Claims
- 1. A blade for manipulating deformable material in a microfluidic device, the blade comprising:
a support end and an opposing distal end, the distal end including an end blade portion including a first side and a second side angled with respect to each other at an angle of from between about 75° and about 110°, wherein each of the first side and the second side mutually converge and intersect a contact tip surface at respective rounded transition regions, the contact tip surface including a length and a width, the first side and the second side being separated from one another at the distal end of the blade by the length of the contact tip surface, and wherein the rounded transition regions each include a radius of curvature that is from about 70% to about 95% the length of the contact tip surface; a third side and a fourth side angled with respect to each other at an angle of from about 45° to about 75°, wherein each of the third side and the fourth side intersect the contact tip surface and being separated from one another at the distal end of the blade by the width of the contact tip surface.
- 2. The blade of claim 1, wherein the first side and the second side are angled with respect to one another at an angle of from about 85° to about 95°.
- 3. The blade of claim 2, wherein the first side and the second side are angled with respect to one another at an angle of from about 87° to about 93°.
- 4. The blade of claim 1, wherein the rounded transition regions each include a radius of curvature that is from about 75% to about 90% the length of the contact tip surface.
- 5. The blade of claim 4, wherein the rounded transition regions each include a radius of curvature that is from about 80% to about 85% the length of the contact tip surface.
- 6. The blade of claim 1, wherein the third side and the fourth side are angled with respect to one another at an angle of from about 50° to about 70°.
- 7. The blade of claim 6, wherein the third side and the fourth side are angled with respect to one another at an angle of from about 55° to about 65°.
- 8. A microfluidic manipulation system, comprising:
at least one movable support capable of being moved in at least a first direction and a second direction; at least one blade, the at least one blade including a blade including a body defined by a support end and an opposing distal end, the support end being operatively connected to the at least one movable support; a microfluidic device including at least one feature formed therein, the at least one feature being defined at least in part by a deformable material; a holder for holding the microfluidic device; wherein the distal end of the blade includes an end blade portion including at least a first side and a second side that converge to and terminate at a contact tip surface; wherein the at least one movable support is adapted to position the distal end of the at least one blade relative to the microfluidic device when the microfluidic device is operatively held by the holder and is capable of moving the contact tip surface such that the contact tip surface contacts the microfluidic device to deform the deformable material and to at least partially close the at least one feature.
- 9. The microfluidic manipulation system of claim 8, wherein the at least one feature is at least one channel including at least one deformable sidewall.
- 10. The microfluidic manipulation system of claim 8, wherein the end blade portion further comprises a third side and a fourth side that converge to and terminate at the contact tip surface.
- 11. The microfluidic manipulation system of claim 10, wherein the contact tip surface includes a width that extends between the third side and the fourth side.
- 12. The microfluidic manipulation system of claim 8, wherein the contact tip surface includes a curved surface that is defined by a radius.
- 13. The microfluidic manipulation system of claim 12, wherein the contact tip surface includes an apex and possesses a linear contact surface at the apex.
- 14. The microfluidic manipulation system of claim 8, wherein the first side intersects the contact tip surface at a respective first rounded transition region and the second side intersects the contact tip surface at a respective second rounded transition region.
- 15. The microfluidic manipulation system of claim 14, wherein the contact tip surface includes a length that extends between the first and second rounded transition regions.
- 16. The microfluidic manipulation system of claim 8, wherein the at least one blade comprises a plurality of blades, each of the plurality of blades comprising a respective body defined by a respective support end and a respective opposing distal end, the respective support end of each of the plurality of blades being operatively connected to the at least one movable support, and each respective distal end of the plurality of blades includes an end blade portion including at least a first side and a second side that mutually converge to and terminate at a contact tip surface; and
the at least one movable support is adapted to position at least one of the plurality of blades relative to the microfluidic device when the microfluidic device is operatively held by the holder, and the at least one movable support is capable of moving the contact tip surface of at least one of the plurality of blades such that at least one respective contact tip surface contacts the microfluidic device to deform the deformable material and at least partially close the at least one feature.
- 17. The microfluidic manipulation system of claim 16, wherein the at least one movable support is capable of simultaneously moving the respective contact tip surfaces of the plurality of blades into contact with the at least one feature to simultaneously deform the deformable material and at least partially close the at least one feature.
- 18. The microfluidic manipulation system of claim 16, wherein the at least one movable support is capable of sequentially moving the respective contact tip surfaces of the plurality of blades into contact with the at least one feature to sequentially deform the deformable material and at least partially close the at least one feature.
- 19. The microfluidic manipulation system of claim 16, wherein the end blade portion of each of the plurality of blades further comprises a third side and a fourth side that mutually converge to and terminate at the contact tip surface.
- 20. A method of closing a feature formed in a microfluidic device, comprising:
providing the microfluidic manipulation system of claim 8; and moving the support to force the distal end of the blade into contact with the microfluidic device to deform the deformable material forming the at least one feature and at least partially close the at least one feature.
- 21. A method of at least partially closing at least one feature formed in a microfluidic device, comprising:
providing the microfluidic manipulation system of claim 16;forcing the distal end of at least one of the plurality of blades into contact with the microfluidic device to deform the deformable material and at least partially close the at least one feature; and forcing the distal end of at least another one of the plurality of blades into contact with the microfluidic device to deform the deformable material and at least partially close the at least one feature.
- 22. The method of claim 21, wherein the plurality of blades are simultaneously forced into contact with the microfluidic device to simultaneously deform the deformable material and at least partially close the at least one feature.
