Powder outlet assembly and beverage machine

By incorporating an electrostatic elimination component in the powder dispensing assembly, plasma is used to eliminate static electricity in the powder, thus solving the problems of powder scattering and adhesion in beverage machines, improving cleanliness and ease of use.

CN224461486UActive Publication Date: 2026-07-07KALERM TECH (SUZHOU) CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
KALERM TECH (SUZHOU) CO LTD
Filing Date
2025-06-26
Publication Date
2026-07-07

AI Technical Summary

Technical Problem

During the grinding process, existing beverage machines are prone to powder scattering and adhesion due to static electricity, which makes the equipment dirty and requires frequent cleaning, affecting ease of use and equipment efficiency.

Method used

An electrostatic elimination component is installed in the powder dispensing assembly. A plasma generator emits plasma downwards towards the through-hole to eliminate static electricity in the powder, preventing it from scattering and adhering.

Benefits of technology

Significantly reduces powder scattering and adhesion, improves machine cleaning performance, reduces user maintenance frequency, and enhances user experience and operational stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a kind of powder outlet assembly and beverage machine, powder outlet assembly includes: frame body, is equipped with receiving space and powder outlet, powder outlet is located above receiving space;Powder channel is connected between grinding device and powder outlet, powder is discharged from powder outlet by powder channel;It further includes that static electricity elimination component is arranged on frame body, frame body includes baffle, and powder outlet is arranged in baffle;Static electricity elimination component is arranged outside powder channel, and at least part of static electricity elimination component is located above baffle, and baffle is equipped with through-hole, and through-hole is communicated with powder outlet by receiving space downward, and static electricity elimination component is configured to emit plasma towards the lower through-hole.Effectively eliminate the static electricity generated in the process of grinding and discharging powder by setting static electricity elimination component in powder outlet assembly, emit plasma towards the lower through-hole using plasma generator, so that the scattering of powder and the adhesion on the side wall of powder outlet are significantly reduced.
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Description

Technical Field

[0001] This utility model relates to the field of beverage preparation technology, and in particular to a powder dispensing component and a beverage machine. Background Technology

[0002] Beverage machines with grinding functions grind beverage ingredients into powder, which is then discharged through a powder discharge channel into a receiving container for subsequent beverage brewing. For example, coffee machines, widely used in home, business, or commercial settings, allow users to freshly grind coffee beans to achieve the best coffee flavor.

[0003] In existing beverage machines, powder discharged from the grinding chamber during the grinding process typically carries a large amount of static electricity. This static electricity causes the powder to easily scatter and adhere to the powder discharge channel, outlet, and the side walls around the receiving space, severely impacting the cleanliness of the equipment and the user experience. Users need to frequently clean the adhered powder. Furthermore, large amounts of powder adhesion can clog the channels, reducing the equipment's efficiency. Current common solutions rely solely on physical cleaning, failing to fundamentally solve the powder scattering and adhesion problems caused by static electricity, and thus failing to meet users' increasingly demanding needs for ease of use. Utility Model Content

[0004] The purpose of this invention is to provide a powder dispensing component and a beverage machine to solve the problem that existing beverage machines are prone to dirt and require frequent cleaning due to powder scattering and adhesion caused by static electricity during the grinding and dispensing of raw materials.

[0005] To achieve one of the above-mentioned objectives, this utility model provides a powder discharge assembly for discharging powder from a grinding device, comprising:

[0006] The frame is provided with a receiving space and a powder outlet, with the powder outlet located above the receiving space;

[0007] A powder discharge channel is connected between the grinding device and the powder outlet, through which the powder is discharged from the powder outlet;

[0008] It also includes an electrostatic elimination component disposed on the frame, the frame including a baffle, the powder outlet disposed on the baffle; the electrostatic elimination component is disposed outside the powder discharge channel, and at least a portion of the electrostatic elimination component is located above the baffle, the baffle is provided with a through hole, the through hole is in fluid communication with the powder outlet through the material receiving space downward, and the electrostatic elimination component is configured to emit plasma toward the bottom of the through hole.

[0009] As a further improvement of one embodiment of the present invention, the frame further includes a support frame, the support frame defining the receiving space, and the baffle is detachably connected to the support frame along the vertical direction of the receiving space.

