CN213899312U - Water pump and water heater with same - Google Patents

Water pump and water heater with same Download PDF

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Publication number
CN213899312U
CN213899312U CN202021831839.7U CN202021831839U CN213899312U CN 213899312 U CN213899312 U CN 213899312U CN 202021831839 U CN202021831839 U CN 202021831839U CN 213899312 U CN213899312 U CN 213899312U
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CN
China
Prior art keywords
water
water pump
cover
pump
heat dissipation
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CN202021831839.7U
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Chinese (zh)
Inventor
张小林
张燕京
郑伟城
梁国荣
欧常福
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Midea Group Co Ltd
Wuhu Midea Kitchen and Bath Appliances Manufacturing Co Ltd
Original Assignee
Midea Group Co Ltd
Wuhu Midea Kitchen and Bath Appliances Manufacturing Co Ltd
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Priority to CN202021831839.7U priority Critical patent/CN213899312U/en
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Abstract

The utility model discloses a water pump and water heater that has it, the water pump includes: the end face of the shielding sleeve is provided with a rotor slot and a stator slot; a stator fitted within the stator slot; the rotating shaft is arranged in the rotor groove and is fixedly connected with the shielding sleeve; the rotor is rotatably matched in the rotor groove and sleeved outside the rotating shaft; and the pump cover is arranged on the upper end surface of the shielding sleeve. According to the utility model discloses water pump has advantages such as the noise is little, the integrated level is high.

Description

Water pump and water heater with same
Technical Field
The utility model relates to an electrical apparatus makes technical field, particularly, relates to a water pump and has the water heater of water pump.
Background
In order to avoid discharging cold water, a centrifugal water pump needs to be added to a water inlet pipeline to enable water in the pipeline to flow at a certain flow rate.
The centrifugal water pump among the correlation technique, the vibrations that produce at the during operation are great, lead to the noise at work of water heater great, influence the travelling comfort when user uses.
SUMMERY OF THE UTILITY MODEL
The utility model discloses aim at solving one of the technical problem that exists among the prior art at least. Therefore, the utility model provides a water pump, this water pump have the noise little, integrated level advantage such as high.
Therefore, the utility model discloses still provide one kind and have the water heater of water pump.
To achieve the above object, according to the embodiment of the first aspect of the present invention, a water pump is provided, the water pump including: the end face of the shielding sleeve is provided with a rotor slot and a stator slot; a stator fitted within the stator slot; the rotating shaft is arranged in the rotor groove and is fixedly connected with the shielding sleeve; the rotor is rotatably matched in the rotor groove and sleeved outside the rotating shaft; the pump cover, the pump cover is installed the up end of housing, integrated into one piece has pump cover water inlet and pump cover delivery port on the pump cover.
According to the utility model discloses water pump has advantages such as the noise is little, the integrated level is high.
In addition, according to the utility model discloses above-mentioned embodiment's water pump can also have following additional technical characterstic:
according to the utility model discloses an embodiment, the pivot with shield cover integrated into one piece or mould plastics as an organic whole.
According to the utility model discloses an embodiment, the water pump still includes the heat dissipation base shell, the heat dissipation base shell is installed the lower terminal surface of housing.
According to the utility model discloses an embodiment, the water pump still includes the circuit board, be formed with the heat dissipation chamber in the heat dissipation base shell, the circuit board is established the stator slot with in at least one in heat dissipation chamber and with the stator electricity is connected, the stator with the circuit board is spaced apart with the stator with form the heat dissipation clearance between the circuit board.
According to the utility model discloses an embodiment, the heat dissipation chamber intercommunication the stator slot.
According to the utility model discloses an embodiment, the water pump still includes the support, the support mounting be in the housing below, the support is suitable for and installs on the water heater.
According to the utility model discloses an embodiment, the support includes central part, a plurality of first lug and a plurality of second lug, and is a plurality of first lug is followed the circumference interval of central part sets up, and is a plurality of the second lug is followed the circumference interval of central part sets up, the support via hole forms on the first lug, the second lug includes damper and erection segment, the damper is followed the central part is the slope extension downwards outwards, the erection segment with the damper links to each other, be equipped with the assembly via hole on the erection segment, the support is suitable for through passing the third bolt of assembly via hole is installed on the water heater.
According to the utility model discloses an embodiment, the projection of support at the horizontal plane is located the shielding cover is in the projected circumcircle of horizontal plane.
According to the utility model discloses an embodiment, the water pump is still including heat dissipation base shell and support, heat dissipation base shell is installed the lower terminal surface of housing, the support mounting is in heat dissipation base shell below, the support is suitable for and installs on the water heater, be equipped with the mounting hole on the heat dissipation base shell, be equipped with the housing via hole on the housing, the housing with heat dissipation base shell is through passing the housing via hole cooperation is in first bolt in the mounting hole links to each other, be equipped with the support via hole on the support, the support with heat dissipation base shell is through passing the support via hole cooperation is in second bolt in the mounting hole links to each other.
According to the utility model discloses an embodiment, the support top is equipped with shock attenuation lag.
According to the utility model discloses an embodiment, the pump cover includes: the cover body is provided with a water inlet of the pump cover; the pump cover comprises a cover body, a pump cover water outlet, a water outlet joint and a cover body, wherein the pump cover water outlet is formed in the water outlet joint, the water outlet joint is connected with the cover body and is provided with a connecting end connected with the cover body and a free end far away from the cover body, the joint of the end surface of the free end and the peripheral surface is chamfered so as to form an inclined angle surface at the joint of the end surface of the free end and the peripheral surface, and the minimum angle between the inclined angle surface and the axial direction of the free end is smaller than the minimum angle between the inclined angle surface and the radial direction of the free end.
