Charging barrel turbulent flow structure and beverage making machine
By setting ribs and stirring components on the side wall of the receiving cavity of the material cylinder assembly, the problem of material stratification in the beverage making machine is solved, the mixing uniformity and stirring efficiency are improved, the quality of the beverage is ensured, and the intelligent control of the equipment is realized.
Patent Information
- Application Number
- CN202520444995.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-13
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-03-13
AI Technical Summary
In traditional beverage making machines, materials are prone to stratification or uneven mixing in the barrel, leading to unstable beverage quality, especially when high viscosity or multiple materials are mixed.
Ribs are provided on the side wall of the receiving cavity of the material cylinder assembly. Combined with the stirring assembly, it is designed as a modular structure. The ribs intersect with the stirring direction and form an arc at the connection. A locking component is provided to facilitate disassembly and fixation.
It improves the uniformity of material mixing and stirring efficiency, ensures beverage quality and taste, reduces maintenance costs, enhances the versatility and adaptability of the equipment, and realizes intelligent control.
Smart Images

Figure CN223861677U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of beverage manufacturing machine technology, and in particular to a material cylinder turbulence structure and a beverage manufacturing machine. Background Technology
[0002] In the beverage manufacturing process, the uniformity of material mixing directly affects the quality of the final product. Traditional beverage manufacturing machines typically use a smooth inner wall design for the material cylinder. Due to the lack of effective flow-dispersing structures, material stratification or uneven mixing easily occurs as it flows within the cylinder, leading to inconsistent density, taste, and appearance of the final product. This problem is particularly pronounced when dealing with high-viscosity materials or mixtures of multiple materials. Utility Model Content
[0003] Therefore, it is necessary to provide a material barrel turbulence structure and a beverage making machine to address the problems of material stratification or uneven mixing that are prone to occur in traditional beverage making machines.
[0004] A material cylinder turbulence structure for a beverage making machine includes: a frame with a mounting groove; a stirring assembly disposed on the frame, at least a portion of which is located above the mounting groove; and a material cylinder assembly detachably disposed on the frame and located at the mounting groove, the material cylinder assembly covering at least a portion of the stirring assembly, the material cylinder assembly having a receiving cavity, and the material cylinder assembly having protruding ribs located on the sidewall of the receiving cavity.
[0005] The first aspect of this application discloses a material barrel turbulence structure. By setting ribs on the side wall of the receiving cavity of the material barrel assembly, the material flow can be effectively disturbed, increasing the turbulence effect of the material during the stirring process, thereby improving the mixing uniformity of the material and ensuring the quality and taste of the beverage. At least a portion of the stirring assembly is located above the mounting groove and cooperates with the receiving cavity of the material barrel assembly. The design of the ribs can enhance the stirring effect of the stirring assembly on the material, improve stirring efficiency, and shorten the beverage making time. The material barrel assembly covers at least a portion of the stirring assembly and cooperates with the mounting groove of the frame, improving the overall stability of the equipment. The rib design is simple and easy to manufacture. At the same time, the modular design of the material barrel assembly and the stirring assembly facilitates disassembly and maintenance, reducing the maintenance cost and time of the equipment. In addition, the design of the ribs can adapt to the mixing requirements of different materials. Whether it is a high-viscosity or low-viscosity material, uniform mixing can be achieved through the turbulence effect of the ribs, improving the versatility and adaptability of the equipment.
[0006] In one embodiment, the length direction of the protruding rib intersects with the stirring direction of the stirring assembly. By intersecting the stirring direction of the stirring assembly with the length direction of the protruding rib, the material flow can be more effectively disrupted, increasing the turbulence effect of the material during the stirring process, thereby further improving the mixing uniformity of the material, ensuring the quality and taste of the beverage, and improving the stirring efficiency.
[0007] In one embodiment, the horizontal plane of the protrusion within the receiving cavity is higher than the maximum working height of the stirring assembly within the receiving cavity. This design, by having the protrusion's horizontal plane higher than the stirring assembly's maximum working height, effectively disrupts materials located above the stirring assembly, preventing uneven mixing or adhesion to the walls. Simultaneously, the protrusion blocks splashed material generated during stirring, reducing material loss and keeping the equipment clean. The combined action of the stirring assembly and the protrusion creates multi-layered turbulence within the receiving cavity, improving the uniformity of material mixing.
