Fermented grain scattering device and white spirit brewing system
By installing a drive shaft and sawtooth-shaped dispersing components on the feeder, the problem of low production efficiency and difficult cleaning caused by mash clumping in traditional brewing is solved. It realizes automated and thorough mash dispersing and material uniformity, thereby improving the production efficiency and fermentation quality of the baijiu brewing system.
Patent Information
- Application Number
- CN202520201166.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-08
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2035-02-08
AI Technical Summary
In traditional brewing processes, the mash is prone to clumping during fermentation and stacking, resulting in low efficiency and incompleteness in manual dispersal, high labor intensity, poor material uniformity, and difficulty in cleaning.
A fermentation mash dispersing device is designed, including a drive shaft and a serrated dispersing component, which is installed above the feeder. The drive shaft is driven to rotate by the drive component, and the serrated dispersing component contacts the fermentation mash and generates centrifugal force to achieve automated dispersing, prevent the fermentation mash from sticking together, and increase the contact area.
This process thoroughly breaks up the fermented mash, improving production efficiency, reducing labor intensity, ensuring material uniformity and fermentation quality, and simplifying the cleaning process.
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Figure CN223950979U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of scattered wine lees, and particularly to a scattered wine lees device and a liquor brewing system. BACKGROUND
[0002] In the traditional liquor brewing process, wine lees fermentation and dreg accumulation are prone to clumping, but loose wine lees are required for the process of light scattering and uniform paving during the steaming process. Therefore, the wine lees need to be scattered before steaming.
[0003] Currently, the wine lees are scattered manually, which is low in production efficiency, high in labor intensity, incomplete in scattering, poor in material uniformity, and difficult to clean due to the wine lees sticking to the equipment. SUMMARY
[0004] To solve the above problems, the utility model provides a scattered wine lees device and a liquor brewing system, which can solve the problems of low production efficiency and incomplete scattering caused by manual scattering of wine lees.
[0005] The utility model provides a scattered wine lees device, which is applied to a feeder of a liquor brewing system and used for conveying wine lees. The scattered wine lees device comprises a driving shaft, a scattering part, and a driving part. The driving shaft is arranged above the conveying path of the feeder. The scattering part is connected to the outer periphery of the driving shaft and extends in the radial direction. The scattering part is sawtooth-shaped, and the end of the tooth of the scattering part is arranged at a distance from the top surface of the feeder. The driving part is connected to the driving shaft, and the driving part drives the driving shaft to rotate, thereby driving the end of the scattering part to scatter the wine lees on the feeder.
[0006] Through the above method, the scattering part with a sawtooth structure on the driving shaft can increase the contact area with the wine lees, making the scattering of the wine lees more complete. In addition, the rotating scattering part can also generate a centrifugal force to prevent the wine lees from sticking to the scattering part, facilitating the cleaning of the scattering part. The driving shaft cooperates with the driving part to realize the automation of wine lees scattering, reduce the labor intensity, and improve the production efficiency.
[0007] Optionally, the scattering part is a plurality of scattering parts, and the plurality of scattering parts are evenly distributed along the circumference of the driving shaft. Through the above method, the scattering efficiency can be further improved by arranging multiple scattering parts, making the scattering more complete.
[0008] Optionally, the scattering part is a sawtooth plate, and the distance between the teeth of the sawtooth plate is 5-10 cm. Through the above method, the teeth of the sawtooth plate can avoid damaging the wine lees, thereby ensuring the fermentation quality and improving the quality of the raw liquor. The driving part can drive the sawtooth plate to rotate at a high speed (for example, at a speed of 100-150 revolutions per minute), which can scatter as much wine lees as possible on the one hand, and the high-speed rotating sawtooth plate can shake off the wine lees, preventing the wine lees from sticking to the surface of the scattering part.
[0009] Optionally, the driving shaft is provided with a plurality of connecting pieces in the axial direction, and the driving shaft is connected with each of the sawtooth plates through the connecting pieces. In this way, the sawtooth plates are connected with the driving shaft indirectly, so that the contact area between the sawtooth plates and the fermented grains can be further increased.
[0010] Optionally, the driving shaft is provided with a fixed bearing, and the driving shaft is connected with the feeding machine through the fixed bearing. In this way, the fixed bearing is arranged to ensure the stability of the connection between the driving shaft and the feeding machine.
[0011] Optionally, the driving shaft is provided with a flange, and the driving member drives the driving shaft to rotate through the flange. In this way, the flange can absorb the vibration of the driving member, so as to ensure the stability of the rotation of the driving shaft, and the flange is easy to disassemble and replace, so as to facilitate maintenance and replacement.
[0012] Optionally, the driving shaft is provided with a detection member for detecting the operation of the driving shaft. In this way, the detection member can monitor the rotation of the driving shaft in real time and alarm the fault of the scattering member.
[0013] The second aspect of the present application also relates to a liquor brewing system comprising the fermented grain scattering device described above. In this way, the liquor brewing system can make the scattering of the fermented grains more thorough. BRIEF DESCRIPTION OF DRAWINGS
[0014] Figure 1 FIG. 1 is a structural schematic view of the fermented grain scattering device in the embodiment of the present application.
