Claims
- 1. A self-contained particle-detection ticket comprising an inlet port traversed by an incoming air stream carrying airborne particles to be tested, and a sample fluid reservoir in flow communication with the inlet port, the sample fluid reservoir storing sample fluid capturing the airborne particles as the air stream flows along an air path and in flow communication with a particle-detection sensor for detecting the airborne particles contained in the sample fluid.
- 2. The ticket of claim 1, the particle-detection sensor comprising an array of immunoassay strips receiving the sample fluid with the captured airborne particles to provide a reaction, if particles to be detected are present in the sample fluid, the inlet port being in flow communication with and downstream from an impinging nozzle traversed by the air stream, the sample fluid reservoir and the array of immunoassay strips are located adjacent to one another and are supported by a unitary cartridge, the ticket further comprising an exhaust port in flow communication with the inlet port for providing exhaust flow of the air stream substantially free from the particles.
- 3. The ticket of claim 2, further comprising an inlet air conduit in flow communication with an air-to-air concentrator providing the air stream and with the impinging nozzle, and an exhaust air conduit providing communication between an impinger pump and the exhaust port, the impinger pump being operative to create a vacuum sufficient to draw the air stream into the inlet port.
- 4. The ticket of claim 2, wherein the impinging nozzle is configured to provide acceleration of the airborne particles so that the accelerated airborne particles impact into the sample fluid and remain captured therein.
- 5. The ticket of claim 2, wherein the array of immunoassay strips and the sample fluid reservoir are in flow communication with one another generated by a transfer pump detachably coupled to the sample fluid reservoir.
- 6. The ticket of claim 3, wherein the sample fluid, the inlet, and exhaust ports constitute a unit fixed to the unitary cartridge.
- 7. The ticket of claim 5 further comprising a cleaning fluid reservoir flow-isolated from the sample fluid reservoir and in flow communication with the transfer pump, the cleaning fluid reservoir being provided either within the unitary cartridge adjacent to the sample fluid reservoir or separately from the unitary cartridge.
- 8. The ticket of claim 7, wherein the unitary cartridge further supports a sample/cleaning fluid conveying conduit selectively coupling the transfer pump with the sample fluid reservoir and the cleaning fluid reservoir.
- 9. The ticket of claim 5, wherein the array of the immunoassay strips and the transfer pump are in flow communication with one another via a plurality of injecting nozzles in flow communication with the transfer pump; and filling the immunoassay strips with the sample fluid to provide a reaction detected by a sample detector, if the particles to be detected are present in the sample fluid.
- 10. The ticket of claim 7, wherein the transfer pump is in flow communication with the cleaning fluid reservoir upon completion of a test and operates to guide cleaning fluid through the sample/cleaning conveying conduit to the injecting nozzles and back into the cleaning fluid reservoir.
- 11. An integrated fluidics system for analysis of aerosolized biological particles, comprising:at least one self-contained ticket formed with a cleaning fluid reservoir and an array of particle-detection strips located adjacent to the reservoirs; and a sample detection and fluid-distribution unit detachably coupled to the at least one self-contained ticket to provide flow communication between the array of particle-detection strips and a sample fluid reservoir.
- 12. The fluidics system of claim 11, further comprising an impinging nozzle located between the at least one self-contained ticket and the sample detection and fluid-distribution unit and configured to accelerate airborne particles contained in an air stream traversing the impinging nozzle so that the accelerated airborne particles impact into sample fluid stored in the sample fluid reservoir and are captured therein.
- 13. The fluidics system of claim 12, wherein the at least one self-contained ticket has a housing provided with the sample fluid reservoir, the fluidics system further comprising a sample fluid reservoir flow isolated from the sample fluid reservoir and from the array of detection strips, the housing being provided with an inlet port downstream from the impinging nozzle and in flow communication therewith and with an outlet port in flow communication with the inlet port and guiding the air stream substantially free from the airborne particles from the housing.
- 14. The fluidics system of claim 13, wherein the cleaning fluid reservoir is provided within the housing as an integral part of the ticket or separately from and at a distance from the housing.
- 15. The fluidics system of claim 12, wherein the sample detection and fluid-distribution unit includes a platform carrying the impinging nozzle, and a transfer pump in flow communication with the sample fluid reservoir for controllably transporting the sample fluid toward the array of the particle-detection strips.
- 16. The fluidics system of claim 15, wherein the detection and fluid-distribution unit has a series of injecting nozzles supported on the platform and in flow communication with the transfer pump, whereas the injecting nozzles distribute the sample fluid delivered by the transfer pump among the particle-detection strips.
- 17. The fluidics system of claim 15, wherein the platform of the sample detection and fluid-distribution unit supports a CCD camera opposing the array of the particle-detection strips and operative to detect a reaction if the particles to be detected are contained in the sample fluid.
