CANNED MOTOR PUMP AND METHOD FOR MANUFACTURING SUCH A MOTOR PUMP
20200056616 · 2020-02-20
Assignee
Inventors
Cpc classification
F04D13/064
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/0606
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/2222
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2300/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/211
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/0633
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/53
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/21
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The invention relates to a canned motor pump (P1) comprising: a housing (10) including a body (11) and a motor casing (12); an electric motor (20) including a stator (30) and a rotor (40) arranged in the motor casing (12); a shaft (50), extending along a central axis (X1), secured with the rotor (40) to rotate therewith about the central axis (X1), and having a front end (52) located outside the motor casing (12), in the body (11) of the housing (10); and a wheel (60) located at the front end (52) of the shaft (50), secured with the shaft (50) to rotate therewith about the central axis (X1) and having a hydraulic profile suitable for moving a fluid (F) in the body (11). The rotor (40), the shaft (50) and the wheel (60) form a rotary assembly (ER1). Within the rotary assembly (ER1), only the shaft (50) is supported by one or more bearings (80), thereby guiding the rotary assembly (ER1) in rotation. The motor pump (P1) is characterized in that the shaft (50) and the wheel (60) form, at least partially, a single-piece part (70). A method for manufacturing such a motor pump (P1) is also described.
Claims
1. Canned motor pump (P1; P2) comprising: a housing (10) comprising a body (11) and a motor casing (12); an electric motor (20) comprising a stator (30) and a rotor (40) arranged within the motor casing (12); a shaft (50) which extends along a central axis (X1), which is secured to the rotor (40) in rotation about the central axis (X1), and which has a front end (52) situated outside the motor casing (12), within the body (11) of the housing (10); and a wheel (60) which is located at the front end (52) of the shaft (50), which is secured to the shaft (50) in rotation about the central axis (X1), and which has a hydraulic profile suitable for moving a fluid (F) within the body (11); the rotor (40), the shaft (50) and the wheel (60) forming a rotary assembly (ER1; ER2); and within the rotary assembly (ER1, ER2), only the shaft (50) is supported by one or more bearings (80; 8, 9), thus guiding the rotary assembly (ER1, ER2) in rotation; wherein the shaft (50) and the wheel (60) constitute at least partly a unitary part (70).
2. Canned motor pump (P1; P2) according to claim 1, wherein the shaft (50) and the wheel (60) integrally constitute a single unitary part (70).
3. Canned motor pump (P1; P2) according to claim 1, wherein the wheel (60) comprises a central portion (61), which is located on the central axis (X1), belongs to the unitary part (70), and has no attachment system.
4. Canned motor pump (P1; P2) according to claim 3, wherein the central part (61) forms an inducer.
5. Canned motor pump (P1; P2) according to claim 3, wherein the central portion (61) includes an extension to the blades (62) of the wheel (60).
6. Canned motor pump (P1) according to claim 1, wherein the canned motor pump (P1) comprises a single bearing (80) supporting the shaft (50) radially to the central axis (X1) for guide the rotary assembly (ER1) in rotation, and which is located between the rotor (40) and the wheel (60) along the central axis (X1).
7. Canned motor pump (P2) according to claim 1, wherein the canned motor pump (P2) comprises a front bearing (8) and a rear bearing (9) supporting the shaft (50) radially to the central axis (X1) for guiding the rotary assembly (ER2) in rotation, the front bearing (8) being located between the rotor (40) and the wheel (60) along the central axis (X1).
8. Canned motor pump (P1; P2) according to claim 1, wherein the electric motor (20) is constructed according to synchronous motor technology with magnets at the rotor (40).
9. Canned motor pump (P1; P2) according to claim 1, wherein the stator (30), comprising an electromagnetic core (31) and a winding (32) has an inner surface entirely enveloped in a non-metallic material, facing the rotor (40) and in contact with the fluid (F) circulating within the motor casing (12).
10. Canned motor pump (P1; P2) according to claim 9, wherein the stator (30) is embedded in a sealed resin coating (33), at least along the inner surface.
11. Canned motor pump (P1; P2) according to claim 1, wherein the canned motor pump (P1; P2) is a centrifugal pump, the hydraulic profile of the wheel (60) being suitable for the transmission of energy by the centrifugation of fluid (F).
