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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Iron-Based Amorphous Metals: High-Performance Corrosion-Resistant Material Development
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Iron-Based Amorphous Metals: High-Performance Corrosion-Resistant Material Development

机译:铁基非晶态金属:高性能耐腐蚀材料开发

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An overview of the High-Performance Corrosion-Resistant Materials (HPCRM) Program, which was cosponsored by the Defense Advanced Research Projects Agency (DARPA) Defense Sciences Office (DSO) and the U.S. Department of Energy (DOE) Office of Civilian and Radioactive Waste Management (OCRWM), is discussed. Programmatic investigations have included a broad range of topics: alloy design and composition, materials synthesis, thermal stability, corrosion resistance, environmental cracking, mechanical properties, damage tolerance, radiation effects, and important potential applications. Amorphous alloys identified as SAM2X5 (Fe_(49.7)Cr_(17.7)Mn_(1.9)Mo_(7.4)W_(1.6)B_(15.2)C_(3.8)Si_(2.4)) and SAM1651 (Fe_(48)Mo_(14)Cr_(15)Y_2C_(15)B_6) have been produced as meltspun ribbons (MSRs), dropcast ingots, and thermal-spray coatings. Chromium (Cr), molybdenum (Mo), and tungsten (W) additions provided corrosion resistance, while boron (B) enabled glass formation. Earlier electrochemical studies of MSRs and ingots of these amorphous alloys demonstrated outstanding passive film stability. More recently, thermal-spray coatings of these amorphous alloys have been made and subjected to long-term salt-fog and immersion tests; good corrosion resistance has been observed during salt-fog testing. Corrosion rates were measured in situ with linear polarization, while the open-circuit corrosion potentials (OCPs) were simultaneously monitored; reasonably good performance was observed. The sensitivity of these measurements to electrolyte composition and temperature was determined. The high boron content of this particular amorphous metal makes this amorphous alloy an effective neutron absorber and suitable for criticality-control applications. In general, the corrosion resistance of such iron-based amorphous metals is maintained at operating temperatures up to the glass transition temperature. These materials are much harder than conventional stainless steel and Ni-based materials, and are proving to have excellent wear properties, sufficient to warrant their use in earth excavation, drilling, and tunnel-boring applications. Large areas have been successfully coated with these materials, with thicknesses of approximately 1 cm. The observed corrosion resistance may enable applications of importance in industries such as oil and gas production, refining, nuclear power generation, shipping, etc.
机译:高性能耐腐蚀材料(HPCRM)计划的概述,该计划由国防高级研究计划局(DARPA)国防科学办公室(DSO)和美国能源部(DOE)平民与放射性废物办公室共同赞助讨论了管理(OCRWM)。程序研究包括广泛的主题:合金设计和组成,材料合成,热稳定性,耐腐蚀性,环境开裂,机械性能,损伤耐受性,辐射效应以及重要的潜在应用。非晶合金分别为SAM2X5(Fe_(49.7)Cr_(17.7)Mn_(1.9)Mo_(7.4)W_(1.6)B_(15.2)C_(3.8)Si_(2.4)和SAM1651(Fe_(48)Mo_(14) Cr_(15)Y_2C_(15)B_6)已作为熔纺带(MSR),压铸锭和热喷涂涂层生产。铬(Cr),钼(Mo)和钨(W)的添加具有抗腐蚀性,而硼(B)可以使玻璃形成。对这些非晶态合金的MSR和铸锭的早期电化学研究表明,其具有出色的钝化膜稳定性。最近,已经制造了这些非晶态合金的热喷涂涂层,并进行了长期的盐雾和浸没测试。在盐雾测试中观察到良好的耐腐蚀性。腐蚀速率是用线性极化原位测量的,同时对开路腐蚀电位(OCP)进行了监测。观察到相当好的性能。确定了这些测量对电解质组成和温度的敏感性。这种特殊的非晶态金属的高硼含量使这种非晶态合金成为有效的中子吸收剂,适合于临界控制应用。通常,在高达玻璃化转变温度的操作温度下保持这种铁基非晶态金属的耐腐蚀性。这些材料比常规的不锈钢和镍基材料坚硬得多,并且被证明具有出色的耐磨性能,足以保证它们在土方开挖,钻孔和隧道掘进应用中的使用。已经成功地用这些材料涂覆了大面积区域,其厚度约为1厘米。观察到的耐腐蚀性可能使在诸如石油和天然气生产,精炼,核能发电,运输等行业中具有重要的应用成为可能。

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