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中国有色金属学打 2016年5月 23 GRAHAM A H, YOUNGBLOOD J L Work strengthening by a deformation-induced phase transformation in"MP alloys [37] ISHMAKU A, HAN K. Deformation induced nanostructure and Metallurgical and Materials Transactions B, 1970, 1(2) texture in MP35N alloys. Journal of Materials Science, 2004, 39(16):5417-54 24] GRAHAM A H. Strengthening of"MP alloy" during ageing at 38] HAN K, XIN Y, ISHMAKU A Strain hardening by formation of elevated temperatures]. Transaction of the ASM, 1969, 62 nanoplateletsPJJ. Nanomaterials by Severe Plastic Deformation, 2004,28:95-1 25 SHAJI E M, KALIDINDI SR, DOHERTY R D, SEDMAKAS 39 RAGHAVAN M, BERKOWITZB J, KANE R D A transmission Plane strain fracture toughness of MP35N in aged and unaged conditions measured using modified CT specimens[J]. Materials MP35NU) Metallurgical and Materials Transactions A, 1980, Science and Engineering A, 2003, 340(1): 163-169. l1(1203-207 26 SHAJIE M, KALIDINDI S R, DOHERTY R D, SEDMAK AS. [40 RAGHAVAN M, BERKOWITZ B Strain induced Fracture properties of multiphase alloy MP35NU. Materials transformation in MP alloys] Scripta Metallurgica, 1980, 14(9) Science and Engineering A, 2003, 349(1): 313-317 27] TOPLOSKY VJ, HAN K Mechanical properties of cold-rolled [41 HAN K, ISHMAKU A, XIN Y, GARMES TANI H, TOPLOSKY and aged MP35n alloys for cryogenic magnet V J. Mechanical properties of MP35n as a reinforcement applications[C]/Transactions of the International Cryogenic material for pulsed magnets[]. IEEE Transactions on Applied Materials Conference-ICMC. USA: AlP Publishing, 2012 Superconductivity, 2002, 12(1): 1244-1247 125-132. 42] ASGARI S, EL-DANAF E, KALIDINDI S R, DOHERTYR D 28]WANG L, LI B, ZHANG H. Embrittlement phenomenon of Ag Strain hardening regimes and microstructural evolu ore MP35n cable as lead conductor in medical deviceJj large strain compression of low stacking fault energy FCC alloys Journal of the mechanical Behavior of Biomedical Materials that form deformation twins). Metallurgical and Materials 2013,18:213-218. Transactions A, 1997, 28(9): 1781-1795 [29] ASGARI S, EL-DANAF E, SHAJI E, KALIDINDI S R, [43] ASGARI S. Anomalous plastic behavior of fine-grained MP3 HERTY R D. The secondary hardening phenomenon alloy during room temperature tensile testing ]. Journal of strain-hardened MP35N alloy[]. Acta Materialia, 1998, 46(16): Materials Processing Technology, 2004, 155: 1905-1911 5795-5806 [44]马淑波,张匀,常昕,周敬.MP-159合金强化机制的 30 SORENSEN D, LI B Q, GERBERICH WW, MKHOYAN KA. 透射电子显微镜研究[材料工程,1990,4:35-3 Investigation of secondary hardening in MP35N wires[J MA Shu-bo, ZHANG Yun, CHANG Xin, ZHOU Jing.An Microscopy and Microanalysis, 2013, 19(S2): 1778-1779 Investigation of strengthening mechanism of MP-159 alloy by 31] SORENSEN D, LI B Q, GERBERICH WW, MKHOYANKA. TEMU]. Journal of Materials Engineering, 1990, 4: 35-3 Investigation of secondary hardening in Co-35Ni-20Cr-10Mo 45] LU Shi-qiang, SHANG Bao-zhong, LUo Zi-jian, WANG alloy using analytical scanning transmission electron Ren-hui, ZENG Fan-chang. Investigation on the cold microscopy[]. Acta Materialia, 2014, 63: 63-72 deformation strengthening mechanism in MP159 alloy] 32] PRASAD M, REITERER M W, KUMAR S Microstructure Metallurgical and Materials Transactions A, 2000, 31(1): 5-13 and mechanical behavior of an as-drawn mP3 5N alloy wire[[46]鲁世强,尚保忠,罗子健,曾凡昌,刘昱.