[0010] As a further improvement of one embodiment of the present invention, the baffle includes a flat plate portion and a vertical plate portion. The flat plate portion has a first edge and a second edge opposite to each other. The first edge faces the outside of the frame. The vertical plate portion is disposed on the first edge. The vertical plate portion is provided with a first snap-fit ​​portion. The second edge is provided with a second snap-fit ​​portion. The first snap-fit ​​portion and the second snap-fit ​​portion are respectively snapped into the support frame from bottom to top.

[0011] As a further improvement of one embodiment of this utility model, the vertical plate portion and the flat plate portion are integrally disposed, and the vertical plate portion is limitedly connected to the flat plate portion along the direction from the second edge to the first edge; along the vertical direction, the support bracket limits the vertical plate portion; or,

[0012] The vertical plate and the flat plate are separately disposed, and the vertical plate and the flat plate are detachably connected.

[0013] As a further improvement of one embodiment of the present utility model, the support frame includes a front side forming the receiving space and an opposite rear side, and a first latching part and a second latching part are provided at intervals on the baffle, the first latching part and the second latching part being respectively provided on the front side and the rear side of the baffle.

[0014] The first snap-fit ​​portion snaps onto the front side of the support frame that forms the receiving space, and the second snap-fit ​​portion snaps onto the rear side of the support frame that forms the receiving space.

[0015] As a further improvement of one embodiment of the present invention, the static elimination component includes a first probe and a second probe, and the through hole includes a first through hole and a second through hole. The first through hole and the second through hole are respectively disposed on both sides of the powder outlet, and the first through hole and the second through hole correspond to the first probe and the second probe, respectively.

[0016] The frame also includes a main support, the support frame is connected to the main support, and the first probe and the second probe are respectively installed on the main support.

[0017] As a further improvement of one embodiment of the present invention, the frame includes a front side forming the receiving space and a corresponding rear side, and the static elimination component includes a first probe and a second probe, wherein the line connecting the first probe and the second probe is offset rearward relative to the center of the powder outlet.

[0018] As a further improvement of one embodiment of the present invention, the static elimination component includes a probe extending vertically, a surrounding wall provided on the baffle plate, a grid provided inside the through hole, and the lower end of the probe extending into the surrounding wall; the frame includes a front side forming the receiving space and an opposite rear side, a mounting hole provided on the frame, the probe extending downward from the mounting hole, a downwardly extending guard plate provided on the lower side of the mounting hole, the guard plate being arranged around the probe and at least located on the front side of the probe.

[0019] As a further improvement of one embodiment of the present invention, it also includes a powder cleaning component and an operating component. The static elimination component includes a probe, the powder cleaning component is arranged around the probe, the operating component is linked with the powder cleaning component, and the operating component is configured to drive the powder cleaning component to move along the length direction of the probe to scrape off the powder adhering to the probe.

[0020] As a further improvement of one embodiment of the present invention, the frame includes a front side forming the receiving space and a corresponding rear side, the operating member is movably connected to the baffle, the baffle is provided with a limiting hole, the limiting hole is located on the front side of the through hole, and a part of the operating member extends into the receiving space from the limiting hole.

[0021] As a further improvement of one embodiment of this utility model, an elastic element is provided between the operating member and the frame, the operating member is configured to move upward along the limiting hole and reset downward under the action of the elastic element, and the powder cleaning member is configured in one of the following ways:

[0022] The powder cleaning component moves in the same direction as the operating component, and the powder cleaning component and the operating component are integrally formed.

[0023] The powder cleaning component moves in the opposite direction to the operating component. The powder cleaning component and the operating component are separately configured. A connecting plate is provided between the operating component and the powder cleaning component. The connecting plate is pivotally mounted on the baffle. The operating component and the powder cleaning component are pivotally connected to both ends of the connecting plate, respectively.

[0024] This utility model also provides a beverage machine, including a grinding device and a powder dispensing component as described in any of the above embodiments. The grinding device has a powder discharge port, one end of the powder discharge channel is connected to the powder discharge port, and the other end of the powder discharge channel is connected to the powder outlet.

[0025] Compared with the prior art, the beneficial effects of this utility model are as follows: by setting an electrostatic elimination component in the powder discharge assembly and using a plasma generator to emit plasma downwards towards the through hole, the static electricity generated by the powder during the grinding and discharge process is effectively eliminated, thereby significantly reducing the scattering of powder and its adhesion to the side wall of the powder outlet, improving the cleaning performance of the machine, reducing the frequency of user maintenance and cleaning, and improving the user experience and the stability of machine operation. Attached Figure Description

[0026] Figure 1 This is a schematic diagram of the powder dispensing component according to one embodiment of the present invention.

