Claims
- 1. A rotary valve, comprising:
a stator comprising a plurality of entry dispense ports, a plurality of auxiliary entry dispense ports, and a plurality of exit dispense ports; a rotor disposed within said stator and being clockable between a dispense configuration, a first auxiliary dispense configuration, and a second auxiliary dispense configuration, said rotor comprising a plurality of dispense channels connected between said plurality of entry dispense ports and said plurality of exit dispense ports when said rotor is clocked in said dispense configuration, a first plurality of auxiliary dispense channels connected between said plurality of auxiliary entry dispense ports and said plurality of exit dispense ports when said rotor is clocked in said first auxiliary dispense configuration, and a second plurality of auxiliary dispense channels connected between said plurality of auxiliary entry dispense ports and said plurality of exit dispense ports when said rotor is clocked in said second auxiliary dispense configuration.
- 2. The rotary valve of claim 1, wherein said plurality of exit dispense ports is clocked substantially 180° from said plurality of entry dispense ports, and said plurality of dispense channels comprises a plurality of through channels connecting said plurality of entry dispense ports with said plurality of exit dispense ports.
- 3. The rotary valve of claim 1, wherein said plurality of exit dispense ports is clocked substantially 90° from said plurality of auxiliary entry dispense ports, and said first plurality of auxiliary dispense channels comprises a plurality of through channels connected to plurality of auxiliary entry dispense ports, and a plurality of substantially 90° arcuate surface channels connected between said plurality of through channels and said plurality of exit dispense ports.
- 4. The rotary valve of claim 1, wherein said plurality of exit dispense ports is clocked substantially 90° from said plurality of auxiliary entry dispense ports, and said second plurality of auxiliary dispense channels comprises a plurality of substantially 90° arcuate surface channels.
- 5. The rotary valve of claim 1, wherein said plurality of exit dispense ports is clocked substantially 180° from said plurality of entry dispense ports and substantially 90° from said plurality of auxiliary entry dispense ports, said plurality of dispense channels comprises a plurality of through channels connecting said plurality of entry dispense ports and said plurality of exit dispense ports, said first plurality of auxiliary dispense channels comprises a plurality of through channels connected to said plurality of auxiliary entry dispense ports, and a plurality of substantially 90° arcuate surface channels connected between said plurality of through channels and said plurality of exit dispense ports, and said second plurality of auxiliary dispense channels comprises a plurality of substantially 90° arcuate surface channels·connected between said plurality of auxiliary entry dispense ports and said plurality of exit dispense ports.
- 6. The rotary valve of claim 1, wherein said dispense configuration is clocked substantially 90° from said first auxiliary dispense configuration.
- 7. The rotary valve of claim 1, wherein said dispense configuration is clocked substantially 0° from said second auxiliary dispense configuration.
- 8. The rotary valve of claim 1, wherein said dispense configuration is clocked substantially 90° from said first auxiliary dispense configuration, and substantially 0° from said second auxiliary dispense configuration.
- 9. A rotary valve, comprising:
a stator comprising a feed port and a plurality of distribution port pairs, each of said distribution port pairs comprising an entry distribution port and an exit distribution port; a rotor disposed within said stator and being clockable in a distribution configuration, said rotor comprising a feed channel connecting said feed port to an entry distribution port of a first distribution port pair, and a plurality of distribution channels connecting an exit distribution port of each previous distribution port pair to an entry distribution port of each next distribution port pair.
- 10. The rotary valve of claim 9, wherein said plurality of distribution channels comprises a plurality of longitudinal surface channels.
- 11. The rotary valve of claim 9, wherein said feed port is clocked substantially 90° from said first distribution port pair, and said feed channel comprises a through channel connected to said feed port, and a substantially 90° arcuate feed surface channel connected between said through channel and said entry distribution port of said first distribution port pair.
- 12. The rotary valve of claim 9, wherein said plurality of distribution port pairs are formed on the stator in a rectilinear pattern.
- 13. The rotary valve of claim 9, wherein said stator comprises a vent port, and said rotor comprises a vent channel connecting an exit distribution port of a last distribution port pair to said vent port when said rotor is clocked in said distribution configuration.
