A pneumatic micropump incorporated with a normally closed valve capable of generating a high pumping rate and a high back pressure

被引:0
作者
Yi-Ning Yang
Suz-Kai Hsiung
Gwo-Bin Lee
机构
[1] National Cheng Kung University,Department of Engineering Science
[2] Industrial Technology Research Institute,Medical Electronics and Device Technology Center
来源
Microfluidics and Nanofluidics | 2009年 / 6卷
关键词
Microfluidics; MEMS; Micropump; Normally closed microvalve;
D O I
暂无
中图分类号
学科分类号
摘要
This study reports on a new pneumatic micropump integrated with a normally closed valve that is capable of generating a high pumping rate and a high back pressure. The micropump consists of a sample flow microchannel, three underlying pneumatic air chambers, resilient polydimethylsiloxane (PDMS) membrane structures and a normally closed valve. The normally closed valve of the micropump is a PDMS-based floating block structure located inside the sample flow microchannel, which is activated by hydraulic pressure created by the peristaltic motion of the PDMS membranes. The valve is used to effectively increase pumping rates and back pressures since it is utilized to prevent backflow. Experimental results indicate that a pumping rate as high as 900 μL/min at a driving frequency of 90 Hz and at an applied pressure of 20 psi (1.378 × 105 Nt/m2) can be obtained. The back pressure on the micropump can be as high as 85 cm-H2O (8,610.5 Nt/m2) at the same operation conditions. The micropump is fabricated by soft lithography processes and can be easily integrated with other microfluidic devices. To demonstrate its capability to prevent cross contamination during chemical analysis applications, two micropumps and a V-shape channel are integrated to perform a titration of two chemical solutions, specifically sodium hydroxide (NaOH) and benzoic acid (C6H5COOH). Experimental data show that mixing with a pH value ranging from 2.8 to 12.3 can be successfully titrated. The development of this micropump can be a promising approach for further biomedical and chemical analysis applications.
引用
收藏
页码:823 / 833
页数:10
相关论文
共 104 条
  • [81] Sim WY(undefined)undefined undefined undefined undefined-undefined
  • [82] Yoon HJ(undefined)undefined undefined undefined undefined-undefined
  • [83] Jeong OC(undefined)undefined undefined undefined undefined-undefined
  • [84] Yang SS(undefined)undefined undefined undefined undefined-undefined
  • [85] Unger MA(undefined)undefined undefined undefined undefined-undefined
  • [86] Chou HP(undefined)undefined undefined undefined undefined-undefined
  • [87] Thorsen T(undefined)undefined undefined undefined undefined-undefined
  • [88] Scherer A(undefined)undefined undefined undefined undefined-undefined
  • [89] Quake SR(undefined)undefined undefined undefined undefined-undefined
  • [90] Van de Pol FCM(undefined)undefined undefined undefined undefined-undefined