Claims
- 1. In combination:
a microfluidic device including a substrate, a first surface, and a plurality of fluid pathways, each pathway including at least one deformable portion; a plurality of deforming blades, each deforming blade including a blade tip end and an opposite end; and a pivotable actuator, the pivotable actuator including a presser member capable of pivoting about an axis of rotation to actuate the plurality of deforming blades with respect to the microfluidic device; wherein the plurality of deforming blade tip ends are each spaced a first distance from one or more adjacent blade tip ends, and the plurality of deformable portions are each spaced the first distance from one or more adjacent deformable portions.
- 2. The combination of claim 1, wherein the first surface of the microfluidic device is planar.
- 3. The combination of claim 1, wherein the microfluidic device includes a plurality of sample wells formed in the substrate, and the deformable portion of each pathway includes at least one deformable valve capable of controlling fluid movement through the respective pathway.
- 4. The combination of claim 1, wherein the opposite ends of the blade tips merge together at the presser member such that the blade tips and presser member are together of a unitary construction.
- 5. The combination of claim 1, wherein the respective opposite ends of the plurality of blade tips are separate from one another and each is separately movable relative to the other opposite ends.
- 6. The combination of claim 5, wherein the plurality of blade tips are arranged adjacent one another in a cartridge.
- 7. The combination of claim 6, wherein the cartridge comprises a biasing device that maintains the blade tips in a retracted position.
- 8. The combination of claim 7, wherein the biasing device includes a plurality of springs.
- 9. The combination of claim 6, wherein the presser member includes a roller, the plurality of blade tips are arranged in a linear array in the cartridge, and the opposite ends of the respective blade tips are arranged in the cartridge to be capable of being actuated by the roller.
- 10. The combination of claim 9, wherein the roller is cylindrical.
- 11. The combination of claim 1, wherein the pivotable actuator and the plurality of blade tip ends comprise a roller assembly that includes a roller, the roller including an outer periphery, and wherein the plurality of blade tip ends include a plurality of teeth disposed on the outer periphery.
- 12. The combination of claim 11, further comprising an actuator mechanism operatively attached to the roller of the pivotable actuator and capable of pivoting the roller such that the roller is capable of contacting the microfluidic device with sufficient force to cause the plurality of teeth to sequentially and respectively deform the plurality of deformable portions.
- 13. The combination of claim 12, wherein the roller of the pivotable actuator includes a circular cross-section.
- 14. The combination of claim 1, further comprising a platform, the platform including a handle connected to the pivotable actuator, and a holder for holding the microfluidic device during a deforming operation that includes deforming the plurality of deformable portions with the plurality of blade tip ends.
- 15. The combination of claim 14, wherein the holder holds the microfluidic device between the presser member and the plurality of deforming blades.
- 16. The combination of claim 4, further comprising a platform, the platform including a handle connected to the pivotable actuator, and a holder for holding the microfluidic device during a deforming operation that includes deforming the plurality of deformable portions with the plurality of blade tip ends.
- 17. The combination of claim 5, further comprising a platform, the platform including a handle connected to the pivotable actuator, and a holder for holding the microfluidic device during a deforming operation that includes deforming the plurality of deformable portions with the plurality of blade tip ends.
- 18. The combination of claim 1, wherein the plurality of deforming blades includes a plurality of hole-punches.
- 19. A method comprising:
providing the combination of claim 1;arranging the microfluidic device adjacent the pivotable actuator; and contacting the microfluidic device with the pivotable actuator so that the plurality of blade tip ends deform the plurality of deformable portions.
- 20. A deforming system comprising:
a cartridge; a plurality of deforming blades arranged adjacent one another in the cartridge, each deforming blade including a blade tip and an opposite end; and a presser member pivotable about an axis of rotation and arranged with respect to the cartridge such that upon pivoting about the axis of rotation the presser member is capable of contacting the opposite ends of the plurality of deforming blades to actuate the plurality of the forming blades.
- 21. The deforming system of claim 20, wherein the cartridge includes a biasing device to normally maintain the plurality of deforming blades in respective retracted positions, the presser member includes a roller, and the cartridge includes a track for guiding the roller into contact with the respective opposite ends of the deforming blades.
- 22. The deforming system of claim 20, wherein the plurality of deforming blades includes a plurality of hole-punches.
- 23. A method of processing a microfluidic device, comprising:
providing a microfluidic device that includes a plurality of deformable portions; providing a deforming assembly that includes a roller, the roller including an outer periphery and a plurality of blade tips arranged along the outer periphery; and rolling the roller across a surface of the microfluidic device with sufficient force to cause each of the plurality of blade tips to sequentially deform the deformable portions.
- 24. The method of claim 23, wherein the plurality of blade tips are spaced a first distance apart from one another, and the plurality of deformable portions are spaced the first distance apart from one another.
- 25. The method of claim 23, wherein the microfluidic device includes a plurality of fluid flow pathways and each of the plurality of deformable portions at least partially defines a respective one of the pathways.
- 26. The method of claim 25, wherein each of the plurality of deformable portions comprises a respective intermediate wall along a respective pathway of the plurality of pathways.
- 27. The method of claim 25, wherein the method includes permanently deforming each of the plurality of deformable portions.
- 28. The method of claim 23, wherein the microfluidic device includes an elastically deformable cover layer and a substrate, and the substrate includes the plurality of deformable portions.
- 29. A method of processing a microfluidic device, comprising:
providing a microfluidic device that includes a plurality of deformable portions; providing a deforming assembly adjacent a surface of the microfluidic device, the deforming assembly including a plurality of deforming blades arranged adjacent one another in a cartridge, and a presser member that includes a roller, wherein each deforming blade includes a blade tip and an opposite end opposite the blade tip, and the opposite ends of the respective blade tips are arranged in the cartridge in positions whereby the opposite ends are capable of being actuated by the roller; and rolling the roller against the opposite ends arranged in the cartridge with a force sufficient to cause the plurality of blade tips to contact and deform the deformable portions.
- 30. The method of claim 29, wherein the plurality of blade tips are spaced a first distance apart from one another, and the plurality of deformable portions are spaced the first distance apart from one another.
- 31. The method of claim 29, wherein the microfluidic device includes a plurality of fluid flow pathways and each of the plurality of deformable portions at least partially defines a respective one of the pathways.
- 32. The method of claim 31, wherein each of the plurality of deformable portions comprises a respective intermediate wall along a respective pathway of the plurality of pathways.
- 33. The method of claim 31, wherein the method includes permanently deforming each of the plurality of deformable portions.
- 34. The method of claim 29, wherein the microfluidic device includes an elastically deformable cover layer and a substrate, and the substrate includes the plurality of deformable portions.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of application Ser. No. 10/336,274 filed Jan. 3, 2003. Cross-references are also made to co-pending U.S. Provisional Applications Nos. 60/398,851, 60/398,777, and 60/398,946, all filed on Jul. 26, 2002, and to U.S. patent application Ser. No. 10/336,706, filed Jan. 3, 2003. All of the Applications cross-referenced here are incorporated herein in their entireties by reference.
Provisional Applications (4)
|
Number |
Date |
Country |
|
60398851 |
Jul 2002 |
US |
|
60398851 |
Jul 2002 |
US |
|
60398946 |
Jul 2002 |
US |
|
60398777 |
Jul 2002 |
US |
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
10336274 |
Jan 2003 |
US |
Child |
10403640 |
Mar 2003 |
US |
Parent |
10336706 |
Jan 2003 |
US |
Child |
10403640 |
Mar 2003 |
US |