- 14. The rotary valve of claim 13, wherein said vent port is clocked substantially 180° from said last distribution port pair, and said vent channel comprises a first substantially 90° arcuate vent surface channel connected to said exit distribution port of said last distribution port pair, a second substantially 90° arcuate vent surface channel connected to said vent port, and a through channel connecting said first and second vent surface channels.
- 15. The rotary valve of claim 9, wherein said stator comprises a plurality of exit dispense ports, and said rotor is further clockable in a dispense configuration, said rotor comprising a plurality of dispense channels connecting one of said entry and exit distribution ports of said plurality of distribution port pairs with said plurality of exit dispense ports when said rotor is clocked in said dispense configuration.
- 16. The rotary valve of claim 15, wherein said plurality of exit dispense ports is clocked substantially 180° from said plurality of distribution port pairs, and said plurality of dispense channels comprises a plurality of through channels connecting one of said entry and exit distribution ports of said plurality of distribution port pairs with said plurality of exit dispense ports.
- 17. The rotary valve of claim 15, wherein said one of said entry and exit distribution ports comprises said exit distribution port.
- 18. The rotary valve of claim 15, wherein said dispense configuration is clocked substantially 90° from said distribution configuration.
- 19. The rotary valve of claim 15, wherein said stator comprises an exit dispense port, wherein said feed channel connects to said exit dispense port when said rotor is clocked in said dispense configuration.
- 20. The rotary valve of claim 9, wherein said stator comprises a plurality of auxiliary entry dispense ports, and said rotor is further clockable in an auxiliary dispense configuration, said rotor comprising a plurality of auxiliary dispense channels connecting said auxiliary entry dispense ports with said plurality of exit dispense ports when said rotor is clocked in said auxiliary dispense configuration.
- 21. The rotary valve of claim 20, wherein said plurality of auxiliary entry dispense ports is clocked substantially 90° from said plurality of exit dispense ports, and said plurality of auxiliary dispense channels comprises a plurality of through channels connected to said plurality of auxiliary entry dispense ports, and a plurality of substantially 90° arcuate surface channels connected between said plurality of through channels and said plurality of exit dispense ports.
- 22. The rotary valve of claim 20, wherein said auxiliary dispense configuration is clocked substantially 0° from said distribution configuration.
- 23. The rotary valve of claim 9, wherein said stator comprises a plurality of exit dispense ports and a plurality of auxiliary entry dispense ports, and said rotor is further clockable in a dispense configuration, a first auxiliary dispense configuration, and a second auxiliary dispense configuration, said rotor comprising a plurality of dispense channels connecting one of said entry and exit distribution ports of said plurality of distribution port pairs with said plurality of exit dispense ports when said rotor is clocked in said dispense configuration, a plurality of first auxiliary dispense channels connecting said plurality of auxiliary entry dispense ports with said plurality of exit dispense ports when said rotor is clocked in said first auxiliary dispense configuration, and a plurality of second auxiliary dispense channels connecting said plurality of auxiliary entry dispense ports with said plurality of exit dispense ports when said rotor is clocked in said second auxiliary dispense configuration.
- 24. The rotary valve of claim 23, wherein said plurality of auxiliary entry dispense ports is clocked substantially 90° from said plurality of exit dispense ports, and said first plurality of auxiliary dispense channels comprises a plurality of through channels connected to said plurality of auxiliary entry dispense ports, and a plurality of substantially 90° arcuate surface channels connected between said plurality of through channels and said plurality of exit dispense ports, and said second plurality of auxiliary dispense channels comprises a plurality of substantially 90° arcuate surface channels connected between said plurality of auxiliary entry dispense ports and said plurality of exit dispense ports.
- 25. The rotary valve of claim 23, wherein said first auxiliary dispense configuration is clocked substantially 0° from said distribution configuration.
- 26. The rotary valve of claim 23, wherein said second auxiliary dispense configuration is clocked substantially 0° from said dispense configuration.
- 27. The rotary valve of claim 23, wherein said dispense configuration is clocked substantially 90° from said distribution configuration.
