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Theoretical prediction of the yield of strong oxides under acoustic cavitation |
Jing Sun(孙晶), Zhuangzhi Shen(沈壮志), Runyang Mo(莫润阳) |
Shaanxi Normal University, Shaanxi Key Laboratory of Ultrasonics, Xi'an 710119, China |
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Abstract Considering liquid viscosity, surface tension, and liquid compressibility, the effects of dynamical behaviors of cavitation bubbles on temperature and the amount of oxides inside the bubble are numerically investigated by acoustic field, regarding water as a work medium. The effects of acoustic frequency, acoustic pressure amplitude, and driving waveforms on bubble temperature and the number of oxides inside the bubbles by rapid collapse of cavitation bubbles are analysed. The results show that the changes of acoustic frequency, acoustic pressure amplitude, and driving waveforms not only have an effect on temperature and the number of oxides inside the bubble, but also influence the degradation species of pollution, which provides guidance for improving the degradation of water pollution.
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Received: 20 September 2018
Revised: 05 November 2018
Accepted manuscript online:
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PACS:
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43.35.+d
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(Ultrasonics, quantum acoustics, and physical effects of sound)
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43.30.+m
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(Underwater sound)
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89.60.Ec
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(Environmental safety)
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82.20.-w
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(Chemical kinetics and dynamics)
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Fund: Project supported by the National Natural Science Foundation of China (Grant No. 11674207). |
Corresponding Authors:
Zhuangzhi Shen, Runyang Mo
E-mail: szz6@163.com;mmrryycn@snnu.edu.cn
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Cite this article:
Jing Sun(孙晶), Zhuangzhi Shen(沈壮志), Runyang Mo(莫润阳) Theoretical prediction of the yield of strong oxides under acoustic cavitation 2019 Chin. Phys. B 28 014301
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[1] |
Mason T J 1926 Chem. Ind. 18 47
|
[2] |
Henglein A and Kormann C 1985 Int. J. Radiat. Biol. 48 251
|
[3] |
Hua L, Hochemer R H and Hoffmann M R 1995 J. Phys. Chem. 99 8
|
[4] |
Gutierrez M and Henglein A 1988 J. Phys. Chem. 92 2978
|
[5] |
Liu Y 1985 Appl. Acoust. 18 35 (in Chinese)
|
[6] |
Suzuki Y, Maezawa A and Uchida S 1999 Chem. Eng. Technol. 22 507
|
[7] |
Okuno H, Yim B, Mizukoshi Y, Nagata Y and Maeda Y 2000 Ultrason. Sonochem. 7 261
|
[8] |
Ku Y, Chen K Y and Lee K C 1997 Water Res. 31 929
|
[9] |
Jiang Y, Pétrier C and David W T 2002 Ultrason. Sonochem. 9 163
|
[10] |
Fu M, Gao Y, Wang X H and Ding P D 2002 Acta Scientiae Circumstantiae 22 402 (in Chinese)
|
[11] |
De V A, Langenhove H V and Eenoo P V 1997 Ultrason. Sonochem. 4 145
|
[12] |
Ashish B and Michael C H 1994 Environ. Sci. Technol. 28 1481
|
[13] |
Zhao B B and Wang L 2002 Chem. Eng. 21 (in Chinese)
|
[14] |
Drijvers D, De B R, De V A and Langenhove H V 1996 Ultrason. Sonochem. 3 S83
|
[15] |
Entezari M H, Kruus P and Otson R 1997 Ultrason. Sonochem. 4 49
|
[16] |
Petrier C and Francony A 1997 Ultrason. Sonochem. 4 295
|
[17] |
Cum G, Galli G, Gallo R and Spadaro A 1992 Ultrasonics 30 267
|
[18] |
Price G J, Matthias P and Leoz E J 1994 Process Saf. Environ. 72 27
|
[19] |
Terese M O and Philippe F B 1994 Water Res. 28 1383
|
[20] |
Chen W, Fan J C, Chen L and Qian M L 2000 China Water & Wastewater 1 (in Chinese)
|
[21] |
Chen W Z 2014 Acoustic Cavitation Physics (Beijing: Science Press) p. 269
|
[22] |
Yasui K 1997 J. Phys. Soc. Jpn. 66 2911
|
[23] |
Kamath V and Prosperetti A 1993 J. Acoust. Soc. Am. 94 248
|
[24] |
Yasui K, Toru T, Manickam S and Yasuo I 2005 J. Chem. Phys. 122 224706
|
[25] |
Li C L, Lu T and An Y 2008 Technical Acoustics 27 481 (in Chinese)
|
[26] |
Toegel R, Gompf B, Pecha R and Lohse D 2000 Phys. Rev. Lett. 85 3165
|
[27] |
Keller J B and Miksis M 1980 J. Acoust. Soc. Am. 68 628
|
[28] |
Yasui K 1998 Electron. Comm. Jpn. Pt. Ⅱ 81 39
|
[29] |
Krishnan J S, Dwivedi P and Moholkar V S 2006 Ind. Eng. Chem. Res. 45 1493
|
[30] |
Sivasankar T and Moholkar V S 2008 Chemosphere 72 1795
|
[31] |
Sivasankar T and Moholkar V S 2009 Chem. Eng. J. 149 57
|
[32] |
Yasui K, Toru T, Yasuo I and Mitome H 2003 J. Chem. Phys. 119 346
|
[33] |
Suslick K S, Hammerton D A and Cline T R E 1986 J. Am. Chem. Soc. 108 5641
|
[34] |
Sivasankar T, Paunikar A W and Moholkar V S 2007 Aiche J. 53 1132
|
[35] |
Shemer H and Narkis N 2005 Ultrason. Sonochem. 12 495
|
[36] |
Deng S F, Bai M D, Bai X Y and Liu X W 2004 Journal of Dalian Maritime University 30 62 (in Chinese)
|
[37] |
F1nd1k S and Gunduz E 2006 Ultrason. Sonochem. 13 203
|
[38] |
Nie G Q, Wu Y G, Li X and Wang Q H 2008 Technology of Water Treatment 34 11
|
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