Browse > Article

CFD Analysis on the Flow Characteristics of Diffuser/Nozzles for Micro-pumps  

Kim Donghwan (Graduate School, Sogang University)
Han Dong-Seok (Graduate School, Sogang University)
Jeong Siyoung (Department of Mechanical Engineering, Sogang University)
Hur Nahmkeon (Department of Mechanical Engineering, Sogang University)
Yoon Seok-Jin (Thin Film Technology Research Center, KIST)
Publication Information
Korean Journal of Air-Conditioning and Refrigeration Engineering / v.17, no.6, 2005 , pp. 544-551 More about this Journal
Abstract
The flow characteristics have been numerically investigated for various shapes of the diffuser/nozzles which are used for a valveless micro-pump. The important parameters considered in this study are the throat width ($15\~120\mu$m), the taper angle ($3.15\~25.2^{\circ}$), and the diffuser length ( $600\~4,800\mu$m), and the size of the middle chamber ($1\~16mm^2$). To find the optimal values for these parameters, steady state calculations have been performed assuming the constant pressure difference between the inlet and exit of the flow For the taper angle and the throat width, it is found that there exists an optimum at which the net flow rate is the greatest. The optimal taper angle is in the range of $10\~20^{\circ}$ for all the pressure differences; and the throat width indicates an optimal value near $75\mu$m for the case of 35 kPa pressure difference. The net flow rate is also influenced by the size of the middle chamber. With decreasing chamber size, the net flow rate is reduced because of the interference between two streams flowing into the middle chamber. The unsteady pulsating flow characteristics for a micro-pump with a given diffuser/nozzle shape have been also investigated to show the validity of the steady state parametric study.
Keywords
Diffuser; Nozzle; Micropump; CFD;
Citations & Related Records
연도 인용수 순위
  • Reference
1 Olsson, A, Enoksson, P., Stemme, G. and Stemme, E., 1997, Micromachined flat-walled valveless diffuser pumps, J. MEMS, Vol. 6, No. 6, pp. 87-91
2 Olsson, A, Stemme, G. and Stemme, E., 1999, A numerical design study of the valveless diffuser pump using a lumped-mass model, J. Micromech. Microeng., Vol. 9, pp. 34-44   DOI   ScienceOn
3 Heschel, M., Mullenborn, M. and Bouwstra, S., 1997, Fabrication and characterization of truly 3-D diffuser/nozzle microstructures in silicon, J. MEMS, Vol. 6, No. 1, pp. 41-47   DOI   ScienceOn
4 Olsson, A., Stemme, G. and Stemme, E., 1995, A valve-less planar fluid pump with two pump chambers, J. Sensors and Actuators, A 46-47, pp.549-556   DOI   ScienceOn
5 Ullmann, A., 1998, The piezoelectric valveless pump-performance enhancement analysis, J. Sensors and Actuators, A 69, pp.97-105
6 Olsson, A., Stemme, G. and Stemme, E., 1997, Simulation studies of diffuser and nozzle elements for valve-less micropumps, Proceedings, Transducers, Chicago, pp. 16-19
7 STAR-CD Methodology, Computational Dynamics Ltd., 1999, Ver. 3.10
8 Olsson, A., Stemme, G. and Stemme, E., 2000, Numerical and experimental studies of flatwalled diffuser elements for valve-less micropumps, Sensors and Actuators, Vol. 84,. pp. 165-175   DOI   ScienceOn