IMPELLER ASSEMBLY FOR USE IN AN AQUARIUM FILTER PUMP AND METHODS
20220307515 ยท 2022-09-29
Inventors
Cpc classification
F04D29/242
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/2261
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A01K63/04
HUMAN NECESSITIES
Abstract
An impeller for use in an aquarium filter pump includes a shaft and a plurality of impeller blades radially extending from the shaft. Each of the impeller blades includes opposite blade faces. A depression is in each of the blade faces and aids in pushing the water. The depression can be a variety of shapes and can have its deepest portion along one of the edges of the blade.
Claims
1. An impeller for use in an aquarium filter pump; the impeller comprising: (a) a shaft; and (b) a plurality of impeller blades radially extending from the shaft; each of the impeller blades including: (i) opposite blade faces; (ii) a free edge remote from the shaft; (iii) first and second opposite edges extending from the shaft to the free edge; the blade faces being bordered by the first and second edges and the free edge; (iii) each of the blades having a thickness defined between the opposite blade faces; the thickness being non-constant and including a region of smallest thickness and one or more regions of maximum thickness; (A) the region of smallest thickness being at one of the free edge, first edge, and second edge; the thickness increasing along the blade from said one of the free edge, first edge, and second edge; and (B) remaining ones of the free edge, first edge, and second edge having the maximum thickness.
2. The impeller of claim 1 wherein: (a) the shaft has a longitudinal axis; (b) each blade is along a plane containing the first and second edges; and each plane also contains the longitudinal axis of the shaft.
3. The impeller of claim 2 wherein the free edge, first edge, and second edge are straight edges.
4. The impeller of claim 1 wherein the region of smallest thickness extends from the free edge.
5. The impeller of claim 4 wherein the thickness increases along the blade toward the first edge and second edge.
6. The impeller of claim 5 wherein each of the blade faces includes a depression having two opposite parallel sections that round to a vertex portion.
7. The impeller of claim 4 wherein the thickness increases gradually along the blade from the free edge to the shaft.
8. The impeller of claim 1 wherein the region of smallest thickness extends from the second edge.
9. The impeller of claim 8 wherein the region of smallest thickness is along the second edge halfway between the free edge and the shaft.
10. The impeller of claim 9 wherein each of the blade faces includes a depression having a curved shape with a vertex portion adjacent the first edge.
11. The impeller of claim 1 wherein there are no more than 4 blades.
12. The impeller of claim 1 wherein there are at least 3 blades and no more than 4 blades.
13. An impeller assembly for use in an aquarium filter pump; the impeller assembly comprising: (a) a shaft with a longitudinal axis; (b) a rotor mounted on the shaft; and (c) an impeller mounted on the shaft; the impeller having at least 3 blades radially extending from the shaft; (i) each blade being along a plane containing the longitudinal axis of the shaft; (ii) each blade having an opposite blade face; a free edge remote from the shaft; and first and second opposite edges extending from the shaft to the free edge; the blade faces being bordered by the first and second edges and the free edge; (iii) each of the blades having a thickness defined between the opposite blade faces; the thickness being non-constant and including a region of smallest thickness and one or more regions of maximum thickness; (A) the region of smallest thickness being at one of the free edge, first edge, and second edge; the thickness increasing along the blade from said one of the free edge, first edge, and second edge; and (B) remaining ones of the free edge, first edge, and second edge having the maximum thickness.
14. The impeller assembly of claim 13 wherein the region of smallest thickness extends from the free edge.
15. The impeller assembly of claim 14 wherein the thickness increases along the blade toward the first edge and second edge.
16. The impeller assembly of claim 14 wherein the thickness increases gradually along the blade from the free edge to the shaft.
17. The impeller assembly of claim 13 wherein the region of smallest thickness extends from the second edge.
18. The impeller assembly of claim 17 wherein the region of smallest thickness is along the second edge halfway between the free edge and the shaft.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0036] Various examples will be described in detail with reference to the drawings, wherein like reference numerals represent like parts and assemblies throughout the several views. Reference to various examples does not limit the scope of the claims attached hereto. Additionally, any examples set forth in this specification are not intended to be limiting and merely set forth some of the many possible examples for the appended claims. In the drawings, like reference numbers correspond to like or similar components throughout the several figures.
