Shield pump

By setting up the installation surface and heat dissipation pipe for installing the controller in the shielded pump, and combining the cooling circulation channel of the pump chamber, heat dissipation pipe and shield sleeve, the problem of low heat dissipation efficiency of the motor controller is solved, and a more efficient cooling effect is achieved, and the operating stability and life of the motor are improved.

CN120384895AActive Publication Date: 2025-07-29LEO GRP ZHEJIANG PUMP CO LTD

Patent Information

Application Number
CN202510889176.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-30
Publication Date
2025-07-29
Estimated Expiration
2045-06-30

AI Technical Summary

Technical Problem

The motor controller in existing shielded pumps has low heat dissipation efficiency, which affects operating stability and life. The liquid medium flow rate and flow rate in the circulating cooling channel are low, and the cooling efficiency is not high.

Method used

The installation surface and heat dissipation pipe for installing the controller are provided in the shielding pump, and the cooling circulation channel connecting the pump chamber, heat dissipation pipe and shield sleeve is cooled by high-speed flow of liquid medium, thereby increasing the contact area and flow rate.

Benefits of technology

It improves the cooling efficiency of the motor and its controller, enhances the operating stability and service life, and improves the cooling effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The shield pump comprises a pump body and a motor, the pump body and the motor are sealed to form a pump cavity, the pump body is provided with a liquid inlet pipeline and a liquid outlet pipeline which are communicated with the pump cavity, the motor comprises a bracket cover, a machine shell, a rear shell and a controller, a mounting cavity is formed in the machine shell, and a stator assembly, a shielding sleeve and a rotor assembly are arranged in the mounting cavity; the surface, facing the outer side of the motor, of the rear shell is provided with an installation face used for installing the controller, and the rear shell is provided with a heat dissipation pipeline used for cooling the controller. A cooling pipeline is hermetically communicated between one end of the radiating pipeline and the liquid outlet pipeline, and the other end of the radiating pipeline is communicated with the pump cavity through the inside of the shielding sleeve, so that a cooling circulation channel communicated with the pump cavity, the radiating pipeline and the inside of the shielding sleeve is formed in the shielding pump. The cooling circulation channel communicated with the pump cavity, the heat dissipation pipeline and the shielding sleeve is arranged in the shield pump, the cooling efficiency of a liquid medium on the whole motor is improved, meanwhile, the heat dissipation pipeline is used for dissipating heat of the motor controller, and the heat dissipation efficiency of the motor controller is improved.
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Description

Technical Field

[0001] The present application relates to the technical field of shielded pumps, and in particular to a shielded pump. Background Art

[0002] A shielded pump is a sealless pump used to transport liquids. The pump body and motor are sealed and installed. The shielding structure isolates the components inside the motor stator and rotor from the conveying medium to prevent leakage of the conveying medium. At the same time, a circulating cooling channel connected to the pump cavity is provided in the motor, and part of the conveyed liquid flows through the circulating cooling channel to cool the motor.

[0003] In related technologies, the motor controller is fixed to the outer wall of the housing and uses air cooling, which has low heat dissipation efficiency. In high ambient temperatures, the motor controller's excessive temperature can seriously affect its operational stability and service life. Furthermore, the liquid medium used to cool the motor circulates only within the pump cavity and shielding sleeve, with a low flow rate and flow rate, resulting in inefficient cooling of the motor.

[0004] Therefore, it is necessary to design a canned motor pump that can perform liquid cooling on the motor controller and has higher overall cooling efficiency. Summary of the Invention

