Residue storage assembly, brewing device, body and apparatus for making a beverage
By designing a grounds storage component in the coffee machine, airflow is used to dissipate heat and dry the grounds, solving the problems of contamination and cleaning hazards caused by hot and humid grounds in the grounds box, thus improving the quality of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CAYE TECHNOLOGY (SUZHOU) CO LTD
- Filing Date
- 2025-04-25
- Publication Date
- 2026-07-24
AI Technical Summary
The hot, moist coffee grounds in the grounds container of existing coffee machines can easily cause contamination and inconvenience, and are also dangerous to clean.
Design a slag storage component, including a slag box, an air source device and an air guide component, which discharges heat dissipation airflow to the outside through the exhaust port and uses the air guide duct to dissipate heat and dry the slag material.
It effectively dissipates heat and dries slag, improving safety and convenience of use, and preventing moisture contamination inside the slag box.
Smart Images

Figure CN224539968U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of beverage making equipment, specifically to a residue storage component, a brewing device, a body, and beverage making equipment. Background Technology
[0002] A coffee machine is a machine that grinds coffee beans into powder and brews coffee. In the current coffee-making process, the coffee beans are first ground into powder by a grinding device, and then the coffee powder is discharged into the brewing cylinder of the brewing device through the powder receiving position. Then, through high temperature and high pressure extraction, the coffee powder in the brewing cylinder is pressed into a coffee cake. Finally, the pressed powder is brewed and extracted to make a coffee beverage.
[0003] After each beverage preparation, a special slag discharge mechanism transfers the residue from the brewing tank into the slag box. This residue typically contains moisture and is quite hot. If stored in the slag box for an extended period, the warm, damp residue can create a humid environment inside and around the box, leading to contamination. Furthermore, directly removing the slag box to clean the hot, damp residue can cause burns or other adverse effects. Overall, this can negatively impact the quality of the entire brewing process. Utility Model Content
[0004] The main purpose of this utility model is to provide a slag storage component, a brewing device, a machine body, and a beverage making equipment, aiming to solve the problem that the hot and humid slag in the slag box can easily reduce the overall quality of the machine.
[0005] To achieve the above objectives, this utility model proposes a slag storage assembly, comprising:
[0006] A slag box forms an open slag storage cavity, the opening being used to receive slag material;
[0007] An air supply device having an exhaust port for discharging airflow outwards; and,
[0008] An air guide component is disposed between the slag box and the air source device, and forms an air guide duct connecting the slag storage chamber and the exhaust port, so that the airflow discharged outward through the exhaust port passes through the slag storage chamber.
[0009] Optionally, the opening is positioned upwards, and the gas source device is located above the slag box;
[0010] The air guiding component includes a first air guiding section, and the air guiding duct located in the duct section of the first air guiding section is the first air guiding section, which extends in the vertical direction.
[0011] Optionally, the air guiding component further includes a second air guiding section located below the first air guiding section, the air guiding duct section located in the second air guiding section is the second air guiding section, the slag box and / or the second air guiding section has a first shell plate, the first shell plate is provided with a first air outlet, the second air guiding section is connected to the first air guiding section, and is connected to the slag storage chamber through the first air outlet.
[0012] Optionally, the second air guide portion has the first shell plate and is provided with the first air outlet;
[0013] The second air guide is connected to the slag box, and at least the first shell plate is exposed outside the slag storage cavity, with the first air outlet facing the opening.
[0014] Optionally, the second air guide portion has the first shell plate and is provided with the first air outlet;
[0015] The second air guide section overlaps with the slag box, and at least the first shell plate extends into the slag storage cavity through the opening.
[0016] Optionally, the first shell plate is gradually inclined from top to bottom in a direction away from the opening, and the first air vent is located in the upper region of the first shell plate; or,
[0017] The first shell plate is inclined from top to bottom towards the opening, and the first air vent is located in the lower part of the first shell plate.
[0018] Optionally, the air duct is provided with a grid structure at least in the air guide section near the slag storage chamber.
