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两种铁基形状记忆合金抗空蚀性能比较 被引量:3

A Comparison of the Cavitation Erosion Resistance of Two Fe-Based Shape Memory Alloys
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摘要 对Fe-26Mn-6Si-7Cr-1Cu和Fe-20Mn-6Si-7Cr-1Cu两种Fe基形状记忆合金进行了超声波振动空蚀试验,结果表明,两种合金都具有优良的抗空蚀性能,比较而言,Fe-26Mn-6Si-7Cr-1Cu合金的抗空蚀性能优于Fe-20Mn-6Si-7Cr-1Cu合金。在局部载荷作用下可吸收较多弹性变形能及在空蚀过程中有较高应变诱发马氏体相变能是前者抗空蚀性能优于后者的主要原因。 Cavitation erosions of Fe-26Mn-6Si-7Cr-1Cu and Fe-20Mn-6Si-7Cr-1Cu shape memory alloys were investigated by using an ultrasonic vibratory apparatus. It is showed that both alloys have good cavitation erosion resistance. Fe-26Mn-6Si-7Cr-1Cu alloy is more resistant to cavitation erosion than Fe-20Mn-6Si-7Cr-1Cu alloy, which is mainly attributed to the higher strain-induced martensitic transformation energy and elastic deformation energy under a localized load.
出处 《稀有金属材料与工程》 SCIE EI CAS CSCD 北大核心 2004年第8期852-854,共3页 Rare Metal Materials and Engineering
基金 国家自然科学基金重点项目(59831030) 国家重点基础研究专项经费资助项目(G19990650)
关键词 空蚀 相变能 弹性变形能 铁基形状记忆合金 cavitation erosion phase transformation energy elastic deformation energy Fe based shape memory alloy
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参考文献13

  • 1LiShizhuo(李诗卓) DongXianglin(董祥林).Erosion-Wear and Fretting of Materials(材料的冲蚀磨与微动磨损)[M].Beijing:Mechanical Industry Press,1987..
  • 2Li D Y.Wear[J],1998,221(2):116~123
  • 3Liang Y N,Li S Z,Jin Y B et al.Wear[J],1996,198(1~2):236~241
  • 4Richman R H,Rao A S,Kung D.Wear[J],1995,181~183(1):80~85
  • 5Richman R H,Hodgson D E,Rao A S.Wear[J],1992,157(2):401~407
  • 6Wu S K,Lin H C,Yeh C H.Wear[J],2000,244(1~2):85~93
  • 7LongNidong(龙霓东) WangZaiyou(王再友) ZhuJinhua(朱金华).Mechanical Engineering Materials(机械工程材料) ,2003,27(4):7-9.
  • 8Olson G B,Cohen M.Metallurgical & Materials Trans[J],1976,7A(12):1 897~1 904
  • 9Olson G B,Cohen M.Metallurgical & Materials Trans[J],1976,7A(12):1 915~1 923
  • 10Li Chenglao(李成劳).Behavior of γ<=>ε Martensite Transfo- rmation and Shape Memory Effect in Low Stacking Fault Energy Fe-Mn-Si-Cr-Ni System Alloys[D].Xi'an:Xi'an Jiaotong University,1998

二级参考文献10

  • 1[3]LI D Y. A new type of wear-resistant material: pseudo-elastic TiNi alloy[J]. Wear, 1998, 221(2): 116-123.
  • 2[4]LIANG Y N, LI S Z, JIN Y B, et al. Wear behavior of a TiNi alloy[J]. Wear, 1996, 198(1-2): 236-241.
  • 3[5]Richman R H, Rao A S, Kung D. Cavitation erosion of NiTi explosively welded to steel[J]. Wear, 1995, 181-183(1): 80-85.
  • 4[6]Wu S K, Lin H C, Yeh C H. A comparison of the cavitation erosion resistance of TiNi alloys, SUS304 stainless steel and Ni-based self-fluxing alloy[J]. Wear, 2000, 244(1-2): 85-93.
  • 5[7]CHENG F T, SHI P, MAN H C. Correlation of cavitation erosion resistance with indentation-derived properties for a NiTi alloy[J]. Scripta Materialia, 2001, 45(9): 1083-1089.
  • 6[8]LIU R, LI D Y. Indentation behaviour and wear resistance of pseudoelastic Ti-Ni alloy[J]. Materials Science and Technology, 2000, 16(3): 328-332.
  • 7[9]Howard R L, Ball A. Mechanisms of cavitation erosion of TiAl-based titanium aluminide intermetallic alloys[J]. Acta Mater, 44(8): 3157-3168.
  • 8[10]Howard R L, Ball A. The solid particle and cavitation erosion of titanium aluminide intermetallic alloys[J]. Wear, 1995, 186-187(1): 123-128.
  • 9[12]Vyas B, Preece C M. Stress produced in a solid by cavitation[J]. J Appl Phys, 1976, 47(12): 5133-5138.
  • 10[13]Momma T, Lichtarowicz A. A study of pressures and erosion produced by collapsing cavitation[J]. Wear, 1995, 186-187(2): 425-436.

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