[0005] The present application aims to solve one of the technical problems in the related art to a certain extent. To this end, the present application provides a shielded pump, comprising a pump body and a motor, wherein the pump body and the motor are sealed to form a pump cavity, the pump body is provided with a liquid inlet pipe and a liquid outlet pipe communicating with the pump cavity, the motor comprises a bracket cover, a casing, a rear casing, and a controller, the casing is configured as a cylinder with openings at both ends, the bracket cover and the rear casing are respectively sealed and connected to the openings at both ends of the casing, so that an installation cavity is formed in the casing, the installation cavity is provided with a stator assembly, a shielding sleeve, and a rotor assembly, and the rotor assembly is located within the shielding sleeve; The rear housing is provided with a mounting surface for mounting the controller on a surface facing the outside of the motor, and the rear housing is provided with a heat dissipation pipe for cooling the controller; A cooling pipe is sealed between one end of the heat dissipation pipe and the liquid outlet pipe, and the other end is connected to the pump cavity through the inside of the shielding sleeve, so that a cooling circulation channel connecting the pump cavity, the heat dissipation pipe and the inside of the shielding sleeve is formed in the shielded pump.

[0006] In this technical solution, a mounting surface for installing a controller is provided on the rear housing, and a heat dissipation duct is provided on the rear housing to dissipate heat from the controller. A cooling circulation channel connecting the pump chamber, the heat dissipation duct, and the shielding sleeve is also provided, so that the liquid medium flowing at a high speed in the liquid outlet pipe communicating with the pump chamber enters the cooling circulation channel to cool the stator assembly, the rotor assembly, and the controller of the motor, increasing the contact area between the cooling circulation channel and the components inside the motor, and increasing the circulation speed of the liquid medium, thereby improving the cooling efficiency of the motor and its controller, and further improving the operating stability and service life of the motor.

[0007] Preferably, the cooling duct is arranged inside the housing, and a filtering device is provided at the end of the cooling duct communicating with one side of the liquid outlet pipe.

[0008] Preferably, one end of the shielding sleeve is provided with an opening, and the opposite end is hermetically connected to the heat dissipation duct. The bracket cover is hermetically connected to the opening end of the shielding sleeve, and an overflow hole for communicating the inside of the shielding sleeve with the pump chamber is provided on the bracket cover.

[0009] Preferably, the rotor assembly includes a rotating shaft and a magnet. The magnet is sleeved on the rotating shaft. The magnet is located inside the shielding sleeve, and there is a gap between the circumferential outer surface of the magnet and the inner side wall of the shielding sleeve. The stator assembly is sleeved outside the shielding sleeve.

[0010] Preferably, the output end of the rotating shaft passes through the bracket cover and is located inside the pump chamber. An impeller is fixedly connected to the output end of the rotating shaft, and the impeller is used to drive the liquid medium in the pump chamber to flow towards the liquid outlet pipe and the cooling duct.

[0011] Preferably, the filtering device includes a filter screen and a pressing plate. The filter screen is located at the inlet end of the cooling duct communicating with the liquid outlet pipe, and the pressing plate abuts against the side of the filter screen facing the cooling duct.

[0012] Preferably, the rear housing includes a heat dissipation bracket and a heat dissipation duct. The mounting surface is provided on the heat dissipation bracket. The surface of the heat dissipation bracket facing the mounting cavity is set as a connecting surface, and the heat dissipation duct is fixedly connected to the connecting surface.

[0013] Preferably, the heat dissipation duct includes a heat exchange pipe, a first elbow, and a second elbow. The first elbow is hermetically connected to the cooling pipe and the heat exchange pipe, and the second elbow is hermetically connected to the heat exchange pipe and the shielding sleeve.

[0014] Preferably, mounting through holes for installing the heat exchange pipe are integrally formed on the connecting surface of the heat dissipation bracket, and the heat exchange pipe is sleeved inside the mounting through holes; Alternatively, the heat dissipation bracket and the heat exchange pipe are provided as an integral structure.

[0015] Preferably, a cover body is further sleeved outside the rear housing, and the cover body is hermetically connected to the housing.

