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Erschienen in:
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2018 | OriginalPaper | Buchkapitel

1. Acoustic Cavitation

verfasst von : Kyuichi Yasui

Erschienen in: Acoustic Cavitation and Bubble Dynamics

Verlag: Springer International Publishing

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Abstract

Acoustic cavitation is the formation and subsequent violent collapse of bubbles in liquid irradiated with intense ultrasound. Ultrasound is radiated by a vibrating plate connected to ultrasonic transducers made of piezoelectric materials driven by electrical power. Microscopic mechanism for vibration of piezoelectric materials is briefly described. There are two types of ultrasonic experimental equipment used to generate acoustic cavitation: ultrasonic horn (or probe) and ultrasonic bath. Ultrasonic standing waves and traveling waves are discussed by means of mathematical equations. Acoustic impedance is discussed, and transmission and reflection coefficients are described. Various types of acoustic cavitations are discussed: transient and stable cavitations, vaporous and gaseous cavitations. Fluctuations in degassing and re-gassing cause repeated change between vaporous and gaseous cavitation. Light emission associated with violent bubble collapse as well as chemical reactions inside and outside a bubble is discussed in the sections entitled “sonoluminescence” and “sonochemistry,” respectively. Unsolved problems in sonoluminescence are briefly discussed. Reasons for lesser amount of produced H radicals (H·) than that of OH radicals (OH·) in sonochemical reactions are discussed based on results generated from numerical simulations. In the last section, ultrasonic cleaning, especially for the application to silicon wafers, is discussed.

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Literatur
1.
Zurück zum Zitat Leighton TG (1994) The acoustic bubble. Academic Press, London Leighton TG (1994) The acoustic bubble. Academic Press, London
2.
Zurück zum Zitat Fahy F (2001) Foundations of engineering acoustics. Academic Press, San Diego Fahy F (2001) Foundations of engineering acoustics. Academic Press, San Diego
3.
Zurück zum Zitat Pierce AD (1989) Acoustics, an introduction to its physical principles and applications. Acoustical Society of America, New York Pierce AD (1989) Acoustics, an introduction to its physical principles and applications. Acoustical Society of America, New York
6.
Zurück zum Zitat Yasui K (2015) Dynamics of acoustic bubbles. In: Grieser F, Choi PK, Enomoto N, Harada H, Okitsu K, Yasui K (eds) Sonochemistry and the acoustic bubble. Elsevier, Amsterdam Yasui K (2015) Dynamics of acoustic bubbles. In: Grieser F, Choi PK, Enomoto N, Harada H, Okitsu K, Yasui K (eds) Sonochemistry and the acoustic bubble. Elsevier, Amsterdam
10.
Zurück zum Zitat Kinsler LE, Frey AR, Coppens AB, Sanders JV (1982) Fundamentals of acoustics, 3rd edn. Wiley, New York Kinsler LE, Frey AR, Coppens AB, Sanders JV (1982) Fundamentals of acoustics, 3rd edn. Wiley, New York
11.
Zurück zum Zitat Kremkau FW (2006) Diagnostic ultrasound: principles and instruments, 7th edn. Saunders Elsevier, St. Louis, Missouri Kremkau FW (2006) Diagnostic ultrasound: principles and instruments, 7th edn. Saunders Elsevier, St. Louis, Missouri
13.
Zurück zum Zitat Wu J, Nyborg W (eds) (2006) Emerging therapeutic ultrasound. World Scientific, New Jersey Wu J, Nyborg W (eds) (2006) Emerging therapeutic ultrasound. World Scientific, New Jersey
14.
Zurück zum Zitat Kittel C (2005) Introduction to solid state physics, 8th edn. Wiley, New York Kittel C (2005) Introduction to solid state physics, 8th edn. Wiley, New York
15.
Zurück zum Zitat Asakura Y (2015) Experimental methods in sonochemistry. In: Grieser F, Choi PK, Enomoto N, Harada H, Okitsu K, Yasui K (eds) Sonochemistry and the acoustic bubble. Elsevier, Amsterdam Asakura Y (2015) Experimental methods in sonochemistry. In: Grieser F, Choi PK, Enomoto N, Harada H, Okitsu K, Yasui K (eds) Sonochemistry and the acoustic bubble. Elsevier, Amsterdam
17.
