221
Views
0
CrossRef citations to date
0
Altmetric
Original Articles

Effect of Surface Grooves on the Characteristics of Noncontact Transportation Using Near-Field Acoustic Levitation

, , &
Pages 960-971 | Received 27 Sep 2017, Accepted 27 Mar 2017, Published online: 03 Jul 2018

References

  • Park, K., Lee, S., Yi, J., Kim, S., Kwak, Y., and Wang, I. (1996), “Contactless Magnetically Levitated Silicon Wafer Transport System,” Mechatronics, 6, pp 591–610.
  • Shinno, H., Yoshioka, H., and Taniguchi, K. (2007), “A Newly Developed Linear Motor-Driven Aerostatic XY Planar Motion Table System for Nano-Machining,” CIRP Annals-Manufacturing Technology, 56, pp 369–372.
  • Vandaele, V., Lambert, P., and Delchambre, A. (2005), “Non-Contact Handling in Microassembly: Acoustical Levitation,” Precision Engineering, 29, pp 491–505.
  • Salbu, E. (1964), “Compressible Squeeze Films and Squeeze Bearings,” Journal of Basic Engineering, 86, pp 355–364.
  • Ilssar, D. and Bucher, I. (2015), “On the Slow Dynamics of Near-Field Acoustically Levitated Objects under High Excitation Frequencies,” Journal of Sound and Vibration, 354, pp 154–166.
  • Minikes, A., Bucher, I., and Haber, S. (2004), “Levitation Force Induced by Pressure Radiation in Gas Squeeze Films,” The Journal of the Acoustical Society of America, 116, pp 217–226.
  • Stolarski, T. A., Gawarkiewicz, R., and Tesch, K. (2015), “Acoustic Journal Bearing—A Search for Adequate Configuration,” Tribology International, 92, pp 387–394.
  • Stolarski, T. A. (2014), “Acoustic Levitation—A Novel Alternative to Traditional Lubrication of Contacting Surfaces,” Tribology Online, 9, pp 164–174.
  • Ueha, S., Hashimoto, Y., and Koike, Y. (2000), “Non-Contact Transportation Using Near-Field Acoustic Levitation,” Ultrasonics, 38, pp 26–32.
  • Li, J., Liu, C., and Zhang, W. (2017), “Pressure Potential and Stability Analysis in an Acoustical Noncontact Transportation,” Acoustical Physics, 63, pp 125–131.
  • Hashimoto, Y., Koike, Y., and Ueha, S. (1996), “Near-Field Acoustic Levitation of Planar Specimens Using Flexural Vibration,” The Journal of the Acoustical Society of America, 100, pp 2057–2061.
  • Kuribayashi, M., Ueha, S., and Mori, E. (1985), “Excitation Conditions of Flexural Traveling Waves for a Reversible Ultrasonic Linear Motor,” The Journal of the Acoustical Society of America, 77, pp 1431–1435.
  • Hashimoto, Y., Koike, Y., and Ueha, S. (1997), “Magnification of Transportation Range Using Non-Contact Acoustic Levitation by Connecting Vibrating Plates,” Japan Journal of Applied Physics, 36, pp 3140–3145.
  • Amano, T., Koike, Y., Nakamura, K., Ueha, S., and Hashimoto, Y. (2000), “A Multi-Transducer Near Field Acoustic Levitation System for Noncontact Transportation of Large-Sized Planar Objects,” Japan Journal of Applied Physics, 39, pp 2982–2985.
  • Liu, J., You, H., Jiao, X. Y., and Jiang, H. (2013), “Non-Contact Transportation of Heavy Load Objects Using Ultrasonic Suspension and Aerostatic Suspension,” Proceedings of the Institution of Mechanical Engineers – Part C: Journal of Mechanical Engineering Science, 228, pp 840–851.
  • Powell, J. (1970), “A Review of Progress in Gas Lubrication,” Review of Physics in Technology, 1, pp 96–129.
  • Gropper, D., Wang, L., and Harvey, T. J. (2016), “Hydrodynamic Lubrication of Textured Surfaces: A Review of Modeling Techniques and Key Findings,” Tribology International, 94, pp 509–529.
  • Dehez, B., Vloebergh, C., and Labrique, F. (2010), “Study and Optimization of Traveling Wave Generation in Finite-Length Beams,” Mathematics and Computers in Simulation, 81, pp 290–301.
  • Feng, K., Liu, Y., and Cheng, M. (2015), “Numerical Analysis of the Transportation Characteristics of a Self-Running Sliding Stage Based on Near-Field Acoustic Levitation,” The Journal of the Acoustical Society of America, 138, pp 3723–3732.
  • Seemann, W. (1996), “A Linear Ultrasonic Traveling Wave Motor of the Ring Type,” Smart Materials and Structures, 5, pp 361–368.
  • Hashimoto, Y., Koike, Y., and Ueha, S. (1998), “Transporting Objects without Contact Using Flexural Traveling Waves,” The Journal of the Acoustical Society of America, 103, pp 3230–3233.
  • Kwon, Y. W. and Bang, H. (2000), The Finite Element Method Using MATLAB, CRC Press: London.
  • Minikes, A. and Bucher, I. (2003), “Noncontacting Lateral Transportation Using Gas Squeeze Film Generated by Flexural Traveling Waves—Numerical Analysis,” The Journal of the Acoustical Society of America, 113, pp 2464–2473.
  • Li, W., Liu, Y., and Feng, K. (2017), “Modelling and Experimental Study on the Influence of Surface Grooves on Near-Field Acoustic Levitation,” Tribology International, 116, pp 138–146.
  • Fox, R. W., McDonald, A. T., and Pritchard, P. J. (1985), Introduction to Fluid Mechanics. John Wiley & Sons: New York.
  • Feng, K., Li, W., Deng, Z., and Zhang, M. (2016), “Thermohydrodynamic Analysis and Thermal Management of Spherical Spiral Groove Gas Bearings,” Tribology Transactions, 64, pp 629–664.
  • Stolarski, T. and Chai, W. (2006), “Load-Carrying Capacity Generation in Squeeze Film Action,” International Journal of Mechanical Sciences, 48, pp 736–741.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.