Stator, fan and cleaning device
The stator design with phase-specific lead slots and staggered wire arrangement addresses coil disorder and conduction issues, enhancing stator lifespan and efficiency while reducing noise and material consumption.
Patent Information
- Application Number
- JP2022560953
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-14
- Filing Date
- 2021-09-03
- Publication Date
- 2025-09-24
- Estimated Expiration
- 2041-09-03
AI Technical Summary
Existing stators in fans suffer from coil disorder, phase wire crossing, and conduction issues, leading to stator failure and reduced lifespan.
The stator design includes an annular stator outer ring with uniformly distributed teeth, insulating bobbins with phase-specific lead slot depths, and a staggered wire arrangement to prevent interlacing, along with a chain-connected stator unit structure for efficient winding and connection.
This design prevents stator conduction, enhances service life and safety, improves production efficiency, reduces noise, and increases copper utilization efficiency.
Smart Images

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Abstract
Description
[Technical Field]
[0001] (Related Applications) This application claims priority from Chinese Patent Application No. 202010963271.2, filed on September 14, 2020, the entire contents of which are incorporated herein by reference.
[0002] The present disclosure relates to the field of machine design technology, and in particular to stators, fans and cleaning devices. [Background technology]
[0003] A fan is a fluid-driven machine that increases the pressure of a gas in response to input mechanical energy and expels the gas. In China, the term "fan" is a commonly used abbreviation for a gas compressor and a gas delivery machine, and is also commonly called a ventilator, blower, or wind generator.
[0004] Fans are mainly used for ventilation in various sectors and places of the national economy, including metallurgy, petrochemical industry, electric power, urban rail transport, textiles, ships, etc. In addition to traditional application areas, fans still have great development prospects in more than 20 potential market areas, such as the comprehensive utilization of coal gangue, the technological transformation of new dry clinker, and the comprehensive utilization of energy and resources in the metallurgical industry.
[0005] A fan typically includes a stator and a rotor. However, in existing stators, the coils of each winding are disordered, and the wires of each phase are also disordered, which makes it easy for the phase wires to cross over and cause conduction, leading to stator failure, which results in the fan failing to blow air and shortening its lifespan. Summary of the Invention
[0006] (1) Purpose of the invention The objective of the present disclosure is to provide a stator and a fan, in which the depths of the first lead slots of the insulating bobbin corresponding to winding coils of the same phase are the same, and the depths of the first lead slots of the insulating bobbin corresponding to winding coils of different phases are different, and the wires of different phases are arranged in a staggered pattern up and down on the circumferential outside of the outer ring of the stator, and the wires of each phase of the stator are lined up sequentially, thereby preventing the risk of stator conduction due to interlacing and improving the service life and safety of the stator.
[0007] (2) Technical solutions According to a first aspect of the present disclosure, there is provided a stator including an annular stator outer ring, and a plurality of stator teeth connected to the circumferential inner side of the stator outer ring and uniformly distributed, the stator teeth being arranged radially around the stator outer ring; an insulating bobbin provided corresponding to each winding coil, each of the insulating bobbins being arranged axially around the stator outer ring; a first lead slot provided in the insulating bobbin, the first lead slot configured to lead one end of the winding coil out and connect it to a winding coil of the same phase around the circumferential outer side of the stator outer ring; the depths of the first lead slots of the insulating bobbin corresponding to the winding coils of the same phase are the same, and the depths of the first lead slots of the insulating bobbin corresponding to the winding coils of different phases are different.
[0008] In some embodiments, the span of the stator is one.
[0009] In some embodiments, the number of stator teeth is even.
[0010] Furthermore, the stator outer ring is surrounded by a plurality of ring-sector stator units connected in a chain, the stator teeth are connected to each of the stator units, and each of the insulating bobbins is provided on each of the stator units.
[0011] Furthermore, the stator outer ring is formed by forming the winding coil when winding the stator teeth, drawing out one end of the winding coil using the insulating bobbin, extending it around the circumferential outside of the stator outer ring, and connecting it to a winding coil of the same phase, and then connecting the leading stator unit and the last stator unit, and welding the connecting wires of all adjacent stator units.
[0012] Furthermore, one end of the stator tooth away from the stator outer ring is recessed to form an arc-shaped structure, a circle surrounded by the arc-shaped structure of the stator tooth is configured to accommodate a rotor having two poles, and the number of the stator teeth is six;
[0013] The stator has three phases.
[0014] Furthermore, the stator outer ring includes a first winding coil, a second winding coil, a third winding coil, a fourth winding coil, a fifth winding coil, and a sixth winding coil arranged in sequence along the circumferential direction of the stator outer ring, wherein a first end of the first winding coil is connected to one end of the fourth winding coil to form a first phase of the stator, a first end of the second winding coil is connected to one end of the fifth winding coil to form a second phase of the stator, and a first end of the third winding coil is connected to one end of the sixth winding coil to form a third phase of the stator, and the included angle between the winding coils of the same phase is 180°.
[0015] Furthermore, the wire clamping portion is disposed on one side of a sixth insulating bobbin corresponding to the sixth winding coil, away from the stator teeth, and the sixth insulating bobbin includes a second lead slot configured to lead out the wire lead-out ends of each phase to the wire clamping portion.
[0016] Furthermore, third lead slots are provided in the insulating bobbins corresponding to the first winding coil, the third winding coil, and the fifth winding coil, respectively, and the third lead slots are configured to lead out wire lead ends of each phase, and the wire lead ends of each phase are connected to a circuit board via leads.
[0017] Furthermore, the six winding coils are connected in a "Y" or delta configuration to form the three phases of the stator.
[0018] Furthermore, the number of branches of the winding coils of the same phase is one.
[0019] Furthermore, the number of parallel-connected branches of the winding coils of the same phase is two.
[0020] Furthermore, the yoke of the stator is provided with a semicircular hole for positioning an axial diffuser of a fan, the semicircular hole being provided on the centerline of the stator tooth.
