A severe fermentation hot air control system

CN224818412UActive Publication Date: 2026-09-29DABAOFENG ORGANIC TEA FACTORY ANXI COUNTY FUJIAN PROVINCE
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202522002562.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-17
Publication Date
2026-09-29
Estimated Expiration
2035-09-17

AI Technical Summary

Technical Problem

但是在实际的应用中发现,由于常规的电控柜内部集成了多个控制模块,因此其在实际的作业时内部的温度较高,尤其是针对部分发热较为严重的模块来说,如果可以实现针对性的散热,那么对于控制系统整体的散热提升是有明显的帮助,也就有利于热风控制系统整体更加稳定的应用,降低了高温报警及温度较高影响实际的控制作业的问题,为此提出一种重度发酵热风控制系统

Benefits of technology

本实用新型提供的重度发酵热风控制系统,在电控柜的两侧进行了镂空散热座的设置,使其内的散热扇可以进行常规散热的同时,又可以根据对应的高温控制模块进行调节式的定向散热,这样就可以集中的对温度较高的控制模块优先散热,并可以根据后续控制模块的应用位置调整,同步的对散热区域进行调节,以满足更好的散热需求,从而可以有效的提升该控制系统整体的运行稳定;

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224818412U_ABST
    Figure CN224818412U_ABST
Patent Text Reader

Abstract

The utility model discloses a kind of severe fermentation hot air control systems, including electric control cabinet, electric control system is equipped in the electric control cabinet, the both sides of the electric control cabinet are all provided with openwork heat dissipation side seat, the inside of the openwork heat dissipation side seat has heat dissipation space, support rod is fixed in the heat dissipation space, and the heat dissipation fan connected by adjusting unit is located on the support rod;The adjusting unit includes locking seat and locking end, the side of the locking seat has formed arc sleeve setting part.This severe fermentation hot air control system provided by the utility model is provided with openwork heat dissipation seat on the both sides of electric control cabinet, so that the heat dissipation fan in it can be regularly heat dissipated, and can also be adjusted directional heat dissipation according to corresponding high-temperature control module, so that the control module with higher temperature can be preferentially heat dissipated, and can be adjusted according to the application position of subsequent control module, and the heat dissipation area is adjusted synchronously, to meet the better heat dissipation demand.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of heavy fermentation, in particular to a heavy fermentation hot air control system. Background Art

[0002] Fermentation refers to a process in which people utilize the life activities of microorganisms under aerobic or anaerobic conditions to prepare microbial thalli themselves, or direct metabolites or secondary metabolites. Fermentation is sometimes also written as "fajiao", and its definition varies depending on the application occasion. Generally speaking, fermentation mostly refers to a certain decomposition process of organic matter by organisms. Fermentation is a biochemical reaction that humans have come into contact with earlier, and it is now widely used in food industry, biological and chemical industries. It is also the basic process of bioengineering, that is, fermentation engineering. Research on its mechanism and process control is still ongoing.

[0003] At present, fermentation operations are usually also required in the field of tea production, so hot air generating equipment is used to assist fermentation. In actual heavy fermentation operations, it is necessary to control and adjust the hot air through a hot air control system. Conventional hot air control systems are mostly in the form of an electric control cabinet, which is wall-mounted at a suitable position and connected to an external hot air blower for application to realize hot air control. A plurality of control modules are integrated inside the electric control cabinet, and the plurality of modules are connected to each other and combined together to form the control system; However, it has been found in practical applications that, since a plurality of control modules are integrated inside the conventional electric control cabinet, the internal temperature is high during actual operation, especially for some modules with relatively serious heat generation. If targeted heat dissipation can be achieved, it will significantly help improve the overall heat dissipation of the control system, and it will also facilitate the more stable application of the entire hot air control system, reducing the problems that high temperature alarms and high temperatures affect actual control operations. For this reason, a heavy fermentation hot air control system is proposed. Summary of Utility Model

[0004] Based on this, it is necessary to provide a heavy fermentation hot air control system aiming at the above technical problems. Hollow heat dissipation bases are arranged on both sides of the electric control cabinet, and cooling fans are arranged thereon through an adjustment unit. In this way, while meeting daily heat dissipation requirements, targeted directional heat dissipation can be performed according to modules with high temperatures, so as to ensure the stable operation of the entire control system.

