Cooking device for wine brewing
By incorporating a cross-shaped baffle and a fan-shaped frame within the cooking tank, combined with the design of the stirring shaft and stirring blades, the problems of existing cooking tanks being able to cook only one type of raw material and uneven heating have been solved, enabling uniform cooking and efficient removal of multiple raw materials.
Patent Information
- Application Number
- CN202520063550.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-10
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2035-01-10
AI Technical Summary
Existing cooking tanks typically only cook one type of raw material, and the raw material is heated unevenly within the tank, affecting cooking efficiency.
The tank is divided into multiple chambers by a cross-shaped partition. The raw materials are separated and stirred using a fan-shaped frame and a stirring shaft. The heating is uniform through multiple stirring blades, and the multiple stirring shafts are driven by a motor to rotate synchronously. The design of the support and push plate facilitates the removal of the raw materials.
It achieves uniform heating of multiple raw materials during simultaneous cooking, improves cooking efficiency, and simplifies the process of removing raw materials.
Smart Images

Figure CN223535058U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of brewing equipment, and more specifically, it relates to a cooking device for brewing. Background Technology
[0002] Brewing refers to the process of producing alcoholic beverages through the fermentation of grains by microorganisms. The brewing process can generally be summarized as follows: maturing raw materials, adding yeast for fermentation, distillation, and condensation to obtain the finished liquor. Cooking the raw materials facilitates the hydrolysis of starch and saccharification by amylase, which is beneficial for the later fermentation process. The raw material cooking device mainly consists of a cooking tank and a steam conveying pipeline. Steam is conveyed into the tank through the steam conveying pipeline, and the steam in the tank heats and gelatinizes the raw materials.
[0003] However, existing cooking tanks typically have only one cooking chamber, which means that only one type of raw material can usually be cooked at a time. Furthermore, when cooking raw materials in a cooking tank, the raw materials tend to accumulate inside the tank, resulting in uneven heating and affecting the cooking efficiency.
[0004] Therefore, a new solution is needed to address this problem. Utility Model Content
[0005] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a cooking device for brewing.
[0006] The above-mentioned technical objective of this utility model is achieved through the following technical solution: a brewing cooking device, comprising a cooking tank and a steam pipe, wherein the cooking tank comprises an outer shell and a top cover, the top cover being threadedly connected to the inner peripheral wall of the top of the outer shell, a cross partition being fixedly connected to the inner peripheral wall of the outer shell, the cross partition dividing the interior of the outer shell into multiple receiving cavities, a fan-shaped frame being slidably connected in the vertical direction within each receiving cavity, the top of the fan-shaped frame being open, a fan-shaped opening communicating with the receiving cavity being opened at the bottom of the outer shell, the fan-shaped frame fitting against the inner wall of the fan-shaped opening, a support member for supporting the fan-shaped frame being provided on the outer bottom surface of the outer shell, multiple stirring shafts corresponding to the fan-shaped frame being rotatably connected to the top cover, the bottom end of the stirring shaft extending into the fan-shaped frame, multiple stirring blades being provided on the outer peripheral wall of the bottom end of the stirring shaft, and multiple feed pipes corresponding to the fan-shaped frame being fixedly connected to the top cover, the feed pipes being provided with valves.
[0007] Preferably, a drive gear is fixedly connected to the top outer peripheral wall of the stirring shaft, and two adjacent drive gears are connected by a driven gear. A motor is provided on the top cover, and the output end of the motor is fixedly connected to the top of one of the stirring shafts. The outer peripheral wall of the stirring shaft is provided with a mounting plate that fits against the bottom of the drive gear. The driven gear is rotatably connected between the top cover and the mounting plate. The bottom end of the feed pipe passes through the mounting plate and is correspondingly set with the sector frame.
[0008] Preferably, the support member includes a support bar slidably connected to the bottom surface of the outer shell, the support bar being used to abut against the bottom surface of the fan-shaped frame, a concave block for accommodating the sliding of the support bar being fixedly connected to the bottom surface of the outer shell, and a plurality of mounting plates with L-shaped cross sections being fixedly connected to the bottom surface of the outer shell, the inner sidewall of the mounting plate having a slot for one end of the support bar to be inserted.
