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Sonoluminescence and bubble dynamics for a single, stable, cavitation bubble
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Effect of noble-gas doping in single-bubble sonoluminescence
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0001756794
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Observation of stability boundaries in the parameter space of single bubble sonoluminescence
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Sonoluminescing air bubbles rectify argon
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D. Lohse, M. P. Brenner, T. F. Dupont, S. Hilgenfeldt, and B. Johnston, "Sonoluminescing air bubbles rectify argon," Phys. Rev. Lett. 78, 1359-1362 (1997).
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7
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A simple explanation of light emission in sonoluminescence
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Hilgenfeldt, S.1
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9
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Experimental observations of bubble response and light intensity near the threshold for single bubble sonoluminescence in an air-water system
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Gaitan, D.F.1
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16
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Sensitivity of sonoluminescence to experimental parameters
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B. P. Barber, C. C. Wu, R. Löfstedt, P. H. Roberts, and S. J. Putterman, "Sensitivity of sonoluminescence to experimental parameters," Phys. Rev. Lett. 72, 1380-1383 (1994).
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17
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6144221294
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Forced nonlinear oscillations of single air bubbles in water: Experimental results
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Austin, Texas, M. Hamilton and D. Blackstock, eds., Elsevier, New York
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R. G. Holt, J. Holzfuss, A. Judt, A. Phillip, and S. Horsburgh, "Forced nonlinear oscillations of single air bubbles in water: Experimental results," In Proc. of the 12th Int. Symp. on Nonlinear Acoustics, Austin, Texas, M. Hamilton and D. Blackstock, eds., p. 497 (Elsevier, New York, 1990).
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18
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0029770070
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Direct observation of microbubble oscillations
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private communication
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C. C. Wu, (private communication).
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Wu, C.C.1
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21
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Bjerknes force and bubble levitation under single-bubble sonoluminescence conditions
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22
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33744597458
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unpublished data
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Y. Hao, (unpublished data).
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Hao, Y.1
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23
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33744598300
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unpublished data
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S. Hilgenfeldt, (unpublished data).
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Hilgenfeldt, S.1
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24
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0000395186
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Rectified diffusion during nonlinear pulsations of cavitation bubbles
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0028519592
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Dissolution or growth of soluble spherical oscillating bubbles
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33744568073
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T. Arlman, S. Hilgenfeldt, and D. Lohse, (preprint)
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T. Arlman, S. Hilgenfeldt, and D. Lohse, (preprint).
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27
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33744588844
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-
note
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The curve is actually calculated for a mixture of 1% Xe and 99% nitrogen. However, since the nitrogen mainly influences the location of the curve, the curve for air would show little difference. The calculation includes the effect of water vapor on the internal temperature of the bubble.
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28
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0030767558
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The effects of surfactant additives on the acoustic and light emissions from a single stable sonoluminescing bubble
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T. R. Stottlemyer and R. E. Apfel, "The effects of surfactant additives on the acoustic and light emissions from a single stable sonoluminescing bubble," J. Acoust. Soc. Am. 102, 1418-1423 (1997).
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29
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33744577328
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Sonoluminescence: The critical role of buoyancy in the stability and emission mechanisms
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NASA
-
R. G. Holt and R. A. Roy, "Sonoluminescence: The critical role of buoyancy in the stability and emission mechanisms," In Proc. of the 4th Microgravity Fluid Phys. Conf., pp. 347-352 (NASA, 1998).
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Holt, R.G.1
Roy, R.A.2
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30
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33744649598
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Single bubble sonoluminescence in low gravity and optical radiation pressure positioning of the bubble
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NASA
-
D. B. Thiessen, J. E. Young, M. J. Marr-Lyon, S. L. Richardson, C. D. Breckon, S. G. Douthit, P. S. Jian, W. E. Torruellas, and P. L. Marston, "Single bubble sonoluminescence in low gravity and optical radiation pressure positioning of the bubble," In Proc. of the 4th Microgravity Fluid Phys. Conf., pp. 379-383 (NASA, 1998).
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Thiessen, D.B.1
Young, J.E.2
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Breckon, C.D.5
Douthit, S.G.6
Jian, P.S.7
Torruellas, W.E.8
Marston, P.L.9
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31
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33744660482
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private communication
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T. J. Matula, (private communication).
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Matula, T.J.1
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