According to an embodiment of the invention, the minimum angle between the angled surface and the free end axis is 10-25 degrees.
According to the utility model discloses an embodiment, water channel has in the water connectors, water channel includes the divergent section at least, the divergent section internal diameter is crescent by the direction of link to free end, the inner peripheral surface of divergent section with minimum angle between the axial of divergent section is 2.5-10 degrees.
According to the utility model discloses an embodiment, the lid includes: the pump cover water inlet is formed in the top wall; the peripheral wall is arranged around the top wall and extends downwards, the top wall extends upwards and inwards in an inclined mode from the peripheral wall, and the minimum angle between the top wall and the horizontal plane is 2-10 degrees.
According to the utility model discloses an embodiment, be equipped with on the lid along the circumference strengthening rib of lid circumference extension, be equipped with on the lid along a plurality of radial strengthening ribs of lid radial extension, it is a plurality of radial strengthening rib is followed the circumference interval of lid sets up, be equipped with on the water connectors and follow the annular strengthening rib of water connectors circumference extension, the annular strengthening rib is with a plurality of at least one in the radial strengthening rib links to each other.
According to the utility model discloses an embodiment, the water pump still includes the impeller, the impeller includes: the first plate body is provided with an impeller water inlet; the second plate body is connected with the rotor, and the second plate body and the first plate body are spaced to form a water passing gap; the blades are arranged in the water passing gap and are arranged along the circumferential direction of the first plate body at intervals, wherein the ratio of the distance between the first plate body and the second plate body to the diameter of the first plate body is 0.02-0.15.
According to an embodiment of the present invention, the distance between the first plate and the second plate is 1-5 mm, and the diameter of the first plate is 30-50 mm.
According to one embodiment of the present invention, the diameter of the impeller inlet is 8-22 mm, and the radius of the imaginary circle tangent to the inner ends of the plurality of blades is 8-12 mm.
According to the utility model discloses an embodiment, the blade is the arc and has relative first cambered surface and second cambered surface, first cambered surface is located the convex one side of arc of blade, the second cambered surface is located the sunken one side of arc of blade.
According to an embodiment of the invention, the radius of the first cambered surface is 10-36 mm, and the radius of the second cambered surface is 5-25 mm.
According to the utility model discloses an embodiment, first cambered surface respectively with the inner terminal surface and the outer terminal surface of blade link to each other, the inner of second cambered surface with the inner terminal surface of blade links to each other, the outer end of second cambered surface with the outer terminal surface of blade passes through the inclined plane and links to each other, the inclined plane by the second cambered surface to first cambered surface and the extension that leans out, the inclined plane with impeller minimum angle between radial is 0-25 degrees.
According to an embodiment of the present invention, every the blade the centre of a circle of first cambered surface with imagine line between the first plate body centre of a circle and this blade the inner of first cambered surface with the angle that imagine line between the first plate body centre of a circle was is 40-95 degrees, every the blade the centre of a circle of second cambered surface with imagine line between the first plate body centre of a circle and this blade the inner of first cambered surface with the angle that imagine line between the first plate body centre of a circle was 45-75 degrees.
According to the utility model discloses an embodiment of second aspect provides a water heater, the water heater includes according to the embodiment of the first aspect the water pump.
According to the utility model discloses water heater, through utilizing according to the utility model discloses an embodiment of first aspect the water pump, have advantages such as the noise is little, the integrated level is high.
Additional aspects and advantages of the invention will be set forth in part in the description which follows and, in part, will be obvious from the description, or may be learned by practice of the invention.
Drawings
The above and/or additional aspects and advantages of the present invention will become apparent and readily appreciated from the following description of the embodiments, taken in conjunction with the accompanying drawings of which:
fig. 1 is a cross-sectional view of a water pump according to an embodiment of the present invention.
Fig. 2 is a schematic structural diagram of a water pump according to an embodiment of the present invention.
Fig. 3 is an exploded view of a water pump according to an embodiment of the present invention.
Fig. 4 is a schematic structural diagram of a water pump according to an embodiment of the present invention.
Fig. 5 is according to the utility model discloses the structural schematic of pump cover of water pump.
Fig. 6 is a cross-sectional view of a pump cover of a water pump according to an embodiment of the present invention.
Fig. 7 is a partial cross-sectional view of a pump cover of a water pump according to an embodiment of the present invention.
Fig. 8 is a schematic structural view of a rotor and an impeller of a water pump according to an embodiment of the present invention.
Fig. 9 is a partial cross-sectional view of an impeller of a water pump according to an embodiment of the present invention.
Reference numerals: the water pump 1, the shield 100, the rotor groove 101, the rotating shaft 110, the shield through hole 120, the guide edge 130, the stator 200, the support leg 210, the rotor 300, the rotor body 310, the rotor magnet 320, the heat dissipation base shell 400, the heat dissipation cavity 401, the positioning groove 402, the wire through hole 403, the mounting hole 410, the circuit board 420, the power cord 421, the bracket 500, the center portion 510, the first lug 520, the bracket through hole 521, the second lug 530, the assembly through hole 531, the damper section 532, the mounting section 533, the pump cover 600, the top wall 601, the peripheral wall 602, the pump cover through hole 610, the pump cover water inlet 620, the water outlet connector 630, the water passage 631, the divergent section 6311, the straight section 6312, the annular reinforcing rib 632, the oblique surface 633, the cover body 640, the circumferential reinforcing rib 641, the radial reinforcing rib 642, the impeller 700, the impeller water inlet 701, the water passage gap 702, the first plate body 710, the second plate body 720, the blade 730, the first arc 731, the second arc surface 732, the oblique surface 733, the stator magnet 200, the stator core 210, the stator 300, the stator magnet 300, the rotor magnet assembly, the rotor assembly, and the rotor assembly, Shock attenuation lag 800, lag via hole 810, first bolt 910, second bolt 920, sealing washer 930, gasket 940.
