Claims
- 1. A microfluidic viscometer system comprising:
a microfluidic channel network including a first flow-resisting channel segment; a sensor coupled to the first segment of the network for determining a viscosity of a sample fluid therein.
- 2. The microfluidic system of claim 1, further comprising a body having channel walls defining the network, the network including a plurality of channels with intersections therebetween.
- 3. The microfluidic system of claim 2, further comprising a flow generator coupled to the network so as to induce a flow of the sample fluid within the first segment.
- 4. The microfluidic system of claim 3, wherein a first intersection is in communication with the first segment, the sensor coupled to the network at a sensor location disposed downstream of the first segment, the sensor sensing a change in the flow which propagates from the first intersection to the sensor location so as to determine the viscosity of the sample fluid.
- 5. The microfluidic system of claim 4, wherein the change in flow comprises a pulse of a detectable fluid introduced at the first intersection, the first intersection being upstream of the first segment, the system determining the viscosity of the sample fluid in response to a steady state propagation of the flow, with the detectable fluid pulse, from the first intersection, through the first segment, to the sensor location.
- 6. The microfluidic system of claim 4, wherein the change in flow comprises a step change in flow of a detectable fluid.
- 7. The microfluidic system of claim 4, wherein the first segment is disposed upstream of the first intersection, wherein the flow defines a ratio between a quantity of the sample fluid in the flow and a quantity of a detectable fluid in the flow, the detectable fluid being detectable by the sensor and traversing a second flow resisting channel segment between a detectable fluid source and the intersection, wherein the change in flow comprises a change in the ratio, and further comprising a processor coupled to the sensor, the processor determining the viscosity of the sample fluid from the change in the ratio and from the viscosity of the reference fluid.
- 8. The microfluidic system of claim 1, wherein the sample fluid for which the viscosity is determined is substantially free of a substance detectable to the sensor.
- 9. The microfluidic system of claim 1, further comprising a sample fluid source including a plurality of sample fluids and a sample fluid introduction channel, the sample fluids sequentially transferable along the fluid introduction channel to the flow resisting channel so as to sequentially determine viscosities of the sample fluids.
- 10. A method for determining a viscosity of a sample fluid, the method comprising:
altering a flow of a flow-restricting microfluidic channel segment; and determining the viscosity of the sample fluid by monitoring the altered flow.
- 11. The method of claim 10, further comprising:
monitoring a first flow of reference fluid through the flow-resisting channel segment, the reference fluid having a known viscosity; monitoring a second flow through the flow-resisting channel segment, the second flow comprising the sample fluid; and wherein the viscosity of the sample fluid is determined by comparing the first and second flows, and based in part on the known viscosity of the reference fluid.
- 12. The method of claim 11, wherein the first and second flows are monitored by a sensor disposed downstream of the flow-resisting channel segment with an intersection disposed therebetween, and wherein the flows are monitored by sensing a ratio of the sample fluid to a detectable fluid, the detectable fluid being combined with the sample fluid at the intersection.
- 13. The method of claim 11, further comprising sequentially transferring a plurality of sample fluids to the flow-resisting channel segment and determining the viscosities of the sample fluids in a high throughput manner.
- 14. The method of claim 11, a plurality of microfluidic channels and the flow-resisting channel defining a microfluidic network, further comprising mixing first and second fluids in the network, the mixed fluids defining the sample fluid, and varying a composition of the sample fluid by changing relative quantities of the first and second fluids in the mixing step so as to determine the viscosity of the mixed fluids as a function of the composition.
- 15. A microfluidic system comprising:
a microfluidic channel network including a first flow-resisting channel segment; a sensor coupled to the network for sensing flows through the first segment; and a processor coupled to the sensor, the processor deriving a viscosity of a sample fluid by comparing first and second flows through the first segment.
- 16. The microfluidic system of claim 15, further comprising a reference fluid disposed within the network, the first flow comprising the reference fluid, the second flow comprising the sample fluid.
- 17. The microfluidic system of claim 16, wherein the second flow within the first segment is substantially composed of the sample fluid.
- 18. The microfluidic system of claim 16, wherein the processor calculates the viscosity of the sample fluid from the source based at least in part on a viscosity of the reference fluid.
- 19. The microfluidic system of claim 15, further comprising a second flow-resisting channel segment coupled to the first segment at a first intersection, wherein a first detectable fluid is disposed within the second segment, the first segment being disposed downstream of the first intersection, wherein the sensor monitors the flow through the first segment by sensing a quantity of the first detectable fluid added to the flow at least in part at the first intersection.