[0027] Figure 2 yes Figure 1 A cross-sectional view of the powder dispensing component along line AA.

[0028] Figure 3 yes Figure 2 A cross-sectional view of the powder dispensing component along the BB line.

[0029] Figure 4 yes Figure 1 A three-dimensional schematic diagram of the powder dispensing component.

[0030] Figure 5 yes Figure 4 A three-dimensional exploded view of the powder dispensing component.

[0031] Figure 6 This is a schematic diagram of another structural form of the baffle of the powder dispensing component according to one embodiment of the present invention.

[0032] Figure 7 This is a schematic diagram of a powder dispensing component according to another embodiment of the present invention.

[0033] Figure 8 yes Figure 7 A cross-sectional view of the powder dispensing component along the CC line.

[0034] Figure 9 This is a schematic diagram of the powder dispensing component according to another embodiment of the present invention.

[0035] Figure 10 yes Figure 9 A schematic diagram of the powder cleaning structure of the powder dispensing component.

[0036] Figure 11 This is a schematic diagram of a beverage machine according to one embodiment of the present invention. Detailed Implementation

[0037] The present invention will now be described in detail with reference to the specific embodiments shown in the accompanying drawings. However, these embodiments do not limit the present invention, and any structural, methodological, or functional modifications made by those skilled in the art based on these embodiments are included within the protection scope of the present invention.

[0038] This invention provides a powder dispensing component 100 for discharging powder from a grinding device 60. The grinding device 60 is capable of grinding and dispensing raw materials for beverage preparation, such as in a beverage machine 10 (e.g., a coffee machine), for grinding raw materials (e.g., coffee beans, grains, etc.), and the ground raw material particles can be brewed and prepared into a beverage.

[0039] In a specific embodiment of this utility model, the powder dispensing component 100 for discharging coffee powder is used as an example for explanation. The grinding device 60 grinds coffee beans, and the ground coffee powder is discharged through the powder dispensing component 100.

[0040] See Figures 1 to 3 This embodiment provides a powder dispensing assembly 100 for a beverage machine 10, used to dispense powder from a grinding device 60, specifically coffee powder formed by grinding coffee beans. The powder dispensing assembly 100 includes a frame 20, a powder discharge channel 11, and an anti-static component 30. The frame 20 has a receiving space 22 and a powder outlet 21 inside. The receiving space 22 receives the dispensed coffee powder, and the powder outlet 21 is located above the receiving space 22. The coffee powder is discharged from the grinding device 60 through the powder discharge channel 11 and then through the powder outlet 21. The receiving space 22 can accommodate a receiving container 50 to receive the powder discharged from the powder outlet 21. The powder discharge channel 11 connects the grinding device 60 and the powder outlet 21, through which the powder is discharged from the powder outlet 21. The static elimination component 30 is installed on the frame 20 to eliminate static electricity adhering to the powder, so as to prevent the powder from easily flying away and adhering to the side wall of the powder falling channel 11 and the powder outlet 21 due to static electricity.

[0041] The frame 20 includes a baffle 23, with a powder outlet 21 disposed on the baffle 23. An electrostatic eliminator 30 is disposed outside the powder discharge channel 11, with at least a portion of the electrostatic eliminator 30 located above the baffle 23. The baffle 23 has a through hole, which communicates downwards with the powder outlet 21 through a receiving space 22; that is, the powder outlet 21 communicates with the through hole through the receiving space 22 below. The electrostatic eliminator 30 is configured to emit plasma downwards towards the through hole to eliminate static electricity generated in the powder during grinding.

[0042] While the grinding device 60 is grinding the raw material, the static elimination component 30 works, emitting plasma through the through hole to the position below the powder outlet 21 to eliminate the static electricity carried by the powder during the grinding process, preventing powder from flying and adhering to the powder discharge channel and surrounding area, such as the side wall below the powder outlet 21.

[0043] The powder dispensing component 100 with the above structure effectively solves the problem of static electricity generated during the grinding process, significantly improves the situation of powder scattering and adhesion, greatly enhances the cleanliness of the powder dispensing component 100, thereby improving the overall user experience and operational stability of the beverage machine 10 and reducing the frequency of maintenance for users.