[0009] Preferably, a screw is provided on one side of the concave block, and both the concave block and the sidewall of the support bar are provided with screw holes for connecting with the screw.
[0010] Preferably, the bottom surface of the mounting plate is provided with a push plate, and the top of the push plate is provided with a receiving groove for the bottom of the sector frame to be embedded. A buffer pad is fixedly connected to the inner wall of the receiving groove. When the bottom of the sector frame is embedded in the receiving groove, the horizontal height of the top surface of the sector frame is less than the horizontal height of the bottom surface of the concave block. A magnetic block is installed on the top of the push plate. The mounting plate is made of ferromagnetic metal. The push plate is fixed to the bottom surface of the mounting plate by the magnetic force of the magnetic block. Rollers are provided on the bottom surface of the push plate.
[0011] Preferably, one end of the steam pipe near the outer casing is located below the mounting plate, and the steam pipe is connected to multiple receiving cavities.
[0012] In summary, this utility model has the following beneficial effects: This solution installs a cross-shaped partition on the inner circumferential wall of the outer shell, dividing the interior of the shell into multiple accommodating cavities. Sector-shaped frames are slidably arranged within each cavity. Users can pour various raw materials into the corresponding sector-shaped frames through different feed pipes, allowing each sector-shaped frame to hold one type of raw material. Multiple raw materials can be placed inside the shell simultaneously for steaming. Steam is then delivered to the shell through a steam pipe to steam the raw materials in the multiple sector-shaped frames. Multiple stirring shafts rotate, driving the stirring blades to stir the raw materials within the sector-shaped frames, resulting in more uniform heating during steaming and increasing steaming efficiency. When the raw materials are steamed and need to be removed from the shell, the support is adjusted so that the bottom of the sector-shaped frames is not supported. The sector-shaped frames then move downwards automatically due to their own weight, moving the raw materials along with them until the frames detach from the shell through the fan-shaped opening. The sector-shaped frames containing the raw materials can then be moved to the desired location for further processing. Attached Figure Description
[0013] Figure 1 This is a partial sectional view of the present invention;
[0014] Figure 2 This is an exploded view of the outer shell and top cover of this utility model;
[0015] Figure 3 This is an exploded view of the support strip and mounting plate in this utility model;
[0016] Figure 4 for Figure 3 Enlarged schematic diagram of part A;
[0017] Figure 5 This is an exploded view of the top cover and mounting plate in this utility model;
[0018] Figure 6 This is an exploded view of the push plate and buffer pad in this utility model.
[0019] In the diagram: 1. Cooking tank; 101. Outer shell; 102. Top cover; 2. Steam pipe; 3. Cross partition; 4. Receiving cavity; 5. Sector frame; 6. Sector opening; 7. Stirring shaft; 8. Stirring blade; 9. Feed pipe; 10. Drive gear; 11. Driven gear; 12. Motor; 13. Mounting plate; 14. Support bar; 15. Concave block; 16. Mounting plate; 17. Slot; 18. Screw; 19. Push plate; 20. Receiving groove; 21. Buffer pad; 22. Magnetic block; 23. Roller. Detailed Implementation
[0020] The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0021] Example:
[0022] A brewing cooking apparatus, such as Figures 1 to 6As shown, the apparatus includes a cooking tank 1 and a steam pipe 2. The cooking tank 1 includes an outer shell 101 and a top cover 102. The top of the outer shell 101 is open. The top cover 102 is threaded to the inner circumferential wall of the top of the outer shell 101. The outer circumferential wall of the top cover 102 is machined with external threads, and the inner circumferential wall of the top of the outer shell 101 is machined with internal threads that mate with the outer circumferential wall of the top cover 102. The steam pipe 2 is welded to the outer wall of the outer shell 101. Four support feet are welded to the outer bottom