[0019] In addition, to achieve the above objectives, this utility model also provides a brewing device, comprising:
[0020] A brewing assembly, the brewing assembly including a brewing tank for brewing beverages; and,
[0021] As described above, the slag storage assembly further includes an air source device with an air intake for drawing airflow inward, the air intake being positioned toward the brewing tank.
[0022] In addition, to achieve the above objectives, this utility model also provides a body, comprising:
[0023] The housing has a mounting cavity; and,
[0024] The slag storage assembly as described above or the brewing device as described above, wherein the slag storage assembly is housed within the casing.
[0025] Optionally, at least a portion of the housing and the air guide component together enclose and define the air guide duct.
[0026] Optionally, the housing is provided with an air outlet;
[0027] The slag storage assembly further includes an air outlet component, which is formed to connect the slag storage chamber and the air outlet; and / or the air outlet component is formed to connect the air guide duct and the air outlet.
[0028] Optionally, the opening faces upwards, and the air source device is located above the slag box; the air guide component includes:
[0029] A first air guide section, wherein the air guide duct is located in the section of the first air guide section as a first air guide segment, and the first air guide segment extends vertically; and...
[0030] The second air guide is located below the first air guide. The air guide duct section located in the second air guide is the second air guide section. The slag box and / or the second air guide has a first shell plate that is close to each other. The first shell plate is provided with a first air outlet. The second air guide section is connected to the first air guide section and is connected to the slag storage chamber through the first air outlet.
[0031] The air outlet is located at the bottom of the housing and below the first air guide section. The air outlet component includes a first air outlet section. The air outlet duct section located in the first air outlet section is the first air outlet section. The first air outlet section is located on the side of the slag box. The first air outlet section connects the first air guide section and the air outlet.
[0032] Optionally, the air outlet is located on the side of the slag box away from the air guide duct;
[0033] The air outlet component includes a second air outlet section, and the air outlet duct section located in the second air outlet section is the second air outlet section. The second air outlet section is located on the side of the slag box away from the air guide duct. The second air outlet section and / or the slag box have a second shell plate, and the second shell plate is provided with a second air inlet. The second air outlet section is connected to the slag storage chamber through the second air inlet.
[0034] In addition, to achieve the above objectives, this utility model also provides a beverage preparation device, comprising:
[0035] The slag storage assembly as described above; or,
[0036] The brewing device as described above; or,
[0037] The organism as described above.
[0038] In the technical solution provided by this utility model, before, simultaneously with, or after receiving slag material in the slag storage chamber of the slag box, the air source device is activated and discharges heat dissipation airflow outward through the exhaust port; guided by the air duct of the air guide component, the heat dissipation airflow passes through the slag storage chamber. Specifically, it can flow through an open opening or enter and exit the slag storage chamber through an open opening. In this way, the heat dissipation airflow can dissipate heat and dry the slag material in the slag storage chamber, so that the hot and humid slag material is promptly processed into relatively dry and room-temperature slag material, which is more convenient for continued storage and subsequent slag cleaning operations. Attached Figure Description
[0039] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0040] Figure 1 A perspective view of an embodiment of the body component (including a brewing device) provided by this utility model;
[0041] Figure 2 A perspective view of an embodiment of the body components (excluding the brewing device) provided by this utility model;
[0042] Figure 3 for Figure 2 A longitudinal sectional view of the first embodiment after the body components and the base plate of the casing are assembled;
[0043] Figure 4 for Figure 2 A longitudinal sectional view of the second embodiment after the body components and the base plate of the casing are assembled;
[0044] Figure 5 for Figure 2 A longitudinal sectional view of the third embodiment after the body components and the base plate of the casing are assembled;
[0045] Figure 6 for Figure 2 A schematic diagram of the assembled slag box, the first air guide section, and the first air outlet section;
[0046] Figure 7 for Figure 2 A disassembled schematic diagram of the intermediate slag box, the first air guide section, and the first air outlet section;
[0047] Figure 8 for Figure 7 A three-dimensional schematic diagram of the first air guide section from another perspective;
[0048] Figure 9 A longitudinal sectional view of another embodiment of the body component provided by this utility model.