[0021] Furthermore, a connection post adapted to a connection hole of the axial diffuser is provided on one surface of the stator outer ring adjacent to the axial diffuser, and the connection post is configured to assemble the axial diffuser.
[0022] According to another aspect of the present disclosure, there is provided a fan including a rotor and a stator provided by the above embodiment, wherein the rotor is a permanent magnet having two poles.
[0023] Furthermore, the fan further includes a circuit board, and the wire lead-out ends of the stator for each phase are connected to the circuit board via leads.
[0024] The fan further includes an axial diffuser fixedly connected to the stator, the axial diffuser including an outer cylinder, a main body provided within the outer cylinder, and diffuser blades for connecting the outer cylinder and the main body, the diffuser blades dividing the annular space between the outer cylinder and the main body into a plurality of diffused air passages, the main body of the fan including a central axial hole and an air hood fixedly connected to the axial diffuser, an impeller chamber and an annular gridless passage surrounding the impeller chamber are formed between the air hood and the axial diffuser, the annular gridless passage connects the impeller chamber and the diffused air passage, the air hood has an air inlet, the fan includes an impeller provided in the impeller chamber, the impeller introduces air from the air inlet, drives the air through the annular gridless passage into the diffused air passage under the drive of the impeller, and causes the air to flow out from the other end of the diffused air passage.
[0025] According to a third aspect of the present disclosure, there is provided a cleaning device including the fan provided by the second aspect.
[0026] (3) Beneficial Effects The above technical solutions of the present disclosure have the following beneficial technical effects:
[0027] In the stator provided by the embodiments of the present disclosure, the depths of the first lead slots of the insulating bobbin corresponding to the winding coils of the same phase are the same, and the depths of the first lead slots of the insulating bobbin corresponding to the winding coils of different phases are different, and the wires of different phases are arranged in a staggered pattern up and down on the circumferential outer side of the stator outer ring, and the wires of each phase of the stator are lined up sequentially, which prevents the risk of stator conduction due to interlacing and improves the service life and safety of the stator. [Brief explanation of the drawings]
[0028] [Figure 1a] 1 is a structural schematic diagram of a stator according to an embodiment of the present disclosure; [Figure 1b] Side view of the stator shown in Figure 1a [Figure 1c] A perspective view of the stator shown in Figure 1b [Figure 2a] 1 is a structural schematic diagram of a stator unit connected in a chain according to an embodiment of the present disclosure; [Figure 2b] FIG. 1 is a partial schematic diagram of a chain of stator units according to one embodiment of the present disclosure; [Figure 2c] 1 is a schematic diagram of a stator circumferentially formed by multiple stator units according to one embodiment of the present disclosure; [Figure 3] 1 is a circuit schematic diagram of a three-phase stator provided by one embodiment of the present disclosure; [Figure 4] 1 is a circuit schematic diagram of a three-phase stator provided by one embodiment of the present disclosure; [Figure 5] 1 is a structural exploded schematic view of a fan provided in accordance with an embodiment of the present disclosure; [Figure 6] 1 is a schematic diagram showing a cross-sectional structure of a fan according to an embodiment of the present application; [Figure 7] Enlarged view of part A in Figure 6 [Figure 8] Enlarged view of part B in Figure 6 [Figure 9] 1 is a schematic end view of an impeller and diffuser assembly in a fan according to one embodiment of the present disclosure; [Figure 10] FIG. 10 is a schematic diagram showing a cross-sectional structure of a fan according to another embodiment of the present disclosure. [Explanation of symbols]
[0029] 1 stator 11 Stator outer ring 111 Stator unit 1111 Insulation bobbin 112 Semicircular hole 113 Connecting Post 12 stator teeth 121 Arc-shaped structure 13 Winding coil 13A lead 13B Wiring end of winding coil 131 First Coil 132 Second coil 133 Third Coil 134 4th coil 135 5th coil 136 6th coil 14. Stata Slot 141 Stator Slot Entrance 15 Wire clamp part 16 Jumper 2 rotors 3 Axial diffuser 31 Outer cylinder 32 Main body 33 Diffuser blades 34 Diffusion air passage 35 central shaft hole 36 Positioning pillar 37 Connection hole 4. Air Food 41 Air inlet 42 Second annular protrusion 5 impeller 6 Bearings 7 Circuit Board 8 Circular Gridless Passage 9 Impeller chamber 10 Motor shaft DETAILED DESCRIPTION OF THE INVENTION
[0030] In order to make the objectives, technical solutions and advantages of the present disclosure clearer, the present disclosure will be described in more detail below with reference to the drawings in conjunction with specific embodiments. It can be understood that these descriptions are illustrative and are not intended to limit the scope of the present disclosure. In addition, in the following description, descriptions related to general structures and techniques will be omitted so as not to unnecessarily obscure the concept of the present disclosure.
[0031] The drawings show schematic diagrams of layer structures according to embodiments of the present disclosure. These drawings are not drawn to scale, and some details may be exaggerated and some details may be omitted for clarity. The shapes of various regions and layers shown in the drawings, as well as their relative sizes and positional relationships, are merely exemplary and may actually differ due to manufacturing tolerances or technical limitations. Those skilled in the art can additionally design regions / layers with different shapes, sizes, and relative positions as needed.
[0032] Apparently, the described embodiments are only some of the embodiments of the present disclosure, but not all of the embodiments, and other embodiments that can be obtained by a person skilled in the art based on the embodiments of the present disclosure without any creative work should all fall within the scope of protection of the present disclosure.
[0033] It should be noted that in describing this disclosure, the terms "first," "second," and "third" are used for descriptive purposes only and are not to be construed as indicating or implying relative importance.
[0034] Furthermore, technical features related to different embodiments of the present disclosure described below can be combined with each other as long as they do not conflict.
[0035] Figure 1a is a structural schematic diagram of a stator according to one embodiment of the present disclosure, Figure 1b is a side view of the stator shown in Figure 1a, and Figure 1c is a perspective view of the stator shown in Figure 1b.
