Drying device for micro-ecological strain fermentation

By designing a microecological strain fermentation and drying device including a drying box, heating pipe, cooling water system and mobile device, the existing devices cannot be placed and removed quickly, cannot be condensing thermal cycle drying and electricity waste, and efficient strain drying and electricity savings are achieved.

CN222881528UActive Publication Date: 2025-05-16LUAN HENGJIA BIOTECHNOLOGY CO LTD +1
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Patent Information

Application Number
CN202421675491.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-15
Publication Date
2025-05-16
Estimated Expiration
2034-07-15

AI Technical Summary

Technical Problem

The existing microecological bacterial strain fermentation and drying devices cannot effectively facilitate the rapid placement and removal of microecological bacterial strains, and at the same time, it cannot effectively facilitate the condensation and thermal drying of microecological bacterial strains, and there is a problem of waste of electricity.

Method used

A drying device including a drying box, a heating tube, a cooling water system and a mobile device is designed. The second motor drives the threaded shaft to rotate and move the box door and frame to achieve rapid placement and removal of microecological bacteria. At the same time, the heating pipe and cooling water system are used to conduct condensation and heat drying, saving electricity.

Benefits of technology

The rapid placement and removal of microecological bacterial species is achieved, the drying efficiency is improved, and electrical energy is saved through condensation and thermal drying.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a drying device for micro-ecological strain fermentation. A second motor is started to drive a threaded shaft to rotate, the threaded shaft drives a box door to move through a threaded sleeve, the box door drives a frame to move, and meanwhile the frame drives moving wheels to slide on the top of a sliding rail. And therefore, the micro-ecological strains can be effectively and conveniently placed and taken out quickly. And the fan blades drive hot air to enter the drying box, and water vapor is exhausted through the exhaust pipe. Meanwhile, hot air flows back to the interior of the shell through a second backflow pipe, meanwhile, a coil pipe is communicated with a cooling water supply pipeline and a cooling water backflow pipeline, moisture in the hot air is condensed through cooling water and the coil pipe, condensate water is discharged through a drainage pipe and a control valve, and then the hot air enters the interior of a round pipe to be circulated; therefore, condensation heat cycle drying can be effectively and conveniently carried out on the micro-ecological strains, and electric energy is saved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of drying devices, and particularly relates to a drying device used for microecological bacterial fermentation. Background Art

[0002] Microecological strains are a group of microorganisms that play an important role in a specific ecosystem. They have a wide range of applications, including aquaculture, animal husbandry, and planting.

[0003] At present, a Chinese utility model with announcement number CN207214690U discloses a drying device for the production of microecological preparations, including a drying box, a stepping first motor, a rotating shaft, a propeller, a rocker, a filling slot, a bidirectional first motor, a transmission shaft, a gear and a baffle. The stepping first motor is fixed on the left end face of the drying box, the rotating shaft is installed on the inner end of the drying box, and the left end of the rotating shaft is provided with a stepping first motor. This design realizes a sealing function. The utility model has high drying efficiency, saves manpower, is simple to operate, has strong functionality and high reliability.

[0004] However, the existing microecological strain fermentation drying device cannot effectively facilitate the rapid placement and removal of the microecological strains, and cannot effectively facilitate the condensation heat cycle drying of the microecological strains, and wastes electrical energy. In order to solve the above problems, we provide a drying device for microecological strain fermentation. Utility Model Content

[0005] The purpose of the utility model is to provide a drying device for microecological bacterial fermentation to solve the problems raised by the above-mentioned background technology.

