REFERENCES. Baum, G., The Effect of Ultrasonic Radiation Upon the Eye and Ocular Adnexa, Am. J. Ophthalmol., 42, , 1956.
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1 REFERENCES Baum, G., The Effect of Ultrasonic Radiation Upon the Eye and Ocular Adnexa, Am. J. Ophthalmol., 42, , Beissner, K., Two Concepts of Acoustic Radiation Pressure, J. Acoust. Soc. Am., 79, , Boyle, R. W. and J. F. Lehmann, Phys. Rev. (II), 27, 518, Boyle, R. W. and G. B. Taylor, Phys Rev. (II), 27, 518, Boyle, R. W., Nature, 120, 476, Child, S. Z., et al., Lung Damage from Exposure to Pulsed Ultrasound, Ultrasound Med. Biol.,16(8), , Church, C. C. and E. L. Carstensen, Stable Inertial Cavitation, Ultrasound Med. Biol., 27(10), , Cinbis, C., et al., Effect of Surface on the Acoustic Radiation Pressure-Induced Motion of the Water-Air Interface, J. Acoust. Soc. Am., 94, , Coakley, W. T. and W. L. Nyborg, Cavitation; Dynamics of Gas Bubbles; Applications, in Ultrasound: Its Application in Medicine and Biology, edited by F. J. Fry, , Elsevier, New York, Curie, J. and P. Curie, Bull. Soc. Minèral, 3, 90, Delius, M., et al., Biological effects of shock waves: Lung hemorrhage by shock waves in dogspressure dependence, Ultrasound Med. Biol., 13(2), 61-67, French, L. A., et al., Attempts to Determine Harmful Effects of Pulsed Ultrasonic Vibrations, Cancer, 4, , Freundlich, H., et al., Klin. Wochenschr., 11, 1512, Fry, W. J., Biological and Medical Acoustics, J. Acoust. Soc. Am., 30(5), , Fry, W. J., et al., Physical Factors Involved in Ultrasonically Induced Changes in Living Systems: I. Identification of non-temperature effects, J. Acoust. Soc. Am., 22(6), , Fry, W. J., et al., Physical Factors Involved in Ultrasonically Induced Changes in Living Systems: II. Amplitude duration relations and the effect of hydrostatic pressure for nerve tissue, J. Acoust. Soc. Am., 23(3), ,
2 Harvey, E. N. and L. Loomis, High Frequency Sound Waves of Small Intensity and Their Biological Effects, Nature, 121, 622, Henglein, A. Sonochemistry: Historical Developments and Modern Aspects, Ultrasonics, 25, 6, Henglein, A. and C. Kormann, Scavenging OH Radicals Produced in the Sonolysis of Water, Int. J. Radiat. Biol., 48, 251, Holland, C. K., et al., Direct Evidence of Cavitation in vivo From Diagnostic Ultrasound, Ultrasound Med. Biol., 22(7), , Holland, C. K., et al., In vitro Detection of Cavitation Induced by a Diagnostic Ultrasound System, IEEE Trans. On UFFC, 39(1), , 1992 Hueter, T. F., et al., Production of Lesions in the Central Nervous System with Focused Ultrasound: A study of dosage factors, J. Acoust. Soc. Am., 28(2), , Hunt, F. V., Electroacoustics: The Analysis of Transduction, and Its Historical Background, Acoustical Society of America, New York, Hutchinson, E. B. and K. Hynynen, Intracavity Ultrasound Phased Arrays for Prostate Thermal Therapies: MRI compatibility and in vivo testing, Med. Phys., 25(12), , Kinsler, L. E., et al., Fundamentals of Acoustics, 4 th ed., John Wiley and Sons, Inc., New York, Kuttruff, Heinrich., Ultrasonics, Fundamentals and Applications, Elsevier Science Publishers. Ltd., England, Rayleigh, J. W. S., On the Pressure of Vibrations, Phil. Mag., 3, , Rayleigh, J. W. S., The Theory of Sound, Dover, New York, Lynn, J. G., et al., J. Gen. Physiol., 26, 179, Lynn, J. G. and T. J. Putman, Am. J. Pathol., 20, 637, Mechanical Bioeffects from Diagnostic Ultrasound: AIUM Consensus Statements, J. Ultrasound Med., 19(2), , edited by J. B. Fowlkes and C. K. Holland, National Council on Radiation Protection and Measurements, Biological Effects of Ultrasound: Mechanisms and Clinical Implications, NCRP Report No. 74, Newton, I. Philosophiae Naturalis Principia Mathematica, Royal Society, London Cambridge,