- 28. The rotary valve of claim 23, wherein said first auxiliary dispense configuration is clocked substantially 0° from said distribution configuration, said second auxiliary dispense configuration is clocked substantially 0° from said dispense configuration, and said dispense configuration is clocked substantially 90° from said distribution configuration.
- 29. A flow immunoassay assembly for testing a sample, comprising:
a plurality of sample distribution chambers configured for containing said sample; a plurality of buffer chambers containing buffer; a plurality of immunoassay reaction chambers; a stator comprising a plurality of entry dispense ports in fluid communication with said plurality of sample distribution chambers, a plurality of auxiliary entry dispense ports in fluid communication with said plurality of buffer chambers, and a plurality of exit dispense ports in fluid communication with said plurality of immunoassay reaction chambers; and a rotor disposed within said stator and being clockable between a dispense configuration and a first auxiliary dispense configuration, said rotor comprising a plurality of dispense channels connected between said plurality of entry dispense ports and said plurality of exit dispense ports when said rotor is clocked in said dispense configuration, and a first plurality of auxiliary dispense channels connected between said plurality of auxiliary entry dispense ports and said plurality of exit dispense ports when said rotor is clocked in said first auxiliary dispense configuration.
- 30. The flow immunoassay assembly of claim 29, wherein said plurality of exit dispense ports is clocked substantially 180° from said plurality of entry dispense ports, and said plurality of dispense channels comprises a plurality of through channels connecting said plurality of entry dispense ports and said plurality of exit dispense ports.
- 31. The flow immunoassay assembly of claim 29, wherein said plurality of exit dispense ports is clocked substantially 90° from said plurality of auxiliary entry dispense ports, and said first plurality of auxiliary dispense channels comprises a plurality of through channels connected to plurality of auxiliary entry dispense ports, and a plurality of substantially 90° arcuate surface channels connected between said plurality of through channels and said plurality of exit dispense ports.
- 32. The flow immunoassay assembly of claim 29, wherein said dispense configuration is clocked substantially 90° from said first auxiliary dispense configuration.
- 33. The flow immunoassay assembly of claim 29, wherein said rotor is further clockable in a second auxiliary dispense configuration, wherein said rotor comprises a second plurality of auxiliary dispense channels connected between said plurality of auxiliary entry dispense ports and said plurality of exit dispense ports when said rotor is clocked in said second auxiliary dispense configuration.
- 34. The flow immunoassay assembly of claim 33, wherein said plurality of exit dispense ports is clocked substantially 90° from said plurality of auxiliary entry dispense ports, and said second plurality of auxiliary dispense channels comprises a plurality of substantially 90° arcuate surface channels connecting said plurality of auxiliary entry dispense ports and said plurality of exit dispense ports.
- 35. The flow immunoassay assembly of claim 33, wherein said dispense configuration is clocked substantially 0° from said second auxiliary dispense configuration.
- 36. The flow immunoassay assembly of claim 33, wherein said plurality of exit dispense ports is clocked substantially 180° from said plurality of entry dispense ports and substantially 90° from said plurality of auxiliary entry dispense ports, said plurality of dispense channels comprises a plurality of through channels connecting said plurality of entry dispense ports and said plurality of exit dispense ports, said first plurality of auxiliary dispense channels comprises a plurality of through channels connected to said plurality of auxiliary entry dispense ports, and a plurality of substantially 90° arcuate surface channels connected between said plurality of through channels and said plurality of exit dispense ports, and said second plurality of auxiliary dispense channels comprises a plurality of substantially 90° arcuate surface channels connected between said plurality of auxiliary entry dispense ports and said plurality of exit dispense ports.
- 37. The flow immunoassay assembly of claim 33, wherein said dispense configuration is clocked substantially 90° from said first auxiliary dispense configuration, and substantially 0° from said second auxiliary dispense configuration.
- 38. The flow immunoassay assembly of claim 29, wherein said plurality of sample distribution chambers comprises said sample.
- 39. A method of controlling the flow of a sample within a flow immunoassay assembly comprising a rotary valve, a plurality of sample distribution chambers containing said sample, a plurality of buffer chambers containing buffer, and plurality of immunoassay reaction chambers operably connected to said rotary valve, the method comprising:
placing said rotary valve in a first auxiliary dispense configuration; flowing said buffer from said plurality of buffer chambers through said plurality of immunoassay reaction chambers while said rotary valve is in said first auxiliary dispense configuration; placing said rotary valve in a dispense configuration; and flowing said sample from said plurality of sample distribution chambers through said plurality of immunoassay reaction chambers while said rotary valve is in said dispense configuration.
