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Study on Drug Powder Acceleration in a Micro Shock Tube

机译:微震管中药粉加速的研究

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Recently, needle-free drug delivery systems have been widely used for delivering drug particles into human body without any external needles in medical fields. Drug powders should be accelerated to obtain enough momentum to be delivered into the suitable layer of the skin. This is achieved by accelerating drug particles in a Contoured Shock Tube (CST) which consists of a micro shock tube and an expanded supersonic nozzle. Shock wave happens in micro shock tube, and supersonic flow with particles is induced by the shock wave and accelerated in the expanded nozzle. Even though micro shock tubes have been studied for a long time, detailed experimental data for shock waves and particle-gas flows are sparse to date and it is very important to investigate the complicated particle-gas flow fields for practical applications. In the present study, Particle Tracking Velocimetry (PTV) was used to measure the average velocity of the gas-particle flow behind the propagating shock wave. Unsteady flow properties and shock wave propagation were analyzed by this instantaneous particle velocity fields. Numerical simulation was performed with unsteady compressible Naver-stokes equations which were solved by using a fully implicit finite volume scheme. Discrete Phase Model (DPM) has been used for simulating particle-gas two-phase flows. Different particle diameter and density were performed in present numerical studies. Unsteady particle-gas flow characteristics and shock wave propagation have been studied and analyzed in details in present micro shock tube model.
机译:近来,无针药物输送系统已被广泛用于在医学领域中将药物颗粒输送到人体中而无需任何外部针头的情况。应该加速药物粉末以获得足够的动量,以传递到皮肤的适当层中。这是通过在轮廓化的冲击管(CST)中加速药物颗粒来实现的,该冲击管由一个微型冲击管和一个扩展的超音速喷嘴组成。冲击波发生在微型激波管中,冲击波引起超音速颗粒流并在膨胀的喷嘴中加速。尽管已经对微型冲击管进行了长时间的研究,但迄今为止,有关冲击波和颗粒气体流的详细实验数据仍然很少,因此在实际应用中研究复杂的颗粒气体流场非常重要。在本研究中,使用粒子跟踪测速法(PTV)来测量传播的冲击波后面的气体粒子流的平均速度。通过该瞬时粒子速度场分析了非定常流动特性和冲击波传播。使用非稳态可压缩Naver-stokes方程进行了数值模拟,该方程通过使用完全隐式有限体积方案进行了求解。离散相模型(DPM)已用于模拟颗粒气体两相流。在当前的数值研究中进行了不同的粒径和密度。在当前的微型激波管模型中,已经对非定常颗粒气体的流动特性和激波传播进行了研究和分析。

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