Ultrasound in Medicine and Biology
Volume 33, Issue 2 , Pages 263-269 , February 2007

Bubble-based acoustic radiation force using chirp insonation to reduce standing wave effects

Received 23 February 2006 ,Revised 18 July 2006 ,Accepted 27 July 2006.

References 

  1. Asaki TJ, Marston PL. Acoustic radiation force on a bubble driven above resonance. J Acoust Soc Am. 1994;96(5):3096–3099
  2. Beers AP, van der Heijde GL. In vivo determination of the biomedical properties of the component elements of the accommodation mechanism. Vision Res. 1994;34(21):2897–2905
  3. Blake FG. Bjerknes forces in stationary sound fields. J Acoust Soc Am. 1949;21(5):551
  4. Crum LA, Eller AI. Motion of bubbles in a stationary sound field. J Acoust Soc Am. 1970;48(1):181–189
  5. Crum LA. Bjerknes forces on bubbles in a stationary sound field. J Acoust Soc Am. 1975;57(6):1363–1370
  6. Eller A. Force on a bubble in a standing acoustic wave. J Acoust Soc Am. 1968;43(1):170–171
  7. Erpelding TN, Hollman KW, O’Donnell M. Bubble-based acoustic radiation force elasticity imaging. IEEE Trans Ultrason Ferroelectr Freq Control. 2005;52(6):971–979
  8. Erpelding TN, Hollman KW, O’Donnell M. Spatially mapping the elastic properties of the lens using bubble-based acoustic radiation force. Proc IEEE Ultrason Symp. 2005;1:613–617
  9. Gorkov LP. On the forces acting on a small particle in an acoustical field in an ideal fluid. Sov Phys Dokl. 1962;6(9):773–775
  10. Hawkes JJ, Coakley WT. Force field particle filter, combining ultrasound standing waves and laminar flow. Sensor Actuat B-Chem. 2001;75:213–222
  11. Heys KR, Cram SL, Truscott RJW. Massive increase in the stiffness of the human lens nucleus with age: The basis for presbyopia?. Mol Vision. 2004;10:956–963
  12. Jansson F, Kock E. Determination of the velocity of ultrasound in the human lens and vitreous. Acta Ophthalmol. 1962;40:420–433
  13. Khanna S, Amso NN, Paynter SJ, Coakley WT. Contrast agent bubble and erythrocyte behavior in a 1.5-MHz standing ultrasound wave. Ultrasound Med Biol. 2003;29(10):1463–1470
  14. Khanna S, Hudson B, Pepper CJ, Amso NN, Coakley WT. Fluorescin isothiocyanate-dextran uptake by Chinese hamster ovary cells in a 1.5 MHz ultrasonic standing wave in the presence of contrast agent. Ultrasound Med Biol. 2006;32(2):289–295
  15. King LV. On the acoustic radiation pressure on spheres. Proc R Soc London Ser A. 1934;147:212–240
  16. Lee CP, Wang TG. Acoustic radiation force on a bubble. J Acoust Soc Am. 1993;93(3):1637–1640
  17. Leighton TG. The acoustic bubble. San Diego CA: Academic Press; 1994;
  18. Miller DL. Stable arrays of resonant bubbles in a 1 MHz standing wave acoustic field. J Acoust Soc Am. 1977;62(1):12–19
  19. Mitri FG, Greenleaf JF, Fatemi M. Chirp imaging vibro-acoustography for removing the ultrasound standing wave artifact. IEEE Trans Med Imaging. 2005;24(10):1249–1255
  20. Nightingale K, Palmeri M, Bouchard R, Trahey G. Acoustic radiation force impulse imaging: a parametric analysis of factors affecting image quality. Proc IEEE Ultrason Symp. 2003;1:548–553
  21. Nightingale K, Scott Soo M, Nightingale R, Trahey G. Acoustic radiation force impulse imaging: In vivo demonstration of clinical feasibility. Ultrasound Med Biol. 2002;28(2):227–235
  22. Pau H, Kranz J. The increasing sclerosis of the human lens with age and its relevance to accommodation and presbyopia. Graefe’s Arch Clin Exp Opthlalmol. 1991;229(3):294–296
  23. Sarvazyan AP, Rudenko OV, Swanson SD, Fowlkes JB, Emelianov SY. Shear wave elasticity imaging: a new ultrasonic technology of medical diagnostics. Ultrasound Med Biol. 1998;24(9):1419–1435
  24. Trahey GE, Palmeri ML, Bentley RC, Nightingale KR. Acoustic radiation force impulse imaging of the mechanical properties of arteries: In vivo and ex vivo results. Ultrasound Med Biol. 2004;30(9):1163–1171
  25. Tse C, Zohdy MJ, Ye JY, et al. Acoustic detection of controlled laser-induced microbubble creation in gelatin. IEEE Trans Ultrason Ferroelectr Freq Control. 2005;52(11):1962–1969
  26. Viola F, Kramer MD, Lawrence MB, Oberhauser JP, Walker WF. Sonorheometry: A noncontact method for the dynamic assessment of thrombosis. Ann Biomed Eng. 2004;32(5):696–705
  27. Walker WF. Internal deformation of a uniform elastic solid by acoustic radiation force. J Acoust Soc Am. 1999;105(4):2508–2518
  28. Wu J, Du G. Acoustic radiation force on a small compressible sphere in a focused beam. J Acoust Soc Am. 1990;87(3):997–1003
  29. Yosioka K, Kawasima Y. Acoustic radiation pressure on a compressible sphere. Acustica. 1955;5:167–173

PII: S0301-5629(06)01781-9

doi: 10.1016/j.ultrasmedbio.2006.07.039

Ultrasound in Medicine and Biology
Volume 33, Issue 2 , Pages 263-269 , February 2007