Dual Latching Microvalves
20170224918 · 2017-08-10
Inventors
- Forrest W. Payne (Fayetteville, AR, US)
- Greg Lamps (Smyrna, GA, US)
- Champak Das (Fayetteville, AR, US)
- Sai Kumar (Johns Creek, GA, US)
- Ashley Shemain (Flowery Branch, GA, US)
Cpc classification
A61M5/14212
HUMAN NECESSITIES
F16K7/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M39/227
HUMAN NECESSITIES
A61M5/16813
HUMAN NECESSITIES
F16K2099/0086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M39/28
HUMAN NECESSITIES
F16K2099/0071
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K99/0026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K99/0038
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K99/0044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K2099/0069
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/205
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
A61M5/168
HUMAN NECESSITIES
F16K99/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A valve for use in connection with microfluidic devices includes a safety feature such that flow is controlled even in the case of a loss of power, thus having applications in critical applications such as the precise delivery of drugs overtime. The valve may be used in connection with multiple tubes delivering drugs, and may be used with a pump, such as an electrochemical pump, to provide the force to move the fluids containing drugs for delivery. In certain applications, more than one medicine may be delivered and metered independently using a single pump with multiple reservoirs and valves.
Claims
1. A dual latching microvalve, comprising: a. a first valve arm comprising a first valve arm end, and further comprising a first valve arm receiving area adapted to receive a compressible first tube; b. a first valve seat positioned within the first valve arm receiving area of the first valve arm and adjacent to the first tube to form a first valve; c. a second valve arm comprising a second valve arm end, and further comprising a second valve arm receiving area adapted to receive a compressible second tube, and wherein the second valve arm is positioned relative to the first valve arm such that the second valve arm end engages the first valve arm end; d. a second valve seat positioned within the second valve arm receiving area and adjacent to the second tube to form a second valve; e. a first actuation mechanism attached to the first valve arm; f. a second actuation mechanism attached to the second valve arm; and g. at least one electrical power source electrically connected in a circuit with one or more of the first actuation mechanism and the second actuation mechanism, wherein charging the second actuation mechanism with a current from the electrical power source causes the second valve arm to move and allow the first valve arm end to move against the second valve arm end thereby compressing the second tube against the second valve seat within the latch arm receiving area and holding the second tube in a compressed state and thus closing the second valve, while allowing the first tube to remain in an uncompressed state and thus allowing the first valve to remain open without the addition of further electrical power from the electrical power source, and wherein charging the first actuation mechanism with a current from the electrical power source causes the first valve arm to move and allow the second valve arm end to slide against the first valve arm end thereby allowing the second tube to remain uncompressed within the second valve arm receiving area and thus allow the second valve to remain open, while compressing the first tube against the first valve seat within the first valve arm receiving area and holding the first tube in a compressed state thereby closing the first valve without the addition of further electrical power from the electrical power source.
2. The dual latching microvalve of claim 1, further comprising: a. a first resilient member engaged with the first valve arm to bias the first valve arm toward the first valve seat; and b. a second resilient member engaged with the second valve arm to bias the second valve arm toward the second valve seat.
3. The dual latching microvalve of claim 2, wherein the first and second resilient members comprise springs.
4. The dual latching microvalve of claim 1, wherein one or more of the first actuation mechanism and the second actuation mechanism comprise a shape-memory material.
5. The dual latching microvalve of claim 1, wherein both the first valve and second valve are applied to a single flow path through the first and second tubes wherein one of the first and second valves must be closed when the other of the first and second valves is open.
6. The dual latching microvalve of claim 1, wherein the first actuation mechanism and second actuation mechanism are selected from the group consisting of a solenoid, a motor, a pneumatic actuation mechanism, and a hydraulic actuation mechanism.
7. The dual latching microvalve of claim 1, wherein one or more of the first actuation mechanism and the second actuation mechanism comprises a cam or a ratchet.
8. The dual latching microvalve of claim 5, further comprising: a. a reservoir for holding a fluid; and b. a dosing chamber fluidically connected to the reservoir by the first tube, wherein when the first valve is open and the second valve is closed, the fluid is drawn from the reservoir to the dosing chamber, and when the second valve is open and the first valve is closed, the fluid is pushed from the dosing chamber into a patient.
9. The dual latching microvalve of claim 8, wherein the fluid is a drug, and wherein a maximum volume of the dosing chamber is sized to accommodate the drug being delivered to the patient.
10. The dual latching microvalve of claim 9, wherein the delivery of the drug from the dosing chamber is timed based on an input signal.
11. The dual latching valve of claim 8, wherein the first valve and second valve are configured to create a mixing action between the reservoir and the dosing chamber.
12. A valve mechanism for delivering a first drug to a patient, comprising: a. a first dual latching valve; b. a second dual latching valve; c. a dual sided pump fluidically connected to the first dual latching valve and second dual latching valve for near-continuous delivery of the drug to the patient.