Detailed Description
Reference will now be made in detail to embodiments of the present invention, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to the same or similar elements or elements having the same or similar function throughout. The embodiments described below with reference to the drawings are exemplary only for the purpose of explaining the present invention, and should not be construed as limiting the present invention.
In the description of the present invention, it is to be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", and the like, indicate the orientation or positional relationship indicated based on the drawings, and are only for convenience of description and simplicity of description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore, should not be construed as limiting the present invention. Furthermore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of the present invention, "a plurality" means two or more unless otherwise specified.
In the description of the present invention, it is to be noted that, unless otherwise explicitly specified or limited, the terms "mounted," "connected," and "connected" are to be construed broadly, and may be, for example, fixedly connected, detachably connected, or integrally connected; can be mechanically or electrically connected; they may be connected directly or indirectly through intervening media, or they may be interconnected between two elements. The specific meaning of the above terms in the present invention can be understood in specific cases to those skilled in the art.
The water pump 1 according to an embodiment of the present invention is described below with reference to the drawings.
As shown in fig. 1 to 9, a water pump 1 according to an embodiment of the present invention includes a shield case 100, a stator 200, a rotating shaft 110, and a rotor 300.
On the end face of the shielding 100, rotor slots 101 and stator slots are provided, which are located outside the rotor slots 101 in the radial direction of the shielding 100. The stator 200 fits within the stator slots. The rotation shaft 110 is provided in the rotor groove 101 and is integrally formed with the shield case 100. The rotor 300 is rotatably fitted in the rotor groove 101 and is fitted over the rotation shaft 110.
According to the utility model discloses water pump 1, through with pivot 110 and 100 fixed connection of housing, pivot 110 is fixed motionless with housing 100, rotor 300 cover is established on pivot 110 like this, rotor 300 relative pivot and housing rotate, compare the technical scheme that the pivot links to each other with the pump cover among the correlation technique, can save the process of assembling pivot 110 on the pump cover, not only can improve the assembly efficiency of pivot 110, improve water pump 1's production efficiency, part quantity when reducing water pump 1 assembly, improve water pump 1's integrated level, and can avoid the position precision that the assembly process influences pivot 110, improve pivot 110's stability, reduce the noise that produces when water pump 1 moves, improve the travelling comfort when the user uses the water heater.
Moreover, the rotor slots 101 and the stator slots are arranged on the shielding sleeve 100, so that the stator 200 and the rotor 300 can be intensively installed in the shielding sleeve 100, the shielding sleeve 100 can play roles in positioning, supporting and protecting the stator 200 and the rotor 300 while providing an insulation shielding effect, other structures for positioning and protecting the stator 200 and the rotor 300 can be omitted, the structure of the water pump 1 is further simplified, and the integration level of the water pump 1 is improved.
Therefore, according to the utility model discloses water pump 1 has advantages such as the noise is little, the integrated level is high.
The water pump 1 according to the embodiment of the present invention is described below with reference to the accompanying drawings.
In some embodiments of the present invention, as shown in fig. 1 to 9, a water pump 1 according to an embodiment of the present invention includes a shield case 100, a stator 200, a rotating shaft 110, and a rotor 300.
Alternatively, the shaft 110 is integrally formed or injection molded with the shielding sleeve 100. This facilitates the rotation shaft 110 and the shield case 100 to form an integrated structure, thereby improving the stability and the integration of the water pump 1.
Specifically, the rotating shaft 110 is a ceramic shaft. This allows the rotation shaft 110 to have good wear resistance and to avoid interference with the rotation of the rotor 300.
More specifically, as shown in fig. 1 and 3, a rotor groove 101 is formed on an upper end surface of the shield case 100 (a vertical direction is indicated by an arrow in the drawing and is merely for convenience of description, and is not a limitation on an actual arrangement direction of the water pump 1), and a stator groove is formed on a lower end surface of the shield case 100. This may facilitate the installation of the stator 200 and the rotor 300, and may facilitate the connection of the rotor 300 and the stator 200 to other structures.
Fig. 1 to 4 show a water pump 1 according to a specific example of the present invention. As shown in fig. 1 to 4, the water pump 1 further includes a heat-dissipating base housing 400 and a bracket 500, the heat-dissipating base housing 400 is mounted on the lower end surface of the shielding sleeve 100, the bracket 500 is mounted below the heat-dissipating base housing 400, and the bracket 500 is adapted to be mounted on the water heater. Can utilize support 500 to install water pump 1 on the water heater like this, utilize heat dissipation base shell 400 to dispel the heat to water pump 1, guarantee water pump 1's normal operating.
Specifically, the water pump 1 further includes a circuit board 420. The circuit board 420 is electrically connected to the stator 200. A heat dissipation chamber 401 is formed in the heat dissipation base case 400. The circuit board 420 is disposed in at least one of the heat dissipation cavity 401 and the stator slot, and the stator 200 is spaced apart from the circuit board 420 to form a heat dissipation gap between the stator 200 and the circuit board 420. Therefore, the heat dissipation base shell 400 can be used for dissipating heat of the circuit board 420, and heat generated by the stator 200 during operation and heat generated by other elements on the circuit board 420 are prevented from influencing normal operation of the circuit board 420, so that stable operation of the circuit board 420 at a proper temperature is ensured.
