Abstract
AbstractDifferent loading protocols have been developed in the past to investigate the creep properties of materials using instrumented indentation testing technique. Recently, a new indentation creep method was presented, in which the contact pressure is kept constant during the creep test segment, similar to the constant stress applied in a uniaxial creep experiment. In this study, the results of constant contact pressure creep tests are compared to uniaxial and constant load hold indentation creep experiments on ultrafine grained Cu and CuAl5. The constant contact pressure method yields similar stress exponents as the uniaxial tests, down to indentation strain rates of 10–6 s−1, whereas the constant load hold method results mainly in a relaxation of the material at decreasing applied pressures. Furthermore, a pronounced change in the power law exponent at large stress reductions is found for both uniaxial and constant contact pressure tests, indicating a change in deformation mechanism of ultrafine grained metals.
Graphical abstract
Funder
deutsche forschungsgemeinschaft
open access publication fund of the technical university of darmstadt
Technische Universität Darmstadt
Publisher
Springer Science and Business Media LLC
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science
Reference62 articles.
1. DIN, DIN EN ISO 204:2018 Metallic Material—Uniaxial Creep Testing in Tension—Method of Test (2018).
2. ASTM, E139-11 Standard Test Methods for Conducting Creep, Creep-Rupture, and Stress-Rupture Tests of Metallic Materials (2018)
3. DIN, Part 005: Uninterrupted creep and stress-rupture testing, in DIN EN 2002-005 Aerospace Series—Test Methods for Metallic Materials (2007)
4. S.J. Bull, Nanoindentation of coatings. J. Phys. D 38(24), R393–R413 (2005)
5. K. Durst, M. Göken, Micromechanical characterisation of the influence of rhenium on the mechanical properties in nickel-base superalloys. Mater. Sci. Eng. A 387–389, 312–316 (2004)
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