- 40. The method of claim 39, wherein said dispense configuration comprises a sample flow configuration, said first auxiliary dispense configuration comprises a buffer pre-wash configuration, and said plurality of immunoassay reaction chambers is pre-washed with said buffer while said rotary valve is in said buffer pre-wash configuration.
- 41. The method of claim 39, wherein said dispense configuration is clocked substantially 90° from said first auxiliary dispense configuration.
- 42. The method of claim 39, wherein said rotary valve is clocked from said first auxiliary dispense configuration to said dispense configuration.
- 43. The method of claim 39, wherein said buffer is flowed from said plurality of buffer chambers though said plurality of immunoassay reaction chambers prior to flowing said sample from said plurality of sample distribution chambers through said plurality of immunoassay reaction chambers.
- 44. The method of claim 39, further comprising:
placing said rotary valve in a second auxiliary dispense configuration; and flowing said buffer from said plurality of buffer chambers through said plurality of immunoassay reaction chambers while said rotary valve is in said second auxiliary dispense configuration.
- 45. The method of claim 39, wherein said dispense configuration comprises a sample flow configuration, said first auxiliary dispense configuration comprises a buffer pre-wash configuration, said plurality of immunoassay reaction chambers is pre-washed with said buffer while said rotary valve is in said buffer pre-wash configuration, said second auxiliary dispense configuration comprises a buffer post-wash configuration, said plurality of immunoassay reaction chambers is post-washed with said buffer while said rotary valve is in said buffer post-wash configuration.
- 46. The method of claim 45, wherein said dispense configuration is clocked substantially 90° from said first auxiliary dispense configuration, and substantially 0° from said second auxiliary dispense configuration.
- 47. The method of claim 45, wherein said buffer is flowed from said plurality of buffer chambers though said plurality of immunoassay reaction chambers while said sample is flowed from said plurality of sample distribution chambers through said plurality of immunoassay reaction chambers.
- 48. The method of claim 39, wherein said sample comprises saliva.
- 49. A flow immunoassay assembly, comprising:
a plurality of sample distribution chambers configured for containing said sample; a plurality of immunoassay reaction chambers; a stator comprising a feed port, a plurality of distribution port pairs in fluid communication with said plurality of sample distribution chambers, each of said distribution port pairs comprising an entry distribution port and an exit distribution port, and a plurality of exit dispense ports in fluid communication with said plurality of immunoassay reaction chambers; and a rotor disposed within said stator and being clockable in a distribution configuration, said rotor comprising a feed channel connecting said feed port to an entry distribution port of a first distribution port pair, and a plurality of distribution channels connecting an exit distribution port of each previous distribution port pair to an entry distribution port of each next distribution port pair when said rotor is clocked in said distribution configuration.
- 50. The flow immunoassay assembly of claim 49, wherein said plurality of distribution channels comprises a plurality of longitudinal surface channels.
- 51. The flow immunoassay assembly of claim 49, wherein said feed port is clocked substantially 90° from said first distribution port pair, and said feed channel comprises a through channel connected to said feed port, and a substantially 90° arcuate feed surface channel connected to said entry distribution port of said first distribution port pair.
- 52. The flow immunoassay assembly of claim 49, wherein said plurality of distribution port pairs are formed on the stator in a rectilinear pattern.
- 53. The flow immunoassay assembly of claim 49, wherein said stator comprises a vent port, and said rotor comprises a vent channel connecting an exit distribution port of a last distribution port pair to said vent port when said rotor is clocked in said distribution configuration.
- 54. The flow immunoassay assembly of claim 53, wherein said vent port is clocked substantially 180° from said last distribution port pair, and said vent channel comprises a first substantially 90° arcuate vent surface channel connected to said exit distribution port of said last distribution port pair, a second substantially 90° arcuate vent surface channel connected to said vent port, and a through channel connecting said first and second vent surface channels.
