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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, micro shock tubes have been widely used in the medical engineering. The needle-free drug delivery device which mainly consists of a micro shock tube and an expanded nozzle has been produced to inject drug powders into human and animal bodies without any sharp metal needles. The drug powders were delivered by obtaining high momentum, which can be done by accelerating drug powders in the micro shock tube and supersonic nozzle. The particle-gas flows are induced by the incident shock wave developing by rupturing the diaphragm in the micro shock tube and again accelerated in the supersonic nozzle. The momentum of injected drug particles should be strictly controlled otherwise patients will suffer from skin injury or hurt. Even though micro shock tubes have been investigated in the past several decades, the detailed studies on particle-gas flows in the micro shock tube were rare to date due to the micro size and difficult experimental operation on micro shock tubes. In this paper, the experimental and numerical studies were carried out on investigating particle-gas flows in a designed micro shock tube. Particle tracking velocimetry (PTV) was performed to calculated particle average velocity at the exit of the supersonic nozzle. The nozzle flows were analyzed by obtaining instantaneous particle fields. The particle number density ratio was also investigated in the test section. The numerical simulations were performed by calculating unsteady Naver-Stokes equations on compressible flows and using fully implicit finite volume schemes. Discrete phase model (DPM) was used for simulating particle-gas flows in the micro shock tube. Particle diameter and density were varied to investigate their effects on the particle-gas flows. Unsteady particle-gas flows and shock wave propagation were obtained in details in the micro shock tube for present experimental and numerical studies.
机译:近来,微冲击管已被广泛用于医学工程。已经生产出主要由微震管和膨胀喷嘴组成的无针药物输送装置,无需任何尖锐的金属针即可将药物粉末注射到人和动物体内。通过获得高动量来递送药物粉末,这可以通过在微震管和超音速喷嘴中加速药物粉末来完成。微粒气体流是由入射冲击波引起的,入射冲击波通过破裂微冲击管中的隔膜而产生,并在超音速喷嘴中再次加速。注射药物颗粒的动量应严格控制,否则患者会遭受皮肤伤害或伤害。尽管在过去的几十年中对微型激波管进行了研究,但由于微型激波管的尺寸小和实验操作难度大,因此至今仍很少有关于微型激波管中颗粒气体流动的详细研究。在本文中,在研究设计的微型激波管中的颗粒气体流动方面进行了实验和数值研究。进行粒子跟踪测速(PTV),以计算超音速喷嘴出口处的粒子平均速度。通过获得瞬时粒子场来分析喷嘴流量。在测试部分中还研究了颗粒数密度比。通过在可压缩流上计算非定常Naver-Stokes方程并使用完全隐式有限体积方案来进行数值模拟。离散相模型(DPM)用于模拟微冲击管中的颗粒气体流动。改变粒径和密度以研究它们对颗粒气流的影响。在微冲击管中详细获得了不稳定的颗粒气体流量和冲击波传播,用于当前的实验和数值研究。

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