[0016] These features and advantages of the present application will be disclosed in detail in the following specific embodiments and the accompanying drawings. The best embodiments or means of the present application will be shown in detail in combination with the accompanying drawings, but it is not a limitation to the technical solution of the present application. In addition, these features, elements and components appear in multiple in each of the following texts and drawings, and different symbols or numbers are marked for convenience of representation, but they all represent components with the same or similar structures or functions. Brief Description of the Drawings

[0017] The present application will be further described below with reference to the accompanying drawings: Figure 1 It is a three-dimensional structural schematic diagram of the canned motor pump according to an embodiment of the present application; Figure 2 It is a sectional schematic diagram of the canned motor pump according to an embodiment of the present application; Figure 3 It is a structural schematic diagram of the connection between the shielding sleeve and the bracket cover according to an embodiment of the present application; Figure 4 It is an exploded structural schematic diagram of the rear housing according to an embodiment of the present application; Figure 5 It is a structural schematic diagram of the filtering device according to an embodiment of the present application.

[0018] Description of the Reference Numerals in the Drawings: Among them, 100, pump chamber; 110, liquid inlet pipe; 120, liquid outlet pipe; 210, bracket cover; 211, flow-through hole; 220, housing; 221, cooling pipe; 222, filtering device; 2221, filter screen; 2222, pressing plate; 230, rear housing; 231, heat dissipation bracket; 2311, mounting surface; 2312, connecting surface; 2313, mounting through hole; 232, heat dissipation pipe; 2321, heat exchange pipe; 2322, first elbow; 2323, second elbow; 240, controller; 250, stator assembly; 260, shielding sleeve; 270, rotor assembly; 271, rotating shaft; 272, magnet; 280, impeller; 290, cover body. Detailed Description of the Embodiments

[0019] The embodiments of the present application will be described in detail below. The examples of the embodiments are shown in the accompanying drawings, where the same or similar reference numerals represent the same or similar elements or elements with the same or similar functions from beginning to end. Based on the embodiments in the embodiments, it is intended to explain the present application and cannot be understood as a limitation to the present application.

[0020] References in this specification to "one embodiment," "an example," or "an example" mean that a particular feature, structure, or characteristic described in connection with the embodiment itself can be included in at least one embodiment disclosed herein. The appearances of the phrase "in one embodiment" in various places in the specification are not necessarily all referring to the same embodiment.

[0021] The shielded pump isolates the motor stator assembly 250 from the rotor assembly 270 and the conveying medium through the shielding sleeve 260 to prevent leakage of the conveying medium. At the same time, a circulating cooling channel is set up to allow the conveyed liquid medium to flow into the rotor assembly 270 to cool the motor and lubricate the rotor bearings. However, in the related art, the motor controller 240 is set outside the motor casing 220, and an independent heat dissipation system is used for heat dissipation or no heat dissipation system is set. Under high ambient temperature conditions, the motor controller 240 without a heat dissipation system will affect the operating stability and service life of the controller 240 due to excessively high temperature. Designing an independent heat dissipation system will increase the size and installation difficulty of the shielded pump. At the same time, in the related art, the circulating cooling channel in the shielded pump circulates only in the pump cavity 100 and the shielding sleeve 260. Specifically, by setting a through hole on the bracket cover 210, the liquid medium in the pump cavity 100 flows into the shielding sleeve 260 through the through hole on the bracket cover 210, and flows into the bottom of the shielding sleeve 260 after passing through the rotor surface, and then flows back to the pump cavity 100 from the bottom of the shielding sleeve 260 along the through hole in the rotating shaft 271. The liquid medium in the circulating cooling channel has a small flow rate and a low flow rate, and the cooling efficiency of the motor is not high. In view of this, the researchers of this application proposed a shielded pump with a new cooling circulation structure and can dissipate heat from the controller 240 through the circulating cooling channel in the shielded pump, thereby improving the cooling efficiency.