[0036] As shown in FIGS. 1a to 1c, the stator 1 includes an annular stator outer ring 11, stator teeth 12, and a winding coil 13 fitted around the stator teeth 12. As shown in FIGS.
[0037] Among them, a plurality of stator teeth uniformly distributed on the inner circumferential surface of the stator outer ring 11 are connected.
[0038] The stator teeth 12 are arranged along the radial direction of the stator outer ring 11, and a winding coil is fitted around the outside of each of the stator teeth.
[0039] An insulating bobbin 1111 is provided corresponding to each winding coil 13 , and each insulating bobbin 1111 is provided in the axial direction of the stator outer ring 11 .
[0040] The insulating bobbin 1111 is provided with a first lead slot, which is configured to pull out one end of the winding coil and connect it to a winding coil of the same phase around the circumferential outside of the stator outer ring 11.
[0041] The depths of the first lead slots of the insulating bobbins 1111 corresponding to the winding coils of the same phase are the same, and the depths of the first lead slots of the insulating bobbins 1111 corresponding to the winding coils of different phases are different, and the wires of different phases are arranged in a staggered pattern up and down on the circumferential outer side of the stator outer ring 11. In this way, the wires of each phase of the stator are lined up sequentially, preventing the risk of stator conduction due to interlacing and improving the service life and safety of the stator.
[0042] The winding coils 13 are fitted onto the outsides of the stator teeth 12 in a one-to-one relationship. In other words, in the present disclosure, the span of the winding coil is 1, and by making the span of the winding coil 13 1, it is possible to improve production efficiency, connect the coil to one tooth, simultaneously improve the rigidity of the coil and the iron core, and reduce noise.
[0043] As can be seen, in the prior art, when assembling a stator for a coil with a span greater than 1, the winding coil is first prepared according to a predetermined number of turns, and then the winding coil is fitted into a stator slot without being directly fitted into a stator tooth. For example, for a coil with a span of 2, the two ends of the coil straddle two stator slots. A typical motor rotor is a two-pole magnet located inside a stator outer ring. The rotor has a cylindrical structure, with the south and north poles having a semi-cylindrical shape. This disclosure has found through research that the magnetic field direction of the rotor of such a motor is the circumferential direction of the stator outer ring. That is, the winding coils in the axial direction of the stator outer ring are active, and the winding coils perpendicular to the axial direction of the stator outer ring are inactive. Therefore, for a coil with a span greater than 1, the length of the winding coil perpendicular to the axial direction is relatively long, spanning many stator slots. This results in a relatively long inactive copper wire, which can result in copper wire waste, high resistance, high copper loss, and relatively low efficiency.
[0044] After extensive research, the present disclosure has determined a winding coil with a span of 1. Although the winding factor is low (i.e., such a coil has a small output torque for the same current), a span of 1, i.e., one winding coil is wound around only one stator tooth, so the inactive copper wire in the winding coil is short, copper loss in the copper wire is small, and efficiency is high. Coils with a span greater than 1 have a high winding factor, but because they must span multiple stator teeth and stator slots, the inactive copper wire is long, which increases resistance and copper loss, resulting in little difference in stator rotation efficiency compared to the coil with a span of 1 disclosed herein. However, because the coil has a span of 1 disclosed herein, fewer connecting wires are used, less copper is consumed, and the stator teeth can be connected, increasing the rigidity of the stator teeth, thereby improving both the production efficiency and utilization efficiency of the stator.
[0045] In one embodiment, the stator has an even number of stator teeth.
[0046] In this embodiment, an even number of stator teeth are connected to the outer ring of the stator and are uniformly distributed, and the number of stator slots in the present disclosure is also an even number, similar to the number of stator teeth; in other words, the number of stator slots in the present disclosure is also an even number, which can reduce biased radial magnetic attraction force, electromagnetic vibration, and motor noise during use that occur when the stator rotates.
[0047] FIG. 2a is a structural schematic diagram of a chain-connected stator unit according to one embodiment of the present disclosure.
[0048] As shown in FIG. 2a, the outer ring of the stator is surrounded by a plurality of ring-sector stator units 111 connected by a chain, each of the stator units 111 is connected to a stator tooth, and each of the insulating bobbins 1111 is provided on each of the stator units 111.
[0049] In this embodiment, the stator unit is made of high-frequency silicon steel, and the stator outer ring is surrounded by multiple ring-sector stator units connected by a chain. Therefore, when processing the stator outer ring, two chain-like stator outer rings are intersected, i.e., the stator teeth of the second stator outer ring are arranged between two stator teeth of the first stator outer ring. This allows two stator outer rings to be produced in a single stamping operation. Since the two stator outer rings are arranged in a staggered pattern, the consumption of silicon steel sheet is significantly reduced compared to producing one stator outer ring in a single stamping operation. Furthermore, since the stator outer rings are connected in a chain, windings can be directly wound on each stator tooth, and all stator teeth can be wound simultaneously, improving production efficiency. This eliminates the need for an installation process of fitting coils into stator slots, thereby improving stator production efficiency. The stator outer ring provided by the embodiment of the present disclosure can also tightly wind the coils around the stator teeth in order, improve the rigidity of the stator teeth, protect the stator teeth, and also reduce the number of closely packed coils.
[0050] Furthermore, it is worth noting that the prior art only provides a means of fitting the winding coil into the stator slot, then fixing the position of the winding in the stator slot, and providing more windings to increase the copper slot fill factor of the stator slot. Compared to embedding the coil in the stator slot, the present disclosure has the advantage of winding directly on the stator teeth to obtain tightly packed windings, requiring less copper wire while achieving the same copper slot fill factor.
[0051] Figure 2b is a partial schematic view of stator units connected in a chain according to one embodiment of the present disclosure, and Figure 2c is a schematic view of a stator surrounded by multiple stator units according to one embodiment of the present disclosure.