[0008] In one embodiment, the connection between the protruding rib and the side wall of the receiving cavity forms an arc. This arc-shaped connection prevents material residue, facilitates cleaning of the material cylinder assembly, and maintains equipment hygiene. The arc-shaped connection also reduces material adhesion, prevents material from sticking to the walls, reduces material waste, and improves material utilization. Furthermore, the arc-shaped connection reduces turbulent resistance, allowing for smoother material flow and improving mixing efficiency.
[0009] In one embodiment, a locking component is further included to fix the barrel assembly to the frame. The locking component is disposed on the frame, and at least a portion of the barrel assembly is detachably connected to the locking component. The locking component is rotatable relative to the frame and has at least a first position and a second position relative to the frame. Switching from the first position to the second position separates the barrel assembly from the locking component. The ability of the locking component to rotate relative to the frame and switch between the first and second positions makes the assembly and disassembly of the barrel assembly and the locking component more convenient, simplifying the operation process and improving work efficiency. When the barrel assembly is in the first position during operation, the locking component firmly locks the barrel assembly, ensuring its stability during stirring and preventing loosening or displacement due to vibration or impact. When the locking component switches to the second position, the barrel assembly is separated from the locking component, facilitating thorough cleaning and maintenance of the barrel assembly and reducing cleaning dead zones. The rotation and position switching design of the locking component is simple to operate, allowing users to quickly master it, improving the ease of use of the equipment and the user experience.
[0010] In one embodiment, the locking assembly has a movable groove and an opening, the movable groove communicating with the opening, the barrel assembly having a connecting buckle located on the outer side wall of the barrel assembly and within the movable groove, the locking assembly in a first position having the connecting buckle intersecting with the opening, and the locking assembly in a second position having the connecting buckle opposite to the opening.
[0011] When the locking component is in the first position, the connecting buckle and the opening are staggered, achieving a secure lock on the barrel assembly and effectively preventing loosening or displacement during mixing. When the locking component is in the second position, the connecting buckle and the opening are opposite each other, enabling quick unlocking of the barrel assembly, facilitating disassembly and cleaning, and reducing cleaning dead spots. This design simplifies locking and unlocking operations. Furthermore, the structural design of the connecting buckle being located on the outer wall of the barrel assembly optimizes the connection structure between the connecting buckle and the locking component, avoiding the creation of cleaning dead spots on the inner wall of the barrel assembly if the connecting buckle were located there.
[0012] In one embodiment, the number of connecting buckles is at least two, and the at least two connecting buckles are evenly distributed on both sides of the barrel assembly. Using at least two connecting buckles increases the connection strength between the barrel assembly and the locking assembly, preventing loosening or detachment caused by single-point force, and making the connection more stable and reliable. The even distribution of the connecting buckles on both sides of the barrel assembly allows for more even force distribution, avoiding localized stress concentration and improving the barrel assembly's resistance to deformation. When disassembling the barrel assembly, the connecting buckles on both sides can be released simultaneously, making the disassembly process more balanced and avoiding jamming or damage caused by unilateral force.
[0013] In one embodiment, the material cylinder assembly includes a material cylinder and a connecting assembly. The connecting assembly is disposed on the material cylinder and has an installation port for connecting to the mixing assembly. The material cylinder is mounted on the frame and located at the mounting slot. The installation port on the connecting assembly allows for quick and reliable connection to the mixing assembly, simplifying the assembly process and improving equipment installation efficiency. The material cylinder's mounting on the frame and its engagement with the mounting slot ensures stability of the material cylinder assembly during mixing, reducing shaking and displacement, and improving equipment operational reliability. The tight connection between the material cylinder and the mixing assembly through the installation port ensures that the mixing assembly can fully act on the material, improving mixing efficiency and uniformity. The modular design of the material cylinder assembly facilitates disassembly and installation between the material cylinder and the connecting assembly, reducing cleaning dead zones and improving the equipment's hygiene and maintenance convenience.
