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Experimental investigation of CNT-Based micro bubble generation inside microchannels

机译:微通道内部基于CNT的微气泡产生的实验研究

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Based on previous experimental results of the Carbon Nanotubes-based (CNTs-based) micro bubble generation in static water presented by our group, the dynamic characteristic of CNTs-based micro bubble will be introduced in this paper. The movement of CNTs-based micro bubble is categorized into two forms: micro bubble transportation in the micro channel driven by aqueous flow induced by the micro pump and the vibration of micro bubble on the nucleation site stimulated by the pulsed current. The CNTs-based micro bubble can be generated by micro-watt power (< 110 muW) meanwhile its growth is well controlled by muA current input. Because the micro channel is used as the chamber for the micro bubble generation, the micro bubble transportation can be achieved in it. In the static water of the micro channel (i.e. there is no flow in the micro channel), the micro bubble can vibrate with frequency as the same as the input pulsed current (f < 40 Hz). The driving power for the micro bubble vibration can be as low as micro-watt too. The vibration distance is around 5~10 mum and during the vibration process, the diameter of the micro bubble can stay at a relatively constant value. With merits of low power consumption and the controllable vibration frequency, the movement of CNTs-based micro bubble is promising applications in future such as micro manipulation and micro actuator.
机译:根据我们小组先前在静态水中产生碳纳米管基(CNTs)微气泡的实验结果,本文将介绍碳纳米管基微气泡的动态特性。基于CNT的微气泡的运动分为两种形式:由微泵引起的水流驱动的微通道中的微气泡运输,以及脉冲电流在成核部位的微气泡振动。基于CNT的微气泡可通过微瓦功率(<110μW)产生,同时其生长可通过输入μA电流很好地控制。因为将微通道用作产生微气泡的腔室,所以可以在其中实现微气泡的输送。在微通道的静态水中(即,微通道中没有流动),微气泡会以与输入脉冲电流相同的频率振动(f <40 Hz)。微气泡振动的驱动力也可以低至微瓦。振动距离约为5〜10微米,并且在振动过程中,微气泡的直径可以保持相对恒定的值。凭借低功耗和可控制的振动频率的优点,基于CNT的微气泡的运动在诸如微操纵和微致动器等未来应用中很有希望。

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