钴基高温合金 Materials Science and Engineering A, 2014, 610: 326-337 MP159的性能、组织及应用[材料科学与工程,1998,16(3) 33 PRASAD M, REITERER M W, KUMAR KS. Microstructure 42-45 and mechanical behavior of annealed MP35n alloy wire) LU Shi-qiang, SHANG Bao-zhong, LUO Zi-jian, ZENG Materials Science and Engineering A, 2015, 636: 340-351 Fan-chang, LIU Yu. Properties, microstructure and application of 34] TAWANCY H M, ISHWAR VR, LEWIS B E On the FCC- obalt-base superalloy MP159[]. Materials Science HCP transformation in a cobalt-base superalloy( Haynes alloy Engineering, 1998, 16(3): 42- No. 25J]. Journal of Materials Science Letters, 1986, 5(3) [47] LU Shi-qiang, SHANG Bao-zhong, LUO Zi-jian, WANG 337-341. Ren-hui, ZENG Fan-chang. The effect of the thermal exposure 35] SINGH R P, DOHERTY R D Strengthening in MULTIPHASE microstructure of MP159 alloy]. Journal of Materials (MP35N)alloy: Part Il. elevated temperature tensile and creep Science,1999,34(22)54495456 deformation P]. Metallurgical Transactions A, 1992, 23(1): [48] LI B, STEIGAUF T. Crystallography texture and mechanical properties of MP35N wire[C]/ Proceedings of the Materials 36] ISHMAKU A, HAN K Characterization of cold-rolled and aged Medical devices Conference 2007. Californ MP35N alloys] Materials Characterization, 2001, 47(2)- USA: ASM International 2008: 120-1231052 中国有色金属学报 2016 年 5 月 [23] GRAHAM A H, YOUNGBLOOD J L. Work strengthening by a deformation-induced phase transformation in “MP alloys”[J]. Metallurgical and Materials Transactions B, 1970, 1(2): 423−430. [24] GRAHAM A H. Strengthening of “MP alloy” during ageing at elevated temperatures[J]. Transaction of the ASM, 1969, 62: 930−935. [25] SHAJI E M, KALIDINDI S R, DOHERTY R D, SEDMAK A S. Plane strain fracture toughness of MP35N in aged and unaged conditions measured using modified CT specimens[J]. Materials Science and Engineering A, 2003, 340(1): 163−169. [26] SHAJI E M, KALIDINDI S R, DOHERTY R D, SEDMAK A S. Fracture properties of multiphase alloy MP35N[J]. Materials Science and Engineering A, 2003, 349(1): 313−317. [27] TOPLOSKY V J, HAN K. Mechanical properties of cold-rolled and aged MP35N alloys for cryogenic magnet applications[C]//Transactions of the International Cryogenic Materials Conference-ICMC. USA: AIP Publishing, 2012: 125−132. [28] WANG L, LI B, ZHANG H. Embrittlement phenomenon of Ag core MP35N cable as lead conductor in medical device[J]. Journal of the Mechanical Behavior of Biomedical Materials, 2013, 18: 213−218. [29] ASGARI S, EL-DANAF E, SHAJI E, KALIDINDI S R, DOHERTY R D. The secondary hardening phenomenon in strain-hardened MP35N alloy[J]. Acta Materialia, 1998, 46(16): 5795−5806. [30] SORENSEN D, LI B Q, GERBERICH W W, MKHOYAN K A. Investigation of secondary hardening in MP35N wires[J]. Microscopy and Microanalysis, 2013, 19(S2): 1778−1779. [31] SORENSEN D, LI B Q, GERBERICH W W, MKHOYAN K A. Investigation of secondary hardening in Co-35Ni-20Cr-10Mo alloy using analytical scanning transmission electron microscopy[J]. Acta Materialia, 2014, 63: 63−72. [32] PRASAD M, REITERER M W, KUMAR K S. Microstructure and mechanical behavior of an as-drawn