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Mechanism based flow stress model for Alloy 625 and Alloy 718

Malmelöv, Andreas (author)
Luleå University of Technology,Luleå tekniska universitet,Material- och solidmekanik,Division of Mechanics of Solid Materials, Luleå University of Technology, SE-971 87 Luleå, Sweden
Fisk, Martin, 1981- (author)
Malmö University,Lund University,Lunds universitet,Malmö universitet,Institutionen för materialvetenskap och tillämpad matematik (MTM),Department of Materials Science and Applied Mathematics, Malmö University, SE-205 06 Malmö, Sweden. Division of Solid Mechanics, Lund University, P.O. Box 118, SE-221 00 Lund, Sweden,Hållfasthetslära,Institutionen för byggvetenskaper,Institutioner vid LTH,Lunds Tekniska Högskola,Solid Mechanics,Department of Construction Sciences,Departments at LTH,Faculty of Engineering, LTH
Lundbäck, Andreas (author)
Luleå University of Technology,Luleå tekniska universitet,Material- och solidmekanik,Division of Mechanics of Solid Materials, Luleå University of Technology, SE-971 87 Luleå, Sweden
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Lindgren, Lars-Erik (author)
Luleå University of Technology,Luleå tekniska universitet,Material- och solidmekanik,Division of Mechanics of Solid Materials, Luleå University of Technology, SE-971 87 Luleå, Sweden
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 (creator_code:org_t)
2020-12-09
2020
English.
In: Materials. - : MDPI. - 1996-1944. ; 13:24
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • To predict the final geometry in thermo-mechanical processes, the use of modeling tools is of great importance. One important part of the modeling process is to describe the response correctly. A previously published mechanism-based flow stress model has been further developed and adapted for the nickel-based superalloys, alloy 625, and alloy 718. The updates include the implementation of a solid solution strengthening model and a model for high temperature plasticity. This type of material model is appropriate in simulations of manufacturing processes where the material undergoes large variations in strain rates and temperatures. The model also inherently captures stress relaxation. The flow stress model has been calibrated using compression strain rate data ranging from 0.01 to 1 s−1 with a temperature span from room temperature up to near the melting temperature. Deformation mechanism maps are also constructed which shows when the different mechanisms are dominating. After the model has been calibrated, it is validated using stress relaxation tests. From the parameter optimization, it is seen that many of the parameters are very similar for alloy 625 and alloy 718, although it is two different materials. The modeled and measured stress relaxation are in good agreement.

Subject headings

TEKNIK OCH TEKNOLOGIER  -- Maskinteknik -- Teknisk mekanik (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Mechanical Engineering -- Applied Mechanics (hsv//eng)
TEKNIK OCH TEKNOLOGIER  -- Materialteknik -- Metallurgi och metalliska material (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Materials Engineering -- Metallurgy and Metallic Materials (hsv//eng)

Keyword

material model
flow stress model
dislocation density
Inconel
stress relaxation
Hållfasthetslära
Solid Mechanics
Dislocation density
Flow stress model
Inconel
Material model
Stress relaxation

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ref (subject category)
art (subject category)

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