The study brings original data on the effect of linear velocity during melt-spinning process on magneto-mechanical properties of Heusler Ni-Mn-Ga-based melt-spun ribbons. The research revealed that different linear velocity of the copper wheel had a significant impact on the ribbon's geometry resulting in distinct changes in magneto-mechanical properties. X-ray diffraction measurements were used to examine the phase composition, confirming the presence of L21 austenite phase. To assess the mechanical properties of the Ni-Mn-Ga-based melt-spun ribbons, cyclic bending experiments were conducted at a strain rate of 0.1 mm/s. Additionally, experiments involving magnetic field-induced bending were carried out in an external magnetic field ranging from 0 to 0.28 T. Finally, it was observed that there was a proportional relationship between the linear velocity of the copper wheel and magnetic field-induced ribbons deflection. Conversely, the dependence between linear velocity and mechanical bending load was found to be inversely proportional. Electron backscattered diffraction measurements revealed that melt-spun ribbons produced at high linear velocity of 18.5 m/s exhibited fine-grained microstructure in contrast to low linear velocity of 3 m/s. Based on these results it seems feasible to optimize the functional properties of the studied ribbons by varying the linear velocity of the melt-spinning process.
机构:
State Key Laboratory of Solidification Processing,Northwestern Polytechnical UniversityState Key Laboratory of Solidification Processing,Northwestern Polytechnical University
Yan Feng
Chen Fang
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State Key Laboratory of Solidification Processing,Northwestern Polytechnical UniversityState Key Laboratory of Solidification Processing,Northwestern Polytechnical University
Chen Fang
Yan-Ling Ai
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State Key Laboratory of Solidification Processing,Northwestern Polytechnical UniversityState Key Laboratory of Solidification Processing,Northwestern Polytechnical University
Yan-Ling Ai
Hai-Bo Wang
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College of Physics and Electronic Engineering,Taizhou UniversityState Key Laboratory of Solidification Processing,Northwestern Polytechnical University
Hai-Bo Wang
Li Gao
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College of Engineering Science and Technology,Shanghai Ocean UniversityState Key Laboratory of Solidification Processing,Northwestern Polytechnical University
Li Gao
Hong Chen
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State Key Laboratory of Solidification Processing,Northwestern Polytechnical UniversityState Key Laboratory of Solidification Processing,Northwestern Polytechnical University
Hong Chen
Xiao-Hai Bian
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State Key Laboratory of Solidification Processing,Northwestern Polytechnical UniversityState Key Laboratory of Solidification Processing,Northwestern Polytechnical University
机构:
Lappeenranta Lahti Univ Technol LUT, Mat Phys Lab, Lappeenranta 53850, FinlandLappeenranta Lahti Univ Technol LUT, Mat Phys Lab, Lappeenranta 53850, Finland
Namvari, Mahsa
Rosero-Romo, James. J.
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Univ Basque Country, BCMat, Basque Ctr Mat Applicat & Nanostruct, Sci Pk, Leioa 48940, SpainLappeenranta Lahti Univ Technol LUT, Mat Phys Lab, Lappeenranta 53850, Finland
Rosero-Romo, James. J.
Laitinen, Ville
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Lappeenranta Lahti Univ Technol LUT, Mat Phys Lab, Lappeenranta 53850, FinlandLappeenranta Lahti Univ Technol LUT, Mat Phys Lab, Lappeenranta 53850, Finland
Laitinen, Ville
Kumthekar, Aditya
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Lappeenranta Lahti Univ Technol LUT, Mat Phys Lab, Lappeenranta 53850, FinlandLappeenranta Lahti Univ Technol LUT, Mat Phys Lab, Lappeenranta 53850, Finland
Kumthekar, Aditya
Salazar, Daniel
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Univ Basque Country, BCMat, Basque Ctr Mat Applicat & Nanostruct, Sci Pk, Leioa 48940, SpainLappeenranta Lahti Univ Technol LUT, Mat Phys Lab, Lappeenranta 53850, Finland
Salazar, Daniel
Ullakko, Kari
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Lappeenranta Lahti Univ Technol LUT, Mat Phys Lab, Lappeenranta 53850, FinlandLappeenranta Lahti Univ Technol LUT, Mat Phys Lab, Lappeenranta 53850, Finland