Claims
- 1. A filter assembly for separating and collecting a layer of particulate matter from a liquid containing the particulate matter, the filter assembly comprising:
a holder having a base and a surrounding sidewall projecting from the base, the base and the sidewall defining an open cavity extending from the base to the rim of the sidewall at the distal end thereof; an inner fluid pervious medium in the cavity having opposed inner and outer faces, the inner face facing the base; a flow opening in the holder in fluid communication with the inner face of the inner fluid pervious medium; and an outer fluid pervious medium overlying the outer face of the inner fluid pervious medium and attached to the sidewall, the exposed face of the outer fluid pervious medium adapted to collect a layer of the particulate matter, the inner fluid pervious medium being of low fluidic impedance relative to the outer fluid pervious medium so that the pressure drop across the inner fluid pervious medium is less than the pressure drop across the outer fluid pervious medium when liquid flows therethrough.
- 2. A filter assembly according to claim 1, wherein the outer edge of the sidewall rim is chamfered, and the outer fluid pervious medium is attached to the chamfer.
- 3. A filter assembly according to claim 2, wherein the outer face of the inner fluid pervious medium is proud of the sidewall rim, and the outer fluid pervious medium is a membrane filter.
- 4. A filter assembly according to claim 3, wherein the membrane filter is fused to the chamfer.
- 5. A filter assembly according to claim 1, further comprising a seat in the cavity that supports the inner fluid pervious medium in spaced relation to the base so as to form a chamber that is bounded by the base, the inner face of the inner fluid pervious medium and the sidewall, and is in fluid communication with the flow opening.
- 6. A filter assembly according to claim 5, wherein the seat comprises an annular shoulder.
- 7. A filter assembly according to claim 6, further comprising a central support on the base in the chamber having a distal end that engages the inner face of the inner fluid pervious medium and supports the central portion of the inner fluid pervious medium.
- 8. A filter assembly according to claim 7, wherein the distal end of the central support is proud of the annular shoulder so that the central portions of the inner and outer fluid pervious media are bowed outwardly.
- 9. A filter assembly according to claim 8, wherein the outer edge of the rim of the sidewall is chamfered, and the outer fluid pervious medium is attached to the chamfer.
- 10. A filter assembly according to claim 9, wherein the outer face of the inner fluid pervious medium is proud of the sidewall rim, and the outer fluid pervious medium is a membrane filter.
- 11. A filter assembly according to claim 9, wherein the membrane filter is fused to the chamfer.
- 12. A filter assembly according to claim 8, wherein the central support is hollow, the flow opening is in the base in alignment with the central support and communicates with the interior thereof, and the central support has at least one opening that provides fluid communication between the chamber and the flow opening through the interior of the central support.
- 13. A filter assembly according to claim 12, wherein said at least one opening comprises a plurality of side openings in the central support.
- 14. A filter assembly according to claim 12, wherein the outer edge of the sidewall rim is chamfered, and the outer fluid pervious medium is attached to the chamfer.
- 15. A filter assembly according to claim 14, wherein the outer face of the inner fluid pervious medium is proud of the sidewall rim, and the outer fluid pervious medium is a membrane filter.
- 16. A filter assembly according to claim 15, wherein the membrane filter is fused to the chamfer.
- 17. A filter assembly according to claim 16, wherein the inner fluid pervious medium is cylindrical, and the sidewall is annular and closely surrounds the inner fluid pervious medium.
- 18. A filter assembly according to claim 17, wherein the holder and the membrane filter are made of polycarbonate.
- 19. An apparatus, for use with a filter, for separating and collecting a layer of particulate matter from a liquid containing the particulate matter, the filter having a collection site adapted to collect a layer of the particulate matter, the apparatus comprising a particulate matter separation chamber for holding the filter, the separation chamber defined by a bottom wall with a central fluid inlet and an annular wall projecting upwardly from the bottom wall, the separation chamber supporting the filter near its periphery on spaced supports with the collection site facing the bottom wall, the bottom wall having a radially sloped surface facing the filter such that the distance between the bottom wall and the collection site decreases from the inlet toward the filter periphery, whereby liquid introduced to the separation chamber through the inlet can flow directly through the filter and deposit a layer of particulate matter on the collection site, and can also flow with particulate matter outwardly across the face of the filter and through the spaces between the filter supports.