- 55. The flow immunoassay assembly of claim 49, wherein said stator comprises a plurality of exit dispense ports in fluid communication with said plurality of sample distribution chambers, and said rotor is further clockable in a dispense configuration, said rotor comprising a plurality of dispense channels connecting one of said entry and exit distribution ports of said plurality of distribution port pairs with said plurality of exit dispense ports when said rotor is clocked in said dispense configuration.
- 56. The flow immunoassay assembly of claim 55, wherein said plurality of exit dispense ports is clocked substantially 180° from said plurality of distribution port pairs, and said plurality of dispense channels comprises a plurality of through channels connecting one of said entry and exit distribution ports of said plurality of distribution port pairs with said plurality of exit dispense ports.
- 57. The flow immunoassay assembly of claim 55, wherein said one of said entry and exit distribution ports comprises said exit distribution port.
- 58. The flow immunoassay assembly of claim 55, wherein said dispense configuration is clocked substantially 90° from said distribution configuration.
- 59. The flow immunoassay assembly of claim 49, wherein said stator comprises a plurality of auxiliary entry dispense ports in fluid communication with said plurality of buffer chambers, and said rotor is further clockable in an auxiliary dispense configuration, said rotor comprising a plurality of auxiliary dispense channels connecting said auxiliary entry dispense ports with said plurality of exit dispense ports when said rotor is clocked in said auxiliary dispense configuration.
- 60. The flow immunoassay assembly of claim 59, wherein said plurality of auxiliary entry dispense ports is clocked substantially 90° from said plurality of exit dispense ports, and said plurality of auxiliary dispense channels comprises a plurality of through channels connected to said plurality of auxiliary entry dispense ports, and a plurality of substantially 90° arcuate surface channels connected between said plurality of through channels and said plurality of exit dispense ports.
- 61. The flow immunoassay assembly of claim 59, wherein said auxiliary dispense configuration is clocked substantially 0° from said distribution configuration.
- 62. The flow immunoassay assembly of claim 49, wherein said stator comprises a plurality of exit dispense ports in fluid communication with said plurality of sample distribution chambers and a plurality of auxiliary entry dispense ports in fluid communication with said plurality of buffer chambers, and said rotor is further clockable in a dispense configuration, a first auxiliary dispense configuration, and a second auxiliary dispense configuration, said rotor comprising a plurality of dispense channels connecting one of said entry and exit distribution ports of said plurality of distribution port pairs with said plurality of exit dispense ports when said rotor is clocked in said dispense configuration, a plurality of first auxiliary dispense channels connecting said plurality of auxiliary entry dispense ports with said plurality of exit dispense ports when said rotor is clocked in said first auxiliary dispense configuration, and a plurality of second auxiliary dispense channels connecting said plurality of auxiliary entry dispense ports with said plurality of exit dispense ports when said rotor is clocked in said second auxiliary dispense configuration.
- 63. The flow immunoassay assembly of claim 62, wherein said plurality of auxiliary entry dispense ports is clocked substantially 90° from said plurality of exit dispense ports, and said first plurality of auxiliary dispense channels comprises a plurality of through channels connected to said plurality of auxiliary entry dispense ports, and a plurality of substantially 90° arcuate surface channels connected between said plurality of through channels and said plurality of exit dispense ports, and said second plurality of auxiliary dispense channels comprises a plurality of substantially 90° arcuate surface channels connected between said plurality of auxiliary entry dispense ports and said plurality of exit dispense ports.
- 64. The flow immunoassay assembly of claim 62, wherein said first auxiliary dispense configuration is clocked substantially 0° from said distribution configuration, and said second auxiliary dispense configuration is clocked substantially 0° from said dispense configuration.
- 65. The flow immunoassay assembly of claim 62, wherein said dispense configuration is clocked substantially 90° from said distribution configuration.
- 66. The flow immunoassay assembly of claim 62, wherein said first auxiliary dispense configuration is clocked substantially 0° from said distribution configuration, said second auxiliary dispense configuration is clocked substantially 0° from said dispense configuration, and said dispense configuration is clocked substantially 90° from said distribution configuration.
