Impeller for a liquid pump
11421703 · 2022-08-23
Assignee
Inventors
Cpc classification
F04D29/242
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/2255
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/426
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/2216
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A centrifugal pump impeller is providing that has vanes of a configuration that enhances pumping efficiency. The impeller has a base with a connector boss located at a center of rotation and a plurality of vanes extending from the base in spaced relation about the boss. Each vane having a leading end edge adjacent the boss and a trailing end edge adjacent an outer periphery of the base. Each of the trailing end edges being disposed parallel to an axis of rotation of the base, and each of the leading end edges being inclined forwardly at an angle relative to an operative rotational direction of the impeller and being spaced from the boss. For each vane, the leading end edge thereof is disposed at an acute angle relative to the trailing end edge thereof.
Claims
1. An impeller for a liquid pump, comprising: a base with a connector boss located at a center of rotation of the impeller; and a plurality of vanes extending from the base in spaced relation about the connector boss, each vane having a leading end edge adjacent the connector boss and a trailing end edge adjacent an outer periphery of the base; each of said trailing end edges being disposed parallel to an axis of rotation of the base, and each of said leading end edges being inclined forwardly at an angle relative to an operative rotational direction of the impeller and being spaced from the connector boss; wherein, for each of the plurality of vanes, the leading end edge thereof is disposed at an acute angle of 30° relative to the trailing end edge thereof.
2. The impeller according to claim 1, wherein each vane has a predetermined camber length between the leading end edge and the trailing end edge, each vane has a proceeding surface and a receding surface along the predetermined camber length, and each vane has a thickness between the proceeding surface and receding surface that varies along the predetermined camber length.
3. The impeller according to claim 2, wherein each vane is disposed forward relative to the operative rotational direction of the impeller of a radial line extending from an axis of rotation of the impeller to the trailing end edge of each vane.
4. The impeller according to claim 2, wherein the proceeding surface of each vane is concave adjacent the leading end edge and convex adjacent the trailing end edge.
5. The impeller according to claim 4, wherein the receding surface of each vane is continually convex between said leading end edge and trailing end edge.
6. A centrifugal pump, comprising a housing having an inlet passage leading to a center of an impeller and an outlet passage extending from a periphery of the impeller, the impeller being positioned and contained within a pumping chamber located between the inlet and outlet passages for rotation within the pumping chamber about an axis of rotation, the impeller having a base with a connector boss located at a center of rotation of the impeller and a plurality of vanes extending from the base in spaced relation about the connector boss, each vane having a leading end edge adjacent the connector boss and a trailing end edge adjacent an outer periphery of the base, and each of said trailing end edges being disposed parallel to an axis of rotation of the base and each of said leading end edges being inclined forwardly at an angle relative to an operative rotational direction of the impeller and being spaced from the connector boss, wherein, for each of the plurality of vanes, the leading end edge thereof is disposed at an acute angle of 30° relative to the trailing end edge thereof.
7. The centrifugal pump according to claim 6, wherein each vane has a predetermined camber length between the leading end edge and the trailing end edge thereof, each vane has a proceeding surface and a receding surface along the predetermined camber length, and each vane has a thickness between the proceeding surface and receding surface that varies along the predetermined camber length.
8. The centrifugal pump according to claim 7, wherein each vane is disposed forward relative to the operative rotational direction of the impeller of a radial line extending from the axis of rotation of the impeller to the trailing end edge thereof.
9. The centrifugal pump according to claim 7, wherein the proceeding surface of each vane is concave adjacent the leading end edge and convex adjacent the trailing end edge.
10. The centrifugal pump according to claim 9, wherein the receding surface of each vane is continually convex between said leading end edge and trailing end edge.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
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(7) As best shown in
(8) In the impeller disclosed in U.S. Pat. No. 6,398,498 B1, the major extent of the vane's cambered length is disposed relatively more tangent the rotational axis of the base than radially thereof. The improvements made in the present invention reside in providing vanes with a novel configuration and location on the impeller that significantly enhances pumping efficiency.
(9) As illustrated in
(10) Each vane 22 has a leading end edge 22c and a trailing end edge 22d. The leading end edge 22c inclines forwardly at an angle relative to the impeller base 16 and is disposed closely adjacent the cylindrical outer surface of the mounting boss 18. The trailing end edge 22d is disposed adjacent the outer periphery of the impeller base 16, and it is disposed parallel with the rotational axis A of the impeller base 16. The leading end edge 22c declines slightly backward from where it connects to the impeller base 16 adjacent the mounting boss 18.
(11) Each vane 22 is formed with a camber (i.e., is curved) and has a medial part of the camber extending between its leading edge 22c and its trailing edge 22d. On opposite sides of the camber are surfaces denominated in relation to the pumping rotational direction of the impeller, e.g. proceeding and receding. The leading, or proceeding surface 22e is concave for about one-half the distance from the leading edge 22c to the trailing edge 22d, and then becomes convex at 22f from that location to the trailing edge 22d. The trailing, or receding, surface 22g is continually convex in its entirety from the leading edge 22c to the trailing edge 22d. The thickness of each vane 22 is at its maximum at about one-half the length of the median between the vane surfaces.
(12) The leading edge 22c of each vane 22 is inclined at about a thirty (30°) angle from the base 16. For instance, see
(13) A prototype impeller, having a configuration as shown herein in
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(15) As shown in
(16) While a particular embodiment of the present invention has been illustrated and described herein, it is not intended to limit the invention to such a disclosure and changes and modifications may be incorporated and embodied there within the scope of the accompanying claims.