[0022] like Figure 1 、 2As shown in the figure, this embodiment provides a canned motor pump, which includes a pump body and a motor. The pump body and the motor are sealed to form a pump chamber 100. The pump body is provided with a liquid inlet pipe 110 and a liquid outlet pipe 120 that communicate with the pump chamber 100. The motor includes a bracket cover 210, a housing 220, a rear housing 230, and a controller 240. The housing 220 is configured as a cylindrical shape with openings at both ends. The bracket cover 210 and the rear housing 230 are respectively sealed and connected to the openings at both ends of the housing 220, so as to form an installation cavity inside the housing 220. A stator assembly 250, a shielding sleeve 260, and a rotor assembly 270 are arranged in the installation cavity. The rotor assembly 270 is located inside the shielding sleeve 260. An installation surface 2311 for installing the controller 240 is provided on the surface of the rear housing 230 facing the outside of the motor. The rear housing 230 is provided with a heat dissipation pipe 232 for cooling the controller 240. One end of the heat dissipation pipe 232 is hermetically communicated with the liquid outlet pipe 120 through a cooling pipe 221, and the other end is communicated with the pump chamber 100 through the inside of the shielding sleeve 260, so as to form a cooling circulation channel in the canned motor pump that communicates the pump chamber 100, the heat dissipation pipe 232, and the inside of the shielding sleeve 260. The cooling circulation channel in the canned motor pump is as follows Figure 2 As shown in the figure, when the motor rotates, the impeller 280 drives the liquid medium in the pump chamber 100 to flow at a high speed towards the liquid outlet pipe 120. A large amount of liquid medium flows out of the canned motor pump from the liquid outlet of the liquid outlet pipe 120, and a small amount of liquid medium enters the cooling pipe 221 communicated with the liquid outlet pipe 120. The liquid medium entering the cooling pipe 221 flows through the heat dissipation pipe 232 along the pipeline and absorbs part of the heat energy released by the controller 240, and then enters the inside of the shielding sleeve 260 along the pipeline to cool the stator assembly 250 and the rotor assembly 270, and then flows back to the pump chamber 100 from the shielding sleeve 260. In this embodiment, the cooling pipe 221 is provided at the liquid outlet pipe 120 where the liquid flow rate is relatively high, so that the flow rate of the liquid medium entering the cooling pipe 221 is higher than that of the technical solution in the related art where the liquid flows from the bracket cover 210 into the shielding sleeve 260, and the flow rate is also larger, and the corresponding heat dissipation efficiency is also higher.

[0023] In this embodiment, the controller 240 is dissipated by providing an installation surface 2311 for installing the controller 240 on the rear housing 230 and providing a heat dissipation pipe 232 on the rear housing 230. By providing a cooling circulation channel that communicates the pump chamber 100, the heat dissipation pipe 232, and the shielding sleeve 260, the liquid medium flowing at a high speed in the liquid outlet pipe 120 communicated with the pump chamber 100 enters the cooling circulation channel to cool the stator assembly 250, the rotor assembly 270, and the controller 240 of the motor, increasing the contact area between the cooling circulation channel and each component inside the motor, thereby improving the cooling efficiency of the motor and its controller 240, and further improving the operation stability and service life of the motor.

[0024] In some embodiments, as Figure 2 shown, the cooling pipe 221 is disposed inside the housing 220. A filtering device 222 is provided at one end of the cooling pipe 221 that communicates with one side of the liquid outlet pipe 120. By disposing the cooling pipe 221 inside the housing 220, when the liquid medium flows through the cooling pipe 221, it can absorb the heat energy of the housing 220, further improving the cooling effect on the motor. In addition, in this embodiment, the cooling pipe 221 is formed inside the housing 220, making it more convenient to connect the cooling pipe 221 to the pump chamber 100 and the heat dissipation pipe 232, and the structural strength is also better, not easily damaged. As an example, the housing 220 is injection molded or cast and processed from plastic or metal materials. It should be noted that in other embodiments, the shown cooling pipe 221 can also be independently disposed outside the housing 220. One end of the independently disposed cooling pipe 221 is hermetically connected to the liquid outlet pipe 120, and the other end is hermetically connected to the heat dissipation pipe 232.

