Claims
- 1. A pump for moving fluid, said pump comprising:a housing having faces and a circumferential wall forming a chamber with a plurality of lobes; a stator gear in said chamber at a center thereof; a generally polygonal rotor with a plurality of sides greater in number than said plurality of lobes, said rotor being disposed in said lobed chamber with faces of said rotor opposed to said housing faces for unconstrained movement of said rotor faces relative to said housing faces; a rotor gear at a center of said rotor meshed with said stator gear; and a drive member for operating said pump to move fluid from an inlet of said chamber to an outlet of said chamber by imparting eccentric rotational motion to said rotor within said chamber to generate a reduced pressure in said lobes as said rotor rotates relative to said chamber, wherein apexes of said rotor are spaced from said housing wall and have no sealing members for contacting said wall, thereby maintaining a clearance between said apexes and said wall as said rotor rotates in said chamber so that fluid flows through said clearance when said drive member operates said pump.
- 2. A pump as in claim 1, wherein said rotor is molded in one piece.
- 3. A pump as in claim 2, wherein said housing is molded in one piece.
- 4. A pump as in claim 1, further comprising a seal extending around said rotor on at least one face thereof.
- 5. A pump as in claim 4, wherein said rotor is molded in one piece and each said face seal includes a ridge molded in said face of said rotor.
- 6. A pump as in claim 1, wherein:said chamber has narrowed portions separating said lobes; and said rotor is configured so that a clearance for permitting fluid flow therethrough is maintained between said sides thereof and said narrowed portions of said chamber as said rotor rotates in said chamber.
- 7. A pump as in claim 6, wherein said chamber has two of said lobes separated by opposing narrowed portions and said rotor has two of said sides.
- 8. A pump as in claim 1, wherein:said drive member includes a disc fitting within a circular opening in one of said faces of said rotor and mounted eccentrically to a drive shaft, said disc being in sliding contact with said circular opening; and said drive shaft passes through a hole in one of said faces of said housing, said hole being coaxial with said stator gear and said drive shaft being in sliding contact with said hole.
- 9. A vacuum pump capable of generating a reduced-pressure fluid flow in which particulate matter is entrained, said vacuum pump comprising:a pump housing having faces and a circumferential wall forming a chamber with a plurality of lobes, each of said lobes of said chamber having at least one outlet port and at least one inlet port disposed therein; a stator gear in said chamber at a center thereof; a rotor with a plurality of sides greater in number than said plurality of lobes, said rotor being disposed in said lobed chamber with faces of said rotor opposed to said housing faces for unconstrained movement of said rotor faces relative to said housing faces; a rotor gear at a center of said rotor meshed with said stator gear; and a drive member for operating said pump to move fluid from said inlet ports to said outlet ports by imparting eccentric rotational motion to said rotor within said chamber to generate a reduced pressure in said lobes as said rotor rotates relative to said chamber for producing fluid flow from said inlet port of said chamber to said outlet port of said chamber, wherein apexes of said rotor are spaced from said housing wall and said apexes have no sealing members for contacting said wall, thereby maintaining a clearance between said apexes and said wall as said rotor rotates in said chamber so that fluid flows through said clearance when said drive member operates said pump.
- 10. A vacuum pump as in claim 9, wherein:said chamber includes at least two outlet ports, each of said lobes of said chamber having at least one said outlet port disposed therein; said chamber includes at least two inlet ports, each of said lobes of said chamber having at least one said inlet port disposed therein; and at least one said inlet port and one said outlet port in different said lobes of said chamber are in direct fluid communication during a portion of said rotation of said rotor.
- 11. A vacuum pump as in claim 9, wherein said rotor is molded in one piece.
- 12. A vacuum pump as in claim 11, wherein said housing is molded in one piece.
- 13. A vacuum pump as in claim 9, wherein:said drive member includes a disc fitting within a circular opening in one of said faces of said rotor and mounted eccentrically to a drive shaft, said disc being in sliding contact with said circular opening; and said drive shaft passes through a hole in a cover attached to said housing forming one of said faces thereof, said hole being coaxial with said stator gear and said drive shaft being in sliding contact with said hole.
- 14. A vacuum pump as in claim 9, further comprising a seal extending around said rotor on at least one face thereof.
- 15. A vacuum pump as in claim 14, wherein said rotor is molded in one piece and each said face seal includes a ridge molded in said face of said rotor.
- 16. A vacuum pump as in claim 9, wherein:said chamber has narrowed portions separating said lobes; and said rotor is configured so that a clearance for permitting fluid flow therethrough is maintained between said sides thereof and said narrowed portions of said chamber as said rotor rotates in said chamber.