surface of the outer shell 101. A cross-shaped partition 3 is welded to the inner circumferential wall of the outer shell 101. The bottom of the cross-shaped partition 3 is in contact with the inner bottom surface of the outer shell 101. The interior of the outer shell 101 is divided into four accommodating cavities 4. A sector-shaped frame 5 is slidably connected vertically within each cavity 4. The top of the sector-shaped frame 5 is open. A sector-shaped opening 6, communicating with the cavity 4, is located at the bottom of the outer shell 101. The inner wall of the sector-shaped frame 5 fits against the sector-shaped opening 6. A support member is provided on the outer bottom surface of the outer shell 101 to support the sector-shaped frame 5. Multiple stirring shafts 7, corresponding to the sector-shaped frames 5, are rotatably connected to the top cover 102. The bottom end of each stirring shaft 7 extends into the sector-shaped frame 5. The number of accommodating cavities 4, sector-shaped frames 5, sector-shaped openings 6, and stirring shafts 7 are all four. Multiple stirring blades 8 are welded to the peripheral wall. Multiple feed pipes 9, corresponding to the sector frames 5, are welded to the top cover 102. The number and position of the feed pipes 9 correspond to those of the sector frames 5. Valves are installed on the feed pipes 9. A drive gear 10 is welded to the top outer peripheral wall of the stirring shaft 7. Adjacent drive gears 10 are connected by driven gears 11. The drive gears 10 and driven gears 11 are arranged in a circular array and mesh with each other. A motor 12 is installed on the top cover 102. The output end of the motor 12 passes through the top cover 102 and connects with one of the stirring shafts. The top of the stirring shaft 7 is welded, and the outer peripheral wall of the stirring shaft 7 is fitted with a mounting plate 13 that fits against the bottom of the driving gear 10. The bottom of the driven gear 11 fits against the mounting plate 13. The mounting plate 13 fits against the inner peripheral wall of the outer shell 101. The driven gear 11 is rotatably connected between the top cover 102 and the mounting plate 13 through a rotating shaft. The bottom end of the feed pipe 9 passes through the mounting plate 13 and is correspondingly set with the sector frame 5. The bottom end of the feed pipe 9 passes through the mounting plate 13 and is welded to the mounting plate 13. The end of the steam pipe 2 near the outer shell 101 is located below the mounting plate 13, and the steam pipe 2 is connected to multiple receiving cavities 4.
[0023] The support includes a support bar 14 slidably connected to the bottom surface of the outer casing 101. The support bar 14 abuts against the bottom surface of the sector frame 5. A concave block 15 is welded to the bottom surface of the outer casing 101 to accommodate the sliding of the support bar 14. Multiple mounting plates 16 with L-shaped cross-sections are also welded to the bottom surface of the outer casing 101. There are four concave blocks 15 and four mounting plates 16. The inner sidewall of the mounting plate 16 has a slot 17 for one end of the support bar 14 to be inserted. A screw 18 is threaded to one side of the concave block 15. Both the concave block 15 and the support bar 14 have screw holes on their sidewalls for connection with the screw 18. The bottom surface of the mounting plate 16 is... The push plate 19 is detached and connected. The top of the push plate 19 has a receiving groove 20 for the bottom of the fan-shaped frame 5 to be embedded. The inner wall of the receiving groove 20 is bonded with a buffer pad 21, which is made of rubber. When the bottom of the fan-shaped frame 5 is embedded in the receiving groove 20, the horizontal height of the top surface of the fan-shaped frame 5 is less than the horizontal height of the bottom surface of the concave block 15. The top of the push plate 19 is embedded with a magnetic block 22. The mounting plate 16 is made of ferromagnetic metal. The mounting plate 16, the support bar 14 and the push plate 19 are all made of iron. The push plate 19 is fixed to the bottom surface of the mounting plate 16 by the magnetic force of the magnetic block 22. Multiple rollers 23 are installed on the bottom surface of the push plate 19 by screws.