13. The valve mechanism of claim 12, further comprising a first drug reservoir fluidically connected to the dual sided pump, wherein the mechanism is configured by placement of the first dual latching valve and second dual latching valve such that there is never a direct fluidic path from the first drug reservoir to the patient.
14. The valve mechanism of claim 12, wherein the first dual latching valve and second dual latching valve are configured to provide intermittent delivery of multiple doses of the first drug to the patient.
15. The valve mechanism of claim 13, further comprising a second reservoir for holding a second drug, wherein the second reservoir is fluidically connected to the dual sided pump, whereby the first dual latching valve and second dual latching valve are configured to control independent delivery of the first drug and second drug to the patient.
16. The valve mechanism of claim 15, wherein the first dual latching valve and second dual latching valve are configured to deliver multiple doses of the first drug from the first reservoir to the patient with fewer or no doses of the second drug from the second reservoir to the patient.
17. The valve mechanism of claim 15, wherein the first dual latching valve and second dual latching valve are configured to create a mixing action between the first reservoir and the second reservoir.
18. The valve mechanism of claim 15, wherein the dual sided pump is an electrochemical pump.
19. The valve mechanism of claim 15, wherein the first dual latching valve and second dual latching valve are connected through an actuation mechanism such that both the first dual latching valve and second dual latching valve cannot be open simultaneously.
20. The valve mechanism of claim 19, wherein the actuation mechanism comprises a cam or a ratchet to open the first dual latching valve and simultaneously close the second dual latching valve in a first position, and to close the first dual latching valve and simultaneously open the second dual latching valve in a second position, as the cam or ratchet rotates around an axis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0016] Referring now to
[0017] The graph of
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[0019] To move from the configuration of
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[0021] Although various embodiments of the invention have been described herein with reference to particular applications related to the delivery of fluids and in particular drugs, it will be apparent that the invention is not so limited. In addition, the dual valve safety mechanism can be realized with a ratcheting action, or an appropriately shaped cam, for example. Furthermore, any actuation mechanism can be used to switch valve states of coupled valves including solenoid, magnetic, pneumatic or hydraulic controls, stepping motor, or manual operation. In addition, the preceding description has focused on two-dimensional layouts of the sliding or pivoting members, however, it can be extended to acting members which are arranged in a non-planar manner. Larger or smaller embodiments of a dual latching valve could be used for safety-enhanced flow control at any scale.
[0022] The graph of
[0023] The graph of
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[0026] Alternatively, by arranging the inlet line 805 and outlet line 817 to both run through valve arm 401 and the outlet line 807 and inlet line 815 to both run through valve arm 404, then only one dual latching valve is needed to provide flow from reservoir 801 to the patient 821. In this arrangement as well, at no time is there an open fluid flow path from the reservoir to the patient.
[0027] The following steps describe how a metered dose of fluid is delivered in a near continuous fashion from reservoir 801 to the patient. In this case, the system has already been primed so that both fluid paths are full of fluid. In step (1), inlet valve 401 and outlet valve 414 are open and outlet valve 404 and inlet valve 411 are closed. When the ePump 825 is activated, it first pulls fluid from the drug reservoir 801 through flow path 805 and into chamber 806 where it is stored. Simultaneously, ePump 825 expels fluid stored in chamber 816 through path 817 and into the patient. In step (2), the valves are reversed such that output valve 404 and input valve 411 are open and input valve 401 and output valve 414 are closed. In this case, the pump draws fluid from the reservoir 801 through flow path 815 and into chamber 816 where it is stored. Simultaneously, the metered volume of fluid stored in chamber 806 (from step 1) is expelled through flow path 807 into the patient. Repeating of Steps 1 and 2 will result in near continuous (or intermittent) and safe delivery of controlled doses of fluid (in this case, a drug) to the patient.
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[0029] Although various embodiments of the invention has been described herein with reference to particular applications related to the delivery of fluids and in particular drugs, it will be apparent that the invention is not so limited, and instead will find application in other fields where the precise delivery of fluids is desired in a fail-safe manner. Furthermore, although certain embodiments of the invention have been described for use in connection with an ePump, it will be apparent that the invention is not so limited, and that other types of pumps could be used in connection with the valves of the invention as described herein. In addition, although nitinol has been used as the shape-memory alloy in certain embodiments described herein, it will be understood that other shape-memory alloys or materials or actuation methods could be substituted therefor within the scope of the invention.
[0030] Unless otherwise stated, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. Although any systems and materials similar or equivalent to those described herein can also be used in the practice or testing of the present invention, a limited number of the exemplary systems and materials are described herein. It will be apparent to those skilled in the art that many more modifications are possible without departing from the invent concepts herein. All terms used herein should be interpreted in the broadest possible manner consistent with the context. Any ranges expressed herein are intended to include all particular values within the stated range, as well as all sub-ranges that fall within the stated range.
[0031] The present invention has been described with reference to the foregoing specific implementations. These implementations are intended to be exemplary only, and not limiting to the full scope of the present invention. Many variations and modifications are possible in view of the above teachings. The invention is intended to be limited only as set forth in the appended claims.