[0049] Explanation of icon numbers:
[0050] 100 Slag box; 110 Slag storage chamber; 111 Opening; 200 Air source device; 210 Air intake; 220 Air exhaust; 300 Air guide component; 310 First air guide section; 311 First air guide segment; 320 Second air guide section; 321 Second air guide segment; 322 First shell plate; 323 First air outlet; 400 Air outlet component; 410 First air outlet; 411 First air outlet segment; 420 Second air outlet; 421 Second air outlet segment; 422 Second shell plate; 423 Second air outlet; 500 Brewing device; 510 Brewing tank; 600 Body; 610 Air outlet.
[0051] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0052] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0053] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicators will also change accordingly.
[0054] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the meaning of "and / or" throughout the text includes three parallel solutions; for example, "A and / or B" includes solution A, solution B, or a solution where both A and B are satisfied simultaneously. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.
[0055] Please see Figures 1 to 9 This utility model provides a residue storage component. This residue storage component is mainly used in beverage making equipment. Depending on actual needs, the residue storage component can independently form a module; or it can be pre-installed with the machine body 600 to form a module; or it can be pre-installed with the brewing component to form a module; or it can be pre-installed together with the brewing component and the machine body 600 to form a module.
[0056] For ease of understanding, in the following embodiments, the beverage preparation equipment, body 600, brewing device 500, and residue storage assembly are all described as having two generally perpendicular vertical directions and a horizontal direction. The horizontal direction can specifically include a generally perpendicular front-back direction and a generally perpendicular left-right direction.
[0057] Specifically, the slag storage assembly includes a slag box 100, an air source device 200, and an air guide component 300. The slag box 100 forms a slag storage cavity 110 with an opening 111 for receiving slag material. The air source device 200 has an exhaust port 220 for discharging airflow. The air guide component 300 is located between the slag box 100 and the air source device 200. The air guide component 300 forms an air duct connecting the slag storage cavity 110 and the exhaust port 220, allowing airflow discharged through the exhaust port 220 to pass through the slag storage cavity 110.
[0058] In the technical solution provided by this utility model, before, simultaneously with, or after receiving slag material in the slag storage chamber 110 of the slag box 100, the air source device 200 is activated and discharges heat dissipation airflow outward through the exhaust port 220; guided by the air duct of the air guide component 300, the heat dissipation airflow passes through the slag storage chamber 110. Specifically, it can flow through the opening 111, or enter and exit the slag storage chamber 110 through the opening 111. In this way, the heat dissipation airflow can dissipate heat and dry the slag material in the slag storage chamber 110, so that the hot and humid slag material is processed into relatively dry and room temperature slag material in a timely manner, which is more convenient for continued storage and subsequent slag cleaning operations.
[0059] The slag box 100 is a container used to hold slag. The specific form of the slag box 100 is not limited; it can be any suitable shape, size, and material, but is not limited to. For example... Figures 1 to 9 In the structure shown, the slag box 100 is generally rectangular in shape. The slag box 100 has an upper surface, a lower surface, and side surfaces located in the horizontal direction that connect the upper surface and the lower surface.
[0060] The opening 111 can be located on any surface of the slag box 100. However, for ease of understanding, the following embodiments will use the example of the opening 111 being located on the upper surface of the slag box 100. In this case, the slag material discharged from the brewing cylinder 510, located above the slag box 100, can fall automatically under the action of gravity. The falling slag material eventually enters the slag storage chamber 110 of the slag box 100 through the opening 111. The opening 111 is generally located on the entire upper surface of the slag box 100, so as to maximize the opening area of the opening 111 within the limited space of the slag box 100.
[0061] The type of air source device 200 is not limited; it can be, for example, but not limited to, various types of fans and air pumps. The air source device 200 generally has an intake port 210 and an exhaust port 220. After the air source device 200 is started, external air is drawn into the air source device 200 through the intake port 210 and finally discharged outwards through the exhaust port 220. This constitutes the airflow from the intake port 210 to the exhaust port 220.