- 23. The method of claim 21, wherein the plurality of blades are sequentially forced into contact with the microfluidic device to sequentially deform the deformable material and close the at least one feature.
- 24. The microfluidic manipulation system of claim 8, wherein the contact tip surface includes a rim and recess.
- 25. The microfluidic manipulation system of claim 24, wherein the recess includes a cross-sectional shape that comprises at least one of a ␣-shape, a U-shape, a V-shape, and an at least partially oval shape at an inner periphery of the rim where the rim intersects the recess.
- 26. The microfluidic manipulation system of claim 25, wherein the at least one movable support is adapted to position the distal end of the blade relative to the microfluidic device when the microfluidic device is operatively held by the holder, and is capable of moving the contact tip surface such that the contact tip surface contacts the microfluidic card to deform the deformable material and at least partially close the at least one feature.
- 27. The microfluidic manipulation system of claim 24, wherein the rim includes at least two spaced-apart contact tip surface portions, and the at least one movable support is capable of moving the at least two spaced-apart contact tip surface portions into contact with respective areas of the microfluidic device on opposite sides of the at least one feature.
- 28. The microfluidic manipulation system of claim 27, wherein the rim further includes an interconnecting rim portion connecting the at least two spaced-apart contact tip surface portions.
- 29. The microfluidic manipulation system of claim 26, wherein one of the first side and the second side includes a curved surface.
- 30. The microfluidic manipulation system of claim 26, wherein one of the first side and the second side includes a substantially flat surface, the substantially flat surface cutting through a portion of the recess formed in the contact tip surface.
- 31. A method of closing at least one channel formed in a microfluidic device, the method comprising:
providing the microfluidic manipulation system of claim 27, and moving the at least one movable support to force the distal end of the blade into contact with the microfluidic device such that the at least two spaced-apart contact tip surface portions deform the deformable material and at least partially close the at least one channel.
- 32. A method of closing a channel formed in a microfluidic device, comprising:
providing a microfluidic device including at least one channel formed therein, wherein the at least one channel is at least partially defined by a deformable material; providing at least one first blade including a body defined by a support end and an opposing distal end, the distal end terminating at a contact tip surface; and forcing the distal end of the at least one first blade into contact with the microfluidic device to deform the deformable material and at least partially close the at least one channel.
- 33. The method of claim 32, whereby the contact tip surface of the at least one first blade includes at least two spaced-apart contact tip surface portions that contact the microfluidic device on opposing sides of the at least one channel when the distal end of the at least one first blade is forced into contact with the microfluidic device.
- 34. The method of claim 32, wherein the at least one blade comprises a plurality of blades, each blade of the plurality of blades including a body defined by a support end and an opposing distal end, each opposing distal end terminating at a respective contact tip surface; and
forcing the distal ends of the plurality of blades into contact with the microfluidic device to deform the deformable material and close the at least one channel.
- 35. The method of claim 34, wherein the microfluidic device includes a first area arranged on a first side of the at least one channel, and a second area arranged on an opposing second side of the at least one channel, and wherein at least one of the plurality of blades contacts one of the first and second areas and another one of the plurality of blades contacts the other of the first and second areas.
- 36. The method of claim 34, wherein the plurality of blades are simultaneously forced into contact with the microfluidic device to simultaneously deform portions of the deformable material and close the at least one channel.
- 37. The method of claim 34, wherein the plurality of blades are sequentially forced into contact with the microfluidic device to sequentially deform respective portions of the deformable material and close the at least one channel.
- 38. The method of claim 32, wherein the at least one channel is defined by at least one respective sidewall, and the at least one first blade is forced into contact with the deformable material at a distance of at least about 0.75 mm from the at least one respective sidewall.
- 39. The method of claim 34, wherein the plurality of blades are spaced apart from one another about 1.0 cm or less.
- 40. The method of claim 34, wherein the plurality of blades are spaced apart from one another about 0.5 cm or less.
- 41. The method of claim 34, wherein the plurality of blades are spaced apart from one another about 1.0 mm or less.
- 42. The microfluidic manipulation system of claim 8, wherein the at least one feature is at least one channel having a width, and the at least one moveable support is capable of moving the contact tip surface of the at least one blade into contact with the microfluidic device across the width of the channel.
- 43. The method of claim 32, wherein the at least one channel includes a width, and the method further includes forcing the distal end of the at least one first blade into contact across the width of the at least one channel.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a continuation-in-part of pending U.S. patent application Ser. No. 10/336,274 filed Jan. 3, 2003, which claims the benefit of earlier filed U.S. Provisional Patent Applications Nos. 60/398,777, filed Jul. 26, 2002, 60/398,946, filed Jul. 26, 2002. Cross-reference is also made to U.S. patent application Ser. No. 10/336,706 filed Jan. 3, 2003, and concurrently filed U.S. patent application Ser. No. ______, to Cox et al., entitled “Actuator for Deformable Valves in a Microfluidic Device, and Method” (Attorney Docket No. 5010-051), both of which are incorporated herein in their entireties by reference.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60398777 |
Jul 2002 |
US |
|
60398946 |
Jul 2002 |
US |
|
60398851 |
Jul 2002 |
US |
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
10336274 |
Jan 2003 |
US |
Child |
10403652 |
Mar 2003 |
US |
Parent |
10336706 |
Jan 2003 |
US |
Child |
10403652 |
Mar 2003 |
US |