Specifically, the lower end surface of the stator 200 is provided with a plurality of legs 210, the legs 210 are spaced apart along the circumferential direction of the stator 200, and the legs 210 are engaged with the circuit board 420. This facilitates the installation of the circuit board 420, and also facilitates the control of the distance between the circuit board 420 and the stator 200, and facilitates the approach of the circuit board 420 to the heat dissipation base housing 400, so as to facilitate the heat dissipation of the circuit board 420.
The lower end surface of the shielding sleeve 100 is provided with a guiding edge 130, and the guiding edge 130 is adapted to extend into the heat dissipation cavity 401. This can be guided by the guiding edge to facilitate the fitting of the shielding case 100 with the heat dissipating base housing 400.
The heat-dissipating base case 400 is provided at a lower portion of a circumferential wall thereof with a positioning groove 402, and a portion of the circuit board 420 is fitted in the positioning groove 402. This may facilitate mounting of circuit board 420 and positioning of circuit board 420.
The peripheral wall of the heat dissipation base shell 400 is provided with a wire through hole 403, the wire through hole 403 is communicated with the upper end surface of the heat dissipation base shell 400, and the power line 421 is electrically connected with the circuit board 420 through the wire through hole 403. This may facilitate connection of the power cord 421 to the circuit board 420.
Further, as shown in fig. 1, a heat dissipation chamber 401 communicates with the stator slot. This facilitates electrical connection between the circuit board 420 and the stator 200 and also allows heat dissipation from the stator 200. As shown in fig. 1, the circuit board 420 is adjacent to the bottom wall of the heat-dissipating base case 400. This can improve the heat dissipation effect to the circuit board 420. The heat dissipation base case 400 may be an aluminum base case. This can ensure the structural strength and the heat dissipation effect of the heat dissipation base case 400.
Specifically, as shown in fig. 1 to 4, a mounting hole 410 is formed in the heat dissipation base housing 400, a shielding sleeve via hole 120 is formed in the shielding sleeve 100, the shielding sleeve 100 and the heat dissipation base housing 400 are connected by a first bolt 910 passing through the shielding sleeve via hole 120 and fitting in the mounting hole 410, a bracket via hole 521 is formed in the bracket 500, and the bracket 500 and the heat dissipation base housing 400 are connected by a second bolt 920 passing through the bracket via hole 521 and fitting in the mounting hole 410. The assembly of each structure of water pump 1 of can being convenient for like this, first bolt 910 and second bolt 920 sharing mounting hole 410 can reduce the process quantity of screw hole moreover, reduce water pump 1's manufacturing procedure, improve water pump 1's production efficiency, reduce the processing cost.
More specifically, as shown in fig. 1 to 4, the bracket 500 includes a central portion 510, a plurality of first lugs 520 and a plurality of second lugs 530, the plurality of first lugs 520 are spaced apart along a circumferential direction of the central portion 510, the plurality of second lugs 530 are spaced apart along the circumferential direction of the central portion 510, bracket through holes 521 are formed on the first lugs 520, the second lugs 530 include damper segments 532 and mounting segments 533, the damper segments 532 extend obliquely downward and outward from the central portion 510, the mounting segments 533 are connected to the damper segments 532, mounting segments 533 are provided with mounting through holes 531, and the bracket 500 is adapted to be mounted on the water heater by third bolts passing through the mounting through holes 531. Therefore, the support 500 can be conveniently arranged, and the second lug 530 can be utilized to play a role in damping and buffering, so that the vibration of the water pump 1 is further reduced, and the noise of the water pump 1 is reduced.
Advantageously, as shown in fig. 1-4, the bracket 500 is machined from the same sheet material. Specifically, the bracket 500 may be cut into a flat plate, and then the second lug 530 is bent to form the shock absorbing section 532 and the mounting section 533. Therefore, the processing and the manufacturing of the bracket 500 can be facilitated, the number of parts of the water pump 1 is reduced, and the integration level of the water pump 1 is improved.
More advantageously, as shown in fig. 1-3, a shock-absorbing shield 800 is sandwiched between the bracket 500 and the heat-dissipating base housing 400. Because the bracket 500 is directly connected with the heat dissipation base shell 400 in the related art, and the shock absorption and protection sleeve 800 is arranged below the bracket 500 and between the bracket 500 and the mounting plate of the water heater, the shock absorption and protection sleeve 800 is easy to block a threaded hole on the water heater when the bracket 500 is installed with bolts, so that the bolts are blindly hit, and the assembly efficiency of the water pump 1 is affected. Through setting up shock attenuation lag 800 between support 500 and heat dissipation base shell 400, can guarantee same shock attenuation effect, can install support 500 on the water heater earlier when the assembly moreover, because shock attenuation lag 800 does not set up in support 500 below, the screw hole can not blocked by shock attenuation lag 800, can avoid the condition of bolt blind beating to take place, guarantees the installation effectiveness of third bolt, improves support 500's assembly efficiency.
Specifically, the shock-absorbing protection sleeve 800 is provided with a protection sleeve through hole 810. The second bolt 920 passes through the lag through hole 810. This may facilitate installation and positioning of the shock absorbing protective sleeve 800.