12. A method for manufacturing a canned motor pump (P1; P2) according to claim 1, wherein the shaft (50) and the wheel (60) are at least partially manufactured in the form of a unitary part (70), according to a technique of sand casting, metal mold casting or lost wax casting, sintering, welding, additive fabrication, or a combination of several techniques.
13. A method for manufacturing a canned motor pump (P1; P2) according to claim 12, wherein the method comprises an operation of additive fabrication of the unitary part (70).
14. A method of manufacturing a canned motor pump (P1; P2) according to claim 12, wherein the method comprises an operation of additive fabrication of at least a portion of a mold comprising a cavity corresponding to the unitary part (70), and then an operation of fabrication of the unitary part (70) within this mold.
Description
[0026] The invention will be better understood upon reading the following description, given solely as a non-limiting example, and made with reference to the accompanying figures wherein:
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033] In
[0034] The motor pump P0 comprises a housing 1, an electric motor 2, a shaft 5, a wheel 6, a screw 7 and bearings 8 and 9. The electric motor 2 comprises a stator 3 and a rotor 4 centered on a central axis X1. The rotor 4 is secured with the shaft 5, itself secured with the wheel 6. The screw 7 makes it possible to secure the wheel 6 at the end of the shaft 5. The rotor 4, the shaft 5 and the wheel 6 form a rotary assembly, rotatable about the central axis X1.
[0035] The housing 1 is partially shown with the aim of simplification. The housing 1 includes a body 1a partially represented by dotted lines, a motor casing 1b and a cover 1c. The stator 3 and the rotor 4 are arranged within the motor casing 1b. The cover 1c closes the motor casing 1b at the rear bearing 9.
[0036] The stator 3 comprises an electromagnetic core 3a, a winding 3b, a resin coating 3c and a metal liner 3d. The winding 3b extends on either side of the core 3a according to the axis X1 and is embedded within the coating 3c. The liner 3d extends along the stator 3, at the air gap formed with the rotor 4, in order to ensure the sealing of the stator 3. The liner 3d is in contact both with the core 3a and the coating 3c. This configuration is a source of losses due to eddy currents within the liner 3d.
[0037] A canned centrifugal motor pump P1 according to a first embodiment of the invention is shown in
[0038] The motor pump P1 comprises a housing 10, an electric motor 20 comprising a stator 30 and a rotor 40, a shaft 50, a wheel 60 and a bearing 80. The electric motor 20 comprises a stator 30 and a rotor 40 centered on a central axis X1. The rotor 40 is secured with the shaft 50, itself secured with the wheel 60, as detailed below.
[0039] The housing 10 includes a body 11 arranged on the front side and a motor casing 12 arranged on the rear side of the motor pump P1. The body 11 is partially shown by a dotted line for the purpose of simplification. The casing 12 comprises various walls 14, 15, 16 and 18 secured to one another. The outer wall 14 has a cylindrical profile. The front wall 15 has a flat annular shape, surrounding the wall 18. The rear wall 16 has a planar disc shape. The front wall 18 has a cylindrical shape and constitutes a bearing support.
[0040] The stator 30 comprises an electromagnetic core 31 and a winding 32, which extends on either side of the core 31 along the axis X1. The core 31 and the winding 32 are embedded within a resin encapsulation 33, thereby sealing the stator 3. The encapsulation 33 extends all along the stator 30, at the air gap formed with the rotor 40. The stator 30 has no metallic liner. By virtue of the use of an encapsulation 33 in place of the metallic liner of the stator 30, the eddy current losses are eliminated.
[0041] According to the invention, the shaft 50 and the wheel 60 constitute at least partly a unitary part 70. In other words, the part 70 comprises at least a portion of the shaft 50 and at least a portion of the wheel 60. One or more other portions of the shaft 50 and/or the wheel 60 may be formed by one or more different parts of the part 70.
[0042] According to a preferred embodiment, shown in the figures, the shaft 50 and the wheel 60 entirely constitute a single unitary part 70. In other words, the part 70 embodies the entire shaft 50 and the wheel 60. They are not formed by anything other than the part 70.