[0005] In order to solve the above technical problems, the utility model adopts the following technical solutions: A hot air control system for heavy fermentation includes an electrical control cabinet, an electrical control system is installed inside the electrical control cabinet, and hollow heat dissipation side seats are provided on both sides of the electrical control cabinet. The hollow heat dissipation side seats have heat dissipation space inside, and a support rod is fixed in the heat dissipation space. A cooling fan is located on the support rod and connected to it through an adjustment unit. The adjustment unit includes a locking seat and a locking end. One side of the locking seat has an arc-shaped sleeve portion, and the arc-shaped sleeve portion has a sleeve groove. The arc-shaped sleeve portion is sleeved on the surface of the support rod through the sleeve groove. The locking end has a locking buckle inside, and the surface of the locking seat has a buckle groove corresponding to the position of the locking buckle.

[0006] Furthermore, the locking buckle includes a movable groove formed inside the locking end, a locking block is slidably disposed in the movable groove, and a spring is connected to the bottom of the locking block and fixed to the bottom wall of the movable groove.

[0007] Furthermore, the top of the locking block has an abutment ramp, and one side of the locking block has a locking platform.

[0008] Furthermore, the latch includes a first latch located on one side of the locking seat and adapted to the locking end, and a second latch located at the top of the locking end that communicates with the first latch, the second latch being adapted to the locking block.

[0009] Furthermore, the adjustment unit also includes a positioning cavity formed within the locking seat, a positioning rod slidably disposed within the positioning cavity, one end of the positioning rod passing through the outside of the locking seat and fixed with a first locking tooth, and the other end of the positioning rod extending into the first latching groove.

[0010] Furthermore, the surface of the support rod is provided with a strip groove, and second locking teeth are distributed at equal intervals in the strip groove. The multiple second locking teeth are provided with positioning grooves between each other, and the positioning grooves are adapted to the first locking teeth.

[0011] Furthermore, the adjustment unit also includes a universal adjustment ball fixed to the side of the locking end away from the locking seat. The universal adjustment ball is wrapped with a universal adjustment ball seat. An anti-slip rubber pad is filled between the universal adjustment ball and the universal adjustment ball seat. The universal adjustment ball is fixed to the surface of the cooling fan.

[0012] Furthermore, the electrical control system includes a mounting bracket fixed inside the electrical control cabinet, and the mounting bracket is equipped with a temperature monitoring module and a central controller; The central controller is used to electrically connect to external temperature sensors and heating fans.

[0013] Compared with the prior art, the present invention has the following beneficial effects: The heavy fermentation hot air control system provided by this utility model has hollowed-out heat dissipation seats on both sides of the electrical control cabinet. This allows the internal heat dissipation fans to perform conventional heat dissipation while also adjusting the directional heat dissipation according to the corresponding high-temperature control modules. This allows for concentrated priority heat dissipation of the control modules with higher temperatures, and the heat dissipation area can be adjusted synchronously according to the application position of the subsequent control modules to meet better heat dissipation requirements. This effectively improves the overall operational stability of the control system. The adjustment unit allows for the quick assembly and disassembly of the cooling fan while the control module inside the electrical control cabinet is being adjusted, without affecting the maintenance of the internal structure. Attached Figure Description

[0014] Figure 1 A schematic diagram of the structure of the heavy fermentation hot air control system provided by this utility model; Figure 2 A schematic diagram of the second form of the heavy fermentation hot air control system provided by this utility model; Figure 3 A schematic diagram of the support rod structure for the heavy fermentation hot air control system provided by this utility model; Figure 4 The heavy fermentation hot air control system provided by this utility model Figure 3 Enlarged structural diagram at point A in the middle; Figure 5 A schematic diagram of the regulating unit structure of the heavy fermentation hot air control system provided by this utility model; Figure 6 A cross-sectional view of the regulating unit of the heavy fermentation hot air control system provided by this utility model; Figure 7 A schematic diagram of the control system structure of the heavy fermentation hot air control system provided by this utility model.