- 20. An apparatus according to claim 19, wherein the spaces between the filter supports are large enough to prevent the particulate matter from clogging the spaces.
- 21. An apparatus according to claim 20, adapted for collecting a layer of cells taken from a cytology specimen, wherein the minimum dimension of the spaces between the filter supports is 0.004 in.
- 22. An apparatus according to claim 19, wherein the sloped surface of the bottom wall is substantially conical.
- 23. An apparatus according to claim 19, wherein the inlet flow area, which is defined by the product of the circumference of the inlet and the distance between the inlet and the collection site, is substantially equal to the aggregate of the radial outflow areas of the spaces between the filter supports.
- 24. An apparatus according to any one of claims 19 to 23, for use in a container for holding and processing particulate matter-containing liquid and adapted to be engaged by an external manipulator while in the container, further comprising a tube communicating with the separation chamber through the inlet and extending downwardly from the bottom wall, whereby the tube can contact the particulate matter containing-liquid in the container.
- 25. An apparatus according to claim 24, further comprising a dispersing element carried by the tube for mixing the particulate matter containing-liquid in the container.
- 26. An apparatus according to claim 24, wherein the external manipulator is a vacuum head for applying suction to the separation chamber to draw particulate matter-containing liquid through the filter, and the separation chamber is adapted to mate with and seal to the vacuum head.
- 27. An apparatus for separating and collecting a layer of particulate matter from a liquid containing the particulate matter, comprising:
a housing defining a separation chamber having an inlet portion and an outlet portion; and a filter in the housing having a collection site facing the inlet portion and defining two flow paths between the inlet portion and the outlet portion, one flow path directly through the filter and the other flow path around the periphery of the filter, wherein the inlet portion has a central inlet in a surface that faces the collection site and is radially sloped such that the distance between the sloped surface and the collection site decreases from the inlet toward the periphery of the filter, whereby liquid introduced to the separation chamber through the inlet flows directly through the filter to deposit a layer of particulate matter on the collection site, and also flows with particulate matter outwardly across the collection site toward the edge of the filter to wash excess particulate matter from the collection site.
- 28. An apparatus according to claim 27, wherein the sloped surface is substantially radially symmetrical.
- 29. An apparatus according to claim 27, wherein the inlet flow area, which is defined by the product of the circumference of the inlet and the distance between the inlet and the collection site, is substantially equal to the aggregate radial outflow area at the edge of the filter.
- 30. A method for collecting cells for cytology comprising passing a biological fluid containing cells through a separation chamber having therein a filter with a cell collection site positioned transversely of the fluid flow path entering the separation chamber through a centrally located inlet, and diverting a portion of the fluid flow outwardly toward the periphery of the filter by juxtaposition of an inlet surface adjacent the collection site that is radially sloped such that the distance between the sloped surface and the collection site decreases from the inlet toward the periphery of the filter, whereby fluid introduced to the separation chamber through the inlet flows directly through the filter to deposit cells on the collection site, and also flows outwardly across the collection site toward the edge of the filter to wash away excess cells from the collection site leaving substantially a monolayer of cells on the collection site.
- 31. A method according to claim 30, wherein the inlet flow area, which is defined by the product of the circumference of the inlet and the distance between the inlet and the collection site, is equal to or greater than the aggregate radial outflow area at the periphery of the filter.
- 32. A method according to claim 30, wherein the collection site is slightly bowed outwardly at its center, further comprising removing the filter from the separation chamber and pressing the filter against a slide to flatten it against the slide and transfer substantially all of the cells from the filter to the slide.
