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Dive into the research topics where Matias Jaskari is active.

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Featured researches published by Matias Jaskari.


Journal of The Mechanical Behavior of Biomedical Materials | 2016

Microstructural modification of pure Mg for improving mechanical and biocorrosion properties

D. Ahmadkhaniha; Antti Järvenpää; Matias Jaskari; M. Heydarzadeh Sohi; A. Zarei-Hanzaki; M. Fedel; F. Deflorian; L.P. Karjalainen

In this study, the effect of microstructural modification on mechanical properties and biocorrosion resistance of pure Mg was investigated for tailoring a load-bearing orthopedic biodegradable implant material. This was performed utilizing the friction stir processing (FSP) in 1-3 passes to refine the grain size. Microstructure was examined in an optical microscope and scanning electron microscope with an electron backscatter diffraction unit. X-ray diffraction method was used to identify the texture. Mechanical properties were measured by microhardness and tensile testing. Electrochemical impedance spectroscopy was applied to evaluate corrosion behavior. The results indicate that even applying a single pass of FSP refined the grain size significantly. Increasing the number of FSP passes further refined the structure, increased the mechanical strength and intensified the dominating basal texture. The best combination of mechanical properties and corrosion resistance were achieved after three FSP passes. In this case, the yield strength was about six times higher than that of the as-cast Mg and the corrosion resistance was also improved compared to that in the as-cast condition.


Key Engineering Materials | 2013

Enhancing Mechanical Properties and Formability of AISI 301LN Stainless Steel Sheet by Local Laser Heat Treatment

Antti Järvenpää; Matias Jaskari; Pentti Karjalainen; Mikko Hietala

This study demonstrates applying local laser heat treatment to produce ultrafine-grained austenite (UFGA) structures in an AISI 301LN type commercial austenitic steel. Pieces of 50% cold-rolled sheets containing more than 90% strain-induced martensite were heated locally by a laser beam to various peak temperatures to obtain different degrees of martensite reversion to austenite. Mechanical properties and formability of grain-refined and coarse-grained structures were measured by tensile and Erichsen cup tests. In addition to standard Erichsen cup test, additional interrupted tests were carried out, where cups were first stretched close to the critical strain. Drawn cups were then heated locally by a laser beam to revitalize the structure and thereby enhance the formability in the following cupping test until failure. Results showed that local laser heat treatment is suitable for the reversion treatment to refine the austenite grain size. Various structures were produced: completely reverted microstructures (T > 700 °C) with grain sizes 0.9 - 2 µm in addition to partially reverted structure (T < 700 °C) containing nano- and ultrafine-grained austenite (0.6 µm) with some martensite. The grain refinement by local annealing improved the strength properties. The Erichsen cup tests showed that the formability was equal in the completely reverted ultrafine-grained structures to that of the coarse-grained sheets. It was demonstrated that the local laser treatment restored formability of the drawn cups, allowing stretching to be continued. The second forming step after the laser-treatment provided an enhancement of 19 and 14% in the cup depths in coarse-grained and ultrafine-grained steels, respectively, even though the laser-treatment parameters were not optimized yet.


Journal of Materials Science | 2018

Effect of high-pressure torsion on microstructure, mechanical properties and corrosion resistance of cast pure Mg

Donya Ahmadkhaniha; Yi Huang; Matias Jaskari; Antti Järvenpää; Mahmoud Heydarzadeh Sohi; Caterina Zanella; L. Pentti Karjalainen; Terence G. Langdon

High-pressure torsion (HPT) processing was applied to cast pure magnesium, and the effects of the deformation on the microstructure, hardness, tensile properties and corrosion resistance were evaluated. The microstructures of the processed samples were examined by electron backscatter diffraction, and the mechanical properties were determined by Vickers hardness and tensile testing. The corrosion resistance was studied using electrochemical impedance spectroscopy in a 3.5% NaCl solution. The results show that HPT processing effectively refines the grain size of Mg from millimeters in the cast structure to a few micrometers after processing and also creates a basal texture on the surface. It was found that one or five turns of HPT produced no significant difference in the grain size of the processed Mg and the hardness was a maximum after one turn due to recovery in some grains. Measurements showed that the yield strength of the cast Mg increased by about seven times whereas the corrosion resistance was not significantly affected by the HPT processing.