3 Nyborg, W. L., Acoustic Streaming, in Physical Acoustics (Volume 1B), edited by W. P. Mason, 265, Academic Press, New York, 1965, Nyborg, W. L., Ultrasonic Microstreaming and Related Phenomena, Br. J. Cancer, 45, , O Brien Jr., W. D., Assessing the Risks for Modern Diagnostic Ultrasound Imaging, Jpn. J. Appl. Phys., 37, , O Brien Jr., W. D. and J. F. Zachary, Comparison of Mouse and Rabbit Lung Damage Exposure to 30 khz Ultrasound, Ultrasound Med. Biol., 20(3), , O Brien Jr., W. D. and J. F. Zachary, Lung Damage Assessment from Exposure to Pulsed-Wave Ultrasound in the Rabbit, Mouse, and Pig, IEEE Trans. On UFFC, 44(2), , O Brien Jr., W. D. and J. F. Zachary, Rabbit and Pig Lung Damage Comparison From Exposure to Continuous Wave 30-kHz Ultrasound, Ultrasound Med. Biol., 22(3), , O Brien Jr., W. D., et al., Superthreshold Behavior and Threshold Estimates of Ultrasound- Induced Lung Hemorrhage in Adult Rats: Role of Beamwidth, IEEE Trans. On UFFC, 48(6), , O Brien Jr., W. D., et al., Superthreshold Behavior and Threshold Estimation of Ultrasound- Induced Lung Hemorrhage in Pigs: Role of Age Dependency, IEEE Trans. On UFFC, 50(2), , O Brien Jr., W. D., et al., Superthreshold Behavior of Ultrasound-Induced Lung Hemorrhage in Adult Mice and Rats: Role of Pulse Repetition Frequency and Exposure Duration, Ultrasound Med. Biol., 27(2), , O Brien Jr., W. D., et al., Ultrasound-Induced Lung Hemorrhage is not caused by Inertial Cavitation, J. Acoust. Soc. Am., 108(3), , O Brien Jr., W. D., et al., Ultrasound-Induced Lung Hemorrhage: Role of Acoustic Boundary Conditions at the Pleural Surface, J. Acoust. Soc. Am., 111(2), , Raeman C. H., et al., Albunex Does not Increase the Sensitivity of the Lung to Pulsed Ultrasound, Echocardiography, 14(6), , Raum, K., and W. D. O Brien, Jr., Pulse-Echo Field Distribution Measurement Technique for High-Frequency Ultrasound Sources, IEEE Trans. On UFFC, 44(4), , Rozenberg, L.D., High-Intensity Ultrasonic Fields, Plenum Press, New York, Sempsrott, J., Experimental Evaluation of Acoustic Saturation, M.S. thesis, University of Illinois, Urbana,
4 Shung, K. K., M. B. Smith, and B. Tsui, Principles of Medical Imaging, Academic Press, San Diego, Slonim, N. Balfour and L. H. Hamilton, Respiratory Physiology, 5 th ed., The C. V. Mosby Company, Missouri, Tarantal, A. F. and D. R. Canfield, Ultrasound-Induced Lung Hemorrhage in the Monkey, Ultrasound Med. Biol., 20(1), 65-72, Verrall R. E. and C. M. Seghal, Ultrasound: Its Chemical, Physical, and Biological Effects, VCH Publishers, New York, West, John B., Respiratory Physiology: People and Idea, American Physiological Society, New York, West, John B., Ventilation/Blood Flow and Gas Exchange, 4 th ed., Blackwell Scientific Publications, Massachusetts, Wilson, W. L., et al., Deformation and Motion Produced in Isolated Living Cells by Localized Ultrasonic Vibration, J. Acoust. Soc. Am., 40(6), , Zachary, James F., et al., Superthreshold Behavior and Threshold Estimation of Ultrasound- Induced Lung Hemorrhage in Adult Mice and Rats, IEEE Trans. On UFFC, 48(2), , Zieniuk, J. and R. C. Chivers Measurement of Ultrasonic Exposure with Radiation Force and Thermal Methods, Ultrasonics, , July
5 VITA Stacie Sachiko Sakai was born in Honolulu, Hawaii on December 30, She graduated from the University of Illinois, Urbana-Champaign in 2001 with a degree in Bioenginnering. Following the completion of her undergraduate degree, Ms. Sakai continued her studies at the University of Illinois, Urbana-Champaign in the department of Nuclear, Plasma, and Radiological Engineering. Following the completion of the Master of Science Degree in Nuclear Engineering in August 2003, Ms. Sakai will return to Hawaii, with the aim of working with the Federal Government. 120
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