[0014] In one embodiment, the barrel is provided with the receiving cavity, the mounting port communicates with the receiving cavity, and at least a portion of the stirring assembly extends into the receiving cavity after passing through the mounting port. By extending the stirring assembly into the receiving cavity, it is ensured that the stirring assembly can effectively mix the materials within the receiving cavity, achieving a good mixing effect. A well-designed mounting port structure ensures a tight seal between the mounting port and the stirring assembly, preventing material leakage. Preferably, the barrel is made of a transparent material such as acrylic, allowing the user to easily observe the mixing process within the receiving cavity. Furthermore, a well-designed shape of the receiving cavity facilitates thorough cleaning of the interior, maintaining the hygiene of the equipment.
[0015] In one embodiment, the barrel is provided with a connecting slider located on the outer wall of the barrel. The frame is provided with a limiting groove located on the wall of the mounting groove. The connecting slider is adapted to the limiting groove, and the connecting slider is used to guide the barrel to be installed on the frame. The cooperation between the connecting slider and the limiting groove provides a stable connection, preventing the barrel from shaking or falling off during use. The connecting slider has a guiding function; sliding the connecting slider into the limiting groove allows for quick and convenient installation of the barrel onto the frame, simplifying the operation process. The structure of the connecting slider and the limiting groove is simple and reliable, facilitating disassembly and installation. The limiting groove guides the movement trajectory of the connecting slider, ensuring accurate alignment of the barrel during installation and guaranteeing its positional accuracy.
[0016] In one embodiment, the material cylinder is provided with a first abutment portion and a second abutment portion, which are respectively located on the outer side wall of the material cylinder and abut against the two side edges of the groove opening of the mounting groove. By having the first and second abutment portions abut against the two side edges of the groove opening, this abutment method provides stable support for the material cylinder, enabling it to withstand the weight of the material and vibrations during the mixing process, ensuring stable operation of the equipment. The fact that the first and second abutment portions are located on opposite sides of the material cylinder allows for more even force distribution, avoiding localized stress concentration. Furthermore, the method of having the first and second abutment portions abut against the two side edges of the groove opening results in relatively low manufacturing costs and simple installation steps.
[0017] A beverage making machine includes: a barrel turbulence structure as described above; a refrigeration device disposed on the barrel turbulence structure; and a control component disposed on the barrel turbulence structure, wherein the refrigeration device is electrically connected to the control component.
[0018] The second aspect of this application discloses a beverage making machine. Through the synergistic effect of the protruding ribs in the barrel's turbulence structure and the stirring components, the mixing effect of materials is significantly optimized, ensuring more uniform mixing during beverage making and improving the taste and quality of the beverage. The combination of the refrigeration device and the barrel's turbulence structure allows for rapid cooling of the materials during mixing, improving refrigeration efficiency and shortening beverage making time. The control components enable the refrigeration device to automatically adjust its operating status according to actual needs, achieving intelligent control of the beverage making process and improving the automation level and ease of operation of the equipment. Attached Figure Description
[0019] Figure 1 This is a cross-sectional view of the turbulence-causing structure of the barrel;
[0020] Figure 2 This is a 3D view of the barrel assembly;
[0021] Figure 3 This is an exploded view of the barrel assembly;
[0022] Figure 4 This is a 3D view of the material barrel;
[0023] Figure 5 This is a structural schematic diagram of the barrel assembly and the locking assembly;
[0024] Figure 6 A 3D view of the locking assembly;
[0025] Figure 7 This is a first structural schematic diagram of the barrel assembly and the frame;
[0026] Figure 8 This is a second structural schematic diagram of the barrel assembly and the frame;
[0027] Figure 9 A 3D view of a beverage making machine.
[0028] The correspondence between the reference numerals and the component names is as follows:
[0029] 1 frame, 101 mounting slot, 102 limit slide;
[0030] 2. Stirring components;
[0031] 3. Barrel assembly, 31. Barrel, 311. Rib, 312. Connecting buckle, 313. Connecting slider, 314. First abutment part, 315. Second abutment part, 32. Connecting assembly, 301. Receiving cavity, 302. Mounting port;
[0032] 4. Locking assembly, 401. Movable slot, 402. Opening. Detailed Implementation
[0033] To better understand the above-mentioned objectives, features, and advantages of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0034] Many specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways different from those described herein, and therefore the scope of protection of the invention is not limited to the specific embodiments disclosed below.