- 67. The flow immunoassay assembly of claim 49, wherein said plurality of sample distribution chambers comprises said sample.
- 68. The flow immunoassay assembly of claim 49, wherein said one of said entry and exit distribution ports comprises said exit distribution port.
- 69. A method of controlling the flow of a sample within a flow immunoassay assembly comprising a sample feed port, a rotary valve, and a plurality of sample distribution chambers operably connected to said rotary valve, said flow immunoassay assembly further comprising a plurality of immunoassay reaction chambers, the method comprising:
placing said rotary valve in a distribution configuration; and flowing said sample from said sample feed port into said plurality of sample distribution chambers while said rotary valve is in said distribution configuration.
- 70. The method of claim 69, wherein said sample distribution comprises cascading said sample into said plurality of sample distribution chambers.
- 71. The method of claim 69, further comprising venting air from said plurality of sample distribution chambers via said rotary valve during said sample distribution.
- 72. The method of claim 69, wherein said rotary valve is operably connected to said plurality of immunoassay reaction chambers, and the method further comprises preventing said sample from flowing from said plurality of immunoassay reaction chambers through said plurality of immunoassay reaction chambers when said rotary valve is in said distribution configuration.
- 73. The method of claim 69, wherein said plurality of immunoassay reaction chambers is operably connected to said rotary valve, the method further comprising:
placing said rotary valve in a dispense configuration; and flowing said sample from said plurality of sample distribution chambers through said plurality of immunoassay reaction chambers while said rotary valve is in said dispense configuration.
- 74. The method of claim 73, wherein said dispense configuration is clocked substantially 90° from said distribution configuration.
- 75. The method of claim 73, wherein said rotary valve is clocked from said distribution configuration to said dispense configuration.
- 76. The method of claim 73, further comprising preventing said sample from flowing from said plurality of sample distribution chambers through said sample feed port when said rotary valve is in said dispense configuration.
- 77. The method of claim 69, wherein said flow immunoassay assembly comprises a plurality of buffer chambers containing a buffer and being operably connected to said rotary valve, the method further comprising:
placing said rotary valve in an auxiliary dispense configuration; and flowing said buffer from said plurality of buffer chambers through said plurality of immunoassay reaction chambers while said rotary valve is in said auxiliary dispense configuration.
- 78. The method of claim 77, wherein said auxiliary dispense configuration comprises a buffer pre-wash configuration, and said plurality of immunoassay reaction chambers is pre-washed with said buffer while said rotary valve is in said buffer pre-wash configuration.
- 79. The method of claim 77, wherein said auxiliary dispense configuration is clocked substantially 0° from said distribution configuration.
- 80. The method of claim 77, wherein said buffer is flowed from said plurality of buffer chambers through said plurality of immunoassay reaction chambers while said sample is distributed from said sample feed port into said plurality of sample distribution chambers.
- 81. The method of claim 77, wherein said buffer is flowed from said plurality of buffer chambers though said plurality of immunoassay reaction chambers prior to flowing said sample from said plurality of sample distribution chambers through said plurality of immunoassay reaction chambers.
- 82. The method of claim 69, wherein said flow immunoassay assembly further comprises a plurality of buffer chambers containing a buffer, said plurality of buffers and said plurality of immunoassay reaction chambers being operably connected to said rotary valve, the method further comprising:
placing said rotary valve in a dispense configuration; flowing said sample from said plurality of sample distribution chambers through said plurality of immunoassay reaction chambers while said rotary valve is in said dispense configuration. placing said rotary valve in a first auxiliary dispense configuration; flowing said buffer from said plurality of buffer chambers through said plurality of immunoassay reaction chambers while said rotary valve is in said first auxiliary dispense configuration; placing said rotary valve in a second auxiliary dispense configuration; and flowing said buffer from said plurality of buffer chambers through said plurality of immunoassay reaction chambers while said rotary valve is in said second auxiliary dispense configuration.
- 83. The method of claim 82, wherein said dispense configuration comprises a sample flow configuration, said first auxiliary dispense configuration comprises a buffer pre-wash configuration, said plurality of immunoassay reaction chambers is pre-washed with buffer while said rotary valve is in said buffer pre-wash configuration, said second auxiliary dispense configuration comprises a buffer post-wash configuration, said plurality of immunoassay reaction chambers is post-washed with buffer while said rotary valve is in said buffer post-wash configuration.