[0062] The air guide component 300 forms a through-flow air duct. This air duct connects the slag storage chamber 110 of the slag box 100 and the exhaust port 220 of the gas source device 200. The arrangement of the air guide component 300 and the air duct allows for greater flexibility in the relative orientation of the gas source device 200 and the slag box 100 during assembly. That is, the gas source device 200 and the slag box 100 can be arbitrarily configured according to actual needs. Furthermore, the structural parameters of the air guide component 300 and the air duct are rationally designed and adapted. In addition, the air guide component 300 and the air duct can guide almost all of the gas discharged from the exhaust port 220 (except for intentionally diverted gas) into the slag storage chamber 110 of the slag box 100, ensuring sufficient gas volume. Furthermore, the air guide section and air guide duct can adjust the gas velocity and flow direction by changing their structural parameters, such as the extension direction and flow cross-sectional area, so that the gas velocity and flow direction entering the slag storage chamber 110 are more suitable.
[0063] Specifically, when the opening 111 of the slag box 100 is set upwards as described above, the air source device 200 can be specifically set above the slag box 100. The exhaust port 220 of the air source device 200 can be set directly downwards. Alternatively, the exhaust port 220 can be set at an angle relative to the vertical direction. In this case, the air guiding component 300 includes a first air guiding section 310. The air guiding duct section located in the first air guiding section 310 is the first air guiding section 311. The first air guiding section 311 extends vertically. The first air guiding section 311 can first adapt to the orientation of the exhaust port 220 and guide the gas downwards to gradually approach the slag box 100.
[0064] The air outlet of the first air guide section 311 can be set directly downward so that the gas can be directly sent into the slag storage chamber 110 through the opening 111.
[0065] Alternatively, when the vertical projection of the first air guide section 310 falls within the opening 111 and is offset to one side within the slag box 100, the outlet end of the first air guide section 311 can be slightly tilted and directed towards the inner side of the slag box 100. This ensures that more gas flows directly from the first air guide section 311 into the slag storage chamber 110, and that the gas has a longer flow path within the slag storage chamber 110.
[0066] If the slag material has a downward falling path into the slag box 100, and the orthographic projections of the first air guide section 311 and the falling path along the horizontal plane overlap to a certain extent, the side wall of the first air guide section 310 can further be provided with a side hole facing the falling path. This side hole can also discharge gas outward. In this way, the slag material can be pre-cooled and pre-dried simultaneously as it falls downward into the slag box 100, which further helps to improve the efficiency of heat dissipation and drying.
[0067] The first air guide section 311 can be directly extended into the slag storage chamber 110 to ensure that the air outlet of the first air guide section 311 is located inside the slag storage chamber 110, so as to minimize the loss of gas to the outside.
[0068] Alternatively, the first air guide section 311 mentioned above can also be located outside the slag box 100, for example, suspended above the opening 111. In this case, a certain gap may be reserved between the air outlet end of the first air guide section 311 and the opening 111.
[0069] Based on this, the air guiding component 300 may further include a second air guiding section 320 located below the first air guiding section 310. The air duct section located in the second air guiding section 320 is the second air guiding section 321. The slag box 100 and / or the second air guiding section 320 have a first shell plate 322, through which a first air inlet 323 is provided. The second air guiding section 321 connects to the first air guiding section 311 and connects to the slag storage chamber 110 through the first air inlet 323.
[0070] Among them, such as Figure 9 As shown, the orthographic projection of the second air guide section 320 along the horizontal plane is offset from the orthographic projection of the slag box 100 along the horizontal plane. In this case, the second air guide section 320 can overlap the slag box 100. Furthermore, the second air guide section 320 is provided with the aforementioned first shell plate 322 and first air vent 323. At least the first shell plate 322 of the second air guide section 320 is exposed outside the slag storage chamber 110, and the first air vent 323 is positioned facing the opening 111. In this case, after the gas from the second air guide section 311 is discharged outward through the first air vent 323, the heat of the slag material in the slag storage chamber 110 can be carried outward from the opening.
[0071] Or, such as Figures 1 to 8 As shown, the orthographic projection of the second air guide section 320 along the horizontal plane at least partially overlaps with the orthographic projection of the slag box 100 along the horizontal plane, so as to guide the gas of the first air guide section 311 to a depth in the slag storage chamber 110.