[0006] The above technical purpose of the utility model is achieved through the following technical solutions: a drying device for microecological bacteria fermentation, comprising a drying box, one side of the drying box is connected to a connecting shell, one side of the connecting shell is connected to a round tube, the other end of the round tube is bolted to a side plate, one side of the side plate is bolted to a first motor, the output end of the first motor is bolted to a fan blade through a coupling, a heating tube is bolted to the inside of the round tube, the top of the round tube is connected to a first return pipe, the other end of the first return pipe is connected to a shell, the top of the shell is connected to a second return pipe, the other end of the second return pipe is connected to the drying box, the inside of the shell is bolted to a coil, both ends of the coil pass through the outside of the shell, the shell The bottom of the body is connected with a drain pipe, and the other end of the drain pipe is connected with a control valve. A slide rail is bolted to the inside of the drying box, and a frame is arranged on the top of the slide rail. Moving wheels are bolted to both sides of the bottom of the frame, and the top of the slide rail is slidably connected to the moving wheel. A box door is bolted to one side of the frame, and a mounting plate is bolted to one end of the slide rail. A second motor is bolted to one side of the mounting plate, and a threaded shaft is bolted to the output end of the second motor through a coupling. One end of the threaded shaft is sleeved with a limit bearing, and the bottom of the limit bearing is bolted to the drying box, and a threaded sleeve is threadedly connected to the surface of the threaded shaft, and the surface of the threaded sleeve is bolted to the box door. An L-shaped plate is bolted to the inside of the frame, and a placement tray is placed on the top of the L-shaped plate.

[0007] Adopt the above technical scheme: the user places the microecological strain inside the placement plate, and then places the placement plate on the top of the L-shaped plate. Then start the second motor to drive the threaded shaft to rotate, so that the threaded shaft drives the box door to move through the threaded sleeve, so that the box door drives the frame to move, and the frame drives the moving wheel to slide on the top of the slide rail. Then the mother buckle is clamped with the child buckle, so that it is effective to quickly place and take out the microecological strains. The user can start the first motor, so that the first motor drives the fan blade to rotate, and at the same time start the heating tube for heating, so that the fan blade drives the hot air to enter the inside of the drying box, and it is convenient to dry the microecological strains, and the water vapor is discharged through the exhaust pipe. At the same time, the hot air flows back to the inside of the housing through the second return pipe, and the coil is connected to the cooling water supply pipeline and the cooling water return pipeline at the same time, and the moisture in the hot air is condensed by the cooling water and the coil, and the condensed water is discharged through the drain pipe and the control valve, and then the hot air is circulated by entering the inside of the round tube, so that it is effective to facilitate the condensation heat cycle drying of the microecological strains, and save electric energy.

[0008] The utility model is further configured that a handle is provided on one side of the box door, and one side of the handle is bolted to the box door.

[0009] The above technical solution is adopted: by providing a handle, it is convenient to pull the box door.

[0010] The utility model is further configured that one side of the front and back sides of the drying box are both bolted with female buckles, and the front and back sides of the box door are both bolted with sub-buckles that are compatible with the female buckles.

[0011] By adopting the above technical solution: by setting the mother buckle and the child buckle, it is convenient to limit the position of the box door.

[0012] The utility model is further configured that both sides of the bottom of the drying box are bolted with a first base, and the bottom of the first base is bolted with a first anti-slip pad.

[0013] By adopting the above technical solution, the drying box can be effectively supported by providing the first base.

[0014] The utility model is further configured that the bottom of the slide rail is bolted with a second base, and the bottom of the second base is bolted with a second anti-slip pad.

[0015] By adopting the above technical solution, the slide rail can be effectively supported by providing a second base.

[0016] The utility model is further configured that the top of the drying box is connected to an exhaust pipe.

[0017] By adopting the above technical solution, water vapor can be effectively discharged by arranging an exhaust pipe.

