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Original Articles

SPICE modelling and design optimization of micropumps

Pages 687-698 | Received 08 Nov 2004, Accepted 15 Feb 2005, Published online: 25 Jan 2007

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Read on this site (1)

Yeng-Yung Tsui & Shin-En Wu. (2009) Modeling of Valveless Micropumps. Numerical Heat Transfer, Part A: Applications 56:9, pages 727-745.
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Articles from other publishers (18)

Zhenglin Li, Chao Liu & Jiashu Sun. (2023) Hydraulic–electric analogy for design and operation of microfluidic systems. Lab on a Chip 23:15, pages 3311-3327.
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Zheng Zhang, Lipeng He, Jianwen Zhou, Yi Hou, Dianbin Hu & Guangming Cheng. (2022) Design and study of an integral valve piezoelectric pump with a novel working mode. Review of Scientific Instruments 93:2.
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Ali Khodayari Bavil, Vladimir Coltisor, Zachary Estlack & Jungkyu Kim. (2021) A pneumatically controlled microfluidic rectifier enabling zero backflow under pulsatile flow regime. Journal of Micromechanics and Microengineering 31:9, pages 095009.
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Jianhui Zhang, Yuan Wang & Jun Huang. (2018) Equivalent Circuit Modeling for a Valveless Piezoelectric Pump. Sensors 18:9, pages 2881.
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Bingshan Hu & Hongliu Yu. (2018) Optimal Design and Simulation of a Microsuction Cup Integrated with a Valveless Piezoelectric Pump for Robotics. Shock and Vibration 2018, pages 1-16.
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T.N. Gerasimenko, O.V. Kindeeva, V.A. Petrov, A.I. Khaustov & E.V. Trushkin. (2017) Modelling and characterization of a pneumatically actuated peristaltic micropump. Applied Mathematical Modelling 52, pages 590-602.
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Bharathkumar Hegde & N. S. Dinesh. (2017) Design, development and characterization of variable reluctance ferrofluid pump. Microsystem Technologies 23:10, pages 5023-5040.
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Bharathkumar Hegde & Dinesh N. S.. (2015) Design, modeling and simulation of a novel variable reluctance type linear ferrofluid pump. Design, modeling and simulation of a novel variable reluctance type linear ferrofluid pump.
Francisco Antonio Perdigones, Antonio Luque & Jose M. Quero. (2014) Correspondence Between Electronics and Fluids in MEMS: Designing Microfluidic Systems Using Electronics. IEEE Industrial Electronics Magazine 8:4, pages 6-17.
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Hamzeh. K. Bardaweel. (2014) Understanding frequency response of thermal micropumps using electrical network analogy. Canadian Journal of Physics 92:10, pages 1178-1184.
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Xue Yan Wang, Yu Ting Ma, Gang Yi Yan, Dan Huang & Zhi Hua Feng. (2014) High flow-rate piezoelectric micropump with two fixed ends polydimethylsiloxane valves and compressible spaces. Sensors and Actuators A: Physical 218, pages 94-104.
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Hamzeh K. Bardaweel & Sanaa K. Bardaweel. (2013) Dynamic simulation of thermopneumatic micropumps for biomedical applications. Microsystem Technologies 19:12, pages 2017-2024.
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Hamzeh K. Bardaweel. (2013) Tunable elastic fluidic resonant MEMS-type actuator. The European Physical Journal Applied Physics 62:3, pages 30901.
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Chun-Hui Wu, Yi-Fan Hsieh, An-Shik Yang & Ping-Hei Chen. (2012) Pressure-drop studies of resistance components for integration into a SFM-based fluidic circuit. Pressure-drop studies of resistance components for integration into a SFM-based fluidic circuit.
M. Shen, L. Dovat & M.A.M. Gijs. (2011) Magnetic active-valve micropump actuated by a rotating magnetic assembly. Sensors and Actuators B: Chemical 154:1, pages 52-58.
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Y. C. Hsu & N. B. Le. (2008) Equivalent electrical network for performance characterization of piezoelectric peristaltic micropump. Microfluidics and Nanofluidics 7:2, pages 237-248.
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Yi-Chu Hsu & Ngoc-Bich Le. (2008) Inertial effects on flow rate spectrum of diffuser micropumps. Biomedical Microdevices 10:5, pages 681-692.
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Brian D. Iverson & Suresh V. Garimella. (2008) Recent advances in microscale pumping technologies: a review and evaluation. Microfluidics and Nanofluidics 5:2, pages 145-174.
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