欢迎登录材料期刊网

材料期刊网

高级检索

在钢铁材料中得到成功应用的传统表面技术,在钛表面处理上也得到了较广泛的应用,但传统的表面技术存在着许多不适应于钛材处理的技术壁垒,因此,针对钛材料的特殊性能发展起来的液相等离子体处理技术、等离子表面冶金技术、钛电极涂层技术、钛生物涂层技术、钛建筑材料的表面处理技术等成为钛材表面处理技术新的发展方向。主要综述了传统表面技术和液相等离子体处理技术、等离子表面冶金技术2种新技术在钛材表面上应用的研究成果。

The conventional surface technology is successfully applied in steel material and has also been relatively widespread used in surface treatment of titanium material. However, it is found that the titanium material surface treatment by these conventional surface technologies is not all suitable arid has lots of technique rampart. Hereby, aim to special properties of titanium material, a good number of surface modification procedures such as liquid plasma electrolyte treatment, plasma surface metallurgy etc. have been developed and become the development trend of the titanium material surface treatment technology in future. In this paper, the research status of titanium material by conventional surface technologies., and the surface treatment research progress of titanium material by two novel surface technologies such as liquid plasma electrolyte treatment and plasma surface metallurgy were described.

参考文献

[1] Leyens C;Peters M;Chen Zhenhua.钛与钛合金[M].Beljing:Chemical Industry Press,2005
[2] 辛湘杰.钛的腐蚀、防护及工程应用[M].Heifei:AnhuiScienceandTechnologyPress,1988
[3] 阿久津幸一 .プラズマ浸碳にょるチタソの硬化处理[J].,2000,48(02):140-142.
[4] HidekazuTsukahara .放电加工にょるチタソの表面硬化[J].チタソ,2000,48(02):143-145.
[5] 柴田英明 .窒化处理チタソの材料[J].工业材料(日本),1993,41(15):114-118.
[6] F.PreiBer .チタソ材料の高压窒处理[J].チタニウム ジルコニウム,1993,41(03):160-164.
[7] Gordin Doinn Margareta;Thibon Isabelle;Guillou Annie.Gas Nitriding of Biocompatible Beta Titanium Alloys[A].Kyoto,Japan,2007:1731-1734.
[8] Wendler B G;Liskiewicz T;Kaczmarek L.Oxygen Diffusion Strengthening of Ti6A14V Alloy in Glow Discharge Plasma[A].Hanburg:Wiley-VCH,2004:905-912.
[9] Ivanov G K;Koshkina N A;Kulik V P.Method of Surface Hardening of Titanium Alloys Operating under Friction Conditions[A].St Detersburg,Ruaaia:CRISM Prometey,1999:986-991.
[10] Zhang Z X;Dong H;Bell T.Deep Case Oxygen Hardening of Titanium Alloys and Simulation[A].Hanburg:Wiley-VCH,2004:921-928.
[11] Takumi Haruna;Daisuke Motoya;Yuichi Nakagawa.Development of Ti-Mg Alloys Resistant to an Aqueous Fluoride Solution[A].Kyoto,Japan,2007:1429-1432.
[12] Leyens C;Peters M;Kaysser W A.Oxidation Resistant Ti-AI-(Cr)Coatings for Titanium Alloys and Titanium Aluminides[A].St Petersburg,Ruaaia:CRISM Prometey,1999:866-875.
[13] Frohlich Maik;Ebach Andrea,Reinhold.hnprovement of the High Temperature Oxidation Resistance of T-TiAI by Means of Si-Based Coatings[A].Kyoto,Japan,2007:1233-1236.
[14] Nochovnaya N A;Shulov V A;Vinogradov M V.Erosion and Corrosion Resistant Coating for Refractoff Titanium Alloys[A].St Detersburg,Ruaaia:CRISM Prnmetey,1999:843-855.
[15] Dietmar Helm;Olag Roder.Recent Titanium Research and Development[A].Kyoto,Japan,2007:25-31.
[16] Zeiler E;Gogler T;Heinfich G.Diamond Coating-a New Approach for Wear Protection of Titanium Alloys[A].St Detersburg,Ruaaia:CRISM Prometey,1999:884-891.
[17] Wu Lingling;Brian C;Hollowaya D .Prasad Beesabathinab,Analysis of Diamond-Like Carbon and Ti/MoS2 Coatings on Ti- Al4V Substrates for Applicability to Turbine Engine Applica.tions[J].Surface and Coatings Technology,2000,130:207-217.
[18] Nochovnaya N;Shulov V;Paykin A.Technology Aspect of Intense Pulsed Electron Beam Application for Preperties Improvement and Repair of Gas Turibine Engine Blades from Titanium Alloys[A].ttanburg:Wiley-VCIl,2004
[19] Bonss S;Brenner B;Scheibe H J.Laser Gas Alloying of Titanium-Process Technology and Wear Test Results[A].Hanburg:Wiley-VCH,2004:1001-1008.
[20] Sun RL.;Guo LX.;Dong SL.;Yang DZ. .Laser cladding of Ti-6Al-4V alloy with TiC and TiC plus NiCrBSi powders[J].Surface & Coatings Technology,2001(2/3):307-312.
[21] Reis, DAP;Neto, CM;Silva, CRM;Barboza, MJR;Neto, FP .Effect of coating on the creep behavior of the Ti-6Al-4V alloy[J].Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing,2008(1/2):421-426.
[22] 王建民,郑治祥,汪景奇,刘君武,吴玉程,徐光青,吕瑶,汤文明.酸性电解液对Ti-6Al-4V合金微弧氧化的影响[J].材料热处理学报,2009(01):135-139.
[23] 金乾,薛文斌,李夕金,朱庆振,吴晓玲.钛表面阴极微弧沉积氧化铝涂层的组织结构及其性能研究[J].航空材料学报,2009(03):61-65.
[24] 李新梅,孙文磊,憨勇,刘炳.纯钛表面电解液微弧碳氮化制备碳氮化钛厚膜[J].金属学报,2008(09):1105-1110.
[25] 草道英武 .チタソ研究50年上[J].金属(日本),1999,69(05):457-459.
[26] 草道英武 .チタソ研究50年上[J].金属(日本),1999,69(06):557-558.
[27] 徐重.等离子表面冶金技术的现状与发展[J].中国工程科学,2002(02):36-41.
[28] 孙荣禄,郭立新,董尚利,杨德庄.钛及钛合金表面耐磨热处理[J].宇航材料工艺,1999(05):15-19.
[29] 陈飞;周海;张跃飞 et al.钛合金表面辉光加弧无氧渗碳工艺研究[J].北京石油化工学院学报,2006,12(02):1-5.
[30] 陈飞,周海,李伟,周正,潘俊德.钛合金表面Ti-Al合金扩散层的摩擦性能研究[J].摩擦学学报,2007(03):210-213.
[31] 李争显,杜继红,高广睿,徐重,周廉.用双层辉光等离子法在钛表面制备的Ti-Pd合金层性能研究[J].稀有金属材料与工程,2006(08):1239-1242.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%