[0024] Users can pour various raw materials into the sector-shaped frames 5 located in the receiving cavity 4 and corresponding to the feeding pipes 9 through different feeding pipes 9, so that one sector-shaped frame 5 can be used to hold one type of raw material. This allows multiple raw materials to be placed in the outer shell 101 simultaneously for steaming. At this time, one end of the support bar 14 is inserted into the slot 17, and the screw 18 is threadedly connected to the concave block 15 and the support bar 14 respectively, so that the support bar 14 supports the bottom of the sector-shaped frame 5, improving the stability of the sector-shaped frame 5 in the receiving cavity 4. When the raw materials are contained in the sector-shaped frames 5, steam is transported to the outer shell 101 through the steam pipe 2 to steam the raw materials in the four sector-shaped frames 5. The valve is closed to prevent steam from flowing out of the outer casing 101 through the feed pipe 9 when the raw materials are being cooked. This is because the end of the steam pipe 2 near the outer casing 101 is located below the mounting plate 13, and the steam pipe 2 is connected to multiple receiving cavities 4. The driving gear 10 and driven gear 11 are both located above the mounting plate 13, reducing the amount of steam flowing between the top cover 102 and the mounting plate 13 and affecting the operation of the driving gear 10 and driven gear 11. During the process of steam being transported into the outer casing 101 through the steam pipe 2, the starting motor 12 first drives one of the stirring shafts 7 connected to the output end of the motor 12, which in turn drives the driving gear 10 on the stirring shaft 7 to rotate. Two adjacent driving gears 10 are connected by driven gears 11, and the driving gears 10 and driven gears 11 are arranged in a circular array. This allows the driving gears 10 on the stirring shaft 7, connected to the output of the motor 12, to drive the driven gears 11 located on either side of them to rotate. When the driven gears 11 rotate, they drive the other driving gears 10 meshing with them and the stirring shaft 7 connected to the driving gears 10 to rotate. Thus, through the meshing connection of multiple driving gears 10 and driven gears 11, multiple stirring shafts 7 can be rotated simultaneously by a single motor 12, reducing the number of motors 12 required. Furthermore, the rotation of the stirring shaft 7 drives multiple... The stirring blades 8 rotate to stir the raw materials in the fan-shaped frame 5, making the raw materials more evenly heated during the cooking process and increasing the cooking efficiency until the raw materials are cooked. As the cooking time increases, the steam content in the outer shell 101 gradually increases, causing the air pressure in the outer shell 101 to increase. By opening the valve, some steam can be released from the outer shell 101 through the feed pipe 9. The top cover 102 can be rotated and removed so that it is not connected to the inner peripheral wall of the top of the outer shell 101. Then, by moving the top cover 102 upward, the stirring shaft 7 and stirring blades 8 can be moved, and the stirring shaft 7 and stirring blades 8 can be cleaned.
[0025] When the raw material needs to be removed from the outer shell 101 after cooking, first disassemble the screw 18 to disengage it from the screw holes on the concave block 15 and the support strip 14 respectively. Then, hold and slide the support strip 14 to move it away from the outer shell 101, so that one end of the support strip 14 disengages from the slot 17 until the support strip 14 disengages from the concave block 15. At this time, the support strip 14 does not support the outer bottom surface of the sector frame 5, and due to the weight of the sector frame 5 itself, the sector frame 5 can automatically move downward and drive the raw material inside the sector frame 5 to move. During the downward movement of the sector frame 5, it fits against the inner side wall of the mounting plate 16 until the bottom of the sector frame 5 is embedded in the receiving groove 20 on the push plate 19 and abuts against the buffer pad 21. This design allows the fan-shaped frame 5 to fall downwards onto the push plate 19, providing a cushioning effect. After the bottom of the fan-shaped frame 5 is embedded in the receiving groove 20, the push plate 19 is moved horizontally via the roller 23, preventing the magnetic block 22 on the push plate 19 from adhering to the bottom of the mounting plate 16. As the push plate 19 moves horizontally, it drives the fan-shaped frame 5 and the raw material inside the fan-shaped frame 5 through the space between two of the support legs. Because the horizontal height of the top surface of the fan-shaped frame 5 is less than the horizontal height of the bottom surface of the concave block 15, the fan-shaped frame 5 will not come into contact with the concave block 15 during the movement of the fan-shaped frame 5. Afterwards, the fan-shaped frame 5 containing the raw material can be moved to the location required by the user to process the cooked raw material, making it convenient for the user to move the cooked raw material to the desired location.