- 84. The method of claim 82, wherein said first auxiliary dispense configuration is clocked substantially 0° from said distribution configuration, and said second auxiliary dispense configuration is clocked substantially 0° from said dispense configuration.
- 85. The method of claim 82, wherein said dispense configuration is clocked substantially 90° from said distribution configuration.
- 86. The method of claim 82, wherein said first auxiliary dispense configuration is clocked substantially 0° from said distribution configuration, said second auxiliary dispense configuration is clocked substantially 0° from said dispense configuration, and said dispense configuration is clocked substantially 90° from said distribution configuration.
- 87. The method of claim 82, wherein said buffer is flowed from said plurality of buffer chambers through said plurality of immunoassay reaction chambers prior to flowing said sample from said plurality of sample distribution chambers through said plurality of immunoassay reaction chambers, and said buffer is flowed from said plurality of buffer chambers though said plurality of immunoassay reaction chambers while said sample is flowed from said plurality of sample distribution chambers through said plurality of immunoassay reaction chambers.
- 88. The method of claim 69, wherein said sample comprises saliva.
- 89. A flow immunoassay assembly, comprising:
a plurality of sample distribution chambers; a plurality of immunoassay reaction chambers; a rotary valve comprising a sample feed port, and being clockable in a distribution configuration to place said sample feed port in fluid communication with said plurality of sample distribution chambers, and clockable in a different dispense configuration to place said plurality of sample distribution chambers in fluid communication with said plurality of immunoassay reaction chambers.
- 90. The flow immunoassay assembly of claim 89, wherein said distribution configuration is clocked substantially 90° from said dispense configuration.
- 91. The flow immunoassay assembly of claim 89, further comprising a plurality of buffer chambers, wherein said rotary valve is clockable in a first auxiliary dispense configuration to place said plurality of buffer chambers in fluid communication with said plurality of immunoassay reaction chambers.
- 92. The flow immunoassay assembly of claim 91, wherein said auxiliary dispense configuration is clocked substantially 90° from said dispense configuration.
- 93. The flow immunoassay assembly of claim 91, wherein said auxiliary dispense configuration is clocked substantially 0° from said distribution configuration.
- 94. The flow immunoassay assembly of claim 91, wherein said rotary valve is clockable in a second auxiliary dispense configuration to further place said plurality of buffer chambers in fluid communication with said plurality immunoassay reaction chambers.
- 95. The flow immunoassay assembly of claim 89, further comprising a plurality of read cells in fluid communication with said plurality of immunoassay reaction chambers.
- 96. The flow immunoassay assembly of claim 89, wherein rotary valve is clockable in said distribution configuration to further prevent fluid communication between said plurality of sample distribution chambers and said plurality of immunoassay reaction chambers, and in said dispense configuration to further prevent fluid communication between said feed sample port and said plurality of sample distribution chambers.
- 97. A flow immunoassay assembly, comprising:
a plurality of sample distribution chambers; a plurality of buffer chambers; a plurality of immunoassay reaction chambers; a rotary valve clockable in dispense configuration to place said plurality of sample distribution chambers in fluid communication with said plurality of immunoassay reaction chambers, and clockable in a different auxiliary dispense configuration to place said plurality of buffer chambers in fluid communication with said plurality of immunoassay reaction chambers.
- 98. The flow immunoassay assembly of claim 97, wherein said dispense configuration is substantially clocked 90° from said auxiliary dispense configuration.
- 99. The flow immunoassay assembly of claim 97, wherein said rotary valve is clockable in said dispense configuration to further place said plurality of buffer chambers in fluid communication with said plurality of immunoassay reaction chambers.
- 100. The flow immunoassay assembly of claim 97, further comprising a plurality of read cells in fluid communication with said plurality of immunoassay reaction chambers.
RELATED APPLICATIONS
[0001] The present application claims priority under 35 U.S.C. 119(e) to U.S. Provisional Application No. 60/336,596 filed Dec. 4, 2001, which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60336596 |
Dec 2001 |
US |