[0015] The markings in the diagram are explained as follows: 1. Electrical control cabinet; 11. Perforated heat dissipation side bracket; 12. Heat dissipation space; 2. Electrical control system; 21. Mounting bracket; 22. Temperature monitoring module; 23. Central controller; 24. Temperature sensor; 25. Heating fan; 3. Support rod; 31. Strip groove; 32. Second locking tooth; 33. Positioning groove; 4. Adjustment unit; 41. Locking seat; 42. Locking end; 43. Arc-shaped sleeve part; 44. Sleeve groove; 45. Locking buckle; 46. Buckle groove; 47. Positioning cavity; 48. Universal adjusting ball; 450. Movable groove; 451. Locking block; 452. Spring; 453. Avoidance ramp; 454. Locking platform; 460. First snap groove; 461. Second snap groove; 470. Positioning rod; 471. First locking tooth; 472. Support spring; 480. Universal adjustable ball seat; 481. Anti-slip rubber pad layer; 5. Cooling fan. Detailed Implementation

[0016] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention 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 invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the protection scope of the present invention.

[0017] Example 1 Please refer to Figures 1-7 As shown, a hot air control system for heavy fermentation includes an electrical control cabinet 1, an electrical control system 2 is installed inside the electrical control cabinet 1, and hollow heat dissipation side seats 11 are provided on both sides of the electrical control cabinet 1. The surface of the hollow heat dissipation side seats 11 is provided with pores (not shown in the figure) so that the gas inside and outside the electrical control cabinet 1 can be freely exchanged for heat dissipation. The hollow heat dissipation side seats 11 have a heat dissipation space 12 inside, and a support rod 3 is fixed in the heat dissipation space 12. A cooling fan 5 is connected to the support rod 3 through an adjustment unit 4. The adjustment unit 4 includes a locking seat 41 and a locking end 42. One side of the locking seat 41 has an arc-shaped sleeve portion 43. The arc-shaped sleeve portion 43 is provided with a sleeve groove 44. The arc-shaped sleeve portion 43 is sleeved on the surface of the support rod 3 through the sleeve groove 44. The locking end 42 is provided with a locking buckle 45 inside, and the surface of the locking seat 41 has a buckle groove 46 at the position corresponding to the locking buckle 45.

[0018] In this embodiment, by adjusting the unit 4, the height and angle of the cooling fan 5 can be adjusted. This allows for targeted cooling of control modules that are overheating, while also enabling quick disassembly and assembly for easy maintenance.

[0019] Example 2 The intensive fermentation hot air control system provided in Example 1 has been further optimized, specifically, as follows: Figure 4As shown, the locking buckle 45 includes a movable groove 450 opened inside the locking end 42. A locking block 451 is slidably disposed in the movable groove 450. The bottom of the locking block 451 is connected to a spring 452 fixed to the bottom wall of the movable groove 450. The locking block 451 can slide towards the top under the force of the spring 452. The top of the locking block 451 has an abutment slope 453, and a locking platform 454 is formed on one side of the locking block 451. The buckle groove 46 includes a first buckle groove 460 formed on one side of the locking seat 41 and adapted to the locking end 42. The top of the locking end 42 is also provided with a second buckle groove 461 that communicates with the first buckle groove 460. The second buckle groove 461 is adapted to the locking block 451. like Figure 4 and Figure 5 As shown, when it is necessary to lock the locking end 42 and the locking seat 41, the locking end 42 is inserted into the first latching groove 460. During the pushing process, the avoidance slope 453 will come into contact with the first latching groove 460. The locking block 451, which is subjected to the contact force, will slide towards the inside of the movable groove 450. After the locking block 451 slides into the movable groove 450, the locking end 42 can be fully inserted into the inside of the locking seat 41. At this time, the locking block 451 can be popped out into the inside of the second latching groove 461 by the force of the spring 452, so that the locking platform 454 and the second latching groove 461 form a locked state. In this way, the locking seat 41 and the locking end 42 can form a stable locked state after locking and will not fall off. When it is necessary to disassemble the locking seat 41 and the locking end 42, the locking block 451 is pressed in the second latching groove 461, so that it overcomes the force of the spring 452 and slides towards the inside of the movable groove 450. In this way, the locking platform 454 and the second latching groove 461 can be unlocked, and the locking end 42 can be taken out in the first latching groove 460 to achieve the separation state. This allows for quick disassembly and assembly of the cooling fan 5, meeting the needs of practical application maintenance.