[0052] As shown in Figures 2b and 2c, in this embodiment, the stator outer ring 11 is formed by forming the winding coil 13 when winding the stator teeth 12, and then using the insulating bobbin 1111 to pull out one end of the winding coil and extend it around the circumferential outside of the stator outer ring 11 to connect it to the winding coil of the same phase, and then connecting the first stator unit and the last stator unit and welding the connecting wires of all adjacent stator units.
[0053] In some embodiments, the connecting wires of adjacent stator units are welded together.
[0054] In this embodiment, when the stator outer ring has a chain structure, the connection between the stator tooth windings and the in-phase wires is first completed, and then the stator units connected by the chain are welded together. The lead wires at one end of the chain-like first stator unit and fourth stator unit are linearly connected along the length of the stator unit chain. After the stator outer ring is formed, the first stator unit and the fourth stator unit are arranged circumferentially outside the stator outer ring along the arc of the stator outer ring, and the in-phase connecting wires are fastened to prevent loosening, thereby reducing stator noise.
[0055] In other words, in Figures 2b and 2c, point A is one end of the insulating bobbin 1111 of the previous stator unit, point B is one end of the insulating bobbin of the next stator unit near point A, and point C is the welding point.
[0056] Before the stator outer ring is surrounded, the connecting wire runs directly from point A to point B. After the stator outer ring is surrounded by the stator unit, the connecting wire from point A to point B fits tightly in an arc around the outer periphery of the stator, preventing the connecting wire from loosening.
[0057] In some embodiments, one end of the stator tooth of the present disclosure, away from the stator outer ring, is recessed to form an arc-shaped structure 121. The arc-shaped structures of two adjacent stator teeth are not connected, and the two adjacent stator teeth and the stator outer ring form a stator slot 14, and the arc-shaped structures 121 of the two adjacent stator teeth maintain a predetermined distance in the circumferential direction, and the space between the two arc-shaped structures in the circumferential direction is the slot opening 141 of the stator slot.
[0058] In one embodiment, the circle enclosed by the arcuate 121 configuration of the stator teeth is configured to accommodate a rotor 2 having two poles.
[0059] Among them, the number of stator teeth is six, and the number of stator slots is also six.
[0060] The number of phases of the stator is three, that is, each phase is provided with two winding coils, and the number of parallel branches of these two winding coils is one or two, that is, these two winding coils may be connected in series or in parallel.
[0061] In some embodiments, when the number of stator teeth is six and the number of stator phases is three, the two coils of the same phase form an angle of 180°.
[0062] In one embodiment, the stator further includes a jumper 16. Both ends of two winding coils of the same phase can be drawn out through the first lead slot of the insulating bobbin 1111 and then connected to the two wire drawing ends of the winding coils respectively via the jumper 16, and these two coils form one phase line.
[0063] In some embodiments, the insulating bobbin 1111 may be integrally formed with the stator unit 111, may be removably arranged on the stator unit 111 (the stator unit shown in FIG. 2 omits the insulating bobbin 1111), or may be glued to the stator unit 111 or fixed to the stator unit by fasteners such as screws or nails, for example.
[0064] In one embodiment, the insulating bobbin 1111 includes a base and three protrusions provided on the base, the three protrusions having the same height and spaced apart linearly to form a first lead slot and a second lead slot, and the first lead slot is configured to lead out one end of the winding coil and connect it to a winding coil of the same phase around the circumferential outside of the stator outer ring 11.
[0065] In another embodiment, the insulating bobbin 1111 can be a rectangular shaped part with two lead slots etched along its length.
[0066] In some embodiments, the slot depths of the two lead slots may be the same or different, and the widths of the two lead slots may be the same or different.
[0067] In one embodiment, the three phase wire leads are connected to the fan circuit board via lead 13A.
[0068] In one embodiment, the stator outer ring 11 includes a first winding coil, a second winding coil, a third winding coil, a fourth winding coil, a fifth winding coil, and a sixth winding coil arranged in sequence along the circumferential direction thereof, a first end of the first winding coil being connected to one end of the fourth winding coil to form a first phase of the stator, a first end of the second winding coil being connected to one end of the fifth winding coil to form a second phase of the stator, and a first end of the third winding coil being connected to one end of the sixth winding coil to form a third phase of the stator, and two of the winding coils of the same phase form an angle of 180°.
[0069] In one embodiment, the stator further includes a wire clamping portion. The wire clamping portion is disposed on a side of a sixth insulating bobbin corresponding to the sixth winding coil, away from the stator teeth 12, and the sixth insulating bobbin includes a second lead slot configured to lead the wire lead-out ends of each phase to the wire clamping portion. Furthermore, the wire clamping portion may have a U-shaped slot structure.
[0070] In some embodiments, the depth of the first lead slot corresponding to the first phase is greater than the depth of the lead slot corresponding to the second phase, and the depth of the first lead slot corresponding to the second phase is greater than the depth of the first lead slot corresponding to the third phase.
[0071] In some embodiments, the six winding coils are wired in a "Y" or delta configuration.
[0072] 1a to 1c, the six winding coils are wired in a Y-connection, and every two coils are connected in series by a lead 16 to form a phase line, with one end of this phase line being one end of one coil and the other end of the phase line being one end of the other coil. One end of each of the three phase lines is then connected by a wire clamp 15 to form a wiring end, and the other end of each phase line serves as a wire lead-out end for the phase line. In the example shown in FIGS. 1a to 1c, the other ends of the first, third, and fifth winding coils serve as wire lead-out ends for three phases, further providing three phases for the stator. The wire lead-out ends of each phase line can be connected to the fan's circuit board via a lead 13A.
[0073] In some embodiments, third lead slots are provided in the insulating bobbins corresponding to the first winding coil, the third winding coil, and the fifth winding coil, respectively, and the third lead slots are configured to lead out wire leads of each phase, and the wire leads of each phase are connected to a circuit board of the fan via lead 13A.
[0074] In some embodiments, the wire ends are placed on the exterior of the insulating bobbin 1111 on the side away from the wound coil.
[0075] In one embodiment, the six winding coils are wired in a delta configuration.
