• Title/Summary/Keyword: 기포핵형성

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Effect of Promoting/Inhibiting Bubble Generation of Carbonate Solution on Superhydrophilic/Superhydrophobic Surfaces (극친수/극소수 표면에서 탄산용액의 기포 발생 촉진/억제 효과 분석 연구)

  • Lee, Jeong-Won
    • Journal of the Korean Society of Manufacturing Process Engineers
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    • v.21 no.7
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    • pp.77-83
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    • 2022
  • When carbon dioxide in a liquid becomes supersaturated, carbon dioxide gas bubbles are generated in the liquid, and they ascend to the surface as they develop further. At this time, the inner wall of the cup with carbon gas attached is known as the entrapped gas cavity (EGS); once an EGS is established, it does not disappear and will continuously create carbon bubbles. This bubbling phenomenon can be activated or suppressed by changing the properties of the solid surface in contact with the carbonated liquid. In this study, the foaming of carbonated liquid is promoted or suppressed by modifying the wettability of the surface. A micro/nano surface structure is formed on the surface of an aluminum cup to produce a superhydrophilic surface, and a superhydrophobic surface similar to a lotus leaf is synthesized via fluorination. Experiment results show that the amount of carbon dioxide bubble generated differs significantly in the first few seconds depending on the surface, and that the amount of gas generated after it enters the stabilization period is the same regardless of the wettability of the cup surface.

Bubble Formation in Liquid Helium under Negative Pressure by Quantum Tunneling near Absolute Zero Temperature (절대 0도 부근에서 양자터널링에 의한 헬리움(He)액체의 부압하에서의 기포형성)

  • Kwak, H.;Jung, J.;Hong, J.
    • Proceedings of the KSME Conference
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    • 2001.06d
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    • pp.354-359
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    • 2001
  • As the temperature of liquid under negative pressure approaches the absolute zero, the nucleation process due to thermal fluctuations hardly occurs. Instead of this mechanism, quantum fluctuations may lead the formation of nucleus for new phase in metastable state. In this study, the thermal as well as quantum nucleation bubble in liquid helium under negative pressure was investigated theoretically. The energy barrier against nucleation was estimated by molecular interaction due to the Londom dispersion force. It is shown that the phase transition from liquid to vapor in is possible due to the quantum tunneling below 0.2 K for Helium-4 and 0.1 K for Helium-3, at negative pressures close to the ideal tensile strength at which every liquid molecules become bubbles simultaneously.

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