[0072] Specifically, the second air guide 320 can be externally mounted on the slag box 100 and located beside the slag box 100. In this case, if the second air guide 320 independently encloses and defines the second air guide section 321, then the sidewalls of the second air guide 320 and the slag box 100 that are close to each other constitute the aforementioned first shell plate 322. If the second air guide 320 is generally in the shape of a cover and together with the near sidewall of the slag box 100 encloses and defines the second air guide section 321, then the corresponding sidewall of the slag box 100 independently constitutes the aforementioned first shell plate 322.
[0073] Alternatively, the second air guide 320 can be built into the slag box 100, that is, at least partially inserted into the slag storage cavity 110. Specifically, it can be inserted into the slag box 100 through the opening 111. Or it can be inserted into the slag box 100 through another separately opened opening. In this case, whether the second air guide 320 separately defines the second air guide section 321, or it is enclosed and defined by the side walls close to the slag box 100, the side walls of the second air guide 320 separately constitute the aforementioned first shell plate 322.
[0074] The second air guide 320 is generally offset to one side within the slag box 100. In this case, if the slag box 100 is defined to have a proximal shell wall close to the second air guide 320 and a distal shell wall away from the second air guide 320, the side wall of the second air guide 320 away from the proximal shell wall and towards the distal shell wall defines the aforementioned first shell plate 322.
[0075] When the second air guide 320 is built into the slag box 100 as described above, it can be entirely built into the slag box 100 and installed by means of a structure provided on the bottom wall and / or side wall of the slag box 100.
[0076] Alternatively, it could be partially integrated within the slag box 100. In this case, as... Figures 7 to 8 As shown, the second air guide 320 may include a first part built into the slag box 100 and a second part external to the slag box 100. The second part extends generally along the horizontal plane, so that the second air guide 320 can overlap the opening 111 of the slag box 100. Only the first part extends into the slag storage cavity 110.
[0077] Furthermore, when the slag storage assembly is assembled into a beverage-making device, and a water collection tray protrudes forward from the lower part of the front panel of the device's casing, the second portion of the second air guide 320 can extend below the water collection tray and support it upwards. This improves the stability of the water collection tray's installation while minimizing the additional space occupied by the second air guide 320. It also facilitates the stable installation of the second air guide 320 using the water collection tray and the front panel of the casing.
[0078] The specific shape of the first shell plate 322 mentioned above is not limited. The first air vent 323 can be specifically adjusted to fit the shape of the first shell plate 322. For example, it can be, but is not limited to:
[0079] The first shell plate 322 is gradually inclined downwards from the opening 111. The first air vent 323 is located in the upper region of the first shell plate 322. Due to the aforementioned inclination of the first shell plate 322, the opening of the first air vent 323 faces downwards. By placing the first air vent 323 in the upper region of the first shell plate 322, the gas can be blown towards the upper surface of the slag. This helps to maximize the flow path of the gas discharged through the first air vent 323 within the slag storage chamber 110. This ensures that more slag within the slag storage chamber 110 is cooled and dried by the gas.
[0080] Alternatively, the first shell plate 322 is inclined from top to bottom towards the opening 111. The first air vent 323 is located in the lower region of the first shell plate 322. Due to the aforementioned inclination of the first shell plate 322, the opening of the first air vent 323 faces upwards. By placing the first air vent 323 in the lower region of the first shell plate 322, slag can be blown upwards from the bottom. When the flow rate of gas blown outwards from the first air vent 323 is sufficient, the slag can be turned over from the bottom outwards by the gas. This, in particular, allows for heat dissipation and drying of slag in its stacked state from the inside out.
[0081] Furthermore, the air duct is equipped with a grid structure at least in the air guide section near the slag storage chamber 110. Specifically, the grid structure can be located between, for example, the outlet end of the first air guide section 310 and the inlet end of the second air guide section 320. And / or the grid structure can be located at the first air outlet 323. The grid structure can divide a large opening into at least two smaller openings. In this way, the flowing gas can be dispersed to a certain extent. For example, when a grid structure is provided at the first air outlet 323, the gas entering the slag storage chamber 110 can be dispersed into diffused air, which helps to increase the area of the gas blowing onto the slag material, ultimately helping to optimize heat dissipation and drying effects.