[0043] By way of non-limiting examples, the part 70 may be manufactured according to various techniques of sand, metal mold or lost wax casting, sintering, welding, additive fabrication of the part 70, additive fabrication of the mold, or a combination of several techniques.
[0044] Advantageously, the part 70 can be manufactured entirely by means of additive fabrication. According to an equally advantageous alternative, the part 70 can be cast in a mold, itself obtained at least in part by means of additive fabrication.
[0045] The rotor 40 and the part 70 form a rotary assembly ER1, rotatable about the axis X1, within the motor pump P1.
[0046] The shaft 50 extends along the axis X1, with a main portion 51 connecting a front end 52 and a rear end 53. The rotor 40 is secured with the shaft 50 at the main portion 51 thereof, by any known means. The main portion 51 and the rear end 53 are located within the motor casing 12. The front end 52 is located outside the motor casing 12, within the body 11 of the casing 10.
[0047] The wheel 60 comprises a central portion 61, blades 62, an inlet opening 63, inner channels 64 and outlet openings 65. The wheel 60 is located outside the motor casing 12, within the body 11 of the housing 10. The wheel 60 has a hydraulic profile suitable for moving a fluid F within the body 11. More precisely the motor pump P1 is a centrifugal pump, that is to say the hydraulic profile of the wheel 60 is suitable for the transmission of energy by the centrifugation of fluid F within the motor pump P1. The fluid F enters the opening 63, then passes through the channels 64 arranged within the wheel 60, to the outlet orifices 65.
[0048] The central portion 61 is located on the axis X1 and is secured with the front end 52 of the shaft 50. Insofar as the shaft 50 and the wheel 60 constitute the part 70, the central portion 61 can have no fastening system, for example of the screw type 7, provided for in the state of the art. This offers greater design freedom near this central part 61.
[0049] In the example of
[0050] Alternatively, the central portion 61 may be shaped as an inducer. According to another alternative, the central portion 61 may include an extension to the blades 62 of the wheel 60. These two alternatives can be combined.
[0051] Within the rotary assembly ER1, only the shaft 50 is supported by the bearing 80. In other words, only the shaft 50, together with the bearing 80, guides the rotary assembly ER1 in rotation.
[0052] The bearing 80 is located between the rotor 40 and the wheel 60, along the axis X1. The bearing 80 can therefore be described as a center bearing, in relation to the rotary assembly ER1. The bearing 80 comprises the wall 18 and two members 81 and 82, which are accommodated within the bore defined by the wall 18. The elements 81 and 82 are spaced slightly apart, and support the main portion 51 of the shaft 50 radially to the axis X1. The elements 81 and 82 are, for example, plain bearings or rollers.
[0053] This design with a central bearing 80 is made possible by means of the use of a motor 20 with a relatively short length along the axis X1. Thus, the rotor 40 may be cantilevered from the side of the rear end 53 of the shaft 50. This solution is allowed by the use of the technology of the synchronous motor with magnets on the rotor 40. Such a motor offers optimum performance over the entire speed range as well as reduced weight and bulk.
[0054] In
[0055] The motor pump P2 comprises two bearings 8 and 9 arranged on either side of the rotor 40. The bearing 8 supports the main portion 51 of the shaft 50 between the rotor 40 and the wheel 60, while the bearing 9 supports the rear end 53 of the shaft 50. Each bearing 8 and 9 comprises a single element, respectively 81 and 91, supporting the shaft 50. For example, the elements 81 and 91 may be plain bearings or rollers. Each bearing 8 and 9 comprises a cylindrical wall, 18 and 19 respectively, of the housing 10. Each of the elements 81 and 91 is mounted within the bore defined by one of the walls 18 and 19. The housing 10 comprises a cover 13 for closing the casing 12 at the bearing 9.
[0056]
[0057] The central portion 61 of the wheel 60 is shaped as an inducer, provided in order to improve the capacity for suction of the fluid F by the wheel 60.
[0058] In addition, the central portion 61 includes an extension to the blades 62 of the wheel 60, also making it possible to improve the capacity for suction of the fluid F by means of the wheel 60.
[0059] In practice, the motor pump P1/P2 can be configured differently from