[0025] In some embodiments, as Figure 2 , 3 shown, the shielding sleeve 260 has a cylindrical structure with a bottom. One end thereof is provided with an opening, and a through hole is opened at the bottom of the other end of the cylinder. The bracket cover 210 is provided on the opening side thereof, and the edge of the bracket cover 210 is hermetically connected between the housing 220 and the pump body, so that the remaining space inside the housing 220 except the inside of the shielding sleeve 260 is hermetically isolated from the pump chamber 100, that is, the installation space of the stator assembly 250 shown in the figure is hermetically isolated from the pump chamber 100, preventing the liquid medium in the pump chamber 100 from entering the installation space of the stator assembly 250. A through hole 211 is opened in the part of the bracket cover 210 covering the opening end of the shielding sleeve 260, so that the liquid medium in the shielding sleeve 260 can flow back into the pump chamber 100 through the through hole 211; a through hole is opened at one end of the bottom of the shielding sleeve 260, and the through hole extends to the outside of the bottom of the shielding sleeve 260 and is hermetically connected to the heat dissipation pipe 232. Specifically, a second elbow 2323 of the heat dissipation pipe 232 is hermetically connected in the through hole. Plug connectors are provided at both ends of the second elbow 2323. One end of the plug connector is inserted into the heat exchange tube 2321, and the other end is inserted into the through hole at the bottom of the shielding sleeve 260, so that the heat exchange tube 2321 is hermetically connected to the shielding sleeve 260, and the cooling medium in the heat exchange tube 2321 can flow into the shielding sleeve 260, preventing the liquid medium from flowing into the installation space outside the shielding sleeve 260. In this embodiment, by respectively providing the bracket cover 210 with a through hole and the hermetically connected second elbow 2323 at both ends of the shielding sleeve 260, the liquid medium is prevented from flowing into the installation cavity where the stator assembly 250 is located, and the liquid medium flows through the surface of the rotor magnet 272 and the inner side wall of the shielding sleeve 260 in the shielding sleeve 260, realizing the cooling of the rotor assembly 270 and the stator assembly 250, and at the same time, the liquid medium also plays a role in lubricating the rotor and its bearings.

[0026] Specifically, as Figure 2 shown, the rotor assembly 270 includes a rotating shaft 271 and a magnet 272. The magnet 272 is sleeved on the rotating shaft 271. The magnet 272 is located inside the shielding sleeve 260, and there is a gap between the circumferential outer surface of the magnet 272 and the inner side wall of the shielding sleeve 260. The stator assembly 250 is sleeved outside the shielding sleeve 260. When the motor works, the stator assembly 250 is energized to generate a magnetic field, and the magnet 272 in the rotor assembly 270 rotates under the action of the magnetic field force. In order to better cool the stator assembly 250 and the rotor assembly 270, the stator assembly 250 is sleeved outside the shielding sleeve 260, as Figure 2 shown, the stator assembly 250 abuts against the outer side wall of the shielding sleeve 260, so that the heat generated when the stator assembly 250 is energized can be quickly conducted to the side wall of the shielding sleeve 260, and then the heat energy of the side wall of the shielding sleeve 260 is absorbed by the liquid medium flowing through the gap between the circumferential outer surface of the magnet 272 and the inner side wall of the shielding sleeve 260. At the same time, the magnet 272 rotating at a high speed inside the shielding sleeve 260 will also generate heat energy, and the liquid medium can also absorb the heat energy of the magnet 272 when flowing through the gap between the circumferential outer surface of the magnet 272 and the inner side wall of the shielding sleeve 260, that is, the technical effect of cooling the rotor assembly 270 and the stator assembly 250 by the liquid medium is realized. In a specific embodiment, the gap between the magnet 272 and the inner side wall of the shielding sleeve 260 is usually set to 1-3 mm.

