122
8 Scaling-Up Enabling the Full Potential of Industrial …
De La Rochebrochard S, Suptil J, Blais JF, Naffrechoux E (2012) Sonochemical efficiency dependence on liquid height and frequency in an improved sonochemical reactor. Ultrason Sonochem
19:280–285
Dular M, Griessler-Bulc T, Gutierez I, Heath E, Kosjek T, Krivograd Klemencic A, Oder M,
Petkovšek M, Raki N, Ravnikar M, Šarc A, Širok B, Zupanc M, Zitnik M, Kompare B (2016)
Use of hydrodynamic cavitation in (waste) water treatment. Ultrason Sonochem 29:577–588
Gallego-Juárez JA, Rodriguez G, Acosta V, Riera E (2010) Power ultrasonic transducers with
extensive radiators for industrial processing. Ultrason Sonochem 17:953–964
Gogate PR, Sutkar VS, Pandit AB (2011) Sonochemical reactors: Important design and scale up
considerations with a special emphasis on heterogeneous systems. Chem Eng J 166:1066–1082
Gonçalves I, Herrero-Yniesta V, Perales Arce I, Escrigas Castañeda M, Cavaco-Paulo A, Silva
C (2014) Ultrasonic pilot-scale reactor for enzymatic bleaching of cotton fabrics. Ultrason
Sonochem 21:1535–1543
Gondrexon N, Renaudin V, Petrier C, Boldo P, Bernis A, Gonthier Y (1999) Degradation of pentachlorophenol aqueous solutions using a continuous flow ultrasonic reactor: experimental performance and modelling. Ultrason Sonochem 5:125–131
Gonze E, Boldo P, Gonthier Y, Bernis A (1997) Étude de l’oxydation du pentachlorophénol dans
différentes géométries de réacteurs à ultrasons de haute fréquence. Can J Chem Eng 75:245–255
Hunicke RL (1990) Industrial applications of high power ultrasound for chemical reactions. Ultrasonics 28:291–294
Jamshidi R, Pohl B, Peuker UA, Brenner G (2012) Numerical investigation of sonochemical reactors
considering the effect of inhomogeneous bubble clouds on ultrasonic wave propagation. Chem
Eng J 189–190:364–375
Kumar PS, Pandit AB (1999) Modeling hydrodynamic cavitation. Chem Eng Technol 22:1017–1027
Leong T, Coventry M, Swiergon P, Knoezer K, Juliano P (2015) Ultrasound pressure distributions
generated by high frequency transducers in large reactors. Ultrason Sonochem 27:22–29
Louisnard O (2012) A simple model of ultrasound propagation in a cavitating liquid. Part II: primary
Bjerkness force and bubble structures. Ultrason Sonochem 19:66–76
Masson TJ, Chemat F, Ashokkumar M (2015) Power ultrasonics for food processing. Power Ultrasonics, Elsevier Ltd, pp 815–843
Mhetre AS, Gogate PR (2014) New design and mapping of sonochemical reactor operating at
capacity of 72 L. Chem Eng J 258:69–76
Pandit AB, Joshi JB (1993) Hydrolysis of fatty oils: effect of cavitation. Chem Eng Sci 48:3440–3442
Paquin M, Loranger E, Hannaux V, Chabot B, Daneault C (2013) The use of Weissler method for
scale-up a kraft pulp oxidation by TEMPO-mediated system from a batch mode to a continuous
flow-through sonoreactor. Ultrason Sonochem 20:103–108
Patist A, Bates D (2011) Industrial applications of high power ultrasonics. In: Ultrasound technologies for food and bioprocessing, food engineering series. Springer, New York, NY, pp 599–616
Perincek S, Uzgur AE, Duran K, Dogan A, Korlu AE, Bahtiyari IM (2009) Design parameter
investigation of industrial size ultrasound textile treatment bath. Ultrason Sonochem 16:184–189
Peshkovsky AS, Tryak S (2014) Continuous-flow production of a pharmaceutical nanoemulsion by
high-amplitude ultrasound: Process scale-up. Chem Eng Process 82:132–136
Petkovšek M, Zupanc M, Dular M, Kosjek T, Heath E, Kompare B, Širok B (2013) Rotation
generator of hydrodynamic cavitation for water treatment. Sep Purif Technol 118:415–423
Rinaldi L, Wu Z, Giovando S, Bracco M, Crudo D, Bosco V, Cravotto G (2017) Oxidative polymerization of waste cooking oil with air under hydrodynamic cavitation. Green Process Synth.
