References
- Alqadi, M.K., Al-Khateeb, H.M., Alzoubi, F.Y. and Ayoub, N.Y. (2007), "Effects of magnet size and geometry on magnetic levitation force", Chinese. Phys. Lett., 24(9), 2664. https://doi.org/10.1088/0256-307X/24/9/056
- Barrot, F. (2008), Acceleration and inclination sensors based on magnetic levitation. Application in the particular case of structural health monitoring in civil engineering, PhD thesis, EPFL, Lausanne, Switzerland.
- Chetouani, H., Delinchant, B. and Reyne, G. (2007), "Efficient modeling approach for optimization of a system based on passive diamagnetic levitation as a platform for bio-medical applications", Comput. Math. Electric. Eng., 26(2), 345-355. https://doi.org/10.1108/03321640710727700
- Chetouani, H., Delinchant, B. and Reyne, G. (2007), "Efficient modeling approach for optimization of a system based on passive diamagnetic levitation as a platform for bio-medical applications", Comput. Math. Electric. Eng., 26(2), 345-355. https://doi.org/10.1108/03321640710727700
- Chyuan, S.W. and Liao, Y.S. (2005), "Computational study of the effect of finger width and aspect ratios for the electrostatic levitating force of MEMS comb drive", J. Microelectromech. S., 14(2), 305-312. https://doi.org/10.1109/JMEMS.2004.839031
- De Pasquale, G., Siyambalapitiya, C., Iamoni, S. and Somà, A. (2010), "Characterization of low-stiffness suspensions based on diamagnetic levitation for MEMS energy harvesters", Proceedings of the Power MEMS, Leuven, Belgium, 77-80.
- De Pasquale, G., Siyambalapitiya, C., Soma, A. and Wang, J. (2009), "Performances improvement of MEMS sensors and energy scavengers by diamagnetic levitation", Proceedings of the ICEAA, Torino, Italy, 465-468.
- De Pasquale, G., Iamoni, S. and Soma, A. (2012), "3D numerical modeling and experimental validation of diamagnetic levitated suspensions in the static field", Sub. to Int. J. Mech. Sci.
- Edamoto, M., Suzuki, Y., Kasagi, N., Kashiwagi, K., Morizawa, Y., Yokohama, T., Seki, T. and Oba, M. (2009), "Low-resonant frequency micro electret generator for energy harvesting application", Proceedings of the MEMS, Sorrento, Italy, 1059-1062.
- Elbuken, C., Khamesee, M.B. and Yavuz, M. (2006), "Eddy current damping for magnetic levitation: downscaling from macro- to micro-levitation", J. Phys. D. Appl. Phys., 39(18), 3932-3938. https://doi.org/10.1088/0022-3727/39/18/002
- Garmire, D., Choo, H., Kant, R., Govindjee, S., Séquin, C.H., Muller, R.S. and Demmel, J. (2007), "Diamagnetically levitated MEMS accelerometers, Proceedings of Transducers and Eurosensors, Lyon, France, 1203-1206.
- Krishnamoorthy, U., Olsson, R.H., Bogart, G.R., Baker, M.S., Carr, D.W., Swiler, T.P. and Clews, P.J. (2008), "In-plane MEMS-based nano-g accelerometer with sub-wavelength optical resonant sensor", Sensor. Actuat. A - Phys., 145-146, 283-290. https://doi.org/10.1016/j.sna.2008.03.017
- Mann, B.P. and Sims, N.D, (2009), "Energy harvesting from the nonlinear oscillations of magnetic levitation", J. Sound Vib., 319(1-2), 515-530. https://doi.org/10.1016/j.jsv.2008.06.011
- Pelrine, R.E. (1995), Magnetic field levitation, US Patent, US5396136.
- Tang, W.C., Lim, M.G. and Howe, R.T. (1992), "Electrostatic comb drive levitation and control method", J. Microelectromech. S., 1(4), 170-178. https://doi.org/10.1109/JMEMS.1992.752508
- Wei, M., De Pasquale, G., Wang, J. and Soma, A. (2009), "Capacitively-transduced mechanically-coupled bandpass filter in electroplated nickel for harvesting energy from ambient vibrations", Proceedings of the Power MEMS, Washington DC, USA, 213-216.
- Yeatman, E.M. (2007), "Applications of MEMS in power sources and circuits", J. Micromech. Microeng., 17(7), 184-188. https://doi.org/10.1088/0960-1317/17/7/S16
Cited by
- Motion characteristics and output voltage analysis of micro-vibration energy harvester based on diamagnetic levitation vol.118, pp.1, 2015, https://doi.org/10.1007/s00339-014-8747-y
- Stabilization of Microrobot Motion Characteristics in Liquid Media vol.9, pp.7, 2018, https://doi.org/10.3390/mi9070363