PUMP IMPELLER, METHOD OF PRODUCING PUMP IMPELLER, AND PUMP WITH THE PUMP IMPELLER
20190242394 · 2019-08-08
Assignee
Inventors
- Sebastian Krippner (Langenzenn, DE)
- Andrea Bindig (Nurnberg, DE)
- Harald Rausch (Furth, DE)
- Jürgen Ehrsam (Furth, DE)
- Klaus Weiske (Schwaig, DE)
Cpc classification
B29C45/14467
PERFORMING OPERATIONS; TRANSPORTING
F05D2300/43
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/628
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C45/14
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A pump impeller consisting of at least three different material regions, wherein an impeller wheel with a hollow shaft defines a first material region, a bearing component defines a second material region, and a permanent magnet defines a third material region. The invention furthermore relates to a method for producing the pump impeller, and to a centrifugal pump with the pump impeller. The object of the invention is to provide a robust construction, optimal venting, secure attachment of the bearing component, economic production, and a possibility of axial length tolerance compensation given a pump impeller with plastic-bonded permanent magnets. Furthermore, an optimally accurate unbalance-reduced connection between the bearing component and the magnet material should be producible.
Claims
1. A pump impeller comprising: an impeller wheel with a hollow shaft defining a first material region, a bearing component defining a second material region and partially axially overlapping the hollow shaft, and a permanent magnet defining a third material region, the permanent magnet closely connecting to the hollow shaft and the bearing component and the three material regions being different from each other.
2. The pump impeller according to claim 1, further comprising a fourth region which belongs neither to the first material region nor to the second material region being provided axially between the hollow shaft and the bearing component.
3. The pump impeller according to claim 2, wherein the fourth region provided axially between the hollow shaft and the bearing component is a gap filled with permanent magnet material.
4. The pump impeller according to claim 1, wherein the bearing component and the hollow shaft form an interface with one another.
5. The pump impeller according to claim 4, wherein the basic shape of the interface is cylindrical or conical.
6. The pump impeller according to claim 5, wherein the conical interface is inclined by 0 to 15 (half cone angle ) with respect to a cylindrical bearing component surface.
7. The pump impeller according to claim 1, wherein a fifth region filled with permanent magnet material or fillable with permanent magnet material is provided radially between the hollow shaft and the bearing component.
8. The pump impeller according to claim 1, wherein the bearing component and the hollow shaft are arranged radially positively relative to one another.
9. The pump impeller according to claim 1, wherein the bearing component has an outer region, a bearing region and a connecting region joining the outer region and the bearing region, wherein the connecting region is set back with respect to the outer region.
10. The pump impeller according to claim 1, wherein the hollow shaft has a diameter-reduced region at an axially free end of the hollow shaft.
11. The pump impeller according to claim 10, wherein the outer region of the bearing component is arranged above the diameter-reduced region, leaving the gap.
12. The pump impeller according to claim 10, wherein the outer circumference of the diameter-reduced region has a shape deviating from a cylinder shell surface.
13. The pump impeller according to claim 9, wherein the connecting region has a plurality of axial openings.
14. The pump impeller according to claim 1, wherein the permanent magnet, the impeller wheel with the hollow shaft, and the bearing component consist of the same base material, wherein the base material of the permanent magnet is filled with magnetic particles thus defining the third material region and the base material of the bearing component is filled with carbon fibers thus defining the second material region.
15. The pump impeller according to claim 3, wherein the gap filled with magnet material adjoins the permanent magnet at a central region between the axial ends of the permanent magnet.
16. The pump impeller according to claim 15, wherein the gap is arranged at an axial distance of about one third of the length of the permanent magnet from the end distal to the impeller wheel.
17. The pump impeller according to claim 9, wherein the outer region of the bearing component has a radially projecting rib.
18. The pump impeller according to claim 1, wherein the bearing component is a radial bearing.
19. A method for producing a pump impeller consisting of at least three different material regions, wherein an impeller wheel with a hollow shaft defines a first material region, a bearing component defines a second material region, and a permanent magnet defines a third material region, the method comprising the steps of: a) providing a preformed impeller wheel with a hollow shaft; b) providing a preformed bearing component; c) inserting the impeller wheel with the hollow shaft and the bearing component into an injection molding tool; d) closing the injection molding tool and injecting a plastic filled with permanent magnet particles, wherein venting takes place via a gap which is provided axially between the hollow shaft and the bearing component; and e) opening the injection molding tool and removing the pump impeller.