[0082] Furthermore, this utility model also provides a brewing device 500. The brewing device 500 includes a brewing component and a residue storage component. It should be noted that the detailed structure of the residue storage component within the brewing device 500 can be referred to the above-described embodiments of the residue storage component, and will not be repeated here. Since the above-described residue storage component is used in the brewing device 500 of this application, the embodiments of the brewing device 500 of this application include all the technical solutions of all the embodiments of the above-described residue storage component, and the achieved technical effects are also completely the same, and will not be repeated here.
[0083] Specifically, the brewing device 500 may also include a brewing assembly. The brewing assembly includes a brewing tank 510 for brewing beverages. After the brewing tank 510 completes one brewing operation, any remaining residue inside needs to be discharged.
[0084] At this time, the brewing tank 510 is generally suspended above the slag box 100. The air source device 200 can be installed adjacent to the brewing tank 510. Furthermore, the air intake 210 of the air source device 200 is positioned towards the brewing tank 510. In this way, the air intake 210 of the air source device 200 can draw a large amount of hot air generated at the brewing tank 510 into the air duct. The air duct has sufficient extension length. Furthermore, the air guide component 300 can be provided with a certain thermal conductivity. For example, the air guide component 300 can be made of, for example, a metal material. In this way, the hot air can be sufficiently cooled after entering the air duct and before entering the slag storage chamber 110, forming a normal temperature or low temperature airflow, sufficient to dissipate heat and dry the slag material in the slag storage chamber 110.
[0085] Furthermore, this utility model also provides a body 600. The body 600 includes a casing and may further include a slag storage component or a brewing device 500. It should be noted that the detailed structure of the brewing device 500 or the slag storage component within the body 600 can be referred to the embodiments of the brewing device 500 or the slag storage component described above, and will not be repeated here. Since the aforementioned brewing device 500 or slag storage component is used in the body 600 of this application, the embodiments of the body 600 of this application include all the technical solutions of all embodiments of the brewing device 500 or the slag storage component, and the achieved technical effects are completely the same, and will not be repeated here.
[0086] Specifically, the aforementioned body 600 includes a housing. An installation cavity is formed inside the housing. The aforementioned slag storage assembly or the brewing device 500 containing the slag storage assembly is housed within the housing.
[0087] The housing can similarly include a base plate, a top plate, and side plates. The aforementioned air-guiding component 300 can similarly define all the air ducts. Alternatively, at least a portion of the air ducts may be defined by the air-guiding component 300 and the housing together. For example... Figures 1 to 9In the structure shown, the first air guide 310 is generally in the shape of a cover. The first air guide 310 covers the side panel of the housing and together with the side panel of the housing, it encloses and defines the first air guide section 311.
[0088] In addition, the casing may also have an air outlet 610. The air outlet 610 is generally located on the bottom plate, rear panel, or side panels of the casing. The air outlet 610 is generally avoided on the front panel of the casing to prevent the airflow from affecting the user.
[0089] Therefore, the slag storage assembly also includes an air outlet component 400. The air outlet component 400 is formed to connect the slag storage chamber 110 and the air outlet 610. And / or the air outlet component 400 is formed to connect the air guide duct and the air outlet 610. That is, the air outlet duct can draw gas from the slag storage chamber 110 outwards through the air outlet 610. And / or the air outlet duct can directly draw out a portion of the gas in the air guide duct that has not flowed through the slag storage chamber 110 outwards through the air outlet 610. And / or the air outlet duct can draw out gas that has flowed through the slag storage chamber 110 and then returned to the air guide duct outwards through the air outlet 610.