[0035] The following description, with reference to the accompanying drawings, illustrates some embodiments of the material barrel turbulence structure and beverage manufacturing machine of the present invention.
[0036] Example 1, such as Figures 1 to 9 As shown, this embodiment discloses a material barrel turbulence structure for a beverage making machine, including: a frame 1, the frame 1 having a mounting groove 101; a stirring assembly 2, the stirring assembly 2 being disposed on the frame 1, at least a portion of the stirring assembly 2 being located above the mounting groove 101; and a material barrel assembly 3, the material barrel assembly 3 being detachably disposed on the frame 1 and located at the mounting groove 101, the material barrel assembly 3 covering at least a portion of the stirring assembly 2, the material barrel assembly 3 having a receiving cavity 301, and the material barrel assembly 3 having protruding ribs 311, the protruding ribs 311 being located on the side wall of the receiving cavity 301.
[0037] The first aspect of this application discloses a material barrel turbulence structure. By providing protruding ribs 311 on the side wall of the receiving cavity 301 of the material barrel assembly 3, the material flow can be effectively disturbed, increasing the turbulence effect of the material during the stirring process, thereby improving the mixing uniformity of the material and ensuring the quality and taste of the beverage. At least a portion of the stirring assembly 2 is located above the mounting groove 101 and cooperates with the receiving cavity 301 of the material barrel assembly 3. The design of the protruding ribs 311 can enhance the stirring effect of the stirring assembly 2 on the material, improve stirring efficiency, and shorten the beverage making time. The material barrel assembly 3 covers at least a portion of the stirring assembly 2 and cooperates with the mounting groove 101 of the frame 1, improving the overall stability of the equipment. The design of the protruding ribs 311 is simple and easy to manufacture. At the same time, the modular design of the material barrel assembly 3 and the stirring assembly 2 facilitates disassembly and maintenance, reducing the maintenance cost and time of the equipment. In addition, the design of the protruding ribs 311 can adapt to the mixing requirements of different materials. Whether it is a high-viscosity or low-viscosity material, uniform mixing can be achieved through the turbulence effect of the protruding ribs 311, improving the versatility and adaptability of the equipment.
[0038] like Figure 1As shown, in addition to the features of the above embodiments, this embodiment further specifies that the length direction of the protruding rib 311 intersects with the stirring direction of the stirring component 2. By intersecting the stirring direction of the stirring component 2 with the length direction of the protruding rib 311, the material flow can be more effectively disturbed, increasing the turbulence effect of the material during the stirring process, thereby further improving the mixing uniformity of the material, ensuring the quality and taste of the beverage, and improving the stirring efficiency.
[0039] like Figure 1 As shown, in addition to the features of the above embodiments, this embodiment further specifies that the horizontal height of the protruding rib 311 within the receiving cavity 301 is higher than the maximum working height of the stirring assembly 2 within the receiving cavity 301. By ensuring that the horizontal height of the protruding rib 311 within the receiving cavity 301 is higher than the maximum working height of the stirring assembly 2 within the receiving cavity 301, this design effectively disrupts the high-level material located above the stirring assembly 2, preventing uneven mixing or adhesion to the walls. Simultaneously, the protruding rib 311 can block splashed material generated during stirring by the stirring assembly 2, reducing material loss and keeping the equipment clean. The combined action of the stirring assembly 2 and the protruding rib 311 can create multi-layered turbulence within the receiving cavity 301, improving the mixing uniformity of the material.
[0040] like Figure 3 and Figure 4 As shown, in addition to the features of the above embodiments, this embodiment further specifies that the connection between the protruding rib 311 and the side wall of the receiving cavity 301 is curved. By forming a curved connection between the protruding rib 311 and the side wall of the receiving cavity 301, material residue can be avoided, making it easier for the user to clean the material cylinder assembly 3 and maintain the hygiene of the equipment. The curved connection can reduce material adhesion, prevent material from sticking to the wall, reduce material waste, and improve material utilization. Furthermore, the curved connection can reduce turbulent resistance, making material flow smoother and improving mixing efficiency.
