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Ferrofluid actuation with varying magnetic fields for micropumping applications

机译:磁场变化的铁磁流体致动,用于微泵应用

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摘要

Magnetic nanoparticle suspensions and their manipulation are becoming an alternative research line. They have vital applications in the field of microfluidics such as microscale flow control in microfluidic circuits, actuation of fluids in microscale, and drug delivery mechanisms. In microscale, it is possible and beneficial to use magnetic fields as actuators of such ferrofluids, where these fluids could move along a dynamic gradient of magnetic field so that a micropump could be generated with this technique. Thus, magnetically actuated ferrofluids could have the potential to be used as an alternative micro pumping system. Magnetic actuation of nanofluids is becoming an emergent field that will open up new possibilities in various fields of engineering. Different families of devices actuating ferrofluids were designed and developed in this study to reveal this potential. A family of these devices actuates discrete plugs, whereas a second family of devices generates continuous flows in tubes of inner diameters ranging from 254 urn to 1.56 mm. The devices were first tested with minitubes to prove the effectiveness of the proposed actuation method. The setups were then adjusted to conduct experiments on microtubes. Promising results were obtained from the experiments. Flow rates up to 120 and 0.135 μl/s were achieved in minitubes and microtubes with modest maximum magnetic field magnitudes of 300 mT for discontinuous and continuous actuation, respectively. The proposed magnetic actuation method was proven to work as intended and is expected to be a strong alternative to the existing micropumping methods such as electromechanical, electrokinetic, and piezoelectric actuation. The results suggest that ferrofluids with magnetic nanoparticles merit more research efforts in micro pumping.
机译:磁性纳米颗粒悬浮液及其操作正在成为替代研究领域。它们在微流体领域具有至关重要的应用,例如微流体回路中的微尺度流量控制,微尺度流体的致动以及药物输送机制。在微尺度上,将磁场用作此类铁磁流体的致动器是可能且有益的,其中这些流体可沿磁场的动态梯度移动,从而可使用此技术生成微型泵。因此,磁驱动的铁磁流体可能具有用作替代微泵系统的潜力。纳米流体的磁驱动正在成为一个新兴领域,它将在各个工程领域中开辟新的可能性。在这项研究中,设计和开发了不同系列的驱动铁磁流体的设备,以揭示这种潜力。这些设备家族可致动离散的塞子,而第二个设备家族可在内径254微米至1.56毫米的管中产生连续流动。该设备首先用微型管进行了测试,以证明所提出的致动方法的有效性。然后调整设置以在微管上进行实验。从实验中获得了有希望的结果。在不连续和连续驱动的微型管和微管中,最大适度的最大磁场强度为300 mT时,流速分别达到120和0.135μl/ s。所提出的磁激励方法被证明可以按预期工作,并且有望替代现有的微泵方法,例如机电,电动和压电激励。结果表明,具有磁性纳米粒子的铁磁流体在微泵方面值得进行更多的研究。

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