BubbleMaster气泡检测仪
BubbleMaster气泡检测仪
BubbleMaster气泡检测仪
BubbleMaster气泡检测仪

¥10万 - 30万

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加野麦克斯

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BubbleMaster

--

亚洲

  • 金牌
  • 第17年
  • 一般经销商
  • 营业执照已审核
核心参数

BubbleMaster气泡检测仪

气泡尺寸和速度检测分析系统

该系统采用检测气泡穿过楔形光纤端部反射光强方法测量每个分立气泡的尺寸和速度. 其特点是:

  1. 可以同时测量气泡尺寸和速度.

  2. 适用于电绝缘流体

  3. 通过对接触角的修正计算获得高精度测量结果(F-Top型传感器)

系统构成:

  1. 光纤单元

  2. 高精度4端头光纤

  3. 模数转换器(A/D)

  4. 计算机

  5. 测量分析软件平台

应用:

  • 原子核反应堆冷却系统

  • 空化研究

  • 鼓泡塔

  • 溶液中的气体扩散

相关方案

  • This paper highlights the influence of contact line (pinning) forces on the mobility of dry bubbles in microchannels. Bubbles moving at velocities less than the dewetting velocity of liquid on the surface are essentially dry, meaning that there is no thin liquid film around the bubbles. For these “dry” bubbles, contact line forces and a possible capillary pressure gradient induced by pinning act on the bubbles and resist motion. Without sufficient driving force (e.g. external pressure) a dry bubble is brought to stagnation. For the first time, a bipartite theoretical model that estimates the required pressure difference across the length of stagnant bubbles with concave and convex back interfaces to overcome the contact line forces and stimulate motion is proposed. To validate our theory, the pressure required to move a single dry bubble in square microchannels exhibiting contact angle hysteresis has been measured. The working fluid was deionized water. The experiments have been conducted on coated glass channels with different surface hydrophilicities that resulted in concave and convex back interfaces for the bubbles. The experimental results were in agreement with the model’s predictions for square channels. The predictions of the concave and convex back models were within 19% and 27% of the experimental measurements, respectively.

    其他 2016-11-10

  • This paper highlights the influence of contact line (pinning) forces on the mobility of dry bubbles in microchannels. Bubbles moving at velocities less than the dewetting velocity of liquid on the surface are essentially dry, meaning that there is no thin liquid film around the bubbles. For these “dry” bubbles, contact line forces and a possible capillary pressure gradient induced by pinning act on the bubbles and resist motion. Without sufficient driving force (e.g. external pressure) a dry bubble is brought to stagnation. For the first time, a bipartite theoretical model that estimates the required pressure difference across the length of stagnant bubbles with concave and convex back interfaces to overcome the contact line forces and stimulate motion is proposed. To validate our theory, the pressure required to move a single dry bubble in square microchannels exhibiting contact angle hysteresis has been measured. The working fluid was deionized water. The experiments have been conducted on coated glass channels with different surface hydrophilicities that resulted in concave and convex back interfaces for the bubbles. The experimental results were in agreement with the model’s predictions for square channels. The predictions of the concave and convex back models were within 19% and 27% of the experimental measurements, respectively.

    其他 2016-11-10

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