Zurück zum Zitat Hacias KJ, Cormier GJ, Nourie SM, Kubel EJ Jr (1997) Guide to acid, alkaline, emulsion, and ultrasonic cleaning. ASM International, Materials Park, OH, USA Hacias KJ, Cormier GJ, Nourie SM, Kubel EJ Jr (1997) Guide to acid, alkaline, emulsion, and ultrasonic cleaning. ASM International, Materials Park, OH, USA
18.
Zurück zum Zitat Tuziuti T, Yasui K, Sivakumar M, Iida Y, Miyoshi N (2005) Correlation between acoustic cavitation noise and yield enhancement of sonochemical reaction by particle addition. J Phys Chem 109:4869–4872. doi:10.1021/jp0503516 CrossRef Tuziuti T, Yasui K, Sivakumar M, Iida Y, Miyoshi N (2005) Correlation between acoustic cavitation noise and yield enhancement of sonochemical reaction by particle addition. J Phys Chem 109:4869–4872. doi:10.​1021/​jp0503516 CrossRef
19.
Zurück zum Zitat Yasui K (2011) Fundamentals of acoustic cavitation and sonochemistry. In: Pankaj Ashokkumar M (ed) Theoretical and experimental sonochemistry involving inorganic systems. Springer, Dordrecht Yasui K (2011) Fundamentals of acoustic cavitation and sonochemistry. In: Pankaj Ashokkumar M (ed) Theoretical and experimental sonochemistry involving inorganic systems. Springer, Dordrecht
20.
Zurück zum Zitat Yasui K, Izu N (2017) Effect of evaporation and condensation on a thermoacoustic engine: a Lagrangian simulation approach. J Acoust Soc Am 141:4398–4407. doi:10.1121/1.4985385 CrossRef Yasui K, Izu N (2017) Effect of evaporation and condensation on a thermoacoustic engine: a Lagrangian simulation approach. J Acoust Soc Am 141:4398–4407. doi:10.​1121/​1.​4985385 CrossRef
21.
Zurück zum Zitat Beyer RT (1997) Nonlinear acoustics. Acoustical Society of America, New York Beyer RT (1997) Nonlinear acoustics. Acoustical Society of America, New York
23.
Zurück zum Zitat Yasui K (2016) Unsolved problems in acoustic cavitation. In: Ashokkumar M, Cavalieri F, Chemat F, Okitsu K, Sambandam A, Yasui K, Zisu B (eds) Handbook of ultrasonics and sonochemistry. Springer, Singapore Yasui K (2016) Unsolved problems in acoustic cavitation. In: Ashokkumar M, Cavalieri F, Chemat F, Okitsu K, Sambandam A, Yasui K, Zisu B (eds) Handbook of ultrasonics and sonochemistry. Springer, Singapore
28.
Zurück zum Zitat Yasui K, Tuziuti T, Lee J, Kozuka T, Towata A, Iida Y (2008) The range of ambient radius for an active bubble in sonoluminescence and sonochemical reactions. J Chem Phys 128:184705. doi:10.1063/1.2919119 CrossRef Yasui K, Tuziuti T, Lee J, Kozuka T, Towata A, Iida Y (2008) The range of ambient radius for an active bubble in sonoluminescence and sonochemical reactions. J Chem Phys 128:184705. doi:10.​1063/​1.​2919119 CrossRef
29.
Zurück zum Zitat Matula TJ, Cordry SM, Roy RA, Crum LA (1997) Bjerknes force and bubble levitation under single-bubble sonoluminescence conditions. J Acoust Soc Am 102:1522–1527. doi:10.1121/1.420065 CrossRef Matula TJ, Cordry SM, Roy RA, Crum LA (1997) Bjerknes force and bubble levitation under single-bubble sonoluminescence conditions. J Acoust Soc Am 102:1522–1527. doi:10.​1121/​1.​420065 CrossRef
30.
Zurück zum Zitat Mettin R (2007) From a single bubble to bubble structures in acoustic cavitation. In: Kurz T, Parlitz U, Kaatze U (eds) Oscillations, waves and interactions. Universitatsverlag Goettingen, Goettingen Mettin R (2007) From a single bubble to bubble structures in acoustic cavitation. In: Kurz T, Parlitz U, Kaatze U (eds) Oscillations, waves and interactions. Universitatsverlag Goettingen, Goettingen
31.