[0027] In some embodiments, as Figure 2 、 3 shown, the output end of the rotating shaft 271 passes through the bracket cover 210 and is located inside the pump chamber 100. The output end of the rotating shaft 271 is fixedly connected with an impeller 280. The impeller 280 is used to drive the liquid medium in the pump chamber 100 to flow towards the liquid outlet pipe 120 and the cooling pipe 221. An installation hole is provided at the center of the bracket cover 210. The rotating shaft 271 passes through the installation hole and extends into the pump chamber 100. An impeller 280 is sleeved on the end of the rotating shaft 271 passing through the bracket cover 210. The impeller 280 is located inside the pump chamber 100. When the rotating shaft 271 rotates, the impeller 280 rotates with the rotating shaft 271 and drives the liquid medium in the pump chamber 100 to flow. Specifically, the impeller 280 drives the liquid medium entering from the liquid inlet pipe 110 to quickly flow towards the liquid outlet pipe 120. After the liquid medium enters the liquid outlet pipe 120, a small amount of the liquid medium will enter the cooling pipe 221 communicated with the side wall of the liquid outlet pipe 120, so as to drive the liquid medium to circulate in the cooling pipe 221, the heat dissipation pipe 232, inside the shielding sleeve 260 and the pump chamber 100.

[0028] As an implementation method, as Figure 2 、 5As shown, the filter device 222 includes a filter screen 2221 and a pressure plate 2222. The filter screen 2221 is located at the inlet end of the cooling pipe 221 connecting to the liquid outlet pipe 120, and the pressure plate 2222 abuts against the side of the filter screen 2221 facing the cooling pipe 221. The filter device 222 is disposed at the outlet of the cooling pipe 221 near the liquid outlet pipe 120. The filter device 222 can filter out solid particles and other impurities in the cooling medium. The filter screen 2221 can block solid particles outside of the filter screen, preventing impurities from entering the shielding sleeve 260 and damaging the motor. At the same time, the pressure plate 2222 secures the filter screen 2221 at the outlet of the cooling pipe 221 near the liquid outlet pipe 120. While the filter screen 2221 is secured, the high-speed liquid medium flowing in the liquid outlet pipe 120 flushes away the particles blocked by the filter screen 2221, preventing impurities from accumulating outside the filter screen 2221 and causing blockage.

[0029] In some embodiments, as Figure 2 、 4 As shown, the rear housing 230 includes a heat dissipation bracket 231 and a heat dissipation pipe 232. The heat dissipation bracket 231 is provided with the mounting surface 2311. The side surface of the heat dissipation bracket 231 facing the mounting cavity is set as a connection surface 2312. The heat dissipation pipe 232 is fixedly connected to the connection surface 2312. The heat dissipation bracket 231 is set as a plate-like structure, and its two opposite main surfaces are respectively set as the mounting surface 2311 and the connection surface 2312. Figure 4 In the figure, the upper surface of the heat dissipation bracket is set as the installation surface 2311, and the lower surface is set as the connection surface 2312. The controller 240 is installed on the installation surface 2311 of the heat dissipation bracket 231 to realize the cooling and heat dissipation of the controller 240 by the heat dissipation bracket 231, and a heat dissipation pipe 232 connected to the circulating cooling channel is set on the connection surface 2312 of the heat dissipation bracket 231, so that the liquid cooling medium in the circulating cooling channel in the shielded pump flows through the heat dissipation pipe 232 to realize liquid cooling of the heat dissipation bracket 231 and the controller 240 by the liquid cooling medium. The liquid medium and the metal solid medium have higher thermal conductivity efficiency than the air. Therefore, for example, the heat dissipation bracket 231 and the heat dissipation pipe 232 are made of aluminum metal material. The aluminum profile has the advantages of light weight, corrosion resistance, easy molding, and high thermal conductivity efficiency. It is the preferred material for manufacturing the heat dissipation bracket 231.

[0030] In some embodiments, as Figure 2 、 4As shown, the heat dissipation pipe 232 includes a heat exchange pipe 2321, a first elbow 2322, and a second elbow 2323. The first elbow 2322 seals the cooling pipe and the heat exchange pipe 2321, and the second elbow 2323 seals the heat exchange pipe 2321 and the shielding sleeve 260. The first elbow 2322 and the second elbow 2323 are plugged into and sealably connected to both ends of the heat exchange pipe 2321. The other end of the first elbow 2322 seals the cooling pipe 221 (relative to the end connected to the heat exchange pipe 2321), and the other end of the second elbow 2323 seals the bottom of the shielding pump. By providing the first elbow 2322 and the second elbow 2323, the direction of the pipe is adjusted, and heat is dissipated from the controller 240 through the heat exchange pipe 2321.