[0090] Specifically, when the air guide component 300, as described above, includes a first air guide section 310 and a second air guide section 320, and the air outlet 610 is further located at the bottom of the housing and below the first air guide section 311, then the air outlet component 400 includes a first air outlet section 410. The air duct section of the first air outlet section 410 is the first air outlet section 411. The first air outlet section 410 is located beside the slag box 100. The first air outlet section 411 connects the first air guide section 311 and the air outlet 610. The first air outlet section 410 can be located below the common area of the first air guide section 310 and the second air guide section 320, and directly communicates with the second air guide section 320. This facilitates the extraction of gas returning from the slag storage chamber 110 to the second air guide section 320 via the first air outlet section 411 to the air outlet 610. Alternatively, the first air outlet section 410 can be located below the common area of the first air guide section 310. It can be set independently of the second air guide section 320. It helps to draw excess gas in the first air guide section 310 to the air outlet 610 through the first air outlet section 411.
[0091] When, as described above, the second air guide 320 includes a first part and a second part, and overlaps the slag box 100, the first air outlet 410 can be directly integrally formed with the second air guide 320. Alternatively, the first air outlet 410 can be directly integrally formed with the slag box 100. For example... Figures 7 to 8 Taking the structure shown as an example, the first air outlet 410 can be directly integrally formed with the slag box 100. And as... Figures 3 to 5As shown, when the first portion of the second air guide 320 is inserted into the slag box 100, at least the portion of the slag box 100 that forms the proximal shell wall constitutes the aforementioned first air outlet 410. At this time, the first portion of the second air guide 320 together with the shell plate on the side opposite to the first shell plate 322 and the proximal shell wall of the slag box 100 encloses and defines the first air outlet section 411.
[0092] And / or, the air outlet 610 is located on the side of the slag box 100 away from the air guide duct. That is, the air outlet 610 is located adjacent to the far side shell wall of the slag box 100. In this case, the air outlet component 400 includes a second air outlet section 420. The air duct section located in the second air outlet section 420 is called the second air outlet section 421. The second air outlet section 420 is located on the side of the slag box 100 away from the air guide duct. The second air outlet section 420 and / or the slag box 100 have a second shell plate 422. The second shell plate 422 has a second air outlet 423 extending through it. The second air outlet section 421 is connected to the slag storage chamber 110 through the second air outlet 423.
[0093] like Figure 4 As shown, the portion of the slag box 100 closest to its distal shell wall directly forms the second air outlet 420. In this case, the area of the opening 111, particularly far from the air guide component 300, forms the second air vent 423. That is, the gas inside the slag storage chamber 110 can flow directly outward through the opening 111 and ultimately into the air outlet 610.
[0094] Or such as Figure 5 As shown, the slag box 100 directly forms a second shell plate 422 at least near its distal shell wall. A second air vent 423 is opened at the second shell plate 422. That is, the gas in the slag storage chamber 110 can flow out directly through the second air vent 423 and eventually flow into the air outlet 610.
[0095] Of course, besides the aforementioned partial structure of the slag box 100 constituting the second air outlet 420, in other embodiments, the second air outlet 420 may also include other channel structures located outside the slag box 100. These channel structures can guide the gas discharged outward through the slag storage chamber 110 to the air outlet 610. Specific structures are not limited.
[0096] Furthermore, this utility model also provides a beverage-making device. This beverage-making device includes a residue storage component and a brewing device 500 or a body 600. It should be noted that the detailed structure of the residue storage component, brewing device 500, or body 600 within the beverage-making device can be referred to the embodiments of the residue storage component, brewing device 500, or body 600 described above, and will not be repeated here. Since the beverage-making device of this application uses the aforementioned residue storage component, brewing device 500, or body 600, the embodiments of the beverage-making device of this application include all the technical solutions of all embodiments of the aforementioned residue storage component, brewing device 500, or body 600, and the achieved technical effects are also completely the same, and will not be repeated here.
[0097] The above description is only a preferred embodiment of the present utility model and does not limit the patent scope of the present utility model. All equivalent structural transformations made under the inventive concept of the present utility model using the contents of the present utility model specification and drawings, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present utility model.
Claims
1. A slag storage assembly, characterized in that, include: A slag box forms an open slag storage cavity, the opening being used to receive slag material; Air supply device, having an exhaust port for discharging airflow outward; as well as, An air guide component is disposed between the slag box and the air source device, and forms an air guide duct connecting the slag storage chamber and the exhaust port, so that the airflow discharged outward through the exhaust port passes through the slag storage chamber.