[0044] Reference Figure 4 and Figure 5 In one embodiment, the frame 20 further includes a support frame 24, which defines a receiving space 22. A baffle 23 is detachably connected to the support frame 24 along the vertical direction of the receiving space 22. The detachable connection between the baffle 23 and the support frame 24 allows for easy maintenance by removing only the baffle 23 when cleaning the powder outlet 21 and the static elimination component 30, without disassembling the entire powder dispensing assembly 100.

[0045] Specifically, the baffle 23 includes a flat plate portion 230 and a vertical plate portion 235. The flat plate portion 230 has a first edge 232 and a second edge 233, with the first edge 232 facing outward from the frame 20, and the vertical plate portion 235 disposed on the first edge 232. The vertical plate portion 235 is provided with a first engaging portion 236, and the second edge 233 is provided with a second engaging portion 237. The first engaging portion 236 and the second engaging portion 237 engage with the support frame 24 from bottom to top, respectively, to ensure a stable connection between the baffle 23 and the support frame 24 and facilitate disassembly.

[0046] The first latching part 236 and the second latching part 237 are respectively provided on the inner and outer sides of the baffle 23 relative to the frame 20. When disassembling the baffle 23, it is easier for the user to apply force when gripping the baffle 23 with their fingers, making the disassembly of the baffle 23 convenient and effortless. Of course, an auxiliary latching part 239 can also be provided on the first edge 232 and / or the second edge 233 of the baffle 23. The auxiliary latching part 239 latches with the support frame 24 to enhance the connection strength between the baffle 23 and the support frame 24. The first latching part 236, the second latching part 237 and the auxiliary latching part 239 can all be set as hooks, specifically, they can latch onto the edge of the support frame 24.

[0047] Reference Figure 6In one embodiment, the vertical plate portion 235 and the flat plate portion 230 are separately provided, and the vertical plate portion 235 and the flat plate portion 230 are detachably connected. The detachable connection between the vertical plate portion 235 and the flat plate portion 230 allows users to quickly perform partial disassembly and maintenance according to actual needs, improving structural flexibility and ease of cleaning.

[0048] Specifically, the vertical plate portion 235 and the flat plate portion 230 are separately configured. The vertical plate portion 235 is limited and connected to the flat plate portion 230 along the direction from the second edge 233 to the first edge 232; the support frame 24 limits the vertical plate portion 235 along the vertical direction. The separate structure between the vertical plate portion 235 and the flat plate portion 230 allows for more flexible design of the baffle 23. The vertical plate portion 235 is limited and connected to the flat plate portion 230 along the direction from the second edge 233 to the first edge 232, and the support frame 24 further limits the vertical plate portion 235 in the vertical direction. The powder discharging assembly 100 has good structural stability and is easy to assemble and disassemble.

[0049] In addition, the separate arrangement of the vertical plate portion 235 and the flat plate portion 230 facilitates the selection of materials for the vertical plate portion 235 and the flat plate portion 230, as well as the selection of manufacturing processes, thereby reducing the cost of the powder discharging component 100.

[0050] Continue to refer to Figure 3 and Figure 5 The support frame 24 includes a front side forming the receiving space 22 and an opposite rear side (e.g., Figure 3 (As indicated by the front-to-back direction of the arrow), a first latching part 236 and a second latching part 237 are provided at intervals on the baffle 23. The first latching part 236 and the second latching part 237 are respectively provided on the front and rear sides of the baffle 23. The first latching part 236 latches onto the front side of the material receiving space 22 formed by the support frame 24, and the second latching part 237 latches onto the rear side of the material receiving space 22 formed by the support frame 24. The first latching part 236 and the second latching part 237 are provided along the front and rear sides of the material receiving space 22, which is more in line with ergonomics. Users can reach into the material receiving space 22 in the front-to-back direction to disassemble and install the baffle 23, which improves the convenience of disassembly and installation of the baffle 23.

[0051] In one embodiment, the static elimination component 30 adopts a plasma generator structure, which includes probes, specifically a first probe 31 and a second probe 32, such as an anode probe and a cathode probe. The first probe 31 and the second probe 32 are separated from each other and are located on both sides of the powder outlet 21 to achieve effective static neutralization, thereby eliminating static electricity in the powder.

