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http://hdl.handle.net/11452/30631
Başlık: | Determining tensile yield stresses from Small Punch tests: A numerical-based scheme |
Yazarlar: | Hahner, Peter Soyarslan, Celal Bargmann, Swantje Bursa Uludağ Üniversitesi/Mühendislik Fakültesi/Makina Mühendisliği Bölümü. Çakan, Betül Gülçimen 57209831238 |
Anahtar kelimeler: | Materials science Small punch test Yield stress determination Power law hardening Finite element method Mechanical-properties Fracture Specimen Strength Steels Elastoplasticity Finite element method Hardening Iron Iron compounds Elastic-plastic transition Finite element simulations Mechanical material properties Power-law Properties and microstructures Small punch test Strength coefficients Stress determination Yield stress |
Yayın Tarihi: | 24-Haz-2019 |
Yayıncı: | Elsevier Science |
Atıf: | Hahner, P. vd. (2019). ''Determining tensile yield stresses from Small Punch tests: A numerical-based scheme''. Materials & Desing, 182. |
Özet: | The Small Punch (SP) test serves the screening of mechanical material properties and their degradation in a virtually non-invasive way. It requires robust frameworks for the derivation of mechanical properties and microstructure-mechanical property correlation. The tensile yield stress sigma(y) is commonly associated with an elastic-plastic transition force F-e via sigma(y) = alpha F-e/h(2) with h denoting the SP disc thickness and a dimensionless coefficient alpha considered constant. Here it is shown that alpha cannot be taken as a constant. Instead a new self-consistent data reduction scheme is proposed for the determination of sigma(y) which is based on the curvature of the force-displacement curve rather than a single F-e force level. The scheme derives from finite element simulations of a wide range of strength coefficients C and hardening exponents n of power law flow sigma = C epsilon(n). To a good approximation the scheme depends only on the hardening exponent n, which depends on the curvature, whereas C and the elastic modulus barely matter. The method is validated by comparing the yield stress predictions with the actually implemented yield stresses in the simulations, using various types of hardening rules, as well as experimental data. The uncertainty of yield stress determination by SP tests is thereby largely reduced as compared to the traditional scheme. |
URI: | https://doi.org/10.1016/j.matdes.2019.107974 https://www.sciencedirect.com/science/article/pii/S0264127519304125 http://hdl.handle.net/11452/30631 |
ISSN: | 0264-1275 1873-4197 |
Koleksiyonlarda Görünür: | Scopus Web of Science |
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