Metallic glass core utilization as the magnetoelastic torque sensor

Authors

DOI:

https://doi.org/10.15587/1729-4061.2015.50153

Keywords:

torque sensors, amorphous magnetite, metallic glass

Abstract

The possibility of metallic glass core utilization as magnetoelastic torque sensors was presented. Design solution of the torque transfer to the ring metallic glass cores was proposed. Magnetoelastic characteristics B(H)T,Ms (take into account the dependence of the magnetic induction B on the magnetic field strength H at a constant torque Ms and temperature T), as well as characteristics B (MS)H,T, which describe the dependence of the magnetic induction B on the torque Ms at constant magnetic field strengths H and temperature T were investigated.

Studies were carried out using metallic glass Fe78Si13B9. The results showed significant magnetic parameters of cores, such as the magnetic induction B, the coercive force Hc and magnetic permeability ma depending on the given moment Ms. Studies have shown the possibility of metallic glass core utilization to build magnetoelastic torque sensors.

Author Biographies

Яцек Люцианович Салах, Warsaw University of Technology, 8 Boboli str., Warsaw, Poland, 02-525

PhD, Associate Professor

Institute of Metrology and Biomedical Engineering, 

Роман Юзевич Шевчик, Warsaw University of Technology, 8 Boboli str., Warsaw, Poland, 02-525

Doctor of engineering, Professor

Institute of Metrology and Biomedical Engineering, 

Михал Станиславович Новицки, Warsaw University of Technology, 8 Boboli str., Warsaw, Poland, 02-525

Graduate student

Institute of Metrology and Biomedical Engineering, 

Игорь Вацлавович Коробийчук, Industrial Research Institute for Automation and Measurements PIAP, 202 Jerozolimskie str., Warsaw, Poland, 02-486

PhD, Associate Professor 

References

  1. Lachowicz, H. (1983). Magnetyki amorficzne. Metody wytwarzania, właściwości, zastosowanie techniczne. Materiały I Krajowego Seminarium na temat Magnetycznych Materiałów Amorficznych, Instytut Fizyki PAN, Warszawa.
  2. O’Handley, R. (2000). Modern magnetic materials – princiles and applications. John Wiley & sons, New York, 768.
  3. Bieńkowski, A., Szewczyk, R. (2002). Magnetoelastic Villari Effect in Nanocrystalline Fe73.5Nb3Cu1Si13.5B9 Alloy. Physica Status Solidi A, 189 (3), 821–824. doi: 10.1002/1521-396x(200202)189:3<821::aid-pssa821>3.0.co;2-n
  4. Huang, R., Zhang, L., Chen, C., Wu, C., Yan, L. (2015). Theoretical exploration on the magnetic properties of ferromagnetic metallic glass: An Ising model on random recursive lattice. The European Physical Journal Plus, 130 (7), 127. doi: 10.1140/epjp/i2015-15127-0
  5. Hentschel, H. G. E., Iliyn, V., Procaccia, I., Gupta, B. S. (2014). Barkhausen noise in metallic glasses with strong local anisotropy: Model and theory. Journal of Statistical Mechanics: Theory and Experiment, 2014 (8), P08020. doi: 10.1088/1742-5468/2014/08/p08020
  6. Gutiérrez, J., Muto, V., Squire, P. T. (2001). Induced anisotropy and magnetoelastic properties in Fe-rich metallic glasses. Journal of Non-Crystalline Solids, 287 (1-3), 417–420. doi: 10.1016/s0022-3093(01)00599-3
  7. Ferenc, J. Kowalczyk, M. Erenc-Sȩdziak, T. Cieålak, G. Kulik, T. (2013). Mechanical testing of iron based bulk metallic glasses and their suitability for force sensors. EPJ Web of Conferences, 40, 16001. doi: 10.1051/epjconf/20134016001
  8. Ferenc, J. Kowalczyk, M. Cies̈lak, G. Kulik, T. (2015). Magnetostrictive iron-based bulk metallic glasses for force sensors. IEEE Transactions on Magnetics, 50 (4), 1–3. doi: 10.1109/tmag.2013.2287240
  9. Chiriac, H. Marinescu, C. S., Óvari, T. A., Neagu M. (1999). Sensor applications of amorphous glass-covered wires. Sensors and Actuators A: Physical, 76 (1-3), 208–212. doi: 10.1016/s0924-4247(99)00032-1
  10. Hristoforu, E. (2002). Amorphous magnetostrictive wieres used in delay lines for sensing applications. Journal of magnetism and magnetic materials, 249 (1-2), 387–392. doi: 10.1016/s0304-8853(02)00563-2
  11. Bydzowski, J., Kraus, L., Svec, P., Pasquale, M., Kollar, M. (2004). Strain sensors based on stress-annealed Co69Fe2Cr7Si8B14 amorphous ribbons. Sensors and Actuators A: Physical, 110 (1-3), 82–86. doi: 10.1016/j.sna.2003.09.042

Published

2015-10-24

How to Cite

Салах, Я. Л., Шевчик, Р. Ю., Новицки, М. С., & Коробийчук, И. В. (2015). Metallic glass core utilization as the magnetoelastic torque sensor. Eastern-European Journal of Enterprise Technologies, 5(5(77), 4–7. https://doi.org/10.15587/1729-4061.2015.50153