[0020] Example 3 The heavy fermentation hot air control system provided in Example 1 or 2 has been further optimized, such as... Figure 4 and Figure 5As shown, the adjustment unit 4 further includes a positioning cavity 47 formed within the locking seat 41. A positioning rod 470 is slidably disposed within the positioning cavity 47. One end of the positioning rod 470 passes through the outside of the locking seat 41 and is fixed with a first locking tooth 471. The other end of the positioning rod 470 extends into the first latching groove 460. A support spring 472 is also fitted onto the surface of the positioning rod 470. One end of the support spring 472 is fixed to the surface of the positioning rod 470, and the other end is fixed to the side wall of the positioning cavity 47. Under the force of the support spring 472 in its natural state, the first locking tooth 471 can be formed as shown in the figure. Figure 6 The state shown; The surface of the support rod 3 is provided with a strip groove 31, and second locking teeth 32 are evenly distributed in the strip groove 31. The multiple second locking teeth 32 are provided with positioning grooves 33 between each other, and the positioning grooves 33 are adapted to the first locking teeth 471. In practical applications, the sleeve groove 44 needs to be fitted onto the surface of the support rod 3 first, so that the first locking tooth 471 corresponds to the position of the second locking tooth 32. At this time, the position of the locking seat 41 on the surface of the support rod 3 can be adjusted to adjust the height of the cooling fan 5. When adjusted to a suitable height, the locking end 42 can be inserted into the first latching groove 460 inside the locking seat 41, so that the locking end 42 and the locking seat 41 form a locked state. When the locking end 42 forms a locked state inside the locking seat 41, the end of the locking end 42 will abut against the end of the positioning rod 470. In this way, one end of the positioning rod 470 is limited and abutted by the locking end 42, and the other end is locked and abutted by the second locking tooth 32. Therefore, it cannot move on its own, thus ensuring the stability of the positioning rod 470 and realizing the locking state between the first locking tooth 471 and the second locking tooth 32, ensuring that the height of the cooling fan 5 is fixed.

[0021] Example 4 The intensive fermentation hot air control system provided in Example 3 has been further optimized, such as... Figure 6 The adjustment unit 4 shown also includes a universal adjustment ball 48 fixed to the side of the locking end 42 away from the locking seat 41. The universal adjustment ball 48 is wrapped with a universal adjustment ball seat 480. An anti-slip rubber pad 481 is filled between the universal adjustment ball 48 and the universal adjustment ball seat 480. The universal adjustment ball 48 is fixed to the surface of the cooling fan 5. After the height of the cooling fan 5 is adjusted, the angle of the cooling fan 5 can be adjusted horizontally in that height direction. Specifically, the position of the universal adjustment ball seat 480 relative to the universal adjustment ball 48 is adjusted on the surface of the universal adjustment ball 48 to adjust the angle. This allows for targeted heat dissipation of the control modules in the electrical control cabinet 1 that are generating more heat, thereby improving the overall heat dissipation effect of the control system.

[0022] Example 5 The intensive fermentation hot air control system provided in Example 4 has been further optimized, such as... Figure 7 As shown, the electrical control system 2 includes a mounting bracket 21 fixed inside the electrical control cabinet 1, and the mounting bracket 21 is equipped with a temperature monitoring module 22 and a central controller 23. The central controller 23 is used to be electrically connected to the external temperature sensor 24 and heating fan 25. In this embodiment, the heating fan 25 heats the air through its internal heating resistance wire and then inputs it into the heavy fermentation chamber to regulate the temperature inside the heavy fermentation chamber. The temperature sensor 24 is simultaneously installed inside the heavy fermentation chamber so that the fermentation temperature inside can be detected and fed back to the external electrical control cabinet 1 in real time. The temperature monitoring module 22 can be configured to set a temperature threshold. When the temperature detected by the temperature sensor 24 exceeds the set range of the temperature monitoring module 22, the heating fan 25 can be controlled to stop running. When the temperature is lower than the set range, the heating fan 25 can be controlled to start and raise the temperature. The central controller 23 is electrically connected to the corresponding temperature monitoring module 22, temperature sensor 24 and heating fan 25 to perform control functions. The above-mentioned actual structural composition and control principle of the electronic control system 2 are common technical knowledge known to those skilled in the art, so there is no need to elaborate further in this embodiment.