Zurück zum Zitat Mettin R, Cairos C (2016) Bubble dynamics and observations. In: Ashokkumar M, Cavalieri F, Chemat F, Okitsu K, Sambandam A, Yasui K, Zisu B (eds) Handbook of ultrasonics and sonochemistry. Springer, Singapore Mettin R, Cairos C (2016) Bubble dynamics and observations. In: Ashokkumar M, Cavalieri F, Chemat F, Okitsu K, Sambandam A, Yasui K, Zisu B (eds) Handbook of ultrasonics and sonochemistry. Springer, Singapore
32.
Zurück zum Zitat Hatanaka S, Yasui K, Tuziuti T, Kozuka T, Mitome H (2001) Quenching mechanism of multibubble sonoluminescence at excessive sound pressure. Jpn J Appl Phys 40:3856–3860. doi:10.1143/JJAP.40.3856 CrossRef Hatanaka S, Yasui K, Tuziuti T, Kozuka T, Mitome H (2001) Quenching mechanism of multibubble sonoluminescence at excessive sound pressure. Jpn J Appl Phys 40:3856–3860. doi:10.​1143/​JJAP.​40.​3856 CrossRef
33.
Zurück zum Zitat Mettin R (2005) Bubble structures in acoustic cavitation. In: Doinikov AA (ed) Bubble and particle dynamics in acoustic fields: modern trends and applications. Research Signpost, Kerala, India Mettin R (2005) Bubble structures in acoustic cavitation. In: Doinikov AA (ed) Bubble and particle dynamics in acoustic fields: modern trends and applications. Research Signpost, Kerala, India
36.
Zurück zum Zitat Hilgenfeldt S, Grossmann S, Lohse D (1999) A simple explanation of light emission in sonoluminescence. Nature (London) 398:402–405CrossRef Hilgenfeldt S, Grossmann S, Lohse D (1999) A simple explanation of light emission in sonoluminescence. Nature (London) 398:402–405CrossRef
39.
Zurück zum Zitat Jackson JD (1975) Classical electrodynamics, 2nd edn. Wiley, New York Jackson JD (1975) Classical electrodynamics, 2nd edn. Wiley, New York
43.
Zurück zum Zitat Eddingsaas NC, Suslick KS (2007) Evidence for a plasma core during multibubble sonoluminescence in sulfuric acid. J Am Chem Soc 129:3838–3839. doi:10.1021/ja070192z CrossRef Eddingsaas NC, Suslick KS (2007) Evidence for a plasma core during multibubble sonoluminescence in sulfuric acid. J Am Chem Soc 129:3838–3839. doi:10.​1021/​ja070192z CrossRef
47.
Zurück zum Zitat Choi PK (2011) Sonoluminescence of inorganic ions in aqueous solutions. In: Pankaj, Ashokkumar M (eds) Theoretical and experimental sonochemistry involving inorganic systems. Springer, Dordrecht Choi PK (2011) Sonoluminescence of inorganic ions in aqueous solutions. In: Pankaj, Ashokkumar M (eds) Theoretical and experimental sonochemistry involving inorganic systems. Springer, Dordrecht
48.
50.
51.
52.
Zurück zum Zitat Matsuoka M, Takahashi F, Asakura Y, Jin J (2016) Sonochemiluminescence of lucigenin: evidence of superoxide radical anion formation by ultrasonic irradiation. Jpn J Appl Phys 55: 07KB01. doi:10.7567/JJAP.55.07KB01 Matsuoka M, Takahashi F, Asakura Y, Jin J (2016) Sonochemiluminescence of lucigenin: evidence of superoxide radical anion formation by ultrasonic irradiation. Jpn J Appl Phys 55: 07KB01. doi:10.​7567/​JJAP.​55.​07KB01
53.
Zurück zum Zitat Grieser F, Choi PK, Enomoto N, Harada H, Okitsu K, Yasui K (eds) (2015) Sonochemistry and the acoustic bubble. Elsevier, Amsterdam Grieser F, Choi PK, Enomoto N, Harada H, Okitsu K, Yasui K (eds) (2015) Sonochemistry and the acoustic bubble. Elsevier, Amsterdam
54.
Zurück zum Zitat Lide DR (ed) (1994) CRC handbook of chemistry and physics, 75th edn. CRC Press, Boca Raton Lide DR (ed) (1994) CRC handbook of chemistry and physics, 75th edn. CRC Press, Boca Raton
55.