[0052] Specifically, the through holes include a first through hole 231a and a second through hole 231b, which are respectively disposed on both sides of the powder outlet 21. The first through hole 231a and the second through hole 231b correspond to the first probe 31 and the second probe 32, respectively. The frame 20 also includes a main support 27, and a support frame 24 is connected to the main support 27. The first probe 31 and the second probe 32 are respectively installed on the main support 27.

[0053] The above structure is designed to further improve the ease of installation and disassembly of the powder dispensing component 100 and the protective effect of the static elimination component 30, ensuring the long-term stable operation of the powder dispensing component 100 and facilitating daily maintenance by users.

[0054] By optimizing the installation details of the first probe 31 and the second probe 32 used for static elimination, the static elimination effect and probe protection performance can be improved. When energized, the static elimination component 30 generates a high-voltage electric field through the first probe 31 and the second probe 32, ionizing the air and generating plasma. The generated plasma is emitted downwards towards the coffee powder outlet 21 via the first through-hole 231a and the second through-hole 231b on the baffle 23 to eliminate static charge on the coffee powder, effectively preventing coffee powder from scattering and adhering, for example, preventing coffee powder from adhering to the sidewall surface at the coffee powder outlet 21.

[0055] In one embodiment, the line connecting the first probe 31 and the second probe 32 is offset rearward relative to the center of the powder outlet 21. This rearward offset of the line connecting the first probe 31 and the second probe 32 of the static elimination component 30 relative to the center of the powder outlet 21 further optimizes the static elimination effect, particularly enhancing the static elimination coverage of the rear region of the receiving space 22.

[0056] Continue to refer to Figure 4 and Figure 5 The probe extends vertically, and the baffle 23 is provided with a surrounding wall 234 around the through hole. A grid 238 is provided inside the through hole, and the lower end of the probe extends into the surrounding wall 234. The surrounding wall 234 and grid 238 structures are provided at the first through hole 231a and the second through hole 231b on the baffle 23. The first probe 31 and the second probe 32 both extend vertically downward, and their lower ends extend into the surrounding wall 234. The surrounding wall 234 can protect the first probe 31 and the second probe 32 and limit the direction of plasma emission from the first probe 31 and the second probe 32. The grid 238 can prevent coffee powder from splashing and contaminating the probe. The grid 238 can also protect the user from being pricked by the first probe 31 or the second probe 32 during operation.

[0057] The frame 20 is provided with mounting holes 25 that are adapted to the probe (i.e., the first probe 31 or the second probe 32). The probe extends downward from the mounting hole 25. A downward extending guard plate 251 is provided on the lower side of the mounting hole 25. The guard plate 251 is arranged around the probe and is located at least in front of the probe to effectively avoid damage caused by external force accidentally touching the probe and improve the long-term stability and safety of the probe.

[0058] Through the optimized design of the above structural details, the ease of installation and disassembly of the powder dispensing component 100 and the durability of the static electricity elimination effect are further improved. The maintainability of the powder dispensing component 100 is significantly enhanced, improving the overall user experience and reliability of the coffee machine and meeting the requirements for long-term stable operation of the coffee machine.

[0059] After long-term use, a lot of powder may adhere to the surface of the static elimination component 30 (first probe 31 or second probe 32), which will gradually reduce the static elimination effect. Further optimization of the structure of the powder dispensing component 100 is required.

[0060] Specifically, refer to Figure 7 and Figure 8 In one embodiment, the static elimination component 30 includes a probe, and the powder dispensing component 100 includes a powder cleaning structure that can effectively remove powder adhering to the probe surface, ensuring long-term stability of the static elimination effect.

[0061] Specifically, the powder dispensing assembly 100 also includes a powder cleaning component 41 and an operating component 42. The powder cleaning component 41 is arranged around the probe and is used to scrape off the powder adhering to the probe surface. In order to achieve convenient control and operation of the powder cleaning component 41, the operating component 42 is linked with the powder cleaning component 41. The operating component 42 is configured to drive the powder cleaning component 41 to move along the length direction of the probe to scrape off the powder adhering to the probe.

[0062] The operating component 42 can be set in a position that is convenient for the user to operate. The operating component 42 and the cleaning component 41 are linked. When the user operates the operating component 42, the cleaning component 41 can be moved along the length of the probe. The movement of the cleaning component 41 can effectively scrape off the coffee powder attached to the probe surface, thus maintaining the cleanliness of the probe and the continuity of the static electricity elimination effect.

