Have a personal or library account? Click to login
Pallet Motion on a Magnetic Brake Roller Cover
Open Access
|Feb 2022

References

  1. 1. Derhami S, Smith JS, Gue KR. Optimising space utilisation in block stacking warehouses. Int J Of Prod Res. 2017; 55(21):6436-6452.10.1080/00207543.2016.1154216
  2. 2. Ghalehkhondabi I. Masel DT. Storage allocation in a warehouse based on the forklifts fleet availability. Journal Of Algorithms & Computational Technology. 2018; 12(2):127-135.10.1177/1748301818761130
  3. 3. Heragu SS, Cai X, Krishnamurthy A, Malmborg CJ. Analytical models for analysis of automated warehouse material handling systems. Int J Of Prod Res. 2011; 49(22);6833-6861.10.1080/00207543.2010.518994
  4. 4. Sulirova I, Zavodska L, Rakyta M, Pelantova V. State-of-the-art approaches to material transportation handling and warehousing. 12th International scientific conference of young scientists on sustainable modern and safe transport. Procedia Engineering. 2017; 192:857-862.10.1016/j.proeng.2017.06.148
  5. 5. Boywitz D, Boysen N. Robust storage assignment in stack- and queue-based storage systems. Computers & Operations Research. 2018; 100:189-200.10.1016/j.cor.2018.07.014
  6. 6. Accorsi R, Baruffaldi G, Manzini R. Design and manage deep lane storage system layout. An iterative decision-support model. Int J Adv Manuf Technol. 2017; 92(1-4):57-67.10.1007/s00170-016-9962-9
  7. 7. Eo J, Sonico J, Su A, Wang W, Zhou C, Zhu Y, Wu S, Chokshi T. Structured comparison of pallet racks and gravity flow racks. IIE Annual Conference and Expo. 2015; 1971-1980.
  8. 8. Wu S, Wu Ya, Wang Ya. A structured comparison study on storage racks system. Journal of Residuals Science & Technology. 2016; 13(8).
  9. 9. Vujanac R, Miloradovic N, Vulovic S. Dynamic storage systems. ANNALS of Faculty Engineering Hunedoara – International Journal of Engineering. 2016; XIV:79-82.
  10. 10. Safronov E, Nosko A. A Method to Determine Allowable Speed for a Unit Load in a Pallet Flow Rack. Acta Mechanica et Automatica 2019; 13(2):80-85.10.2478/ama-2019-0011
  11. 11. Safronov E, Sharifullin I, Nosko A. Ustroystva bezopasnoy ekspluatatsii gravitatsionnykh rolikovykh konveyyerov palletnogo tipa: Monografiya [Devices for safe operation of pallet type gravity roller conveyors: Monograph] Universitetskaya kniga Moscow (in Russian). 2018.
  12. 12. Kamenskaya NI, Sein VA, Zvereva MI. A Study of the Causes of Failure of Permanent Magnets from Cast Hard Magnetic Alloys Metal. Science and Heat Treatment. 2017; 59:232-236.10.1007/s11041-017-0134-9
  13. 13. Sharifullin I, Nosko A, Safronov E. Matematicheskaya model’ protsessa dvizheniya pallety po tormoznomu roliku magnitnogo tipa [Mathematical model of the motion pallet process on brake magnetic type roller]. The Russian Automobile and Highway Industry Journal. 2020; 17(3):364-373 (in Russian).10.26518/2071-7296-2020-17-3-364-373
  14. 14. Ozolin AU, Skubov DU, Shtukin LV. Sposoby tormozheniya padayushchego lifta s pomoshch’yu postoyannykh magnitov [Methods of braking a falling elevator with the help of permanent magnets] Nauchno-tekhnicheskiye vedomosti Sankt-Peterburgskogo gosudarstvennogo politekhnicheskogo universiteta 2008; 6(70):82-86 (in Russian).
  15. 15. Safronov E, Nosko A. Influence of the brake lining position on the efficiency of the centrifugal friction roller. IOP Conference Series: Materials Science and Engineering. 2020: 709(2).10.1088/1757-899X/709/2/022086
  16. 16. Simeu E, Georges D. Modeling and control of an eddy current brake. Control Engineering Practise. 1996; 14(1):19-26.10.1016/0967-0661(95)00202-4
  17. 17. Ozolin AU, Skubov DU, Shtukin LV. Issledovaniye vikhretokovogo diskovogo tormoza [Research eddy current disc brake]. Nauchnotekhnicheskiye vedomosti Sankt-Peterburgskogo gosudarstvennogo politekhnicheskogo universiteta. 2009: 1(74):57-60 (in Russian).
