method. Additionally, electrochemical and gravimetric testing in 0.1-, 1-, 5-, and 10-M HCl solutions verified extremely low corrosion rates in the case of high Cr-, Mo-, and W-containing glasses. Pitting and crevice stabilization potentials were also predicted from electrochemical data developed using a 10-M HCl solution to simulate the chemistry inside a pit. The predicted critical pitting, E^sub T^, and crevice potentials, E^sub crevice^, associated with acid local corrosion stabilization were determined from the sum of the corrosion potential, a charge-transfer overpotential, and the ohmic voltage required to achieve two different critical pit-stabilizing current densities. Pits and crevices of various assumed geometries were examined. Exceptional localized corrosion resistance in acidified and neutral Cl^sup -^ solutions can be rationalized to be influenced by at least three factors. These include the large concentrations of Cr, Mo, and W in solid solution in the glass phase, minimization of surface defects, as well as several possible unresolved roles of minor and trace alloying elements such as Mn, B, C, Y, and Si on corrosion behavior. [PUBLICATION ABSTRACT]
机译:在接近中性的pH值,氯化钠(NaCl)中研究了一系列含有Fe-Cr-Mn-Mo-WBC-Si或Fe-Cr-Mo-WBCY元素的铁基金属玻璃的局部腐蚀性能溶液,以及在一定温度范围内的浓盐酸(HCl)溶液。将结果与暴露于相同环境的镍基合金625(UNS N06625),合金22(UNS N06022)和其他铁基合金进行了比较。在向上的电位动力学扫描和形成活化的凹坑的过程中,在完全非晶态的25 M,0.6 M NaCl中,在25 M,50和85°C下观察到极好的抗凹坑腐蚀性能。 E-I数据也通过人工坑法获得。此外,在含Cr,Mo和W的玻璃较高的情况下,在0.1-M,1-M,5-M和10-M HCl溶液中进行的电化学和重量测试证明了极低的腐蚀速率。还可以从使用10 M HCl溶液模拟坑内化学反应所产生的电化学数据中预测点蚀和缝隙稳定的潜力。由腐蚀电势,电荷转移超电势和达到所需的欧姆电压的总和来确定与酸局部腐蚀稳定相关的预测的临界点蚀E ^ sub T ^和缝隙电势E ^ sub crevice ^两种不同的临界坑稳定电流密度。检查了各种假定几何形状的坑和缝隙。可以合理化在酸化和中性的Cl 2 -Sup 2-溶液中的优异的局部耐腐蚀性,使其受到至少三个因素的影响。这些包括玻璃相中固溶体中高浓度的Cr,Mo和W,最小化表面缺陷以及微量和微量合金元素(如Mn,B,C,Y和Si)的几种可能未解析的作用腐蚀行为。 [出版物摘要]

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    《Corrosion》 |2010年第3期|p.1-15|共15页
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    R. Huang,* DJ. Norton,* F. Bocher,* andJ.R. Scully[double dagger],*Submitted for publication March 17, 2009, in revised form, August 5, 2009.[double dagger] Corresponding author. E-mail: Jrs8d@virglnia.edu.* Center for Electrochemical Science and Engineering, Department of Materials Science and Engineering, 116 Engineer's Way, University of Virginia, Charlottesvllle, VA 22904.,;

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  • 入库时间 2022-08-17 13:45:29

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