- 20. The microfluidic system of claim 19, further comprising at least one additional flow-resisting channel segment coupled to the first segment by an associated at least one additional intersection, the intersections being separated by intersection separating flow-resisting channel segments, wherein the sensor monitors the flow by sensing a quantity of the first detectable fluid added to the flow at the intersections.
- 21. The microfluidic system of claim 19, further comprising a third flow-resisting channel segment coupled to the first segment, wherein the sensor further monitors the flow through the first segment by sensing a quantity of a second detectable fluid added to the flow through the third segment, the second and third segments having differing resistances to flows therein, the first and second detectable fluids being independently detectable by the sensor.
- 22. The microfluidic system of claim 19, wherein the first segment comprises a channel region having a locally enhanced resistance to flows therein.
- 23. The microfluidic system of claim 19, wherein the first flow comprises a reference fluid having a known viscosity, and wherein the second flow at the sensor comprises a combination of the sample fluid and the detectable fluid, the combination defining a ratio, the processor identifying the ratio from a signal produced by the sensor.
- 24. The microfluidic system of claim 15, wherein the processor derives the viscosity of the sample fluid by determining a rate of change of a signal generated by the sensor.
- 25. The microfluidic system of claim 15, wherein the processor derives the viscosity of the sample fluid by determining a magnitude of a change of a signal generated by the sensor.
- 26. The microfluidic system of claim 15, wherein the processor can determine the sample fluid viscosity throughout at least a range of about there orders of magnitude of cp units.
- 27. The microfluidic system of claim 26, wherein the processor can determine the sample fluid viscosity throughout at least a range from about 1 cp to about 100 cp.
- 28. The microfluidic system of claim 27, wherein the processor can determine the sample fluid viscosity throughout at least a range from about 1 cp to about 1000 cp.
- 29. The microfluidic system of claim 15, further comprising a sample fluid source including a plurality of sample fluids and a sample fluid introduction channel, the sample fluids sequentially transferable along the fluid introduction channel to the flow resisting channel so as to sequentially determine viscosities of the sample fluids.
- 30. The microfluidic system of claim 29, wherein the sample introduction channel comprises a capillary extending from a microfluidic body, the microfluidic body having channel walls defining the network, the capillary extendable sequentially into the sample fluids.
- 31. The microfluidic system of claim 30, wherein the capillary is extendable into a reference fluid having a known viscosity, the first flow comprising the reference fluid.
- 32. The microfluidic system of claim 30, wherein the capillary has significantly less resistance to the flow than the first segment.
- 33. The microfluidic system of claim 16, further comprising a differential pressure source coupled to the network, the pressure source applying a pressure differential urging the sample fluid through the first segment.
- 34. The microfluidic system of claim 13, wherein the pressure source applies a vacuum downstream of the first segment, the vacuum drawing the sample fluid through the first segment and a first intersection, the vacuum also drawing a detectable fluid through a second flow-resisting channel segment and the first intersection, the processor determining the viscosity in part from a signal of the sensor determining a quantity of the detectable fluid.
- 35. The microfluidic system of claim 15, further comprising a fluid volume source coupled to the network, the volume source introducing a volume of fluid at a known rate into the first segment.
- 36. A microfluidic system comprising:
a microfluidic body having a network of microfluidic channels; a fluid flow generator coupled to the network and inducing a flow therein; a sensor coupled to the network, the sensor transmitting a signal indicating a time of the flow; and a processor coupling the sensor to the generator and effecting feedback control of the flow in response to the time signal.
- 37. The microfluidic system of claim 36, wherein the processor determines a viscosity of a fluid in the flow and modifies a driving force applied to the network by the generator in response to the viscosity.
- 38. A microfluidic system comprising:
first and second immisciable fluids; a microfluidic body having a microfluidic network, the first and second fluids being combined within the network; and a sensor coupled to the network so as to define a viscometer for measuring interfacial properties of the combined fluids.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. application Ser. No. 09/792,435 filed on Feb. 23, 2001. This application also claims the benefit of priority from U.S. Provisional Patent Application No. 60/216,793 filed on Jul. 7, 2000, and from U.S. Provisional Patent Application No. 60/184,390 filed Feb. 23, 2000. The full disclosures of these references are incorporated herein by reference.
Provisional Applications (2)
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Number |
Date |
Country |
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60216793 |
Jul 2000 |
US |
|
60184390 |
Feb 2000 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09792435 |
Feb 2001 |
US |
Child |
10008604 |
Oct 2001 |
US |