  18. 18. Luskan’ OA. Opredeleniye skorosti transportirovaniya shtuchnykh gruzov na inertsionnom rolikovom konveyyer [Determining the speed of transportation of piece goods on an inertial roller conveyor]. Izv TulGU Pod”yemno-transportnyye mashiny i oborudovaniye. 2003; 4:84-89 (in Russian).
  19. 19. Zenkov RL, Ivashkov II, Kolobov LN. Mashiny nepreryvnogo transporta [Continuous transport machines]. Moscow (in Russian). 1997.
  20. 20. Luskan’ OA. Teoreticheskiye osnovy peremeshcheniya gruzov impul’snymi konveyyerami [Theoretical Foundations of the Movement of Goods by Pulse Conveyors]. Saratov (in Russian). 2010.
  21. 21. Luskan’ OA. Inzhenernyy raschet impul’snykh konveyyerov [Engineering calculation of pulse conveyors]. Saratov (in Russian). 2011.
  22. 22. Hollowell TC, Kahl JT, Stanczak MD, Wang Y. Eddy Current Brake Design for Operation with Extreme Back-drivable Eddy Current Motor. Mechanical Engineering Undergraduates. 2010.
  23. 23. Andrew HC, Hayward V. Eddy Current Brakes for Haptic Interfaces: Design Identification and Control. IEEE/ASME Transactions on Mechatronics. 2008; 13(6):669-677.10.1109/TMECH.2008.2004623
  24. 24. Kerem K, Afzal S, Park EJ. Analytical modeling of eddy current brakes with the application of the time varying magnetic fields. Applied Mathematical Modeling. 2015; 1168-1179.10.1016/j.apm.2015.07.006
  25. 25. Kerem K, Park EJ, Afzal S. Improved braking torque generation capacity of an eddy current brake with time varying magnetic fields: A numerical study. Finite Elements in Analysis and Design. 2012; 59:66-7510.1016/j.finel.2012.05.005
  26. 26. Lee K, Park K. Modeling eddy currents with boundary conditions by sing Coulomb’s law and the method of images. IEEE Transactions on Magnetics. 2002; 38(2):1333-1340.10.1109/20.996020
  27. 27. Heald MA. Magnetic braking: Improved theory. American Journal of Physics. 1988; 56(6):521-522.10.1119/1.15570
  28. 28. Anwar S. A parametric model of an eddy current electric machine for automotive braking applications. IEEE Transactions on Control Systems Technology. 2002; 12(13):422-427.10.1109/TCST.2004.824293
  29. 29. Shin HJ, Choi JY, Cho HW, Jang SM. Analytical torque calculations and Experimental testing of permanent magnet Axial eddy current brake. IEEE Transactions of Magnetics. 2013; 49(7):4152-4155.10.1109/TMAG.2013.2250932
  30. 30. Sharifullin I, Nosko A, Safronov E, Kirillov D. Experimental study of eddy current braking applicable to gravity roller conveyor. Fundamental and Applied Problems of Engineering and Technology. 2020; 342(4-1):106-116.10.33979/2073-7408-2020-342-4-1-106-116
  31. 31. Ghomri L, Sari Z. Mathematical modeling of the average retrieval time for flow-rack automated storage and retrieval systems. J Manuf Syst. 2017; 44:165-178.10.1016/j.jmsy.2017.05.002
  32. 32. Thompson MT. Permanent magnet electrodynamic brakes design principles and scaling laws. Online Symposium for Electrical Engineers. 2009.
DOI: https://doi.org/10.2478/ama-2022-0005 | Journal eISSN: 2300-5319 | Journal ISSN: 1898-4088
Language: English
Page range: 34 - 39
Submitted on: Apr 24, 2021
Accepted on: Sep 24, 2021
Published on: Feb 4, 2022
Published by: Bialystok University of Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2022 Ildar Sharifullin, Andrey Nosko, Eugene Safronov, published by Bialystok University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.