[0063] Furthermore, the operating component 42 is movably connected to the baffle 23, and the baffle 23 is provided with a limiting hole 26. The limiting hole 26 is specifically located on the front side of the through hole. A part of the operating component 42 extends into the receiving space 22 through the limiting hole 26. The position of the operating component 42 is set so that the user can operate it directly without disassembling the baffle 23 or other structures.

[0064] In one embodiment, to facilitate smoother powder cleaning and provide an automatic reset function, an elastic element 43 is provided between the operating member 42 and the frame 20. The operating member 42 is configured to move upward along the limiting hole 26 and reset downward under the action of the elastic element 43. When the user presses the operating member 42 upward, the operating member 42 moves upward along the limiting hole 26. After the user releases the operating member 42, the operating member 42 automatically resets downward under the elastic reset force of the elastic element 43, returning to its initial position.

[0065] Reference Figure 8 The powder cleaning component 41 moves in the same direction as the operating component 42, and the powder cleaning component 41 and the operating component 42 are integrally set. When the user presses the operating component 42 to move upward, the powder cleaning component 41 also moves upward synchronously to scrape off the powder on the probe surface. When the user releases the operating component 42, the operating component 42 automatically returns to its original position. The structure is simple and reliable.

[0066] Reference Figure 9 In one embodiment, the moving direction of the cleaning component 41 is opposite to that of the operating component 42. The operating component 42 and the cleaning component 41 are designed as separate structures, with a connecting plate 44 between them. The connecting plate 44 is pivotally mounted on the baffle 23, and the operating component 42 and the cleaning component 41 are pivotally connected to both ends of the connecting plate 44, thus achieving opposite movements between the cleaning component 41 and the operating component 42. When the user presses the operating component 42 upward, the cleaning component 41 moves downward along the probe to scrape off the powder on the probe surface. When the user releases the operating component 42, it automatically returns to its original position, achieving a more efficient and thorough cleaning effect, suitable for scenarios where coffee powder is heavily adhered to the probe.

[0067] When it is necessary to clean the powder adhering to the probe surface, simply press the operating member 42 upwards to move the powder cleaning member 41 upwards or downwards simultaneously. The powder cleaning member 41 wipes along the probe surface to remove the powder adhering to the probe. A portion of the operating member 42 extends into the receiving space 22, which not only facilitates the powder cleaning operation for the user, but also prevents accidental operation when pressing upwards.

[0068] Understandably, the powder-cleaning operation of the pressing operation 42 can be performed repeatedly to more thoroughly remove the powder from the probe surface.

[0069] By designing the above-mentioned powder removal structure, the problem of coffee powder adhering to the probe and being unable to be removed after long-term use is effectively solved, ensuring the long-term stability of the static electricity elimination effect, significantly improving the maintainability of the powder dispensing component 100 and the convenience of user use, and further enhancing the overall reliability and user experience of the beverage machine 10.

[0070] Reference Figure 11The present invention also provides a beverage machine 10, which includes a grinding device 60 and a powder dispensing component 100 as described in any of the above embodiments. The grinding device 60 has a powder discharge port 61, one end of the powder discharge channel 11 is connected to the powder discharge port 61, and the other end of the powder discharge channel 11 is connected to the powder outlet 21.

[0071] The beverage machine 10 is equipped with the powder dispensing component 100 mentioned above, which can solve the problem that the powder is easily scattered and adsorbed on the side wall of the powder discharge channel 11 and the powder outlet 21 due to static electricity when the ground raw materials are discharged, thereby improving the cleanliness of the beverage machine 10, reducing the frequency of user maintenance, and improving the overall user experience.

[0072] It should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This way of describing the specification is only for clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

[0073] The detailed descriptions listed above are merely specific descriptions of feasible implementations of this utility model, and are not intended to limit the scope of protection of this utility model. All equivalent implementations or modifications made without departing from the spirit of this utility model should be included within the scope of protection of this utility model.

Claims

1. A powder discharge assembly for discharging powder from a grinding device, comprising: The frame is provided with a receiving space and a powder outlet, with the powder outlet located above the receiving space; A powder discharge channel is connected between the grinding device and the powder outlet, through which the powder is discharged from the powder outlet; The feature is that it further includes an electrostatic elimination component disposed on the frame, the frame including a baffle, the powder outlet disposed on the baffle; the electrostatic elimination component is disposed outside the powder falling channel, and at least a portion of the electrostatic elimination component is located above the baffle, the baffle is provided with a through hole, the through hole is in fluid communication with the powder outlet through the receiving space downward, and the electrostatic elimination component is configured to emit plasma toward the lower part of the through hole.