[0076] In some embodiments, both ends of the six winding coils are drawn out by an insulating bobbin 1111, and then the coils of the same phase are connected to obtain three phase wires, and the six ends of the three phase wires are connected in sequence to obtain three wire draw ends for three phases, that is, the tail end of the first phase wire is connected to the head end of the second phase wire, and the connected end point is one wire draw end for the three phases, the tail end of the second phase wire is connected to the head end of the third phase wire, and the connected end point is another wire draw end for the three phases, and the tail end of the third phase wire is connected to the head end of the first phase wire, and the connected end point is the last wire draw end for the three phases.
[0077] In some embodiments, the six ends of the three phase wires may be connected by jumpers 16 .
[0078] FIG. 3 is a circuit diagram of a three-phase stator provided according to one embodiment of the present disclosure.
[0079] As shown in FIG. 3, in this embodiment, the number of parallel-connected branches of the winding coils of the same phase is 1, that is, the tail end of one winding coil of the same phase is connected to the head end of another winding coil of the same phase to form one branch, that is, the winding coils of the same phase are connected in series.
[0080] In the embodiment shown in FIG. 3, the six stator coils include a first coil 131, a second coil 132, a third coil 133, a fourth coil 134, a fifth coil 135, and a sixth coil 136, which are arranged in a clockwise or counterclockwise direction along the circumferential direction of the stator outer ring.
[0081] Among them, the first coil and the fourth coil are U-phase, the second coil and the fifth coil are V-phase, and the third coil and the sixth coil are W-phase. The angle between two coils of the same phase is 180°, and the two coils of the same phase are connected in series with a gap between them to form a branch.
[0082] FIG. 4 is a circuit diagram of a three-phase stator provided according to one embodiment of the present disclosure.
[0083] As shown in Figure 4, the number of parallel-connected branches of the winding coils of the same phase is two, that is, the head end of one winding coil of the same phase is connected to the head end of the other winding coil of the same phase, and the tail end of one winding coil of the same phase is connected to the tail end of the other winding coil of the same phase to form two branches, that is, the winding coils of the same phase are connected in parallel.
[0084] 4, the six stator coils include a first coil, a second coil, a third coil, a fourth coil, a fifth coil, and a sixth coil, each arranged in a clockwise or counterclockwise direction along the circumferential direction of the stator outer ring 11. Among them, the first coil and the fourth coil are U-phase, the second coil and the fifth coil are V-phase, and the third coil and the sixth coil are W-phase, and two coils of the same phase are connected in parallel with a gap between them to form two branches.
[0085] In one embodiment, the stator yoke is provided with a semicircular hole 112 for locating the fan axial diffuser, the center of the semicircular hole 112 being aligned with the centerline of the stator tooth.
[0086] FIG. 5 is a structural exploded schematic diagram of a fan provided according to one embodiment of the present disclosure.
[0087] As shown in FIG. 5, this fan includes a stator 1 provided according to the above embodiment and a rotor 2 which is a permanent magnet having two poles.
[0088] In one embodiment, the fan further includes a circuit board 7. The wire lead-out ends of each phase of the stator are connected to the circuit board via leads 13A.
[0089] In another embodiment, after the stator coils are wired in a "Y" or delta connection, one wire lead end for each phase is connected to the circuit board 7 and connected to a power supply through the circuit board 7. For example, one wire lead end for each phase can be connected to the circuit board 7 via lead 13A.
[0090] 5 to 10, the fan further includes an axial diffuser 3, an air hood 4 and an impeller 5.
[0091] The axial diffuser 3 is fixedly connected to the stator 1, and includes an outer cylinder 31, a main body 32 disposed within the outer cylinder 31, and diffuser blades 33 connecting the outer cylinder 31 and the main body 32. The diffuser blades 33 divide the annular space between the outer cylinder 31 and the main body 32 into a plurality of diffusion air passages 34, and the main body 32 has a central axial hole 35.
[0092] an air hood (4) fixedly connected to the axial diffuser (3); an impeller chamber (9) and an annular gridless passage (8) surrounding the impeller chamber (9) are formed between the air hood (4) and the axial diffuser (3); the annular gridless passage (8) communicates the impeller chamber (9) with the diffusion air passage; the air hood (4) has an air inlet;
[0093] An impeller 5 is disposed within the impeller chamber 9, and the impeller 5 is configured to introduce air from the air inlet 41, drive the air through the annular gridless passage 8 into the diffusion air passage under the driving force of the impeller 5, and cause the air to flow out from the other end of the diffusion air passage.
[0094] The fan provided by the embodiment of the present disclosure employs an axial diffuser 3 instead of a radial diffuser. The turbulent airflow from the impeller 5 passes through the annular gridless passage 8 and directly enters the axial diffuser 3. After being guided by the diffuser blades 33 of the axial diffuser 3, the flow becomes stable and the generation of vortices within the flow path can be suppressed. By omitting the radial diffuser, wind resistance and energy loss can be effectively reduced, improving the working efficiency of the fan. Increasing the "dynamic-static gap" can weaken the "dynamic-static interference" effect occurring during fan operation, thereby reducing fan noise.
[0095] The radial diffuser is generally provided at the position of the annular gridless passage 8 of the present disclosure to form a radial air passage. In most cases, the radial diffuser is very close to the blades, and immediately after the air leaves the impeller 5, it collides with the leading edges of the radial diffuser blades 33, resulting in strong "dynamic-static interference." As evidenced by numerous documents, the "dynamic-static interference" generated by the blades of the rotor 2 and stator 1 is a major factor in fan noise. The fan of the present disclosure employs an axial diffuser 3 instead of a radial diffuser, which increases the "dynamic-static gap" and provides a very effective means of reducing fan noise.
[0096] By omitting the radial diffuser, the fan diameter can be reduced accordingly, which solves the problems of shortened bearing life and increased fan noise caused by the increased power required to increase the fan diameter.