A. GENERAL OVERVIEW
[0037]
[0038]
[0039] In general, when the pump motor (not shown) operates, a magnet attached to the motor spins, which causes a magnet in the rotor 32 to spin. This also causes the shaft 34 to spin, which spins the impeller 36. The spinning impeller 36 pushes water, which draws water in to the pump assembly 36 by drawing it through the intake tube assembly 24 from the aquarium.
B. EXAMPLE FIRST EMBODIMENT OF IMPELLER, FIGS. 3-6
[0040] A first example embodiment of impeller 36 is shown in
[0041] The impeller 36 includes a plurality of impeller blades 40. While there should be at least two blades 40, there are typically no more than six blades. In this embodiment, there are four blades 40. The blades 40 radially extend from the shaft 34. In general, the blades 40 are located adjacent an end 42 of the shaft 34 opposite from a holding location 44 for the rotor 32.
[0042] Each of the blades 40 includes opposite blade faces 46, 47. In this embodiment, the blade faces 46, 47 are identical. In alternative arrangements, the faces 46, 47 would not need to be identical.
[0043] Each of the blades 40 includes a free edge 50. The free edge 50 is remote from the shaft 34 and joins the faces 46, 47. In this embodiment, the free edge 50 is straight and generally parallels the longitudinal axis 38 of the shaft 34.
[0044] Each of the blades 40 includes a first edge 52 extending from the shaft 34 to the free edge 50. Opposite of the first edge 52 is a second edge 54 extending from the shaft 34 to the free edge 50. In this embodiment, the first edge 52 and second edge 54 are generally straight and parallel to each other. The first edge 52 and second edge 54 are also generally perpendicular to the central axis 38 of the shaft 34.
[0045] By reviewing
[0046] In accordance with principles of this disclosure, each of the blade faces 46, 47 includes at least one depression 60. The depressions 60 provide an advantage over impellers that do not have blades with depressions. For example, the depressions 60 in the blades 40 provide increased flow rates over conventional flat blade impellers. The depressions 60 increase the water volume pushed by the blades 40, which results in a greater flow rate over conventional flat blades. This allows for increased flow rates without increasing the impeller size, which allows for compact impeller designs.
[0047] In general, the depression 60 in each of the blade faces 46, 47 has a maximum depth along one of the edges 50, 52, 54. The deepest portion of the depression 60 is also the location on the blade face 46, 47 that is the thinnest portion of the respective face 46, 47.
[0048] In the embodiment of
[0049] In the embodiment of
C. EXAMPLE SECOND EMBODIMENT OF IMPELLER, FIGS. 7-11
[0050]
[0051] In this embodiment, there are three blades 40.
[0052] In this embodiment, the depression 60 has a maximum depth along the second edge 54. The depression 60 has a periphery forming a curved shape 70 with a vertex portion 72. The vertex portion 72 is adjacent the first edge 52, while the second edge 54 is a deepest portion of the depression 60. In
D. EXAMPLE THIRD EMBODIMENT OF IMPELLER, FIGS. 12-15
[0053]
[0054] In this embodiment, there are four blades 40. The depression 60 in each of the blade faces 46, 47 increases in depth as the depression 60 extends from adjacent the shaft 34 to the free edge 50. In other words, the blades 40 are thickest along the region adjacent to the shaft 34 and are thinnest along the free edge 50. In between the free edge 50 and the shaft 34, the blades gradually increase in thickness. This results in the depression 60 having the greatest depth along the free edge 50 as can be seen in
[0055] In this embodiment, the overall free edge 50 forms the cross section in the shape of an I, since the first edge 52 and second edge 54 protrude outwardly beyond the faces 46, 47 at the regions of depression 60.
E. EXAMPLE METHOD
[0056] The impeller assembly 30 can be used as part of a method of pumping water for an aquarium filter. The method includes rotating the impeller 36 in an aquarium to draw water into the filter. The step of rotating the impeller 36 includes rotating blades 40. Each blade 40 includes opposite blade faces 46, 47. Each of the blade faces 46, 47 has depression 60, in which the depression 60 aids in pushing the water.
[0057] The above represents example principles. Many embodiments can be made using these principles.