2. The slag storage assembly as described in claim 1, characterized in that, The opening faces upwards, and the gas source device is located above the slag box; The air guiding component includes a first air guiding section, and the air guiding duct located in the duct section of the first air guiding section is the first air guiding section, which extends in the vertical direction.
3. The slag storage assembly as described in claim 2, characterized in that, The air guiding component also includes a second air guiding part located below the first air guiding part. The air guiding duct section located in the second air guiding part is the second air guiding section. The slag box and / or the second air guiding part has a first shell plate. The first shell plate is provided with a first air outlet. The second air guiding section is connected to the first air guiding section and is connected to the slag storage chamber through the first air outlet.
4. The slag storage assembly as described in claim 3, characterized in that, The second air guide section has the first shell plate and is provided with the first air outlet; The second air guide is connected to the slag box, and at least the first shell plate is exposed outside the slag storage cavity, with the first air outlet facing the opening.
5. The slag storage assembly as described in claim 3, characterized in that, The second air guide section has the first shell plate and is provided with the first air outlet; The second air guide section overlaps with the slag box, and at least the first shell plate extends into the slag storage cavity through the opening.
6. The slag storage assembly as described in claim 3, characterized in that, The first shell plate is gradually inclined from top to bottom in a direction away from the opening, and the first air vent is located in the upper region of the first shell plate; or, The first shell plate is inclined from top to bottom towards the opening, and the first air vent is located in the lower part of the first shell plate.
7. The slag storage assembly as described in claim 1, characterized in that, The air duct is provided with a grid structure at least in the air guide section near the slag storage chamber.
8. A brewing device, characterized in that, include: A brewing assembly, the brewing assembly including a brewing tank for brewing beverages; as well as, The slag storage assembly as described in any one of claims 1 to 7, wherein the gas source device further comprises an air intake for drawing airflow inward, the air intake being disposed toward the brewing tank.
9. An organism, characterized in that, include: The housing has a mounting cavity; and, The slag storage assembly as described in any one of claims 1 to 7 or the brewing device as described in claim 8, wherein the slag storage assembly is housed within the housing.
10. The body as described in claim 9, characterized in that, At least a portion of the housing and the air guide component together enclose and define the air guide duct.
11. The body as described in claim 9, characterized in that, The casing is provided with an air outlet; The slag storage assembly further includes an air outlet component, which forms an air outlet duct connecting the slag storage chamber and the air outlet; and / or the air outlet component forms an air outlet duct connecting the air guide duct and the air outlet.
12. The body as described in claim 11, characterized in that, The opening faces upwards, and the air source device is located above the slag box; the air guide component includes: A first air guide section, wherein the air guide duct is located in the section of the first air guide section as a first air guide segment, and the first air guide segment extends vertically; and... The second air guide is located below the first air guide. The air guide duct section located in the second air guide is the second air guide section. The slag box and / or the second air guide has a first shell plate that is close to each other. The first shell plate is provided with a first air outlet. The second air guide section is connected to the first air guide section and is connected to the slag storage chamber through the first air outlet. The air outlet is located at the bottom of the housing and below the first air guide section. The air outlet component includes a first air outlet section. The air outlet duct section located in the first air outlet section is the first air outlet section. The first air outlet section is located on the side of the slag box. The first air outlet section connects the first air guide section and the air outlet.
13. The body as described in claim 11, characterized in that, The air outlet is located on the side of the slag box away from the air guide duct; The air outlet component includes a second air outlet section, and the air outlet duct section located in the second air outlet section is the second air outlet section. The second air outlet section is located on the side of the slag box away from the air guide duct. The second air outlet section and / or the slag box have a second shell plate, and the second shell plate is provided with a second air inlet. The second air outlet section is connected to the slag storage chamber through the second air inlet.
14. A beverage preparation device, characterized in that, include: The slag storage assembly as described in any one of claims 1 to 7; or, The brewing device as described in claim 8; or, The body as described in any one of claims 9 to 13.