[0097] In some embodiments, the outer diameter of the body 32 of the axial diffuser 3 is equal to the outer diameter of the stator 1 so that air from the diffusion air passage 34 flows outside the stator 1. In embodiments of the present disclosure, the outer diameter of the body 32 of the axial diffuser 3 is equal to the outer diameter of the stator 1 so that the fluid flows smoothly from the axial diffuser 3 around the outer ring of the stator 1 and out. Flowing outside the stator 1 reduces wind resistance and improves fluid efficiency.
[0098] In the embodiment of the present disclosure, the outer diameter of the main body 32 of the axial diffuser 3 is equal to the outer diameter of the stator 1, but they are not absolutely equal and allow for a certain error. For example, the error between the two may be 1%, 3%, 5%, 7%, 10%, etc.
[0099] In some embodiments, one of the axial diffuser 3 and the stator 1 includes a plurality of positioning posts 36, and the other of the axial diffuser 3 and the stator 1 includes a plurality of semicircular holes 112 that fit the positioning posts 36. By correspondingly arranging the positioning posts 36 and the semicircular holes 112 on the axial diffuser 3 and the stator 1, respectively, it is easy to connect and fix the axial diffuser 3 and the stator 1 together.
[0100] The positioning posts 36 are provided on one of the axial diffuser 3 and the stator 1, and the semicircular holes 112 are provided on the other. For example, the positioning posts 36 are provided on the axial diffuser 3, and the semicircular holes 112 are provided on the stator 1.
[0101] In some embodiments, the positioning posts 36 extend along the axial direction of the axial diffuser 3. In an exemplary embodiment, some of the diffuser vanes 33 of the axial diffuser 3 extend along the axial direction of the axial diffuser 3 to form the positioning posts 36, and the stator 1 includes semicircular holes 112. The number of positioning posts 36 is different from the number of diffuser vanes 33. Generally, the number of positioning posts 36 is less than the number of diffuser vanes 33. Therefore, when the positioning posts 36 are provided on the axial diffuser 3, some of the diffuser vanes 33 may extend along the axial direction to form the positioning posts 36. For example, three of the twelve diffuser vanes 33 extend along the axial direction to form the positioning posts 36. In an embodiment of the present disclosure, the diffuser vanes 33 extend along the axial direction of the axial diffuser 3 to form the positioning posts 36. This allows the positioning posts 36 to have sufficient strength, not affect the structure of the axial diffuser 3, and also reduces material consumption. It is not necessary to increase the thickness of the positioning posts 36 to increase the strength of the positioning posts 36.
[0102] In an exemplary embodiment, the entire end of the diffuser vane 33 extends along the axial direction of the axial diffuser 3 to form the positioning post 36. A portion of the end of the diffuser vane 33 may extend along the axial direction of the axial diffuser 3 to form the positioning post 36. When a portion of the end of the diffuser vane 33 extends along the axial direction of the axial diffuser 3 to form the positioning post 36, for example, a side of the diffuser vane 33 closer to the main body 32 may extend along the axial direction of the axial diffuser 3 to form the positioning post 36.
[0103] In some embodiments, the positioning posts 36 may be formed on the body portion 32. In an exemplary embodiment, the positioning posts 36 may be positioned on the body portion 32 at locations corresponding to the diffuser vanes 33.
[0104] In some embodiments, one positioning post may be partially formed in the body portion 32 and another portion may be formed by an extension of the diffuser vanes 33 .
[0105] In the embodiments of the present disclosure, the semicircular hole 112 may be a hole slot or an open slot. In some embodiments, the outer peripheral surface of the stator 1 is recessed to form the semicircular hole 112. The semicircular hole 112 formed by recessing the outer peripheral surface of the semicircular hole 112 is an open slot, which not only ensures stable positioning but also ensures strength and saves material. The wall surface of the semicircular hole 112 is cylindrical, and the positioning post 36 has a cylindrical surface that matches the wall surface of the semicircular hole 112. The matching surfaces corresponding to the wall surface of the semicircular hole 112 and the positioning post 36 are cylindrical, which ensures the stability of the connection between the two.
[0106] In some embodiments, the positioning post 36 is a semi-cylindrical body. One side of the positioning post 36 has a cylindrical surface that fits into the wall of the semi-circular hole 112, and the other side fits into the peripheral surface of the stator 1.
[0107] In the embodiments of the present disclosure, the semicircular holes 112 may be disposed at any position on the circumferential surface of the stator 1. In some embodiments, the semicircular holes 112 are located on the outer circumferential surface corresponding to the center lines of the teeth of the stator 1. The semicircular holes 112 are provided on the outer circumferential surface facing the teeth of the stator 1. This portion is configured so that there is sufficient space for the semicircular holes 112, and strength is ensured without increasing dimensions such as the thickness of the portion of the semicircular holes 112, and material consumption is reduced.
[0108] In the embodiments of the present disclosure, the number of semicircular holes 112 and positioning posts 36 is not limited and may be, for example, two, three, four, etc. In some embodiments, there are three semicircular holes 112 and three positioning posts 36, and the semicircular holes 112 and the positioning posts 36 are uniformly distributed around the circumference. Having three semicircular holes 112 and three positioning posts 36 ensures the positioning and connection between the axial diffuser 3 and the stator 1. Multiple semicircular holes 112 are distributed around one circumference. Multiple positioning posts 36 are also uniformly distributed around one circumference. The diameters of the two circumferences are equal. Since the semicircular holes 112 and the positioning posts 36 are uniformly distributed around the circumference, the connection between the axial diffuser 3 and the stator 1 does not need to be limited to a specific orientation. Any one of the positioning posts 36 can be fitted to any one of the semicircular holes 112.
[0109] In the embodiment of the present disclosure, there is no limitation on the method of fixing the axial diffuser 3 and the stator 1. For example, the axial diffuser 3 and the stator 1 may be bonded, connected by interference fitting, or connected by screws, etc.