Fig. 1 to 7 show a water pump 1 according to a specific example of the present invention. As shown in fig. 1 to 7, the water pump 1 further includes a pump cover 600, and the pump cover 600 is attached to the upper end surface of the shield 100. This allows the upper surface of the shield case 100 to be covered with the pump cover 600, covering the rotor slot 101. In other words, the outer surfaces of the shield 100, the pump cover 600, and the heat dissipation base 400 together constitute the outer structure of the water pump 1.
Specifically, as shown in fig. 1-7, a pump cover through hole 610 is formed in the pump cover 600, and a first bolt 910 is fitted to the attachment hole 410 through the pump cover through hole 610 and the shield cover through hole 120 to connect the pump cover 600, the shield cover 100, and the heat dissipation base 400. This allows the pump cover 600 to be mounted and positioned using the first bolts 910.
Advantageously, as shown in fig. 4, the projection of the bracket 500 in the horizontal plane is located within the circumscribed circle of the projection of the heat-dissipating base housing 400 in the horizontal plane and within the circumscribed circle of the projection of the shield case 100 in the horizontal plane and within the circumscribed circle of the projection of the pump cover 600 in the horizontal plane. Specifically, the projection of the center portion 510 on the horizontal plane is located within the projection of the heat dissipation base case 400 on the horizontal plane, within the projection of the shield case 100 on the horizontal plane, and within the projection of the pump cover 600 on the horizontal plane. Can control support 500's size like this, make support 500's outside border profile no longer than the outside border of water pump 1 other parts, avoid support 500 to disturb the installation of water pump 1, make water pump 1 be suitable for narrower and smaller installation environment.
Fig. 4-7 show a water pump 1 according to a specific embodiment of the invention. As shown in fig. 4-7, the pump cap 600 includes a cap body 640 and a water outlet joint 630.
Specifically, the pump cover water inlet 620 is disposed at a top center position of the cover 640. Pump cover water inlet 620 and pump cover delivery port an organic whole are formed at on the pump cover, the central axis of pump cover water inlet and pump cover delivery port sets up perpendicularly.
The cover 640 is provided with a pump cover water inlet 620. The water outlet joint 630 is connected with the cover body 640, the water outlet joint 630 is provided with a connecting end connected with the cover body 640 and a free end far away from the cover body 640, the joint of the end surface of the free end and the peripheral surface is chamfered to form a bevel surface 633 at the joint of the end surface of the free end and the peripheral surface, and the minimum angle a1 between the bevel surface 633 and the axial direction of the free end is smaller than the minimum angle between the bevel surface 633 and the radial direction of the free end. Can be convenient for like this the pipeline links to each other with water connectors 630, and water connectors 630 frequently collides with the pipeline when avoiding water pump 1 vibrations, avoids water connectors 630 and pipeline to take place to damage, can reduce the noise that water connectors 630 and pipeline collision produced moreover to reduce water pump 1's noise at work.
Specifically, as shown in fig. 5, the minimum angle a1 between the bevel surface 633 and the free end axial direction is 10-25 degrees. Therefore, the water outlet joint 630 can be further prevented from colliding with the pipeline, the reliability of the water outlet joint 630 is further improved, and noise is reduced.
Advantageously, as shown in fig. 6, a water passage 631 is provided in the water outlet joint 630, and the water passage 631 at least comprises a divergent section 6311, and the inner diameter of the divergent section 6311 gradually increases from the connecting end to the free end. Therefore, the water channel 631 has better hydraulic performance, the water outlet joint 630 has better pressure resistance, and the lift performance of the water pump 1 is improved.
More specifically, as shown in FIG. 6, the water passage 631 further includes a straight section 6312, the straight section 6312 has a uniform inner diameter, and the straight section 6312 is connected to the end of the divergent section 6311 near the free end. This may facilitate connection of the water outlet joint 630 to other pipes.
More advantageously, as shown in fig. 6, the central axes of the diverging 6311 and straight 6312 coincide. Therefore, the water outlet of the water channel 631 can be further ensured to be smooth, and the pressure resistance of the water outlet joint 630 is improved.
Further, as shown in fig. 6. The axis of the water outlet channel is tangent to the circumferential surface of the cavity at the inner side of the cover body. The central axis of the divergent section 6311 and the straight section 6312 is perpendicular to the radial direction of the cap 640. Therefore, the water outlet of the water channel 631 can be further ensured to be smooth, and the pressure resistance of the water outlet joint 630 is improved.
Alternatively, as shown in fig. 6, the minimum angle a2 between the inner peripheral surface of the divergent section 6311 and the axial direction of the divergent section 6311 is 2.5 to 10 degrees. Therefore, the hydraulic performance of the water channel 631 can be further ensured, the smooth water outlet is ensured, the pressure resistance is improved, and the lift effect of the water pump 1 is improved.
Fig. 7 shows a water pump 1 according to a specific example of the present invention. As shown in fig. 7, the cover 640 includes a top wall 601 and a peripheral wall 602. A pump cap water inlet 620 is formed in the top wall 601. The peripheral wall 602 is disposed around the top wall 601 and extends downward, and the top wall 601 extends obliquely upward and inward from the peripheral wall 602. Thus, the cover 640 has better pressure resistance and the reliability of the pump cover 600 is improved.
Advantageously, as shown in fig. 7, the minimum angle a3 between the top wall 601 and the horizontal plane is 2-10 degrees. Thus, the pressure resistance of the cover 640 can be further ensured, and the reliability of the pump cover 600 can be further improved.
