Effect of Thermomechanical Treatment on Structure and Functional Fatigue Characteristics of Biodegradable Fe-30Mn-5Si (wt %) Shape Memory Alloy.
Sergey ProkoshkinYury PustovYulia ZhukovaPulat KadirovMaria KaravaevaAlexey Sergeevich ProsviryakovSergey DubinskiyPublished in: Materials (Basel, Switzerland) (2021)
The Fe-Mn-Si shape memory alloys are considered promising materials for the biodegradable bone implant application since their functional properties can be optimized to combine bioresorbability with biomechanical and biochemical compatibility with bone tissue. The present study focuses on the fatigue and corrosion fatigue behavior of the thermomechanically treated Fe-30Mn-5Si (wt %) alloy compared to the conventionally quenched alloy because this important functionality aspect has not been previously studied. Hot-rolled and water-cooled, cold-rolled and annealed, and conventionally quenched alloy samples were characterized by X-ray diffraction, transmission electron microscopy, tensile fatigue testing in air atmosphere, and bending corrosion fatigue testing in Hanks' solution. It is shown that hot rolling at 800 °C results in the longest fatigue life of the alloy both in air and in Hanks' solution. This advantage results from the formation of a dynamically recrystallized γ-phase grain structure with a well-developed dislocation substructure. Another important finding is the experimental verification of Young's modulus anomalous temperature dependence for the studied alloy system, its minimum at a human body temperature, and corresponding improvement of the biomechanical compatibility. The idea was realized by lowering Ms temperature down to the body temperature after hot rolling at 800 °C.
Keyphrases
- sleep quality
- room temperature
- electron microscopy
- metal organic framework
- drug delivery
- endothelial cells
- working memory
- multiple sclerosis
- bone mineral density
- soft tissue
- ms ms
- magnetic resonance imaging
- transition metal
- aqueous solution
- middle aged
- solid state
- replacement therapy
- dual energy
- pluripotent stem cells
- crystal structure
- visible light
- contrast enhanced