Materials Science Forum | 2013

Optimization of Local Laser Heat Treatment Process Using a Simple FE-Model

Antti Järvenpää; T. Kiuru; Antti Määttä; Matias Jaskari; Kari Mäntyjärvi

Local laser heat treatment is an efficient method to manufacture tailored heat-treated steel strips. It can be applied to soften narrow zones of the strip in order to improve its formability on desired areas. However, the properties achieved are dependent on several process parameters. An objective is to develop a predictive model to optimize the heat treatment parameters instead of using experimental trials. In the present study, a finite element model was applied to predict the maximum temperature and heating and cooling rates, as well as the heat distribution along the heat treated area. To develop the model and to test its feasibility, experiments were performed, in which process parameters were varied to study their effects on temperature distribution in a 6 mm thick abrasion resistant steel grade. Scanning of a laser beam was used to optimize the width and depth of the heat-affected zone.In practice, local laser heat treatment process parameters have to be optimized with care for successful results. The most important task is to minimize the temperature gradient between the surfaces and to keep the peak temperatures close to the austenitizing temperature. The results indicate that a simple model can be used to predict the outcome of the heat treatment, so that finite element modeling can be adopted as a suitable tool for design of local heat treatments, allowing more advanced treatments and applications with complex geometries.


Key Engineering Materials | 2012

Influence of Predetermined Surface Defect to the Bendability of Ultra-High-Strength Steel

Antti Määttä; Antti Järvenpää; Matias Jaskari; Kari Mäntyjärvi; Jussi A. Karjalainen

The use of ultra-high-strength steels (UHS) has become more and more popular within last decade. Higher strength levels provide lighter and more robust steel structures, but UHS-steels are also more sensitive to surface defects (e.g. scratches). Practically this means that the critical crack size decreases when the strength increases. The aim of the study was to study if the formula of critical crack size is valid on forming processes of UHS-steels. Surface cracks with different depths were created by scratching the surface of the sheet by machining center. Effect of the scratch depth was determined by bending the specimens to 90 degrees. Bents were then visually compared and classified by the minimum achieved bending radius. Test materials used were direct quenched (DQ) bainitic-martensitic UHS steels (YS/TS 960/1000 and 1100/1250). Results from the bending tests were compared to the calculated values given by the formula of critical crack size.


International Journal of Fatigue | 2014

Effect of grain size on fatigue behavior of Type 301LN stainless steel

Antti Järvenpää; L. Pentti Karjalainen; Matias Jaskari


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2016

Influence of prior cold rolling reduction on microstructure and mechanical properties of a reversion annealed high-Mn austenitic steel

P. Behjati; A. Kermanpur; L.P. Karjalainen; Antti Järvenpää; Matias Jaskari; H. Samaei Baghbadorani; A. Najafizadeh; Atef Hamada


Materials Characterization | 2017

Austenite stability in reversion-treated structures of a 301LN steel under tensile loading

Antti Järvenpää; Matias Jaskari; Jiri Man; L. Pentti Karjalainen


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2017

Stability of grain-refined reversed structures in a 301LN austenitic stainless steel under cyclic loading

Antti Järvenpää; Matias Jaskari; Jiri Man; L. Pentti Karjalainen


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2015

The microstructural evolution of friction stir welded AA6082-T6 aluminum alloy during cyclic deformation

A.S. Hamada; Antti Järvenpää; M.M.Z. Ahmed; Matias Jaskari; Bradley P. Wynne; David Porter; L.P. Karjalainen

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