[0041] like Figure 5 and Figure 7As shown, in addition to the features of the above embodiments, this embodiment further includes a locking component 4. The locking component 4 is used to fix the barrel assembly 3 onto the frame 1. The locking component 4 is disposed on the frame 1, and at least a portion of the barrel assembly 3 is detachably connected to the locking component 4. The locking component 4 is rotatable relative to the frame 1 and has at least a first position and a second position relative to the frame 1. The locking component 4 switches from the first position to the second position, separating the barrel assembly 3 from the locking component 4. The ability of the locking component 4 to rotate relative to the frame 1 and switch between the first and second positions makes the assembly and disassembly of the barrel assembly 3 and the locking component 4 more convenient, simplifying the operation process and improving work efficiency. When the barrel assembly 3 is in the first position during operation, the locking component 4 can firmly lock the barrel assembly 3, ensuring its stability during stirring and preventing loosening or displacement due to vibration or impact. When the locking component 4 switches to the second position, the barrel assembly 3 is separated from the locking component 4, facilitating thorough cleaning and maintenance of the barrel assembly 3 and reducing cleaning dead zones. The rotation and position switching design of locking component 4 is simple to operate, making it easy for users to quickly master and improving the ease of use of the device and the user experience.
[0042] like Figure 5 and Figure 6 As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the locking component 4 is provided with a movable groove 401 and an opening 402, the movable groove 401 and the opening 402 are connected, the barrel assembly 3 is provided with a connecting buckle 312, the connecting buckle 312 is located on the outer wall of the barrel assembly 3, and the connecting buckle 312 is located in the movable groove 401. When the locking component 4 is in the first position, the connecting buckle 312 and the opening 402 are staggered. When the locking component 4 is in the second position, the connecting buckle 312 and the opening 402 are opposite to each other. By the locking component 4 being in the first position with the connecting buckle 312 and the opening 402 staggered, the barrel assembly 3 is firmly locked, effectively preventing the barrel assembly 3 from loosening or shifting during the stirring process; when the locking component 4 is in the second position with the connecting buckle 312 and the opening 402 opposite to each other, the barrel assembly 3 is quickly unlocked, which facilitates the disassembly and cleaning of the barrel assembly 3 and reduces cleaning dead corners. This design simplifies the locking and unlocking operations. In addition, the structural design of the connecting buckle 312 being located on the outer wall of the barrel assembly 3 optimizes the connection structure between the connecting buckle 312 and the locking assembly 4, and avoids the connecting buckle 312 being located on the inner wall of the barrel assembly 3, which would result in a cleaning dead corner on the inner wall of the barrel assembly 3.
[0043] like Figure 3 and Figure 4As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the number of connecting buckles 312 is at least two, and the at least two connecting buckles 312 are evenly distributed on both sides of the barrel assembly 3. By using at least two connecting buckles 312, the connection strength between the barrel assembly 3 and the locking assembly 4 can be improved, preventing loosening or detachment caused by single-point force, making the connection more stable and reliable. The even distribution of connecting buckles 312 on both sides of the barrel assembly 3 can make the barrel assembly 3 more evenly stressed, avoid local stress concentration, and improve the deformation resistance of the barrel assembly 3. When disassembling the barrel assembly 3, the connecting buckles 312 on both sides can be released simultaneously, making the disassembly process more balanced and avoiding jamming or damage caused by unilateral force.
[0044] like Figure 2 and Figure 3 As shown, in addition to the features of the above embodiments, this embodiment further defines: the material cylinder assembly 3 includes a material cylinder 31 and a connecting assembly 32. The connecting assembly 32 is disposed on the material cylinder 31 and has an installation port 302 for connecting with the mixing assembly 2. The material cylinder 31 is mounted on the frame 1 and located at the mounting groove 101. The mounting port 302 on the connecting assembly 32 allows for quick and reliable connection to the mixing assembly 2, simplifying the assembly process and improving equipment installation efficiency. The material cylinder 31 is mounted on the frame 1 and cooperates with the mounting groove 101, ensuring that the material cylinder assembly 3 remains stable during mixing, reducing shaking and deviation, and improving the reliability of equipment operation. The material cylinder 31 and the mixing assembly 2 are tightly connected through the mounting port 302, ensuring that the mixing assembly 2 can fully act on the material, improving mixing efficiency and mixing uniformity. The material cylinder assembly 3 adopts a modular design, facilitating disassembly and installation between the material cylinder 31 and the connecting assembly 32, reducing cleaning dead spots, and improving the hygiene performance and maintenance convenience of the equipment.
