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Laser surface modification of stainless steels for cavitation erosion resistance.

机译:不锈钢的激光表面改性,可抵抗气蚀。

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摘要

Austenitic stainless steel UNS S31603 (Fe -17.6Cr -11.2Ni -2.5Mo -1.4Mn -0.4Si -0.03C) has higher pitting corrosion resistance but lower cavitation erosion resistance than that of UNS S30400. This is because of its lower tendency for strain induced martensitic transformation and higher stacking fault energy as compared with those of UNS S30400. In order to improve its cavitation erosion resistance, surface modification of S31603 was performed by laser surface melting and laser surface alloying using a 2-kW CW Nd-YAG laser and a 3-kW CW CO2 laser. For laser surface melting, austenitic stainless steel UNS S30400, super duplex stainless steel UNS S32760 and martensitic stainless steel UNS S42000 were also investigated for comparison purpose. For laser surface alloying, alloying materials including various elements (Co, Cr, Ni, Mo, Mn, Si & C), alloys (AlSiFe & NiCrSiB), ceramics (Si3N 4, SiC, Cr3C2, TiC, CrB & Cr2O 3) and alloys-ceramics (Co-WC, Ni-WC, Ni-Al2O3, Ni-Cr2C3) were used to modify the surface of S31603. The alloyed surface was achieved first by flame spraying or pre-placing of the alloy powder on the S31603 surface and then followed by laser surface remelting.; The cavitation erosion characteristics of laser surface modified specimens in 3.5% NaCl solution at 23°C were studied by means of a 20-kHz ultrasonic vibrator at a peak-to-peak amplitude of 30 μm. In addition, their pitting corrosion behaviour was evaluated by electrochemical techniques. The microstructures, compositions, phase changes and damage mechanisms under cavitation erosion were investigated by optical microscopy, SEM, EDAX and X-ray diffractometry. Mechanical properties such as microhardness profile were also examined.; The cavitation erosion resistance Re (reciprocal of the mean depth of penetration rate) of laser surface melted S31603 was found to be improved by 22% and was attributed to the existence of tensile residual stress. Improvement on the Re of S42000 was found to be 8.5 times because of the hardened surface which contained both martensite and retained austenite. Laser surface modification using NiCrSiB, AlSi, Si and C for enhancing the Re was also successfully accomplished. Intermetallic phases, borides and carbides were found to increase both the Re (4–10 times) and the hardness (2–3 times) of the laser treated S31603. The R e of S31603 laser surface modified with CoWC forming a metal-matrix composite (MMC) was highest (45.5 times) among all the materials studied. Laser surface modification with ceramics (e.g. WC and Cr2B) formed ceramic-matrix composite (CMC) but the Re was lower than that of the MMC because of rapid detaching of the ceramics particles from the specimens surface.
机译:与UNS S30400相比,奥氏体不锈钢UNS S31603(Fe -17.6Cr -11.2Ni -2.5Mo -1.4Mn -0.4Si -0.03C)具有更高的抗点蚀性,但其抗气蚀侵蚀性却较低。这是因为与UNS S30400相比,它的应变诱发马氏体相变趋势较小,而堆垛层错能量较高。为了提高其抗气蚀性,使用2 kW CW Nd-YAG激光器和3 kW CW CO 2 激光器通过激光表面熔化和激光表面合金化对S31603进行了表面改性。为了进行激光表面熔化,还比较了奥氏体不锈钢UNS S30400,超双相不锈钢UNS S32760和马氏体不锈钢UNS S42000。对于激光表面合金化,包括各种元素(Co,Cr,Ni,Mo,Mn,Si和C)的合金材料,合金(AlSiFe和NiCrSiB),陶瓷(Si 3 N 4 < / sub>,SiC,Cr 3 C 2 ,TiC,CrB和Cr 2 O 3 )和合金陶瓷(Co-WC,Ni-WC,Ni-Al 2 O 3 ,Ni-Cr 2 C 3 )用来修饰S31603的表面。首先通过火焰喷涂或在S31603表面上预先放置合金粉末,然后再进行激光表面重熔来获得合金表面。使用20 kHz超声振动器在峰-峰振幅为30μm的条件下,在23%的3.5%NaCl溶液中研究了经过激光表面改性的标本的空化腐蚀特性。另外,通过电化学技术评价了它们的点蚀腐蚀行为。通过光学显微镜,SEM,EDAX和X射线衍射法研究了气蚀作用下的微观结构,组成,相变和破坏机理。还检查了机械性能,例如显微硬度分布。发现激光表面熔化的S31603的抗气蚀侵蚀性R e(平均穿透深度的倒数)提高了22%,这归因于存在拉伸残余应力。由于硬化表面既包含马氏体又保留了奥氏体,因此S42000的R 改善了8.5倍。还成功完成了使用NiCrSiB,AlSi,Si和C进行激光表面改性以增强R 的功能。发现金属间相,硼化物和碳化物会增加激光处理过的S31603的R (4-10倍)和硬度(2-3倍)。在所有研究的材料中,用CoWC改性形成金属基复合材料(MMC)的S31603激光表面的R 最高。用陶瓷(例如WC和Cr 2 B)进行的激光表面改性形成了陶瓷基复合材料(CMC),但R e 低于MMC,因为其快速脱落样品表面的陶瓷颗粒。

著录项

  • 作者

    Kwok, Chi Tat.;

  • 作者单位

    Hong Kong Polytechnic (People's Republic of China).;

  • 授予单位 Hong Kong Polytechnic (People's Republic of China).;
  • 学科 Engineering Materials Science.; Engineering Metallurgy.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 414 p.
  • 总页数 414
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;冶金工业;
  • 关键词

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