[0031] In some embodiments, as Figure 2 、 4 As shown, the connection surface 2312 of the heat dissipation bracket 231 is integrally formed with a mounting hole 2313 for mounting the heat exchange tube 2321, and the heat exchange tube 2321 is sleeved within the mounting hole 2313; alternatively, the heat dissipation bracket and the heat exchange tube 2321 are integrally formed. The connection surface 2312 of the heat dissipation bracket 231 is integrally formed with a mounting hole 2313 for mounting the heat exchange tube 2321. Specifically, the heat exchange tube 2321 and the heat dissipation bracket 231 are configured as a separate structure. The upper surface of the heat dissipation bracket 231 is configured as the mounting surface 2311 of the controller 240, and the connection surface 2312 is used for mounting the heat exchange tube 2321 and for sealing connection with the housing 220. The heat exchange tube 2321 and the controller 240 are respectively disposed on the upper and lower opposite sides of the heat dissipation bracket 231. The heat dissipation bracket 231 is configured as a thin sheet structure, which is conducive to improving heat conduction efficiency. In other embodiments, the heat exchange tube 2321 is integrally formed on the connecting surface 2312 of the heat dissipation bracket 231, that is, the heat exchange tube 2321 and the heat dissipation bracket 231 are set as an integrated structure, and the heat exchange tube 2321 and the heat dissipation bracket 231 are integrally cast. The integrated structure can reduce the number of parts and slightly improve the heat transfer efficiency.

[0032] In some embodiments, the controller 240 includes a circuit board. The mounting surface 2311 of the heat dissipation bracket 231 abuts the circuit board, and the circuit board is fixedly connected to the heat dissipation bracket 231 via screws. The circuit board is provided with a heating element, and the heat dissipation bracket 231 is used to dissipate heat from the heating element of the controller 240. To improve the heat dissipation effect, the circuit board is typically mounted abutting the heat dissipation bracket 231. In some embodiments, a heat-conducting medium such as thermally conductive silicone or thermally conductive resin can be provided between the heat dissipation bracket 231 and the circuit board to further improve heat conduction efficiency.

[0033] In some embodiments, asFigure 1 、 2 As shown, the outer side of the rear shell 230 is also covered with a cover body 290, and the cover body 290 is sealed with the housing 220. In other embodiments, a connecting shell is further provided between the cover body 290 and the housing 220. By providing the connecting shell, the size of the cavity enclosed by the cover body 290 and the rear shell 230 can be adjusted to be suitable for installing controllers 240 of different sizes.

[0034] In summary, the above embodiment dissipates heat for the controller 240 by providing a mounting surface 2311 for installing the controller 240 on the rear shell 230 and providing a heat dissipation pipe 232 on the rear shell 230, and also provides a cooling circulation channel connecting the pump chamber 100, the heat dissipation pipe 232 and the shielding sleeve 260, so that the high-speed flowing liquid medium in the liquid outlet pipe 120 connected to the pump chamber 100 enters the cooling circulation channel to cool the stator assembly 250, the rotor assembly 270 and the controller 240 of the motor, thereby increasing the contact area between the cooling circulation channel and the various components in the motor, thereby improving the cooling efficiency of the motor and its controller 240, and further improving the operating stability and service life of the motor.

[0035] The above are only specific embodiments of the present application, but the scope of protection of the present application is not limited thereto. Those skilled in the art should understand that the present application includes but is not limited to the contents described in the drawings and the above specific embodiments. Any modifications that do not deviate from the functional and structural principles of the present application are included within the scope of the claims.