[0045] like Figure 3 As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the material cylinder 31 is provided with a receiving cavity 301, the mounting port 302 communicates with the receiving cavity 301, and at least a portion of the stirring component 2 extends into the receiving cavity 301 after passing through the mounting port 302. By extending the stirring component 2 into the receiving cavity 301, it can be ensured that the stirring component 2 can effectively mix the materials in the receiving cavity 301, achieving a good stirring effect. By reasonably designing the structure of the mounting port 302, the sealing between the mounting port 302 and the stirring component 2 can be guaranteed, preventing material leakage. Preferably, the material cylinder 31 is made of a transparent material such as acrylic, which allows the user to easily observe the mixing of materials in the receiving cavity 301. In addition, the reasonable design of the shape of the receiving cavity 301 allows the user to easily and thoroughly clean the inside of the receiving cavity 301, maintaining the hygiene of the equipment.
[0046] like Figure 2 , Figure 3 and Figure 8 As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the material cylinder 31 is provided with a connecting slider 313, which is located on the outer wall of the material cylinder 31; the frame 1 is provided with a limiting slide groove 102, which is located on the groove wall of the mounting groove 101; the connecting slider 313 is adapted to the limiting slide groove 102; and the connecting slider 313 is used to guide the material cylinder 31 to be installed on the frame 1. The cooperation between the connecting slider 313 and the limiting slide groove 102 provides a stable connection, preventing the material cylinder 31 from shaking or falling off during use. The connecting slider 313 has a guiding function; by sliding the connecting slider 313 into the limiting slide groove 102, the material cylinder 31 can be quickly and easily installed on the frame 1, simplifying the operation process. The structure of the connecting slider 313 and the limiting slide groove 102 is simple and reliable, facilitating disassembly and installation. The limiting groove 102 can guide the movement trajectory of the connecting slider 313, ensuring that the material cylinder 31 can be accurately aligned during installation and guaranteeing the accuracy of its position.
[0047] like Figure 2 , Figure 7 and Figure 8 As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the material cylinder 31 is provided with a first abutting portion 314 and abutting portion 315, the first abutting portion 314 and the second abutting portion 315 are respectively located on the outer side wall of the material cylinder 31, and the first abutting portion 314 and the second abutting portion 315 respectively abut against the two side edges of the groove opening of the mounting groove 101. By having the first abutting portion 314 and the second abutting portion 315 abut against the two side edges of the groove opening of the mounting groove 101 respectively, this abutting method can provide stable support for the material cylinder 31, enabling it to withstand the weight of the material and the vibration during the mixing process, ensuring the stable operation of the equipment. The first abutting portion 314 and the second abutting portion 315 are respectively located on both sides of the material cylinder 31, which can make the force on the material cylinder 31 more uniform and avoid local stress concentration. In addition, the method of having the first abutting portion 314 and the second abutting portion 315 abut against the two side edges of the groove opening of the mounting groove 101 respectively has a relatively low manufacturing cost and a simple installation process.
[0048] Example 2, as Figures 1 to 9 As shown, this embodiment discloses a beverage making machine, including: a barrel turbulence structure as described above; a refrigeration device disposed on the barrel turbulence structure; and a control component disposed on the barrel turbulence structure, wherein the refrigeration device is electrically connected to the control component.
[0049] The second aspect of this application discloses a beverage making machine. Through the synergistic effect of the protruding ribs 311 in the barrel's turbulence structure and the stirring component 2, the mixing effect of materials is significantly optimized, ensuring more uniform mixing during beverage making and improving the taste and quality of the beverage. The combination of the refrigeration device and the barrel turbulence structure allows for rapid cooling of the materials during mixing, improving refrigeration efficiency and shortening beverage making time. The control components enable the refrigeration device to automatically adjust its operating state according to actual needs, achieving intelligent control of the beverage making process and improving the automation level and ease of operation of the equipment.