[0110] In some embodiments, the axial diffuser 3 includes one or more connection posts 113, and the stator 1 includes one or more connection holes 37 that fit the connection posts 113. Alternatively, the axial diffuser 3 may include one or more connection holes, and the stator 1 may be provided with one or more connection posts that fit the connection holes. This disclosure will explain the case where the stator is provided with the connection posts 113 as an example. In this case, the axial diffuser 3 and the stator 1 are connected to the connection holes 37 via the connection posts 113. For example, the connection posts 113 and the hole walls of the connection holes 37 are fixedly connected by an adhesive. In this way, adhesive can be applied at specific positions to avoid defects such as adhesive overflow. Alternatively, the connection posts 113 and the connection holes 37 may be fixedly connected by an interference fit.
[0111] In an exemplary embodiment, the axial diffuser 3 includes a plurality of connecting holes 37, and the stator 1 includes a plurality of connecting posts 113 that fit into the connecting holes 37. For example, the plurality of connecting holes 37 may be provided in the body portion 32.
[0112] The fan of the embodiment of the present disclosure includes not only the connection holes 37 corresponding to the connection posts 113 but also the semicircular holes 112 corresponding to the positioning posts 36 .
[0113] In some embodiments, the circle in which the connection hole 37 corresponding to the connection post 113 is located is collinear with the central axis of the circle in which the semicircular hole 112 corresponding to the positioning post 36 is located. In an exemplary embodiment, the radius of the circle in which the connection hole 37 corresponding to the connection post 113 is located may be smaller than the radius of the circle in which the semicircular hole 112 corresponding to the positioning post 36 is located.
[0114] In some embodiments, the length of the connecting post 113 is less than the length of the positioning post 36. During assembly, the axial diffuser 3 and the stator 1 are positioned by the fit between the positioning post 36 and the semicircular hole 112, and the connecting post 113 can be aligned with the connecting hole 37 to facilitate assembly.
[0115] In some embodiments, the end face of the outer cylinder 31 closest to the air hood 4 has a first annular protrusion 38, which forms a first step surface with the end face of the outer cylinder 31, one side of the outer wall surface of the outer cylinder 31 extends axially to form an annular protrusion, and the air hood 4 has a second annular protrusion 42, which forms a second step surface at the connecting end face between the air hood 4 and the outer cylinder 31, and the second step surface matches the first step surface. The provision of a step surface at the connecting portion between the outer cylinder 31 and the air hood 4 makes the inner wall surface at the connecting portion between the air hood 4 and the outer cylinder 31 smoother and reduces interference with the fluid.
[0116] In some embodiments, the impeller 5 has an odd number of blades. For example, the impeller 5 may have 3, 5, 7, 9, 11, etc. The odd number of blades in the impeller 5 can reduce asymmetric injection residual stress and resonance.
[0117] In some embodiments, the number of impeller 5 blades and the number of diffuser blades 33 are not multiples of each other. The number of diffuser blades 33 is selected to be non-divisible by the number of impeller 5 blades, which can reduce air noise. For example, the number of impeller 5 blades is 7 and the number of diffuser blades 33 is 12.
[0118] In some embodiments, the number of diffuser vanes 33 is a multiple of three. The reason for the number of diffuser vanes 33 being a multiple of three is to facilitate the installation of the positioning posts 36. When there are three positioning posts 36, the positioning of the axial diffuser 3 and the stator 1 can be ensured. The positioning posts 36 are uniformly distributed around the circumference and are assembled to the stator 1 by the axial diffuser 3. When the positioning posts 36 are formed by extending the diffuser vanes 33, the number of diffuser vanes 33 being a multiple of three can ensure the uniform distribution of the positioning posts 36. The number of diffuser vanes 33 can be, for example, 9, 12, 15, etc. Of course, in the embodiments of the present disclosure, the number of diffuser vanes 33 may be a number other than a multiple of three.
[0119] In some embodiments, the number of blades of the impeller 5 is less than the number of the diffuser blades 33. The number of blades of the impeller 5 satisfies the suction efficiency, while the number of the diffuser blades 33 satisfies the rectification efficiency.
[0120] In some embodiments, the diffuser vanes 33 may be angled, i.e., the diffuser vanes 33 are not parallel to the axis of the axial diffuser 3. The axis of the diffusion air passage 34 is also not parallel to the axis of the axial diffuser 3. In an exemplary embodiment, the axis of the diffusion air passage 34 may form an angle of 10° to 45° with the axis of the axial diffuser 3.
[0121] In the embodiment of the present disclosure, the axial diffuser 3 is assembled to the motor shaft 10 by means of bearings 6. The impeller 5 is fixed to the motor.
[0122] The fan of the embodiment of the present disclosure further includes a rotor 2 and a circuit board 7. The rotor 2 is fixed to a motor shaft 10. The circuit board 7 is connected to the stator 1.
[0123] An embodiment of the present disclosure provides a cleaning device including the fan of any of the above embodiments.
[0124] The fan in the cleaning device provided by the embodiment of the present disclosure employs an axial diffuser 3 instead of a radial diffuser. The turbulent airflow from the impeller 5 passes through the annular gridless passage 8 and directly enters the axial diffuser 3. After being guided by the diffuser blades 33 of the axial diffuser 3, the airflow becomes a stable flow, reducing the generation of vortices within the airflow path. The radial diffuser is omitted. By omitting the radial diffuser, wind resistance and energy loss can be effectively reduced, improving the working efficiency of the fan. Increasing the "dynamic-static gap" can weaken the "dynamic-static interference" effect occurring during fan operation, thereby reducing fan noise.
[0125] The radial diffuser is generally provided at the position of the annular gridless passage 8 and is often very close to the blades. As the air collides with the leading edges of the radial diffuser blades 33 immediately after leaving the impeller 5, this results in strong "dynamic-static interference." As evidenced by numerous documents, the "dynamic-static interference" generated by the blades of the rotor 2 and stator 1 is a major factor in fan noise. The fan of the embodiment of the present disclosure employs an axial diffuser 3 instead of a radial diffuser, which increases the "dynamic-static gap" and provides a very effective means for reducing fan noise.