[0023] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection, an electrical connection, or a connection that allows communication between them; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0024] Obviously, the embodiments described above are only some embodiments of this utility model, not all embodiments. The accompanying drawings show preferred embodiments of this utility model, but do not limit the patent scope of this utility model. This utility model can be implemented in many different forms; rather, the purpose of providing these embodiments is to provide a more thorough and comprehensive understanding of the disclosure of this utility model. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing specific embodiments, or make equivalent substitutions for some of the technical features. Any equivalent structures made using the content of this utility model specification and drawings, directly or indirectly applied to other related technical fields, are similarly within the patent protection scope of this utility model.

Claims

1. A hot air control system for heavy fermentation, characterized in that, Includes an electrical control cabinet (1), an electrical control system (2) is provided inside the electrical control cabinet (1), both sides of the electrical control cabinet (1) have hollow heat dissipation side seats (11), the interior of the hollow heat dissipation side seats (11) has a heat dissipation space (12), a support rod (3) is fixed in the heat dissipation space (12), and a cooling fan (5) is connected to the support rod (3) through an adjustment unit (4). The adjustment unit (4) includes a locking seat (41) and a locking end (42). One side of the locking seat (41) has an arc-shaped sleeve portion (43). The arc-shaped sleeve portion (43) is provided with a sleeve groove (44). The arc-shaped sleeve portion (43) is sleeved on the surface of the support rod (3) through the sleeve groove (44). The locking end (42) has a locking buckle (45) inside, and the surface of the locking seat (41) has a buckle groove (46) corresponding to the position of the locking buckle (45).

2. The heavy fermentation hot air control system according to claim 1, characterized in that, The locking buckle (45) includes a movable groove (450) opened inside the locking end (42), a locking block (451) is slidably provided in the movable groove (450), and a spring (452) fixed to the bottom wall of the movable groove (450) is connected to the bottom of the locking block (451).

3. The heavy fermentation hot air control system according to claim 2, characterized in that, The top of the locking block (451) has a relief ramp (453), and a locking platform (454) is formed on one side of the locking block (451).

4. The heavy fermentation hot air control system according to claim 3, characterized in that, The buckle groove (46) includes a first buckle groove (460) opened on one side of the locking seat (41) and adapted to the locking end (42). The top of the locking end (42) is also provided with a second buckle groove (461) that communicates with the first buckle groove (460). The second buckle groove (461) is adapted to the locking block (451).

5. The heavy fermentation hot air control system according to claim 4, characterized in that, The adjustment unit (4) further includes a positioning cavity (47) opened in the locking seat (41), a positioning rod (470) is slidably provided in the positioning cavity (47), one end of the positioning rod (470) passes through the outside of the locking seat (41) and is fixed with a first locking tooth (471), and the other end of the positioning rod (470) extends into the first latching groove (460); The surface of the positioning rod (470) is also fitted with a support spring (472).

6. The heavy fermentation hot air control system according to claim 5, characterized in that, The surface of the support rod (3) is provided with a strip groove (31), and second locking teeth (32) are distributed at equal intervals in the strip groove (31). The multiple second locking teeth (32) have positioning grooves (33) between each other, and the positioning grooves (33) are adapted to the first locking teeth (471).

7. The heavy fermentation hot air control system according to claim 1, characterized in that, The adjustment unit (4) also includes a universal adjustment ball (48) fixed to the side of the locking end (42) away from the locking seat (41). The universal adjustment ball (48) is wrapped with a universal adjustment ball seat (480). An anti-slip rubber pad (481) is filled between the universal adjustment ball (48) and the universal adjustment ball seat (480). The universal adjustment ball (48) is fixed to the surface of the cooling fan (5).

8. The heavy fermentation hot air control system according to claim 7, characterized in that, The electrical control system (2) includes a mounting bracket (21) fixed inside the electrical control cabinet (1), and the mounting bracket (21) is equipped with a temperature monitoring module (22) and a central controller (23). The central controller (23) is used to electrically connect with an external temperature sensor (24) and a heating fan (25).