- 18. The fluidics system of claim 15, wherein the sample detection and fluid-distribution unit further has a sample/cleaning fluid-conveying conduit controllably coupled to the sample and cleaning fluid reservoirs to selectively provide fluid flow between the transfer pump and the sample and cleaning fluid reservoirs.
- 19. The fluidics system of claim 18, further comprising a valve assembly in flow communication with the sample/cleaning fluid conveying conduit and with the transfer pump and operative to controllably couple the conduit with the sample and cleaning fluid reservoirs.
- 20. The fluidics system of claim 19, wherein the transfer pump is operative to provide fluid flow from the cleaning fluid reservoir through the fluid-conveying conduit into injecting nozzles to decontaminate the injecting nozzles, and to reverse the fluid flow upon completion of decontamination to direct contaminated fluid back into the cleaning fluid reservoir.
- 21. The fluidics system of claim 13, further comprising an impinger pump in flow communication with the outlet port for creating a vacuum in the inlet port sufficient to draw inflow of the air stream carrying the airborne particles.
- 22. The fluidics system of claim 21, further comprising an air-conveying conduit coupling the impinger pump and the outlet port and located on a platform of the sample detection and fluid-distribution unit.
- 23. The fluidics system of claim 11, further comprising another self-contained particle-detection ticket attached to the at least one self-contained particle-detection ticket, and a guide system configured so that the sample detection and fluid-distribution unit and each of the self-contained particle-detection tickets are displaceable relative to one another to provide intercoupling in a controllable manner.
- 24. The fluidics system of claim 23, further comprising a central processing unit having software operative to actuate a stepper motor coupled to and displacing the sample detection and fluid-distribution unit provided with a transfer pump and each of the at least one and other self-contained tickets relative to one another.
- 25. The fluidics system of claim 24, wherein the central processing unit further has software operative to actuate the transfer pump so that the sample fluid is pumped at a controlled rate and/or for a controlled period of time.
- 26. The fluidics system of claim 19, wherein a central processing unit has software operative to controllably switch the valve assembly to provide selective fluid communication between the transfer pump and the sample and cleaning fluid reservoirs.
- 27. The fluidics system of claim 24, wherein the central processing unit has software operative to controllably displace the sample detection and fluid-distribution unit among a plurality of magazines each containing the at least one and other self-contained tickets and among the at least one and the other self-contained tickets of each of the magazines.
- 28. A sample detection and fluid-distribution unit for use in a particle detection and analysis system comprising a platform supporting a fluid transfer pump, a plurality of injecting nozzles in flow communication with the transfer pump and a particle-detection sensor for detecting low concentration particles contained in sample fluid delivered by the transfer pump through the injecting nozzles.
- 29. The unit of claim 28, wherein the platform further has a sample/cleaning fluid conveying conduit providing flow communication between a sample fluid reservoir storing the sample fluid and the injecting nozzles, the sample fluid reservoir being provided in a self-contained particle-detection ticket detachably coupled to the sample/cleaning fluid conveying conduit.
- 30. The unit of claim 29, wherein the transfer pump is operative to deliver cleaning fluid through the sample/cleaning fluid conveying conduit from a cleaning fluid reservoir into the injecting nozzles to decontaminate the injecting nozzles, the cleaning fluid reservoir being provided in the self-contained particle-detection ticket adjacent to and in flow isolation with the sample fluid reservoir.
- 31. The unit of claim 30, wherein the sample fluid is transferred by the transfer pump and distributed via the injecting nozzles among a plurality of immunoassay strips located on the self-contained particle detection ticket adjacent the sample and cleaning fluid reservoirs.
- 32. An integrated fluidics system for analysis of agents, comprising a housing provided with a sample fluid reservoir, a detection unit, and a fluid-distribution unit detachably coupled to one another to assemble a one-piece assembly and to provide controllable delivery and detection of agents carried by a sample fluid within the one-piece assembly.
- 33. The integrated fluidics system of claim 32, wherein the housing further includes at least one inlet port receiving an air stream with the agents to be detected.
- 34. The integrated fluidics system of claim 32, wherein the detection unit includes a cartridge carrying a plurality of immunoassay strips.
- 35. The integrated fluidics system of claim 32, wherein the fluid-distribution unit includes means for creating negative or positive pressure in the housing to deliver the sample fluid to the detection unit.
CROSS-REFERENCE TO RELATED APPLICATION
This application claims priority to U.S. Provisional Application Ser. No. 60/332,788 filed Nov. 6, 2001, the contents of which are incorporated by reference herein.
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|
Number |
Date |
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|
60/332788 |
Nov 2001 |
US |