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High undercooling of bulk water during acoustic levitation 被引量:1

High undercooling of bulk water during acoustic levitation
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摘要 The experiments on undercooling of acoustically levitated water drops with the radius of 5-8 mm are carried out, and the maximum undercooling of 24 K is obtained in such a containerless state. Various factors influencing the undercoolability of water under acoustic levitation are synthetically analyzed. The experimental results indicate that impurities tend to decrease the undercooling level, whereas the dominant factor is the effect of ultrasound. The stirring and cavitation effects of ultrasound tend to stimulate the nucleation of water and prevent further bulk undercooling in experiments. The stirring effect provides some extra energy fluctuation to overcome the thermodynamic barrier for nucleation. The local high pressure caused by cavitation effect increases the local undercooling in water and stimulates nucleation before the achievement of a large bulk undercooling. According to the cooling curves, the dendrite growth velocity of ice is estimated, which is in good agreement with the theoretical prediction at the lower undercooling. The theoretical calculation predicts a dendrite growth velocity of 0.23 m/s corresponding to the maximum undercooling of 24 K, at which the rapid solidification of ice occurs. The experiments on undercooling of acoustically levitated water drops with the radius of 5–8 mm are carried out, and the maximum undercooling of 24 K is obtained in such a containerless state. Various factors influencing the undercoolability of water under acoustic levitation are synthetically analyzed. The experimental results indicate that impurities tend to decrease the undercooling level, whereas the dominant factor is the effect of ultrasound. The stirring and cavitation effects of ultrasound tend to stimulate the nucleation of water and prevent further bulk undercooling in experiments. The stirring effect provides some extra energy fluctuation to overcome the thermodynamic barrier for nucleation. The local high pressure caused by cavitation effect increases the local undercooling in water and stimulates nucleation before the achievement of a large bulk undercooling. According to the cooling curves, the dendrite growth velocity of ice is estimated, which is in good agreement with the theoretical prediction at the lower undercooling. The theoretical calculation predicts a dendrite growth velocity of 0.23 m/s corresponding to the maximum undercooling of 24 K, at which the rapid solidification of ice occurs.
出处 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS 2003年第3期259-267,共9页 中国科学:物理学、力学、天文学(英文版)
基金 the National Natural Science Foundation of China(Grant Nos.50101010&502211011) Fok Ying Tung Education Foundation(Grant No.71044)
关键词 ACOUSTIC levitation undercooling water CRYSTAL growth. acoustic levitation undercooling water crystal growth
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参考文献11

  • 1解文军,曹崇德,魏炳波.声悬浮的实验研究和数值模拟分析[J].物理学报,1999,48(2):250-256. 被引量:32
  • 2Mishima O,Stanley H E.The relationship between liquid, supercooling and glass water[].Nature.1998
  • 3Mishima,O,Calvert,LD,Whalley,E.“Melting ice I” at 77 K and 10 kbar: a new method for making amorphous solids[].Nature.1984
  • 4Kanno H,Speedy R J,Angell C A.Supercooling of water to-92℃ under pressure[].Science.1975
  • 5Smith R S,Bruce D K.The existence of supercooled liquid water at 150 K[].Nature.1999
  • 6Sassen K,Liou K N,Kinne S,et al.Highly supercooled cirrus cloud watencinfirmation and climatic implications[].Science.1985
  • 7Hare D E,Sorensen C M.The density of supercooled water.II. Bulk samples cooled to the homgeneous nucleation limit[].The Journal of Chemical Physics.1987
  • 8Trinh E H,Apfel R E.Sound velocity of supercooled water down to-33℃ using acoustic levitation[].The Journal of Chemical Physics.1980
  • 9E. H. Trinh,P. L. Marston and J. L. Robey.Acoustic measurement of the surface tension of levitated drops[].Journal of Colloid and Interface Science.1988
  • 10Brandt E H.Suspended by sound[].Nature.2001

二级参考文献4

  • 1Ma Dayou,声学学报,1992年,17卷,363页
  • 2Qian Zuwen,物理,1991年,20卷,261页
  • 3Wang T G,Phys Rev Lett,1986年,56卷,452页
  • 4Liang Kunmiao,Mathematical and Physical Equations(in Chinese)(第2版),1978年,428页

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