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Mechanism of Continuous Recrystallization under Superplasticity

Research Project

Project/Area Number 12650710
Research Category

Grant-in-Aid for Scientific Research (C)

Allocation TypeSingle-year Grants
Section一般
Research Field Material processing/treatments
Research InstitutionThe University of Electro-Communications

Principal Investigator

YANG Xuyue  The University of Electro-Communications, Faculty of Electro-Communications, Research Associate, 電気通信学部, 助手 (20293128)

Co-Investigator(Kenkyū-buntansha) MIURA Hiromi  The University of Electro-Communications, Faculty of Electro-Communications, Associate Professor, 電気通信学部, 助教授 (30219589)
SAKAI Taku  The University of Electro-Communications, Faculty of Electro-Communications, Professor, 電気通信学部, 教授 (40017364)
Project Period (FY) 2000 – 2001
Project Status Completed (Fiscal Year 2001)
Budget Amount *help
¥3,500,000 (Direct Cost: ¥3,500,000)
Fiscal Year 2001: ¥900,000 (Direct Cost: ¥900,000)
Fiscal Year 2000: ¥2,600,000 (Direct Cost: ¥2,600,000)
Keywordscontinuous dynamic recrystallization / superplasticity / texture / new grain evolution / kink band / misorientation / grain boundary sliding / aluminum and magnesium alloys / 動的連続再結晶 / 結晶粒微細化 / SUPRAL100、7075アルミニウム合金
Research Abstract

The research falls roughly into the following two heads.
( 1 ) Continuous Recrystallization in a Superplastic Aluminum Alloy
The misorientations of subgrain boundaries evolved in the pancaked grains increase accompanied by a randomization of the initial texture, followed by a new grain development with high angle boundaries (HABs) at high strains. Increasing in the pre cold-rolled reduction results in a decrease in the flow stress and a rapid increase in total elongation. Grain boundary sliding (GBS) frequently takes place just after yielding even in the layered HABs parallel to the tensile axis. With further straining, GBS can bring about the rotation of subgrains near the HABs, leading to increase inMhe subgrain misorientation. It is concluded that nonrecrystallized and pancaked grain structure introduced by cold rolling is an important prerequisite not only for the appearance of superplasticity, but also for the dynamic evolution of new fine grains.
(2) Dynamic Evolution of New Grains … More during Hot Deformation of Magnesium Alloy AZ31
The flow curve shows a rapid hardening and a stress peak at relatively low strain (ε_p=0. 12), followed by a strain softening and then a steady state flow in high strain. Fine grains are evolved at original grain boundaries corrugated at around ε_p and developed rapidly during strain softening, finally leading to a roughly full evolution of equiaxial fine grains. On the other hand, kink bands are evolved at grain boundaries corrugated and also frequently in grain interiors even at around %. The misorientation of the boundaries of kink band increases rapidly during strain softening and approach a saturation value of around 43゜ in high strain. The average size of the regions fragmented by kink band is almost the same as that of new grains evolved in high strain, which scarcely changes during deformation. It is concluded therefore that new grain evolution can be controlled by a deformation-induced continuous reaction, i.e. continuous dynamic recrystallization (DRX), although many characteristics of new grain evolution process and its relation to flow behaviors are apparently similar to those in conventional, i.e. discontinuous, DRX. Less

Report

(3 results)
  • 2001 Annual Research Report   Final Research Report Summary
  • 2000 Annual Research Report
  • Research Products

    (10 results)

All Other

All Publications (10 results)

  • [Publications] T.Sakai, X.Yang, H.Miura: "Continuous Recrystallization under Superplasticity of 7075 Aluminum Alloy"Light Metals 2000 (Metaux Legers), eds. J.Kazadi and J.Masounave, TMS-CIM (Montreal). 407-418 (2000)

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2001 Final Research Report Summary
  • [Publications] X.Yang, T.Sakai, H.Miura: "Fine Grained Structure Evolution under Superplastic Deformation of Nonrecrystallized 7075 Aluminum Alloy"THERMEC2000, CDROM, Section Al, Vol117/3 Special Issue : Journal of Materials Processing Technology. 117/3. (2001)

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2001 Final Research Report Summary
  • [Publications] 楊続躍, 三浦博己, 酒井拓: "AZ31マグネシウム合金の高温変形と微細粒組織の生成"軽金属. 52(印刷中). (2002)

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2001 Final Research Report Summary
  • [Publications] T. Sakai, X. Yang and H. Miura: "Continuous Recrystallization under Superplasticity of 7075 Aluminum Alloy"Light Metals 2000 (Metaux Legers), eds. J. Kazadi and J. Masounave, TMS-CIM (Montreal). 407-418 (2000)

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2001 Final Research Report Summary
  • [Publications] X. Yang, T. Sakai and H. Miura: "Fine Grained Structure Evolution under Superplastic Deformation of Nonrecrystallized 7075 Aluminum Alloy"Journal of Materials Processing Technology, Special Issue THERMEC2000. CDROM,Sectkon Al,Vol117/37. (2001)

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2001 Final Research Report Summary
  • [Publications] X. Yang, T. Sakai and H. Miura: "Dynamic Evolution of New Grains during Hot Deformation of Magnesium Alloy AZ31"Journal of Japan Institute of Light Metals. Vol.52 (in press). (2002)

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2001 Final Research Report Summary
  • [Publications] K.Sakai, X.Yang, H.Miura: "Continuous Recrystallization under Superplasticity of 7075 Aluminum Alloy"Light Metals2000(Metaux Legers), eds. J.Kazadi and J. Masounave, TMS-CIM(Montreal). 407-418 (2000)

    • Related Report
      2001 Annual Research Report
  • [Publications] X.Yang, K.Sakai, H.Miura: "Fine Grained Structure Evolution under Superplastic Deformayion of Nonrecrystallized 7075 Aluminum Alloy"THERMEC2000, CDROM, Section Al, Vo1117/3 Special Issue : Journal of Materials Processing Technology. 117-3. (2001)

    • Related Report
      2001 Annual Research Report
  • [Publications] 楊 続躍, 三浦 博己, 酒井 拓: "AZ31マグネシウム合金の高温変形と微細粒組織の生成"軽金属. 52(印刷中). (2002)

    • Related Report
      2001 Annual Research Report
  • [Publications] X.Yang,T.Sakai and H.Miura: "Dynamic Evolution of Fine Grained Structure and Superplasticity of 7075 Aluminum Alloy"THERMEC 2000. 142-142 (2000)

    • Related Report
      2000 Annual Research Report

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Published: 2000-04-01   Modified: 2016-04-21  

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