Fig. 4 shows a water pump 1 according to a specific example of the present invention. As shown in fig. 4, the cover 640 is provided with a circumferential rib 641 extending in the circumferential direction of the cover 640, the cover 640 is provided with a plurality of radial ribs 642 extending in the radial direction of the cover 640, and the plurality of radial ribs 642 are provided at intervals in the circumferential direction of the cover 640. Thus, the circumferential reinforcing rib 641 and the radial reinforcing rib 642 can reinforce the structural strength of the cover 640 along the stress direction of the cover 640, thereby ensuring the structural strength and reliability of the cover 640.
The number of the radial ribs 642 is the same as the number of the coils of the stator 200 or an integral multiple of the number of the coils of the stator 200.
Advantageously, as shown in fig. 4, the water outlet connector 630 is provided with an annular rib 632 extending along the circumferential direction of the water outlet connector 630. Thus, the structural strength of the water outlet joint 630 can be reinforced by the annular reinforcing rib 632, so that the structural strength and reliability of the water outlet joint 630 are ensured.
More advantageously, as shown in FIG. 4, the annular bead 632 is connected to at least one of a plurality of radial beads 642. Therefore, the radial reinforcing ribs 642 and the annular reinforcing ribs 632 are connected into a whole, so that stress is conveniently transferred, the stress of the pump cover 600 is more uniform, and the structural strength and the reliability of the pump cover 600 are further improved.
Specifically, as shown in fig. 1, the circumferential reinforcing rib 641 is vertically opposed to a stator coil of the water pump where the pump cover 600 is located. Can make circumference strengthening rib 641 rationally strengthen pump cover 600 to the position of stator coil like this, make the atress of pump cover 600 more even reasonable, guarantee the structural strength of pump cover.
Optionally, the pump cover 600 is a piece of fiberglass reinforced polyphenylene sulfide material. The structural strength and toughness of the pump cover 600 can be further ensured, thereby ensuring the reliability of the pump cover 600.
Fig. 1, 3, 8 and 9 show a water pump 1 according to a specific example of the present invention. As shown in fig. 1, 3, 8 and 9, the water pump 1 further includes an impeller 700, and the impeller 700 includes a first plate 710, a second plate 720 and blades 730. The first plate body 710 is provided with an impeller water inlet 701. The second plate 720 is connected to the rotor 300, and the second plate 720 is spaced apart from the first plate 710 to form the water gap 702. The blades 730 are disposed in the water gap 702 and are spaced apart along the circumference of the first plate 710. After water flow enters the water passing gap 702 from the impeller water inlet 701, the impeller 700 is driven by the rotor 300 to rotate, and water in the water passing gap 702 flows in a direction far away from the center of the impeller 700 through stirring of the blades 730 under the rotation of the impeller 700, so that the water flow is driven.
Specifically, as shown in fig. 1, 3 and 8, the rotor 300 includes a rotor body 310 and a rotor magnet 320. The rotor main body 310 is integrally formed with the second plate 720. The rotor magnet 320 is embedded and injection-molded with the rotor body 310, and the rotor magnet 320 is sleeved outside the rotor body 310. Specifically, the rotor body 310 is cylindrical and includes a portion located above the rotor magnet 320 and a portion extending into the rotor magnet 320, and the rotor magnet 320 is sleeved outside the rotor body 310 in a sleeve shape. Therefore, the assembly process of the water pump 1 can be further simplified, and the assembly efficiency and the integration level of the water pump 1 are improved.
More specifically, as shown in fig. 8, the ratio of the distance b between the first plate 710 and the second plate 720 to the diameter D2 of the first plate 710 is 0.02-0.15. Therefore, the structure of the impeller 700 is more reasonable, the water flow resistance of the impeller 700 is reduced, the noise and vibration when the impeller 700 rotates are reduced, and the power consumption of the water pump is reduced.
Specifically, the ratio of the distance b between the first plate 710 and the second plate 720 to the total height of the rotor body 310 and the rotor magnet 320 in the vertical direction is 0.05 to 0.15. Therefore, the structure of the impeller 700 is more reasonable, the water flow resistance of the impeller 700 is reduced, the noise and vibration when the impeller 700 rotates are reduced, and the power consumption of the water pump is reduced.
Advantageously, as shown in fig. 8, the blade 730 is integrally formed on the first plate body 710. This can simplify the assembly process of the impeller 700, reduce the number of parts of the impeller 700, and improve the production efficiency of the impeller 700.
More advantageously, as shown in fig. 8, the second plate 720 is provided with a groove in which the lower end of the vane 730 is fitted. Thus, the blade 730 can be positioned by the groove, which facilitates the stability of the blade 730 and the connection between the first plate 710 and the second plate 720.
Further, the blade 730 is coupled to the second plate body 720 by laser welding. Therefore, the connection strength between the first plate body 710 and the second plate body 720 can be ensured, the sealing performance between the lower end of the blade 730 and the second plate body 720 can be ensured, and the driving effect of the impeller 700 on water flow can be ensured.
Alternatively, as shown in fig. 8, the distance b between the first plate 710 and the second plate 720 is 1-5 mm, and the diameter D2 of the first plate 710 is 30-50 mm. Specifically, the distance b between the first plate 710 and the second plate 720 is 3 mm, and the diameter D2 of the first plate 710 is 40 mm. This allows for further rational sizing of the impeller 700.
Fig. 9 shows a water pump 1 according to a specific example of the present invention. As shown in fig. 9, the diameter D1 of the impeller water inlet 701 is 8-22 mm. Therefore, the size of the impeller water inlet 701 can be more reasonable, and the water inlet amount is ensured.