[0026] The above description is merely a preferred embodiment of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are protected. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.
Claims
1. A brewing cooking apparatus, comprising a cooking tank (1) and a steam pipe (2), characterized in that: The cooking tank (1) includes an outer shell (101) and a top cover (102). The top cover (102) is threaded to the inner circumferential wall of the top of the outer shell (101). A cross partition (3) is fixedly connected to the inner circumferential wall of the outer shell (101). The cross partition (3) divides the interior of the outer shell (101) into multiple receiving cavities (4). A fan-shaped frame (5) is slidably connected in the vertical direction inside the receiving cavity (4). The top of the fan-shaped frame (5) is open. A fan-shaped opening (6) communicating with the receiving cavity (4) is opened at the bottom of the outer shell (101). The fan-shaped frame (5) fits against the inner wall of the fan-shaped opening (6). The outer bottom surface of the outer shell (101) is provided with a support for supporting the fan-shaped frame (5). The top cover (102) is rotatably connected with a plurality of stirring shafts (7) corresponding to the fan-shaped frame (5). The bottom end of the stirring shaft (7) extends into the fan-shaped frame (5). The outer peripheral wall of the bottom end of the stirring shaft (7) is provided with a plurality of stirring blades (8). The top cover (102) is fixedly connected with a plurality of feed pipes (9) corresponding to the fan-shaped frame (5). The feed pipes (9) are provided with valves.
2. The brewing cooking apparatus according to claim 1, characterized in that: A drive gear (10) is fixedly connected to the top outer peripheral wall of the stirring shaft (7). Two adjacent drive gears (10) are connected by a driven gear (11). A motor (12) is provided on the top cover (102). The output end of the motor (12) is fixedly connected to the top of one of the stirring shafts (7). The outer peripheral wall of the stirring shaft (7) is provided with a mounting plate (13) that fits against the bottom of the drive gear (10). The driven gear (11) is rotatably connected between the top cover (102) and the mounting plate (13). The bottom end of the feed pipe (9) passes through the mounting plate (13) and is correspondingly set with the sector frame (5).
3. The brewing cooking apparatus according to claim 2, characterized in that: The support member includes a support strip (14) slidably connected to the bottom surface of the outer shell (101). The support strip (14) is used to abut against the bottom surface of the fan-shaped frame (5). A concave block (15) for accommodating the sliding of the support strip (14) is fixedly connected to the bottom surface of the outer shell (101). A plurality of mounting plates (16) with L-shaped cross sections are fixedly connected to the bottom surface of the outer shell (101). The inner sidewall of the mounting plate (16) is provided with a slot (17) for one end of the support strip (14) to be inserted.
4. The brewing cooking apparatus according to claim 3, characterized in that: A screw (18) is provided on one side of the concave block (15), and both the concave block (15) and the support bar (14) have screw holes for connecting with the screw (18) on their side walls.
5. A brewing cooking apparatus according to claim 3, characterized in that: The bottom surface of the mounting plate (16) is provided with a push plate (19). The top of the push plate (19) is provided with a receiving groove (20) for the bottom of the fan-shaped frame (5) to be embedded. The inner wall of the receiving groove (20) is fixedly connected with a buffer pad (21). When the bottom of the fan-shaped frame (5) is embedded in the receiving groove (20), the horizontal height of the top surface of the fan-shaped frame (5) is less than the horizontal height of the bottom surface of the concave block (15). A magnetic block (22) is installed on the top of the push plate (19). The mounting plate (16) is made of ferromagnetic metal. The push plate (19) is fixed to the bottom surface of the mounting plate (16) by the magnetic force of the magnetic block (22). A roller (23) is provided on the bottom surface of the push plate (19).
6. A brewing cooking apparatus according to claim 2, characterized in that: The end of the steam pipe (2) near the outer shell (101) is located below the mounting plate (13), and the steam pipe (2) is connected to a plurality of receiving cavities (4).