Claims

1. A canned motor pump, comprising a pump body and a motor, wherein a pump chamber (100) is formed by sealing the pump body and the motor, and a liquid inlet pipe (110) and a liquid outlet pipe (120) communicating with the pump chamber (100) are arranged on the pump body, and it is characterized in that, The motor includes a bracket cover (210), a housing (220), a rear housing (230), and a controller (240). The housing (220) is in the shape of a cylinder with openings at both ends. The bracket cover (210) and the rear housing (230) are respectively and sealingly connected to the openings at both ends of the housing (220) so as to form an installation cavity inside the housing (220). A stator assembly (250), a shielding sleeve (260), and a rotor assembly (270) are arranged inside the installation cavity, and the rotor assembly (270) is located inside the shielding sleeve (260). An installation surface (2311) for installing the controller (240) is provided on the surface of the rear housing (230) facing the outside of the motor, and the rear housing (230) is provided with a heat dissipation pipeline (232) for cooling the controller (240). A cooling pipeline (221) is sealingly communicated between one end of the heat dissipation pipeline (232) and the liquid outlet pipeline (120), and the other end is communicated with the pump cavity (100) through the inside of the shielding sleeve (260), so as to form a cooling circulation channel in the canned motor that communicates the pump cavity (100), the heat dissipation pipeline (232), and the inside of the shielding sleeve (260).

2. The canned motor pump according to claim 1, wherein The cooling pipeline (221) is arranged inside the housing (220), and a filtering device (222) is provided at the end of the cooling pipeline (221) communicating with the liquid outlet pipeline (120).

3. The canned motor pump according to claim 1, wherein, One end of the shielding sleeve (260) is provided with an opening, and the opposite end is sealingly communicated with the heat dissipation pipeline (232). The bracket cover (210) is sealingly connected to the open end of the shielding sleeve (260), and an overflow hole (211) for communicating the inside of the shielding sleeve (260) with the pump cavity (100) is provided on the bracket cover (210).

4. The canned motor pump according to claim 3, wherein, The rotor assembly (270) includes a rotating shaft (271) and a magnet (272). The magnet (272) is sleeved on the rotating shaft (271). The magnet (272) is located inside the shielding sleeve (260), and there is a gap between the circumferential outer surface of the magnet (272) and the inner side wall of the shielding sleeve (260). The stator assembly (250) is sleeved outside the shielding sleeve (260).

5. The canned motor pump according to claim 4, wherein The output end of the rotating shaft (271) passes through the bracket cover (210) and is located inside the pump cavity (100). An impeller (280) is fixedly connected to the output end of the rotating shaft (271), and the impeller (280) is used to drive the liquid medium inside the pump cavity (100) to flow towards the liquid outlet pipeline (120) and the cooling pipeline (221).

6. The canned motor pump according to claim 2, wherein The filtering device (222) includes a filter net (2221) and a pressing plate (2222). The filter net (2221) is located at the inlet end of the cooling pipeline (221) communicating with the liquid outlet pipeline (120), and the pressing plate (2222) abuts against the side of the filter net (2221) facing the cooling pipeline (221).

7. The canned motor pump according to any one of claims 1 to 6, characterized in that, The rear housing (230) includes a heat dissipation bracket (231) and a heat dissipation pipe (232). The heat dissipation bracket (231) is provided with the mounting surface (2311). One side surface of the heat dissipation bracket (231) facing the installation cavity is set as a connection surface (2312). The heat dissipation pipe (232) is fixedly connected to the connection surface (2312).

8. The canned motor pump according to claim 7, characterized in that, The heat dissipation pipe (232) includes a heat exchange pipe (2321), a first elbow (2322) and a second elbow (2323). The first elbow (2322) is hermetically connected to the cooling pipe and the heat exchange pipe (2321). The second elbow (2323) is hermetically connected to the heat exchange pipe (2321) and the shielding sleeve (260).

9. The canned motor pump according to claim 8, characterized in that, An installation through hole (2313) for installing the heat exchange pipe (2321) is integrally formed on the connection surface (2312) of the heat dissipation bracket (231). The heat exchange pipe (2321) is sleeved in the installation through hole (2313); Or, the heat dissipation bracket (231) and the heat exchange pipe (2321) are set as an integral structure.

10. The canned motor pump according to any one of claims 1 to 6, characterized in that, A cover body (290) is further sleeved outside the rear housing (230). The cover body (290) is hermetically connected to the machine shell (220).

Citation Information

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