Specifically, as shown in FIG. 9, the radius R3 of an imaginary circle tangent to the inner ends of the plurality of vanes 730 is 8-12 millimeters. Therefore, the arrangement of the blades 730 is more reasonable, and the driving effect of the impeller 700 on water flow is ensured.
More specifically, as shown in FIG. 9, blade 730 is arcuate and has first and second opposing arcs 731, 732, 731 on the convex side of the arc of blade 730, 732 on the concave side of the arc of blade 730, 731 having a radius R1 of 10-36 mm and 732 having a radius R2 of 5-25 mm. Therefore, the structure of the blade 730 is more reasonable, the water flow resistance of the blade 730 is reduced, and the driving effect of the impeller 700 on water flow is ensured.
Advantageously, as shown in fig. 9, the first arc 731 is connected to the inner end surface and the outer end surface of the blade 730, respectively, the inner end of the second arc 732 is connected to the inner end surface of the blade 730, the outer end of the second arc 732 is connected to the outer end surface of the blade 730 through an inclined surface 733, the inclined surface 733 extends obliquely outward from the second arc 732 to the first arc 731, and the minimum angle c1 between the inclined surface 733 and the radial direction of the impeller 700 is 0-25 degrees. Therefore, the structure of the blade 730 is more reasonable, the water flow resistance of the blade 730 is reduced, and the driving effect of the blade 730 on water flow is further ensured.
Alternatively, as shown in fig. 9, an angle c2 between an imaginary connection line between the center of the first arc 731 of each blade 730 and the center of the first plate 710 and an imaginary connection line between the inner end of the first arc 731 of the blade 730 and the center of the first plate 710 is 40 to 95 degrees, and an angle c3 between an imaginary connection line between the center of the second arc 732 of each blade 730 and the center of the first plate 710 and an imaginary connection line between the inner end of the first arc 731 of the blade 730 and the center of the first plate 710 is 45 to 75 degrees. Therefore, the arrangement of the blades 730 is more reasonable, the water flow resistance of the blades 730 is reduced, and the driving effect of the impeller 700 on water flow is ensured.
Specifically, as shown in fig. 1 to 3, the seal rings 930 are provided between the pump cover 600 and the shield 100, between the pump cover 600 and the impeller 700, and outside the water outlet joint 630. This ensures the sealing of the water pump 1. As shown in fig. 1 and 3, spacers 940 are provided between the rotor 300 and the shield 100 and between the rotor 300 and the pump cover 600. The gasket 940 may be a ceramic gasket. Thus, smooth rotation of the rotor 300 can be ensured, frictional resistance is reduced, and the rotational stability of the rotor 300 is improved.
A water heater according to an embodiment of the present invention is described below. According to the utility model discloses the water heater includes according to the utility model discloses above-mentioned embodiment's water pump 1.
According to the utility model discloses water heater, through utilizing according to the utility model discloses above-mentioned embodiment's water pump 1 has advantages such as the noise is little, the integrated level is high.
Other constructions and operations of water heaters according to embodiments of the present invention are known to those of ordinary skill in the art and will not be described in detail herein.
In the description herein, references to the description of the term "one embodiment," "some embodiments," "an illustrative embodiment," "an example," "a specific example," or "some examples" or the like mean that a particular feature, structure, material, or characteristic described in connection with the embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the terms used above do not necessarily refer to the same embodiment or example. Furthermore, the particular features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
While embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that: various changes, modifications, substitutions and alterations can be made to the embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the claims and their equivalents.

Claims (23)

1. A water pump, comprising:
the end face of the shielding sleeve is provided with a rotor slot and a stator slot;
a stator fitted within the stator slot;
the rotating shaft is arranged in the rotor groove and is fixedly connected with the shielding sleeve;
the rotor is rotatably matched in the rotor groove and sleeved outside the rotating shaft;
the pump cover, the pump cover is installed the up end of housing, integrated into one piece has pump cover water inlet and pump cover delivery port on the pump cover.
2. The water pump of claim 1, wherein the shaft and the shield are integrally formed or injection molded.
3. The water pump of claim 1, further comprising a heat-dissipating base housing mounted to a lower end surface of the shield.
4. The water pump of claim 3, further comprising a circuit board having a heat dissipation cavity formed therein, the circuit board disposed within at least one of the stator slot and the heat dissipation cavity and electrically connected to the stator, the stator spaced apart from the circuit board to form a heat dissipation gap between the stator and the circuit board.
5. The water pump of claim 4, wherein the heat dissipation chamber is in communication with the stator slot.
6. The water pump of claim 1, further comprising a bracket mounted below the shield, the bracket adapted to be mounted on a water heater.
7. The water pump of claim 6, wherein the bracket includes a central portion, a plurality of first lugs and a plurality of second lugs, the plurality of first lugs are spaced circumferentially along the central portion, the plurality of second lugs are spaced circumferentially along the central portion, bracket through holes are formed in the first lugs, the second lugs include shock absorbing sections extending obliquely downward and outward from the central portion and mounting sections connected to the shock absorbing sections, mounting sections are provided with mounting through holes, and the bracket is adapted to be mounted on the water heater by third bolts passing through the mounting through holes.
8. The water pump of claim 6, wherein the projection of the bracket on the horizontal plane is located within a circle circumscribing the projection of the shield sleeve on the horizontal plane.
9. The water pump according to claim 7, further comprising a heat dissipation base shell, wherein the heat dissipation base shell is mounted on a lower end face of the shielding sleeve, the support is mounted below the heat dissipation base shell, the heat dissipation base shell is provided with a mounting hole, a shielding sleeve through hole is formed in the shielding sleeve, the shielding sleeve is connected with the heat dissipation base shell through a first bolt penetrating through the shielding sleeve through hole and matched in the mounting hole, and the support is connected with the heat dissipation base shell through a second bolt penetrating through the support through hole and matched in the mounting hole.