MP35N alloy wire[J]. Materials Science and Engineering A, 2014, 610: 326−337. [33] PRASAD M, REITERER M W, KUMAR K S. Microstructure and mechanical behavior of annealed MP35N alloy wire[J]. Materials Science and Engineering A, 2015, 636: 340−351. [34] TAWANCY H M, ISHWAR V R, LEWIS B E. On the FCC→ HCP transformation in a cobalt-base superalloy (Haynes alloy No. 25)[J]. Journal of Materials Science Letters, 1986, 5(3): 337−341. [35] SINGH R P, DOHERTY R D. Strengthening in MULTIPHASE (MP35N) alloy: Part II. elevated temperature tensile and creep deformation[J]. Metallurgical Transactions A, 1992, 23(1): 321−334. [36] ISHMAKU A, HAN K. Characterization of cold-rolled and aged MP35N alloys[J]. Materials Characterization, 2001, 47(2): 139−148. [37] ISHMAKU A, HAN K. Deformation induced nanostructure and texture in MP35N alloys[J]. Journal of Materials Science, 2004, 39(16): 5417−5420. [38] HAN K, XIN Y, ISHMAKU A. Strain hardening by formation of nanoplatelets[J]. Nanomaterials by Severe Plastic Deformation, 2004, 28: 95−100. [39] RAGHAVAN M, BERKOWITZ B J, KANE R D. A transmission electron microscopic investigation of phase transformations in MP35N[J]. Metallurgical and Materials Transactions A, 1980, 11(1): 203−207. [40] RAGHAVAN M, BERKOWITZ B J. Strain induced transformation in MP alloys[J]. Scripta Metallurgica, 1980, 14(9): 1009−1012. [41] HAN K, ISHMAKU A, XIN Y, GARMESTANI H, TOPLOSKY V J. Mechanical properties of MP35N as a reinforcement material for pulsed magnets[J]. IEEE Transactions on Applied Superconductivity, 2002, 12(1): 1244−1247. [42] ASGARI S, EL-DANAF E, KALIDINDI S R, DOHERTY R D. Strain hardening regimes and microstructural evolution during large strain compression of low stacking fault energy FCC alloys that form deformation twins[J]. Metallurgical and Materials Transactions A, 1997, 28(9): 1781−1795. [43] ASGARI S. Anomalous plastic behavior of fine-grained MP35N alloy during room temperature tensile testing[J]. Journal of Materials Processing Technology, 2004, 155: 1905−1911. [44] 马淑波, 张 匀, 常 昕, 周 敬. MP−159 合金强化机制的 透射电子显微镜研究[J]. 材料工程, 1990, 4: 35−37. MA Shu-bo, ZHANG Yun, CHANG Xin, ZHOU Jing. An Investigation of strengthening mechanism of MP-159 alloy by TEM[J]. Journal of Materials Engineering, 1990, 4: 35−37. [45] LU Shi-qiang, SHANG Bao-zhong, LUO Zi-jian, WANG Ren-hui, ZENG Fan-chang. Investigation on the cold deformation strengthening mechanism in MP159 alloy[J]. Metallurgical and Materials Transactions A, 2000, 31(1): 5−13. [46] 鲁世强, 尚保忠, 罗子健, 曾凡昌, 刘 昱. 钴基高温合金 MP159 的性能、组织及应用[J]. 材料科学与工程, 1998, 16(3): 42−45. LU Shi-qiang, SHANG Bao-zhong, LUO Zi-jian, ZENG Fan-chang, LIU Yu. Properties, microstructure and application of cobalt-base superalloy MP159[J]. Materials Science & Engineering, 1998, 16(3): 42−45. [47] LU Shi-qiang, SHANG Bao-zhong, LUO Zi-jian, WANG Ren-hui, ZENG Fan-chang. The effect of the thermal exposure on microstructure of MP159 alloy[J]. Journal of Materials Science, 1999, 34(22): 5449−5456. [48] LI B, STEIGAUF T. Crystallography texture and mechanical properties of MP35N wire[C]// Proceedings of the Materials & Processes for Medical Devices Conference 2007. California, USA: ASM International, 2008: 120−123
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