A self-priming, roller-free, miniature, peristaltic pump operable with a single, reciprocating actuator.

We present a design for a miniature self-priming peristaltic pump actuated with a single linear actuator, and which can be manufactured using conventional materials and methods. The pump is tolerant of bubbles and particles and can pump liquids, foams, and gases. We explore designs actuated by a motor (in depth) and a shape memory alloy (briefly); and briefly present a manually actuated version. The pump consists of a Delrin acetal plastic body with two integrated valves, a flexible silicone tube, and an actuator. Pumping is achieved as the forward motion of the actuator first closes the upstream valve, and then compresses a section of the tube. The increased internal pressure opens a downstream burst valve to expel the fluid. Reduced pressure in the pump tube allows the downstream valve to close, and removal of actuator force allows the upstream valve and pump tube to open, refilling the pump. The motor actuated design offers a linear dependence of flow rate on voltage in the range of 1.75-3 V. Flow rate decreases from 780 μl/min with increasing back pressure up to the maximum back pressure of 48 kPa. At 3 V and minimum back pressure, the pump consumes 90 mW. The shape memory alloy actuated design offers a 5-fold size and 4-fold weight reduction over the motor design, higher maximum back pressure, and substantial insensitivity of flow rate to back pressure at the cost of lower power efficiency and flow rate. The manually actuated version is simpler and appropriate for applications unconstrained by actuation distance.

[1]  Mi-Ching Tsai,et al.  A stand-alone peristaltic micropump based on piezoelectric actuation , 2007, Biomedical microdevices.

[2]  Zhaoying Zhou,et al.  A Peristaltic Micro Pump Driven by a Rotating Motor with Magnetically Attracted Steel Balls , 2009, Sensors.

[3]  Jordan M. Berg,et al.  A two-stage discrete peristaltic micropump , 2003 .

[4]  Juan G. Santiago,et al.  A planar electroosmotic micropump , 2002 .

[5]  Ok Chan Jeong,et al.  Fabrication of a peristaltic PDMS micropump , 2005 .

[6]  見城 尚志,et al.  Permanent-magnet and brushless DC motors , 1985 .

[7]  Vincent T. Remcho,et al.  PDMS and tubing-based peristaltic micropumps with direct actuation , 2009 .

[8]  Juan G. Santiago,et al.  A review of micropumps , 2004 .

[9]  Jun Xie,et al.  Surface micromachined electrostatically actuated micro peristaltic pump. , 2004, Lab on a chip.

[10]  O. Jeong,et al.  A phase-change type micropump with aluminum flap valves , 2003 .

[11]  Michael T Bowser,et al.  A soft-polymer piezoelectric bimorph cantilever-actuated peristaltic micropump. , 2008, Lab on a chip.

[12]  Dae-Sik Lee,et al.  Bidirectional pumping properties of a peristaltic piezoelectric micropump with simple design and chemical resistance , 2004 .

[13]  Nitin Afzulpurkar,et al.  PDMS Based Thermopnuematic Peristaltic Micropump for Microfluidic Systems , 2006 .

[14]  Suresh V. Garimella,et al.  Recent advances in microscale pumping technologies: a review and evaluation , 2008 .

[15]  Bumkyoo Choi,et al.  A study on the development of a continuous peristaltic micropump using magnetic fluids , 2006 .