Zurück zum Zitat Henglein A (1993) Contributions to various aspects of cavitation chemistry. In: Mason TJ (ed) Advances in sonochemsitry, vol 3. JAI Press, London Henglein A (1993) Contributions to various aspects of cavitation chemistry. In: Mason TJ (ed) Advances in sonochemsitry, vol 3. JAI Press, London
56.
Zurück zum Zitat Elliot AJ, McCracken DR, Buxton GV, Wood ND (1990) Estimation of rate constants for near-diffusion-controlled reactions in water at high temperatures. J Chem Soc, Faraday Trans 86:1539–1547. doi:10.1039/ft9908601539 CrossRef Elliot AJ, McCracken DR, Buxton GV, Wood ND (1990) Estimation of rate constants for near-diffusion-controlled reactions in water at high temperatures. J Chem Soc, Faraday Trans 86:1539–1547. doi:10.​1039/​ft9908601539 CrossRef
57.
Zurück zum Zitat Mugnai A, Petroncelli P, Fiocco G (1979) Sensitivity of the photodissociation of NO2, NO3, HNO3 and H2O2 to the solar radiation diffused by the ground and by atmospheric particles. J Atmosph Terrest Phys 41:351–359. doi:10.1016/0021-9169(79)90031-X CrossRef Mugnai A, Petroncelli P, Fiocco G (1979) Sensitivity of the photodissociation of NO2, NO3, HNO3 and H2O2 to the solar radiation diffused by the ground and by atmospheric particles. J Atmosph Terrest Phys 41:351–359. doi:10.​1016/​0021-9169(79)90031-X CrossRef
58.
Zurück zum Zitat Makino K, Mossoba MM, Riesz P (1982) Chemical effects of ultrasound on aqueous solutions. evidence for OH and H by spin trapping. J Am Chem Soc 104:3537–3539. doi:10.1021/ja00376a064 CrossRef Makino K, Mossoba MM, Riesz P (1982) Chemical effects of ultrasound on aqueous solutions. evidence for OH and H by spin trapping. J Am Chem Soc 104:3537–3539. doi:10.​1021/​ja00376a064 CrossRef
60.
Zurück zum Zitat Riesz P, Berdahl D, Christman CL (1985) Free radical generation by ultrasound in aqueous and nonaqueous solutions. Environ Health Perspect 64:233–252. doi:10.2307/3430013 CrossRef Riesz P, Berdahl D, Christman CL (1985) Free radical generation by ultrasound in aqueous and nonaqueous solutions. Environ Health Perspect 64:233–252. doi:10.​2307/​3430013 CrossRef
61.
Zurück zum Zitat Makino K, Mossoba MM, Riesz P (1983) Chemical effects of ultrasound on aqueous solutions. Formation of hydroxyl radicals and hydrogen atoms. J Phys Chem 87:1369–1377. doi:10.1021/j100231a020 CrossRef Makino K, Mossoba MM, Riesz P (1983) Chemical effects of ultrasound on aqueous solutions. Formation of hydroxyl radicals and hydrogen atoms. J Phys Chem 87:1369–1377. doi:10.​1021/​j100231a020 CrossRef
62.
63.
Zurück zum Zitat Mark G, Tauber A, Laupert R, Schuchmann HP, Schulz D, Mues A, von Sonntag C (1998) OH-radical formation by ultrasound in aqueous solution—part II: terephthalate and Fricke dosimetry and the influence of various conditions on the sonolytic yield. Ultrason Sonochem 5:41–52. doi:10.1016/S1350-4177(98)00012-1 CrossRef Mark G, Tauber A, Laupert R, Schuchmann HP, Schulz D, Mues A, von Sonntag C (1998) OH-radical formation by ultrasound in aqueous solution—part II: terephthalate and Fricke dosimetry and the influence of various conditions on the sonolytic yield. Ultrason Sonochem 5:41–52. doi:10.​1016/​S1350-4177(98)00012-1 CrossRef
68.
Zurück zum Zitat Price GJ (1990) The use of ultrasound for the controlled degradation of polymer solutions. In: Mason TJ (ed) Advances in sonochemistry, vol 1. JAO Press, Greenwich, Connecticut Price GJ (1990) The use of ultrasound for the controlled degradation of polymer solutions. In: Mason TJ (ed) Advances in sonochemistry, vol 1. JAO Press, Greenwich, Connecticut
69.