- 17. A vacuum pump as in claim 16, wherein said chamber has two of said lobes separated by opposing narrowed portions and said rotor has three of said sides.
- 18. A pump for moving fluid having particulate matter entrained therein, said pump comprising:a one-piece molded housing body and a cover attached thereto to form a housing having faces and a circumferential wall forming a chamber with an epitrochoidal planform satisfying the equation x=(a+b)·cos(t)−c·cos((a/b+1)·t), and y=(a+b)·sin(t)−c·sin((a/b+1)·t), x and y being plotted from a center of said chamber, wherein 0≦t≦2π, a/b is an integer defining the number of lobes of said chamber, and b/c=2;a stator gear in said chamber at said center thereof, said stator gear having (a/b)·n teeth, wherein n is an integer; a one-piece molded rotor with a generally polygonal planform having (a/b+1) curved sides and generally flat opposing faces, wherein said rotor is disposed in said lobed chamber with said rotor faces opposed to said housing faces for unconstrained movement of said rotor faces relative to said housing faces; a rotor gear at a center of said rotor, said rotor gear being meshed with said stator gear and having (a/b+1)en teeth, wherein one of said rotor faces has therein a circular opening coaxial with said rotor gear; a drive member including a circular drive disc mounted eccentrically to a drive shaft passing through a hole in said cover coaxial with said stator gear, said drive disc being fitted in said circular opening for operating said pump to move fluid from said inlet ports to said outlet ports by imparting eccentric rotational motion to said rotor within said chamber to generate a reduced pressure in said lobes as said rotor rotates relative to said chamber, wherein apexes of said rotor are spaced from said housing wall and have no sealing members for contacting said wall, thereby maintaining a clearance between said apexes and said wall as said rotor rotates in said chamber so that fluid flows through said clearance when said drive member operates said pump; and face seals molded in said rotor and extending therearound in each said face of said rotor.
- 19. A pump as in claim 18, wherein:a/b=2 for providing two of said lobes separated by opposing narrowed portions; and said rotor is configured so that a clearance for permitting fluid flow therethrough is maintained between said sides thereof and said narrowed portions of said chamber as said rotor rotates in said chamber.
- 20. A pump as in claim 18, wherein said drive disc is in sliding contact with said circular opening and said drive shaft is in sliding contact with said hole.
- 21. A method for moving fluid, said method comprising the steps of:providing a pump including: a housing having faces and a circumferential wall forming a chamber with a plurality of lobes, a stator gear in said chamber at a center thereof, a generally polygonal rotor with a plurality of sides greater in number than said plurality of lobes, said rotor being disposed in said lobed chamber with faces of said rotor opposed to said housing faces for unconstrained movement of said rotor faces relative to said housing faces, a rotor gear at a center of said rotor meshed with said stator gear, and a drive member for operating said pump to move fluid from an inlet of said chamber to an outlet from said chamber by imparting eccentric rotational motion to said rotor within said chamber to generate a reduced pressure in said lobes as said rotor rotates relative to said chamber, wherein apexes of said rotor are spaced from said housing wall and have no sealing members for contacting said wall, thereby maintaining a clearance between said apexes and said wall as said rotor rotates in said chamber; and operating said pump to move fluid from an inlet of said chamber to an outlet of said chamber by rotating said drive member so that fluid flows through said clearance.
- 22. A method as in claim 21, wherein:said drive member includes a disc fitting within a circular opening in one of said faces of said rotor and mounted eccentrically to a drive shaft, said disc being in sliding contact with said circular opening; and said drive shaft passes through a hole in one of said faces of said housing, said hole being coaxial with said stator gear and said drive shaft being in sliding contact with said hole.
- 23. A method as in claim 21, wherein:said chamber has narrowed portions separating said lobes; and said rotor is configured so that a clearance for permitting fluid flow therethrough is maintained between said sides thereof and said narrowed portions of said chamber as said rotor rotates in said chamber.
CROSS-REFERENCE TO RELATED APPLICATIONS
This is a continuation of application Ser. No. 09/021,069, filed Feb. 9, 1998, U.S. Pat. No. 6,014,791.
US Referenced Citations (33)
Foreign Referenced Citations (3)
Number |
Date |
Country |
4204186 |
Aug 1993 |
DE |
2077357 |
Dec 1981 |
GB |
60-164686 |
Aug 1985 |
JP |
Continuations (1)
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Number |
Date |
Country |
Parent |
09/021069 |
Feb 1998 |
US |
Child |
09/434350 |
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US |