6:425–432
Saracco G, Arzano F (1968) Idrogenazione di olio di oliva in presenza di ultrasuoni. La Chimica e
L’Industria 50:314–316
Smagowska B (2013) Ultrasonic noise sources in a work environment. Arch Acoust 38:169–176
Suslick KS, Mdleleni MM, Ries JT (1997) Chemistry induced by hydrodynamic cavitation. J Am
Chem Soc 119:9303–9304
8 Scaling-Up Enabling the Full Potential of Industrial …
De La Rochebrochard S, Suptil J, Blais JF, Naffrechoux E (2012) Sonochemical efficiency dependence on liquid height and frequency in an improved sonochemical reactor. Ultrason Sonochem
19:280–285
Dular M, Griessler-Bulc T, Gutierez I, Heath E, Kosjek T, Krivograd Klemencic A, Oder M,
Petkovšek M, Raki N, Ravnikar M, Šarc A, Širok B, Zupanc M, Zitnik M, Kompare B (2016)
Use of hydrodynamic cavitation in (waste) water treatment. Ultrason Sonochem 29:577–588
Gallego-Juárez JA, Rodriguez G, Acosta V, Riera E (2010) Power ultrasonic transducers with
extensive radiators for industrial processing. Ultrason Sonochem 17:953–964
Gogate PR, Sutkar VS, Pandit AB (2011) Sonochemical reactors: Important design and scale up
considerations with a special emphasis on heterogeneous systems. Chem Eng J 166:1066–1082
Gonçalves I, Herrero-Yniesta V, Perales Arce I, Escrigas Castañeda M, Cavaco-Paulo A, Silva
C (2014) Ultrasonic pilot-scale reactor for enzymatic bleaching of cotton fabrics. Ultrason
Sonochem 21:1535–1543
Gondrexon N, Renaudin V, Petrier C, Boldo P, Bernis A, Gonthier Y (1999) Degradation of pentachlorophenol aqueous solutions using a continuous flow ultrasonic reactor: experimental performance and modelling. Ultrason Sonochem 5:125–131
Gonze E, Boldo P, Gonthier Y, Bernis A (1997) Étude de l’oxydation du pentachlorophénol dans
différentes géométries de réacteurs à ultrasons de haute fréquence. Can J Chem Eng 75:245–255
Hunicke RL (1990) Industrial applications of high power ultrasound for chemical reactions. Ultrasonics 28:291–294
Jamshidi R, Pohl B, Peuker UA, Brenner G (2012) Numerical investigation of sonochemical reactors
considering the effect of inhomogeneous bubble clouds on ultrasonic wave propagation. Chem
Eng J 189–190:364–375
Kumar PS, Pandit AB (1999) Modeling hydrodynamic cavitation. Chem Eng Technol 22:1017–1027
Leong T, Coventry M, Swiergon P, Knoezer K, Juliano P (2015) Ultrasound pressure distributions
generated by high frequency transducers in large reactors. Ultrason Sonochem 27:22–29
Louisnard O (2012) A simple model of ultrasound propagation in a cavitating liquid. Part II: primary
Bjerkness force and bubble structures. Ultrason Sonochem 19:66–76
Masson TJ, Chemat F, Ashokkumar M (2015) Power ultrasonics for food processing. Power Ultrasonics, Elsevier Ltd, pp 815–843
Mhetre AS, Gogate PR (2014) New design and mapping of sonochemical reactor operating at
capacity of 72 L. Chem Eng J 258:69–76
Pandit AB, Joshi JB (1993) Hydrolysis of fatty oils: effect of cavitation. Chem Eng Sci 48:3440–3442
Paquin M, Loranger E, Hannaux V, Chabot B, Daneault C (2013) The use of Weissler method for
scale-up a kraft pulp oxidation by TEMPO-mediated system from a batch mode to a continuous
flow-through sonoreactor. Ultrason Sonochem 20:103–108
Patist A, Bates D (2011) Industrial applications of high power ultrasonics. In: Ultrasound technologies for food and bioprocessing, food engineering series. Springer, New York, NY, pp 599–616
Perincek S, Uzgur AE, Duran K, Dogan A, Korlu AE, Bahtiyari IM (2009) Design parameter
investigation of industrial size ultrasound textile treatment bath. Ultrason Sonochem 16:184–189
Peshkovsky AS, Tryak S (2014) Continuous-flow production of a pharmaceutical nanoemulsion by
high-amplitude ultrasound: Process scale-up. Chem Eng Process 82:132–136
Petkovšek M, Zupanc M, Dular M, Kosjek T, Heath E, Kompare B, Širok B (2013) Rotation
generator of hydrodynamic cavitation for water treatment. Sep Purif Technol 118:415–423
Rinaldi L, Wu Z, Giovando S, Bracco M, Crudo D, Bosco V, Cravotto G (2017) Oxidative polymerization of waste cooking oil with air under hydrodynamic cavitation. Green Process Synth.
6:425–432
Saracco G, Arzano F (1968) Idrogenazione di olio di oliva in presenza di ultrasuoni. La Chimica e
L’Industria 50:314–316
Smagowska B (2013) Ultrasonic noise sources in a work environment. Arch Acoust 38:169–176
Suslick KS, Mdleleni MM, Ries JT (1997) Chemistry induced by hydrodynamic cavitation. J Am
Chem Soc 119:9303–9304
