Functional gradation of low alloy steel by differentially controlled phase transformation

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

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  • Universität Paderborn
  • Universität Kassel
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Details

OriginalspracheEnglisch
Seiten (von - bis)105-110
Seitenumfang6
FachzeitschriftSteel research international
Jahrgang79
Ausgabenummer2
PublikationsstatusVeröffentlicht - Feb. 2008
Extern publiziertJa

Abstract

In the present study, the phase transformation behaviour of 51CrV4 steel was investigated both in an actual flange forming process and under idealized isothermal bainitic transformation conditions. The results demonstrated that superimposed external stresses have only a minor effect on the kinetics of the phase transformation, whereas strains resulting from transformation plasticity were significant. Transmission electron microscopy revealed a preferential alignment of the bainite with respect to the external loading direction. This selection of favourably oriented variants in turn causes macroscopic strains. Understanding and minimizing these strains are a key factor in designing functionally graded components with minimum distortion.

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Functional gradation of low alloy steel by differentially controlled phase transformation. / Maier, Hans J.; Tschumak, Sergej; Weidi, Ursula et al.
in: Steel research international, Jahrgang 79, Nr. 2, 02.2008, S. 105-110.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Maier HJ, Tschumak S, Weidi U, Steinhoff K. Functional gradation of low alloy steel by differentially controlled phase transformation. Steel research international. 2008 Feb;79(2):105-110. doi: 10.2374/SRI07SP109-79-2008-105-110
Maier, Hans J. ; Tschumak, Sergej ; Weidi, Ursula et al. / Functional gradation of low alloy steel by differentially controlled phase transformation. in: Steel research international. 2008 ; Jahrgang 79, Nr. 2. S. 105-110.
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AU - Tschumak, Sergej

AU - Weidi, Ursula

AU - Steinhoff, Kurt

PY - 2008/2

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KW - Differential thermo-mechanical treatment

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KW - Microstructure

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KW - Tailored properties

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