[0050] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0051] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.
Claims
1. A material barrel turbulence-disrupting structure for use in a beverage making machine, characterized in that, include: A frame (1) is provided with a mounting slot (101); A stirring assembly (2) is disposed on the frame (1), and at least a portion of the stirring assembly (2) is located above the mounting groove (101); A barrel assembly (3) is detachably mounted on the frame (1) and located in the mounting groove (101). The barrel assembly (3) covers at least a portion of the stirring assembly (2). The barrel assembly (3) has a receiving cavity (301) and a protruding rib (311) located on the side wall of the receiving cavity (301).
2. The barrel turbulence structure according to claim 1, characterized in that, The length direction of the protruding rib (311) intersects with the stirring direction of the stirring assembly (2); And / or the horizontal height of the protruding rib (311) in the receiving cavity (301) is higher than the maximum working height of the stirring assembly (2) in the receiving cavity (301); And / or the connection between the protruding rib (311) and the side wall of the receiving cavity (301) forms an arc.
3. The barrel turbulence structure according to claim 1, characterized in that, It also includes a locking component (4) for fixing the barrel assembly (3) on the frame (1). The locking component (4) is disposed on the frame (1). At least a portion of the barrel assembly (3) is detachably connected to the locking component (4). The locking component (4) is rotatable relative to the frame (1) and has at least a first position and a second position relative to the frame (1). The locking component (4) switches from the first position to the second position to separate the barrel assembly (3) from the locking component (4).
4. The barrel turbulence structure according to claim 3, characterized in that, The locking assembly (4) is provided with a movable groove (401) and an opening (402). The movable groove (401) communicates with the opening (402). The barrel assembly (3) is provided with a connecting buckle (312). The connecting buckle (312) is located on the outer side wall of the barrel assembly (3) and is located in the movable groove (401). When the locking assembly (4) is in the first position, the connecting buckle (312) and the opening (402) are staggered. When the locking assembly (4) is in the second position, the connecting buckle (312) and the opening (402) are opposite to each other.
5. The barrel turbulence structure according to claim 4, characterized in that, The number of the connecting buckles (312) is at least two, and the at least two connecting buckles (312) are evenly distributed on both sides of the material cylinder assembly (3).
6. The barrel turbulence structure according to claim 1, characterized in that, The material cylinder assembly (3) includes a material cylinder (31) and a connecting assembly (32). The connecting assembly (32) is disposed on the material cylinder (31) and has an installation port (302) for connecting to the stirring assembly (2). The material cylinder (31) is mounted on the frame (1) and located at the mounting groove (101).
7. The barrel turbulence structure according to claim 6, characterized in that, The material cylinder (31) is provided with the receiving cavity (301), the mounting port (302) communicates with the receiving cavity (301), and at least a portion of the stirring assembly (2) extends into the receiving cavity (301) after passing through the mounting port (302).
8. The barrel turbulence structure according to claim 6, characterized in that, The material cylinder (31) is provided with a connecting slider (313), which is located on the outer side wall of the material cylinder (31). The frame (1) is provided with a limiting groove (102), which is located on the groove wall of the mounting groove (101). The connecting slider (313) is adapted to the limiting groove (102). The connecting slider (313) is used to guide the material cylinder (31) to be installed on the frame (1).
9. The barrel turbulence structure according to claim 6, characterized in that, The material cylinder (31) is provided with a first abutting part (314) and a second abutting part (315). The first abutting part (314) and the second abutting part (315) are respectively located on the outer side wall of the material cylinder (31). The first abutting part (314) and the second abutting part (315) abut against the two sides of the groove opening of the mounting groove (101).
10. A beverage making machine, characterized in that, include: The barrel turbulence structure as described in any one of claims 1 to 9; A refrigeration device, wherein the refrigeration device is disposed on the material cylinder turbulence structure; A control component is disposed on the barrel turbulence structure, and the refrigeration device is electrically connected to the control component.