10. The water pump of claim 6, wherein a shock absorbing shield is positioned above the bracket.
11. The water pump of claim 1, wherein the pump cover includes:
the cover body is provided with a water inlet of the pump cover;
the pump cover comprises a cover body, a pump cover water outlet, a water outlet joint and a cover body, wherein the pump cover water outlet is formed in the water outlet joint, the water outlet joint is connected with the cover body and is provided with a connecting end connected with the cover body and a free end far away from the cover body, the joint of the end surface of the free end and the peripheral surface is chamfered so as to form an inclined angle surface at the joint of the end surface of the free end and the peripheral surface, and the minimum angle between the inclined angle surface and the axial direction of the free end is smaller than the minimum angle between the inclined angle surface and the radial direction of the free end.
12. The water pump of claim 11, wherein a minimum angle between the angled surface and the free end axial direction is 10-25 degrees.
13. The water pump according to claim 11, wherein the water outlet joint is provided with a water passage therein, the water passage at least comprises a divergent section, the inner diameter of the divergent section is gradually increased from the connecting end to the free end, and the minimum angle between the inner circumferential surface of the divergent section and the axial direction of the divergent section is 2.5-10 degrees.
14. The water pump of claim 11, wherein the cover comprises:
the pump cover water inlet is formed in the top wall;
the peripheral wall is arranged around the top wall and extends downwards, the top wall extends upwards and inwards in an inclined mode from the peripheral wall, and the minimum angle between the top wall and the horizontal plane is 2-10 degrees.
15. The water pump according to claim 11, wherein the cover has a circumferential rib extending circumferentially along the cover, the cover has a plurality of radial ribs extending radially along the cover, the plurality of radial ribs are spaced circumferentially along the cover, the water outlet connector has an annular rib extending circumferentially along the water outlet connector, and the annular rib is connected to at least one of the plurality of radial ribs.
16. The water pump of claim 1, further comprising an impeller, the impeller comprising:
the first plate body is provided with an impeller water inlet;
the second plate body is connected with the rotor, and the second plate body and the first plate body are spaced to form a water passing gap;
the blades are arranged in the water passing gap and are arranged along the circumferential direction of the first plate body at intervals, wherein the ratio of the distance between the first plate body and the second plate body to the diameter of the first plate body is 0.02-0.15.
17. The water pump of claim 16, wherein the distance between the first plate and the second plate is 1-5 mm, and the diameter of the first plate is 30-50 mm.
18. The water pump of claim 16, wherein the impeller inlet has a diameter of 8-22 mm and an imaginary circle tangent to the inner ends of the plurality of blades has a radius of 8-12 mm.
19. The water pump of claim 16, wherein the blade is arcuate and has first and second opposing arcuate surfaces, the first arcuate surface being located on a side of the arcuate projection of the blade, the second arcuate surface being located on a side of the arcuate depression of the blade.
20. The water pump of claim 19, wherein the first arcuate surface has a radius of 10-36 mm and the second arcuate surface has a radius of 5-25 mm.
21. The water pump of claim 19, wherein the first arc surface is connected to the inner end surface and the outer end surface of the blade, the inner end of the second arc surface is connected to the inner end surface of the blade, the outer end of the second arc surface is connected to the outer end surface of the blade through an inclined surface, the inclined surface extends from the second arc surface to the first arc surface and is inclined outward, and the minimum angle between the inclined surface and the radial direction of the impeller is 0-25 degrees.
22. The water pump of claim 19, wherein an angle formed by an imaginary line connecting a center of the first arc surface of each of the blades and a center of the first plate and an imaginary line connecting an inner end of the first arc surface of the blade and a center of the first plate is 40 to 95 degrees, and an angle formed by an imaginary line connecting a center of the second arc surface of each of the blades and a center of the first plate and an imaginary line connecting an inner end of the first arc surface of the blade and a center of the first plate is 45 to 75 degrees.
23. A water heater comprising a water pump according to any one of claims 1-22.
CN202021831839.7U 2020-08-27 2020-08-27 Water pump and water heater with same Active CN213899312U (en)

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Application Number Priority Date Filing Date Title
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Publications (1)

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2022042694A1 (en) * 2020-08-27 2022-03-03 芜湖美的厨卫电器制造有限公司 Water pump and water heater having same
WO2022042693A1 (en) * 2020-08-27 2022-03-03 芜湖美的厨卫电器制造有限公司 Impeller, water pump, and water heater
WO2022042695A1 (en) * 2020-08-27 2022-03-03 芜湖美的厨卫电器制造有限公司 Water pump, and water heater having same
WO2022042696A1 (en) * 2020-08-27 2022-03-03 芜湖美的厨卫电器制造有限公司 Pump cover, water pump, and water heater

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2022042694A1 (en) * 2020-08-27 2022-03-03 芜湖美的厨卫电器制造有限公司 Water pump and water heater having same
WO2022042693A1 (en) * 2020-08-27 2022-03-03 芜湖美的厨卫电器制造有限公司 Impeller, water pump, and water heater
WO2022042695A1 (en) * 2020-08-27 2022-03-03 芜湖美的厨卫电器制造有限公司 Water pump, and water heater having same
WO2022042696A1 (en) * 2020-08-27 2022-03-03 芜湖美的厨卫电器制造有限公司 Pump cover, water pump, and water heater

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