[0015] Reference signs:
[0016] 100, fermented grain scattering device; 10, driving shaft; 11, connecting piece; 12, fixed bearing; 13, flange; 14, detection member; 20, scattering member; 30, driving member;
[0017] 200, feeding machine. DETAILED DESCRIPTION
[0018] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0019] <Device composition>
[0020] Figure 1 FIG. 1 is a structural schematic view of the fermented grain scattering device 100 in the embodiment of the present application, and FIG. 2 is a structural schematic view of the fermented grain scattering device 100 in the embodiment of the present application. Figure 1The wine lees scattering device 100 provided by the utility model is applied to the feeding machine 200 of the liquor brewing system, the feeding machine 200 can be a chain plate machine, and the top surface of the feeding machine 200 is used for laying and conveying the wine lees. The wine lees scattering device 100 comprises a driving shaft 10, a scattering piece 20 and a driving piece 30. The driving shaft 10 is located above the feeding machine 200 and is horizontally arranged along the conveying direction of the feeding machine 200. The scattering piece 20 is arranged on the outer side wall of the driving shaft 10 and extends along the radial direction of the driving shaft 10. The scattering piece 20 is in a sawtooth structure, and the end of the tooth of the scattering piece 20 is spaced apart from the top surface of the feeding machine 200, so that the side wall of the scattering piece 20 can be in full contact with the wine lees on the feeding machine 200. The driving piece 30 provides power for the driving shaft 10, so that the driving shaft 10 rotates along the circumference, and the end of the scattering piece 20 on the outer side wall of the driving shaft 10 scatters the wine lees on the feeding machine 200.
[0021] The speed at which the driving piece 30 drives the scattering piece 20 to rotate can be 100-150 revolutions per minute. In the same time, the moving distance of the wine lees on the feeding machine 200 is less than the rotating distance of the scattering piece 20, so that the wine lees are prevented from adhering to the scattering piece 20.
[0022] Specifically, the driving piece 30 can be a driving motor or other power devices, and the type of the driving piece 30 is not limited in the utility model.
[0023] By the above mode, the scattering piece 20 in the sawtooth structure on the driving shaft 10 rotates and scatters the wine lees, the contact area with the wine lees is increased, the scattering of the wine lees is more thorough, the material uniformity is improved, the wine lees are prevented from adhering to the scattering piece 20, the scattering piece 20 is facilitated to be cleaned and maintained. The driving shaft 10 cooperates with the driving piece 30 to realize the automation of the scattering of the wine lees, the manual scattering of the wine lees is avoided, the labor intensity is reduced, and the production efficiency is improved.
[0024] The structures of the various components of the wine lees scattering device 100 in the embodiment will be introduced below.
[0025] <Scattering piece 20>
[0026] Continuing to refer to Figure 1 The scattering piece 20 can be provided as two, and the two scattering pieces 20 are centrally symmetrical along the driving shaft 10. The two scattering pieces 20 are uniformly distributed along the circumference of the driving shaft 10, that is, the distance between the adjacent scattering pieces 20 is equal. When the driving shaft 10 rotates one circle, the two scattering pieces 20 can scatter the wine lees twice. By the above mode, the scattering efficiency can be further improved, and the scattering is more thorough.
[0027] In some embodiments, the dispersing member 20 can be provided in three or four, and the number of the dispersing member 20 is not limited by the utility model.
[0028] Specifically, the dispersing member 20 can be a sawtooth plate, that is, the dispersing member 20 can be a sawtooth plate formed by connecting a plurality of sawtooth-shaped teeth along the axial direction of the driving shaft 10, and the pitch of the teeth of the sawtooth plate can be 5-10 cm. When cleaning, the fermented grains on the sawtooth plate can be scraped off, and then the sawtooth plate can be cleaned. Through the above method, the teeth of the sawtooth plate can ensure complete dispersion while avoiding damage to the fermented grains, thereby ensuring the fermentation quality and improving the quality of the raw wine. At the same time, the sawtooth plate is easy to clean.
[0029] In some embodiments, the sawtooth plate as the dispersing member 20 can be spirally arranged along the axial direction of the driving shaft 10, which can further increase the contact area of the sawtooth plate and the fermented grains and improve the dispersion efficiency.
[0030] In other embodiments, the dispersing member 20 can also be in the form of a cylindrical sleeve arranged on the outer wall of the driving shaft 10, and the outer periphery of the cylindrical dispersing member 20 is provided with sawteeth, which can disperse the fermented grains on the feeder 200. The utility model does not limit the setting mode and shape of the dispersing member 20.