[0126] By omitting the radial diffuser, the fan diameter can be reduced accordingly, which solves the problems of shortened bearing life and increased fan noise caused by the increased power required to increase the fan diameter.
[0127] According to another aspect of the present disclosure, there is provided a cleaning device including the fan according to the above technical solution. The cleaning device in this embodiment includes a vacuum cleaner, a handheld cleaner, etc.
[0128] It should be understood that the specific embodiments of the present disclosure are only used to illustrate or explain the principles of the present disclosure and should not be construed as limiting the present disclosure in any way. Therefore, any modifications, equivalent substitutions, improvements, etc. made without departing from the spirit and scope of the present disclosure should fall within the scope of protection of the present disclosure. Furthermore, the appended claims of the present disclosure are intended to cover all changes and modifications that fall within the scope and boundaries of the appended claims or equivalents of such scope and boundaries.
Claims
1. It includes an annular stator outer ring (11), A plurality of stator teeth (12) are connected to the inner side of the stator outer ring (11) and are uniformly distributed in the circumferential direction, The stator teeth (12) are arranged along the radial direction of the stator outer ring (11), and a winding coil (13) is wound around each of the stator teeth (12); A plurality of insulating bobbins (1111) are provided in the axial direction of the stator outer ring (11) corresponding to each winding coil (13), a first lead slot is provided in the insulating bobbin (1111), and the first lead slot is configured to pull out one end of the winding coil, extend it in the circumferential direction of the stator outer ring (11), and connect it to a winding coil of the same phase; The depths of the first lead slots of the insulating bobbins (1111) corresponding to the winding coils of the same phase are the same, and the depths of the first lead slots of the insulating bobbins (1111) corresponding to the winding coils of different phases are different, The yoke of the stator is provided with a semicircular hole (112) for positioning the axial diffuser (3) of the fan; The semicircular hole (112) is provided on the centerline of the stator tooth (12), The stator outer ring (11) is composed of a chain of stator units (111), and each of the stator units (111) is connected to the stator teeth (12); Each of the insulating bobbins (1111) is provided on the stator unit (111), The stator outer ring (11) is characterized in that, after the winding coil (13) is formed on the stator teeth (12), one end of the winding coil is drawn out through the first lead slot of the insulating bobbin (1111), extended in the circumferential direction of the stator outer ring (11) and connected to a winding coil of the same phase, the leading stator unit and the last stator unit are connected, and all adjacent stator units are connected by welding.
2. One end of the stator tooth (12) away from the stator outer ring (11) is recessed inward to form an arc-shaped structure; The circle enclosed by the arcuate structure of the stator teeth (12) is configured to accommodate a rotor having two poles; The number of the stator teeth (12) is six, 2. The stator according to claim 1, wherein the number of phases of the stator is three.
3. The stator outer ring (11) includes a first winding coil, a second winding coil, a third winding coil, a fourth winding coil, a fifth winding coil, and a sixth winding coil arranged in this order along the circumferential direction thereof, 3. The stator according to claim 2, wherein a first end of the first winding coil is connected to one end of the fourth winding coil to form a first phase of the stator, a first end of the second winding coil is connected to one end of the fifth winding coil to form a second phase of the stator, and a first end of the third winding coil is connected to one end of the sixth winding coil to form a third phase of the stator, and an included angle between two of the winding coils of the same phase is 180°.
4. The stator further includes a wire clamping portion (15), The wire clamp portion (15) is arranged on a side of a sixth insulating bobbin corresponding to the sixth winding coil, the side being away from the stator tooth (12), 4. The stator according to claim 3, wherein the sixth insulating bobbin includes a second lead slot, and the second lead slot is configured to allow a wire lead-out end of each phase to be led to the wire clamp portion and clamped by the wire clamp portion.
5. 5. The stator according to claim 3, wherein third lead slots are provided in the insulating bobbins corresponding to the first winding coil, the third winding coil, and the fifth winding coil, the third lead slots are configured to allow wire lead ends of each phase to be drawn out, and the wire lead ends of each phase are connected to a circuit board via leads (13A).
6. A stator according to any one of claims 2 to 5, characterized in that the six winding coils (13) are connected in a "Y" or delta configuration to form the three phases of the stator.
7. The number of branches of the winding coil (13) of the same phase is 1, or 7. The stator according to claim 1, wherein the number of branches of the winding coils (13) of the same phase connected in parallel is two.
8. 2. The stator according to claim 1, characterized in that one surface of the stator outer ring (11) close to the axial diffuser (3) is provided with connection posts (113) adapted to connection holes (37) of the axial diffuser (3), and the connection posts (113) are configured to assemble the axial diffuser (3).
9. a rotor and a stator (1) according to any one of claims 1 to 8, A fan characterized in that the rotor (2) is a permanent magnet with two poles.
10. The fan further includes a circuit board (7); 10. The fan according to claim 9, wherein the wire lead-out ends of the stator for each phase are connected to the circuit board via leads (13A).
11. The fan further includes an axial diffuser (3) fixedly connected to the stator (1), the axial diffuser (3) including an outer cylinder (31), a main body (32) provided in the outer cylinder (31), and diffuser blades (33) connecting the outer cylinder (31) and the main body (32), the diffuser blades (33) dividing an annular space between the outer cylinder (31) and the main body (32) into a plurality of diffused air passages (34), and the main body (32) has a central axial hole (35); The fan further includes an air hood (4) fixedly connected to the axial diffuser (3), wherein an impeller chamber (9) and an annular gridless passage (8) around the impeller chamber (9) are formed between the air hood (4) and the axial diffuser (3), the annular gridless passage (8) communicating the impeller chamber (9) with the diffused air passage, and the air hood (4) has an air inlet; 11. The fan according to claim 9 or 10, further comprising an impeller (5) disposed in the impeller chamber (9), wherein the impeller (5) causes air to be introduced from the air inlet (41), enter the diffusion air passage through the annular gridless passage (8) under the driving force of the impeller (5), and flow out from the other end of the diffusion air passage.
12. A cleaning device comprising the fan according to any one of claims 9 to 11.
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