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Electrical Characterization of 65 W Cubic Sonoreactor with Horizontally Stacked Transducers

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
A sonoreactor was assembled with stacked lead zirconate titanate transducers. These transducers were attached on one side of a 10×10×10 cm3 chamber and driven by an integrated circuit power amplifier. The impedance of the reactor was analyzed in order to determine a matching inductance. The electrical frequency could be varied from 20 to 50 kHz and the electrical output power was adjustable up to 65 W. The highest power was obtained in the case of resonance at 31 kHz and the maximum temperature at the heat sink of the amplifier rose to 42.0ºC. Both acoustic cavitation and mechanical effects could be utilized in this sonoreactor for a variety of purposes including sonochemical synthesis, ultrasonic cleaning and microbial cell disruption.
Rocznik
Strony
149--153
Opis fizyczny
Bibliogr. 22 poz., fot., rys., wykr.
Twórcy
  • Department of Physics, School of Science, Walailak University, Nakhon Si Thammarat, Thailand
autor
  • Department of Physics, School of Science, Walailak University, Nakhon Si Thammarat, Thailand
  • Department of Physics, Faculty of Science, Thaksin University, Phatthalung, Thailand
  • Department of Physics, School of Science, Walailak University, Nakhon Si Thammarat, Thailand
  • Department of Physics, School of Science, Walailak University, Nakhon Si Thammarat, Thailand
Bibliografia
  • 1. Borthwick K. A. J., Coakley W. T., McDonnell M. B., Nowotny H., Benes E., Gröschl M. (2005), Development of a novel compact sonicator for cell disruption, Journal of Microbiological Methods, 60, 2, 207–216.
  • 2. de La Rochebrochard S., Suptil J., Blais J. F., Naffrechoux E. (2012), Sonochemical efficiency dependence on liquid height and frequency in an improved sonochemical reactor, Ultrasonics Sonochemistry, 19, 2, 280–285.
  • 3. Esclapez M. D., Garcia-Perez J. V., Mulet A., Carcel J. A. (2011), Ultrasound-assisted extraction of natural products, Food Engineering Reviews, 3, 2, 108–120.
  • 4. Guesmi A., Ben Hamadi N., Ladhari N., Sakli F. (2013), Sonicator dyeing of modified acrylic fabrics with indicaxanthin natural dye, Industrial Crops and Products, 42, 1, 63–69.
  • 5. Hallez L., Touyeras F., Hihn J.Y., Klima J. (2007), Energetic balance in an ultrasonic reactor using focused or flat high frequency transducers, Ultrasonics Sonochemistry, 14, 6, 739–749.
  • 6. Jordens J., Honings A., Degreve J., Braeken L., Van Gerven T. (2013), Investigation of design parameters in ultrasound reactors with confined channels, Ultrasonics Sonochemistry, 20, 6, 1345–1352.
  • 7. Kentish S., Feng H. (2014), Applications of power ultrasound in food processing, Annual Review of Food Science and Technology, 5, 263–284.
  • 8. Khmelev S. S., Khmelev V. N., Golykh R. N., Shalunov A. V. (2015), Development and research of concentrator-sonotrode with increased radiating surface, Archives of Acoustics, 40, 1, 129–135.
  • 9. Kim E., Cui M., Jang M., Park B., Son Y., Khim J. (2014), Investigation of sonochemical activities at a frequency of 334 kHz: the effect of geometric parameters of sonoreactor, Ultrasonics Sonochemistry, 21, 4, 1504–1511.
  • 10. Loranger E., Paquin M., Daneault C., Chabot B. (2011), Comparative study of sonochemical effects in an ultrasonic bath and in a large-scale flow-through sonoreactor, Chemical Engineering Journal, 178, 359–365.
  • 11. Memoli G., Gelat P. N., Hodnett M., Zeqiri B. (2012), Characterisation and improvement of a reference cylindrical sonoreactor, Ultrasonics Sonochemistry, 19, 4, 939–952.
  • 12. Niazi S., Hashemabadi S. H., Noroozi S. (2014), Numerical simulation of operational parameters and sonoreactor configurations for the highest possibility of acoustic cavitation in crude oil, Chemical Engineering Communications, 210, 1340–1359.
  • 13. Nikitenko S. I., Le Naour C., Moisy P. (2007), Comparative study of sonochemical reactors with different geometry using thermal and chemical probes, Ultrasonics Sonochemistry, 14, 3, 330–336.
  • 14. Petosic A., Svilar D., Ivancevic B. (2011), Comparison of measured acoustic power results gained by using three different methods on an ultrasonic low-frequency device, Ultrasonics Sonochemistry, 18, 2, 567–576.
  • 15. Pholnak C., Suwanboon S., Sirisathitkul C. (2014), Evolution and temperature dependence of ZnO formation by high power sonication, Journal of Materials Science: Materials in Electronics, 24, 5014–5022.
  • 16. Saez V., Frĭas-Ferrer A., Iniesta J., Gonzalez-Garcia J., Aldaz A., Riera E. (2005), Chacterization of a 20 kHz sonicator. Part I: Analysis of mechanical effects by classical and numerical methods, Ultrasonics Sonochemistry, 12, 1–2, 59–65.
  • 17. Saikia B. K., Dutta A. M., Saikia L., Ahmed S., Baruah B. P. (2014), Ultrasonic assisted cleaning of high sulphur Indian coals in water and mixed alkali, Fuel Processing Technology, 123, 107–113.
  • 18. Shao Z., Le Q., Zhang Z., Cui J. (2012), Effect of ultrasonic power on grain refinement and purification processing of AZ80 alloy by ultrasonic treatment, Metals and Materials International, 18, 209–215.
  • 19. Son Y., Lim M., Song J. H., Khim J. (2009), Liquid height effect on sonochemical reactions in a 35 kHz sonoreactor, Japanese Journal of Applied Physics, 48, 07GM16.
  • 20. Son Y., Lim M., Khim J., Ashokkumar M. (2012), Acoustic emission spectra and sonochemical activity in a 36 kHz sonoreactor, Ultrasonics Sonochemistry, 19, 1, 16–21.
  • 21. Thangavadiyel K., Owens G., Lesniewski P. J., Okitsu K. (2013), Influence of reactor shapes on residence time distribution and methyl orange degradation efficiency in a continuous process under indirect 200 kHz sonication, Industrial & Engineering Chemistry Research, 52, 18175–18183.
  • 22. Zawieja I., Wolny L. (2011), Effect of sonicator power on the biodegradability of sewage sludge, Rocznik Ochrona Środowiska, 13, 1719–1730.
Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-495b9bc4-2622-42c0-abcd-9ee0ff3a42c7
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