[0031] <Driving shaft 10>
[0032] With reference to the above Figure 1 , a plurality of connecting members 11 are arranged on the outer side wall of the driving shaft 10 along the axial direction, and the connecting members 11 are uniformly distributed. The connecting member 11 can be in the form of a columnar structure, the center of the connecting member 11 penetrates the driving shaft 10, and the two ends of the connecting member 11 are connected with two sawtooth plates respectively. Through the above method, the sawtooth plate is avoided to be directly connected with the driving shaft 10, which is convenient for further increasing the contact area of the sawtooth plate and the fermented grains. And by arranging a plurality of connecting members 11, the stability of the driving shaft 10 when driving the sawtooth plate to rotate is further improved.
[0033] In some embodiments, the number of the dispersing member 20 is increased, and the number of the ends of the connecting member 11 is also increased, for example, when the dispersing member 20 is provided in five, the connecting member 11 can be in the form of a star structure, and the shape of the connecting member 11 is not limited by the utility model.
[0034] The driving shaft 10 is provided with a fixed bearing 12, and the fixed bearing 12 is two, which are arranged at the two ends of the driving shaft 10 respectively. The driving shaft 10 is connected with the feeder 200 through the fixed bearing 12. Through the above method, the stability of the connection between the driving shaft 10 and the feeder 200 is ensured, and the stability of the structure of the fermented grain dispersing device 100 is improved.
[0035] The driving shaft 10 is provided with flanges 13, and the flanges 13 are two and are arranged at two ends of the driving shaft 10 respectively. The distance between the two flanges 13 is less than the distance between the two fixed bearings 12. The driving member 30 drives the driving shaft 10 to rotate through the flanges 13. In the above manner, the flanges 13 can absorb the vibration of the driving member 30, ensure the stability of the rotation of the driving shaft 10, and the flanges 13 are easy to disassemble and replace, so that the time and cost can be saved.
[0036] The driving shaft 10 is provided with a detection member 14 for detecting the operation of the driving shaft 10. The detection member 14 can be a sensor.
[0037] It should be noted that the fermented grains scattering device 100 further comprises a control system. The control system can control the operation of the driving member 30. The sensor detects the operation of the driving shaft 10 in real time. When the scattering member 20 on the driving shaft 10 fails, the sensor feeds back to the control system, and the control system controls the driving member 30 to stop running, so that the scattering member 20 stops the scattering operation, and the control system alarms at the same time.
[0038] In the above manner, the detection member 14 can monitor the rotation of the driving shaft 10 in real time, and alarm the failure of the scattering member 20.
[0039] The working process of the fermented grains scattering device 100 in the embodiment will be described below. Figure 1
[0040] When the feeding machine 200 runs, the driving member 30 runs synchronously, and the driving member 30 drives the driving shaft 10 to rotate through the flanges 13. The driving shaft 10 drives the scattering member 20 to rotate at high speed, and scatters the fermented grains on the feeding machine 200. At the same time, the detection member 14 detects the operation of the driving shaft 10 in real time. When the scattering member 20 fails, the detection member 14 feeds back the condition of the scattering member 20 to the control system of the fermented grains scattering device 100, and the control system controls the driving member 30 to stop running and alarms, so that the scattering member 20 stops the scattering operation.
[0041] The utility model further provides a kind of white liquor brewing system, including the fermented grains scattering device 100 as described above. In the above manner, the white liquor brewing system can make fermented grains scatter more thoroughly.
[0042] The above is only the preferred embodiment of the utility model, and does not limit the utility model, any modification, equivalent replacement and improvement made within the spirit and principle of the utility model should be included in the protection scope of the utility model.
Claims
1. A fermented grains scattering device applied to a feeding machine of a liquor brewing system, the feeding machine being used for conveying fermented grains, characterized in that, The wine lees scattering device comprises: a driving shaft arranged above a conveying path of the feeding machine; a scattering member connected to the outer periphery of the driving shaft and extending in the radial direction, the scattering member being in the form of a sawtooth, and the end of the tooth of the scattering member being arranged in a spaced manner from the top surface of the feeding machine; a driving member connected to the driving shaft, the driving member driving the driving shaft to rotate and driving the end of the scattering member to scatter the wine lees on the feeding machine.
2. The distiller's grains scattering device according to claim 1, characterized in that, The scattering member is in the form of a plurality of sawtooth plates, and the plurality of sawtooth plates are uniformly distributed along the circumference of the driving shaft.
3. The distiller's grains scattering device according to claim 2, characterized in that, The spacing between the teeth of the sawtooth plate is 5-10 cm.
4. The distiller's grains scattering device according to claim 3, characterized in that, The driving shaft is provided with a plurality of connecting members along the axial direction, and the driving shaft is connected to each sawtooth plate through the connecting members.
5. The distiller's grains scattering device according to claim 1, characterized in that, The driving shaft is provided with a fixed bearing, and the driving shaft is connected to the feeding machine through the fixed bearing.
6. The distilled-brandy lees dispersing device according to claim 1, characterized in that The driving shaft is provided with a flange, and the driving member drives the driving shaft to rotate through the flange.
7. The distiller's grains scattering device according to claim 1, characterized in that, The driving shaft is provided with a detection member for detecting the operation of the driving shaft.
8. A soju brewing system, characterized by, The wine lees scattering device as claimed in any one of claims 1-7.