Zurück zum Zitat Zhang Z, Sun DW, Zhu Z, Cheng L (2015) Enhancement of crystallization processes by power ultrasound: current state-of-the-art and research advances. Comprehensive Rev Food Sci Food Safety 14:303–316. doi:10.1111/1541-4337.12132 CrossRef Zhang Z, Sun DW, Zhu Z, Cheng L (2015) Enhancement of crystallization processes by power ultrasound: current state-of-the-art and research advances. Comprehensive Rev Food Sci Food Safety 14:303–316. doi:10.​1111/​1541-4337.​12132 CrossRef
70.
Zurück zum Zitat Castillo-Peinado LS, Dolores M, Castro L (2016) The role of ultrasound in pharmaceutical production: sonocrystallization. J Pharm Pharmacol 68:1249–1267. doi:10.1111/jphp.12614 CrossRef Castillo-Peinado LS, Dolores M, Castro L (2016) The role of ultrasound in pharmaceutical production: sonocrystallization. J Pharm Pharmacol 68:1249–1267. doi:10.​1111/​jphp.​12614 CrossRef
73.
Zurück zum Zitat Yasui K, Kato K (2014) Numerical simulations of nucleation and aggregation of BaTiO3 nanocrystals under ultrasound. In: Manickam S, Ashokkumar M (eds) Cavitaion a novel energy-efficient technique for the generation of nanomaterials. Pan Stanford, Singapore Yasui K, Kato K (2014) Numerical simulations of nucleation and aggregation of BaTiO3 nanocrystals under ultrasound. In: Manickam S, Ashokkumar M (eds) Cavitaion a novel energy-efficient technique for the generation of nanomaterials. Pan Stanford, Singapore
75.
Zurück zum Zitat Bakhtari K, Guldiken RO, Busnaina AA, Park JG (2006) Experimental and analytical study of submicrometer particle removal from deep trenches. J Electrochem Soc 153:C603–C607. doi:10.1149/1.2214531 CrossRef Bakhtari K, Guldiken RO, Busnaina AA, Park JG (2006) Experimental and analytical study of submicrometer particle removal from deep trenches. J Electrochem Soc 153:C603–C607. doi:10.​1149/​1.​2214531 CrossRef
76.
78.
Zurück zum Zitat Iizuka A, Iwata W, Shimata E, Nakamura T (2016) Physical washing method for press oil removal from side surfaces using microbubbles under ultrasonic irradiation. Ind Eng Chem Res 55:10782–10787. doi:10.1021/acs.iecr.6b01887 CrossRef Iizuka A, Iwata W, Shimata E, Nakamura T (2016) Physical washing method for press oil removal from side surfaces using microbubbles under ultrasonic irradiation. Ind Eng Chem Res 55:10782–10787. doi:10.​1021/​acs.​iecr.​6b01887 CrossRef
79.
Zurück zum Zitat Yasui K, Lee J, Tuziuti T, Towata A, Kozuka T, Iida Y (2009) Influence of the bubble-bubble interaction on destruction of encapsulated microbubbles under ultrasound. J Acoust Soc Am 126:973–982. doi:10.1121/1.3179677 CrossRef Yasui K, Lee J, Tuziuti T, Towata A, Kozuka T, Iida Y (2009) Influence of the bubble-bubble interaction on destruction of encapsulated microbubbles under ultrasound. J Acoust Soc Am 126:973–982. doi:10.​1121/​1.​3179677 CrossRef
80.
Zurück zum Zitat Yasui K, Towata A, Tuziuti T, Kozuka T, Kato K (2011) Effect of static pressure on acoustic energy radiated by cavitation bubbles in viscous liquids under ultrasound. J Acoust Soc Am 130:3233–3242. doi:10.1121/1.3626130 CrossRef Yasui K, Towata A, Tuziuti T, Kozuka T, Kato K (2011) Effect of static pressure on acoustic energy radiated by cavitation bubbles in viscous liquids under ultrasound. J Acoust Soc Am 130:3233–3242. doi:10.​1121/​1.​3626130 CrossRef
Metadaten
Titel
Acoustic Cavitation
verfasst von
Kyuichi Yasui
Copyright-Jahr
2018
DOI
https://doi.org/10.1007/978-3-319-68237-2_1