20. The method according to claim 19, wherein the injection molding tool has a magnet by which the plastic-bonded magnetic particles are aligned and magnetized.
21. A pump comprising: a pump impeller including an impeller wheel with a hollow shaft defining a first material region, a bearing component defining a second material region and partially axially overlapping the hollow shaft, and a permanent magnet defining a third material region, the permanent magnet closely connecting to the hollow shaft and the bearing component and the three material regions being different from each other.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0023] The invention is better understood by reading the following Detailed Description of the Preferred Embodiments with reference to the accompanying drawing figures, in which like reference numerals refer to like elements throughout, and in which:
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF THE INVENTION
[0027] In describing preferred embodiments of the present invention illustrated in the drawings, specific terminology is employed for the sake of clarity. However, the invention is not intended to be limited to the specific terminology so selected, and it is to be understood that each specific element includes all technical equivalents that operate in a similar manner to accomplish a similar purpose.
[0028]
[0029]
[0030] The bearing component has an outer region, a connecting region, and a bearing region, wherein the connecting region is set back relatively to the outer region. Furthermore, the hollow shaft 3 has a diameter-reduced region 10 at an axially free end. Lastly, the outer region of the bearing component 4 is arranged above the diameter-reduced region 10, leaving the gap 13. In order for the gap 13 not to be reducible to zero, the end region of the hollow shaft 3 and the connecting region 7 of the bearing component are adapted to one another in such a way that both inserts can be mounted up to a stop, and that an axial gap 13 nevertheless remains.
[0031]
[0032] The invention is also achieved by the features of a method of making the pump impeller. The method comprises the following steps: a) providing a preformed impeller wheel (2) with a hollow shaft 3; b) providing a preformed bearing component 4; c) inserting the impeller wheel 2 with the hollow shaft 3 and the bearing component 4 into an injection molding tool; d) closing the injection molding tool and injecting a plastic filled with permanent magnet particles, wherein venting takes place via a gap 13 which is present axially between the hollow shaft 3 and the bearing component 4; e) opening the injection molding tool and removing the pump impeller 1. The invention is characterized in particular by the use of two inserts, on the one hand the impeller wheel 2, which is preferably integral with a hollow shaft 3, and on the other hand the bearing component 4. These two inserts are connected in a positive or force fit with one another and with a permanent magnet to be produced in the injection molding tool. The plastic-bonded magnet material is injected via a plurality of injection channels from the end distal to the impeller wheel 2. Venting takes place via the axial gap 13, a temporary, essentially radial annular gap between the hollow shaft 3 and the bearing component 4 (venting region 9), the openings 11 in the bearing component 4, and a central venting path of the injection molding tool.
[0033] During the injection molding process, the gap 13 may expand as a result of the injection pressure and thereby enlarge the venting cross-section. When a radial annular gap is present between the diameter-reduced region 10 of the hollow shaft 3 and the inner surface of the outer region 6 of the bearing component 4, the inserts are aligned and centered by the arbors of the injection molding tool so that a uniform annular gap is produced. It is also possible to design the regions delimiting the annular gap to be slightly conical. In this embodiment, the injection pressure causes a cross-section enlargement of the radial gap in the first half of the cavity filling as a result of the axial positioning of the inserts. In the second half of the cavity filling, the radial gap is increasingly reduced by the increasing internal cavity pressure.
[0034] Modifications and variations of the above-described embodiments of the present invention are possible, as appreciated by those skilled in the art in light of the above teachings. It is therefore to be understood that, within the scope of the appended claims and their equivalents, the invention may be practiced otherwise than as specifically described.
LIST OF REFERENCE SYMBOLS
[0035] 1 Pump impeller [0036] 2 Impeller wheel [0037] 3 Hollow shaft [0038] 4 Bearing component [0039] 5 Permanent magnet [0040] 6 Outer region [0041] 7 Connecting region [0042] 8 Bearing region [0043] 9 Venting region [0044] 10 Diameter-reduced region [0045] 11 Opening [0046] 12 Rib [0047] 13 Gap [0048] 14 Free space [0049] 15 Receptacle [0050] 16 Gate insert [0051] 17 Nozzle-side tool core [0052] 18 Ejector-side tool core [0053] 19 Ejector [0054] 20 Gate channel [0055] 21 Discontinuity [0056] 22 Depression [0057] 23 Slide [0058] 24 Shaped part