2. The powder dispensing component according to claim 1, characterized in that, The frame also includes a support frame that defines the receiving space, and the baffle is detachably connected to the support frame along the vertical direction of the receiving space.

3. The powder dispensing component according to claim 2, characterized in that, The baffle includes a flat plate portion and a vertical plate portion. The flat plate portion has a first edge and a second edge opposite to each other. The first edge faces the outside of the frame. The vertical plate portion is disposed on the first edge. The vertical plate portion is provided with a first snap-fit ​​portion. The second edge is provided with a second snap-fit ​​portion. The first snap-fit ​​portion and the second snap-fit ​​portion are respectively snapped into the support frame from bottom to top.

4. The powder dispensing component as described in claim 3, characterized in that, The vertical plate portion and the flat plate portion are separately disposed, and the vertical plate portion is limitedly connected to the flat plate portion along the direction from the second edge to the first edge; along the vertical direction, the support bracket limits the vertical plate portion; or, The vertical plate and the flat plate are separately disposed, and the vertical plate and the flat plate are detachably connected.

5. The powder dispensing component according to claim 2, characterized in that, The support frame includes a front side forming the receiving space and an opposite rear side. A first latching part and a second latching part are provided at intervals on the baffle. The first latching part and the second latching part are respectively provided on the front side and the rear side of the baffle. The first snap-fit ​​portion snaps onto the front side of the support frame that forms the receiving space, and the second snap-fit ​​portion snaps onto the rear side of the support frame that forms the receiving space.

6. The powder dispensing component according to claim 2, characterized in that, The static elimination component includes a first probe and a second probe, and the through hole includes a first through hole and a second through hole. The first through hole and the second through hole are respectively disposed on both sides of the powder outlet, and the first through hole and the second through hole correspond to the first probe and the second probe, respectively. The frame also includes a main support, the support frame is connected to the main support, and the first probe and the second probe are respectively installed on the main support.

7. The powder dispensing component according to claim 1, characterized in that, The frame includes a front side forming the receiving space and an opposite rear side. The static elimination component includes a first probe and a second probe, and the line connecting the first probe and the second probe is offset rearward relative to the center of the powder outlet.

8. The powder dispensing component according to claim 1, characterized in that, The static elimination component includes vertically extending probes. The baffle is provided with a surrounding wall around the through hole. A grid is provided inside the through hole. The lower end of the probe extends into the surrounding wall. The frame includes a front side forming the receiving space and an opposite rear side. The frame is provided with a mounting hole. The probe extends downward from the mounting hole. A downwardly extending guard plate is provided below the mounting hole. The guard plate is arranged around the probe and is located at least in front of the probe.

9. The powder dispensing component according to any one of claims 1 to 8, characterized in that, It also includes a powder cleaning component and an operating component. The static elimination component includes a probe. The powder cleaning component is arranged around the probe. The operating component is linked to the powder cleaning component. The operating component is configured to drive the powder cleaning component to move along the length direction of the probe to scrape off the powder adhering to the probe.

10. The powder dispensing component according to claim 9, characterized in that, The frame includes a front side forming the receiving space and an opposite rear side. The operating member is movably connected to the baffle. The baffle is provided with a limiting hole located on the front side of the through hole. A portion of the operating member extends into the receiving space from the limiting hole.

11. The powder dispensing component according to claim 10, characterized in that, An elastic element is provided between the operating member and the frame. The operating member is configured to move upward along the limiting hole and reset downward under the action of the elastic element. The powder cleaning member is configured in one of the following ways: The powder cleaning component moves in the same direction as the operating component, and the powder cleaning component and the operating component are integrally formed. The powder cleaning component moves in the opposite direction to the operating component. The powder cleaning component and the operating component are separately configured. A connecting plate is provided between the operating component and the powder cleaning component. The connecting plate is pivotally mounted on the baffle. The operating component and the powder cleaning component are pivotally connected to both ends of the connecting plate, respectively.

12. A beverage machine, characterized in that, The invention includes a grinding device and a powder dispensing assembly as described in any one of claims 1 to 11, wherein the grinding device has a powder discharge port, one end of the powder discharge channel is connected to the powder discharge port, and the other end of the powder discharge channel is connected to the powder outlet.