- 33. A method for collecting cells from individual specimens of biological fluid in specimen containers, each container having therein a processing assembly comprising an open-top separation chamber, adapted to receive a filter assembly having a downwardly facing collection site, and a depending aspiration tube that extends into the specimen and communicates with the separation chamber through the bottom wall thereof, the method comprising, for each container, the steps of:
placing a filter assembly in the separation chamber; coupling a movable suction head to the processing assembly and the filter assembly; elevating the suction head to raise the processing assembly sufficiently to eliminate contact of the processing assembly with the container; applying a vacuum to the filter assembly to aspirate specimen fluid from the container through the tube, into the separation chamber and through the filter until a layer of cells is collected on the filter collection site; uncoupling the suction head from the processing assembly; and elevating the suction head to remove the still-coupled filter assembly from the separation chamber.
- 34. A method according to claim 33, wherein the suction head is coupled to the filter assembly by vacuum.
- 35. A method according to claim 34, wherein the vacuum applied to couple the suction head to the filter assembly is on the order of 20″ Hg.
- 36. A method according to claim 34 or 35, wherein the vacuum applied to aspirate specimen fluid from the container is in the range of about 3″ Hg to about 7″ Hg.
- 37. A method according to claim 33, further comprising moving the suction head with the still-coupled filter assembly over a slide, and moving the suction head downwardly to press the filter assembly against the slide to transfer cells from the filter assembly to the slide.
- 38. A method according to claim 37, further comprising uncoupling the filter assembly from the suction head and disposing of the filter assembly.
- 39. An apparatus for collecting cells for cytology from individual specimens of biological fluid in specimen containers, each container having therein a processing assembly comprising an open-top separation chamber, defined by a bottom wall and an upstanding annular wall and adapted to receive a filter assembly, and a depending aspiration tube that extends into the specimen fluid and communicates with the separation chamber through the bottom wall, the filter assembly having a holder with a flow opening in its upper face and a filter arrangement in the holder having a downwardly facing collection site, the apparatus comprising:
a suction head adapted to be positioned above a container and mounted for vertical movement relative to the container, the suction head comprising coaxial inner and outer portions, the outer portion having an annular skirt adapted to surround and sealingly engage the annular wall of the separation chamber, the inner portion having a lower face with an aspiration suction port and a retention suction port, the inner portion being mounted for axial movement relative to the outer portion and adapted to sealingly engage the upper face of the holder so that the aspiration suction port is in fluid communication with the flow opening and the retention suction port is in fluid communication with a scaled annular area on the upper face of the holder, a head actuator for moving the suction head vertically; and an inner portion actuator for separately moving the inner portion vertically.
- 40. An apparatus according to claim 39, wherein the suction head is journaled for rotation about the coaxial axis to mix the specimen in the container, further comprising a mixing actuator for rotating the suction head.
- 41. An apparatus according to claim 39 or claim 40, wherein the suction head is mounted for lateral movement away from and toward the container, further comprising at least one lateral actuator for laterally moving the suction head.
- 42. An apparatus according to claim 41, wherein the lateral movement of the suction head comprises pivotal movement about an axis parallel to the coaxial axis.
- 43. An apparatus according to claim 42, wherein the lateral movement of the suction head comprises horizontal translating movement.
- 44. An apparatus according to claim 39, wherein the annular skirt has an internal an O-ring that seals against the outer surface of the annular wall of the separation chamber, and the inner portion has two concentric O-rings on its lower face, the inner of the concentric O-rings surrounding the aspiration suction port, the retention suction port lying between the concentric O-rings, and the concentric O-rings forming the sealed annular area on the upper face of the holder when in contact therewith.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of commonly owned U.S. provisional application Nos. 60/330,092, filed Oct. 19, 2001, 60/372,080, filed Apr. 15, 2002, and 60/373,658, filed Apr. 19, 2002, all of which are incorporated herein by reference. This application also is related to commonly owned U.S. non-provisional application No. 10/122,151, filed Apr. 15, 2002, which is also incorporated herein by reference.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60330092 |
Oct 2001 |
US |
|
60372080 |
Apr 2002 |
US |
|
60373658 |
Apr 2002 |
US |