[0018] In summary, the utility model has the following beneficial effects:

[0019] 1. The user places the microecological bacteria inside the placement tray, and then places the placement tray on top of the L-shaped plate. Then start the second motor to drive the threaded shaft to rotate, so that the threaded shaft drives the box door to move through the threaded sleeve, so that the box door drives the frame to move, and at the same time, the frame drives the moving wheel to slide on the top of the slide rail. Then the mother buckle and the child buckle are snapped together, so that the microecological bacteria can be quickly placed and taken out;

[0020] 2. The user can start the first motor to drive the fan blades to rotate, and start the heating tube for heating at the same time, so that the fan blades drive hot air into the interior of the drying box, and it is convenient to dry the microecological bacteria, and the water vapor is discharged through the exhaust pipe. At the same time, the hot air flows back to the interior of the shell through the second return pipe, and the coil is connected to the cooling water supply pipe and the cooling water return pipe. The moisture in the hot air is condensed by the cooling water and the coil, and the condensed water is discharged through the drain pipe and the control valve. Then the hot air enters the interior of the circular tube for circulation, which can effectively facilitate the condensation heat circulation drying of the microecological bacteria and save electricity. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1It is a three-dimensional schematic diagram of the structure of the utility model;

[0022] Figure 2 It is a partial structural sectional view of the utility model;

[0023] Figure 3 This utility model Figure 1 A partial enlarged view of point A in the middle.

[0024] Figure numerals: 1. drying box; 2. connecting shell; 3. round tube; 4. side panel; 5. first motor; 6. fan blade; 7. heating tube; 8. slide rail; 9. frame; 10. moving wheel; 11. box door; 12. L-shaped plate; 13. placement plate; 14. handle; 15. female buckle; 16. female buckle; 17. first base; 18. second base; 19. exhaust pipe; 20. first anti-slip pad; 21. second anti-slip pad; 22. first return pipe; 23. shell; 24. second return pipe; 25. coil; 26. drain pipe; 27. control valve; 28. mounting plate; 29. ​​second motor; 30. threaded shaft; 31. limit bearing; 32. threaded sleeve. DETAILED DESCRIPTION

[0025] The utility model is further described in detail below in conjunction with the accompanying drawings.

[0026] Embodiment 1:

[0027] refer to Figure 1 , Figure 2 and Figure 3 A drying device for fermentation of microecological bacteria comprises a drying box 1, one side of the drying box 1 is connected to a connecting shell 2, one side of the connecting shell 2 is connected to a circular tube 3, the other end of the circular tube 3 is bolted to a side plate 4, one side of the side plate 4 is bolted to a first motor 5, the output end of the first motor 5 is bolted to a fan blade 6 through a coupling, a heating tube 7 is bolted to the inside of the circular tube 3, a first return pipe 22 is connected to the top of the circular tube 3, the other end of the first return pipe 22 is connected to a shell 23, the top of the shell 23 is connected to a second return pipe 24, the other end of the second return pipe 24 is connected to the drying box 1, a coil 25 is bolted to the inside of the shell 23, both ends of the coil 25 pass through the outside of the shell 23, a drain pipe 26 is connected to the bottom of the shell 23, and the other end of the drain pipe 26 is connected to a control valve 27. Then, the second motor 29 is started to drive the threaded shaft 30 to rotate, so that the threaded shaft 30 drives the box door 11 to move through the threaded sleeve 32, so that the box door 11 drives the frame 9 to move, and the frame 9 drives the moving wheel 10 to slide on the top of the slide rail 8. Then, the female buckle 15 and the sub-buckle 16 are clamped together, so that the microecological bacteria can be effectively and quickly placed and taken out.

[0028] refer to Figure 1A handle 14 is provided on one side of the door 11, and one side of the handle 14 is bolted to the door 11. By providing the handle 14, it is convenient to pull the door 11.

[0029] refer to Figure 1 The front and back sides of the drying box 1 are both bolted with a female buckle 15, and the front and back sides of the box door 11 are both bolted with a sub-buckle 16 that matches the female buckle 15. By providing the female buckle 15 and the sub-buckle 16, it is convenient to limit the box door 11.

[0030] refer to Figure 1 The first base 17 is bolted to both sides of the bottom of the drying box 1, and the first anti-skid pad 20 is bolted to the bottom of the first base 17. By providing the first base 17, the drying box 1 can be effectively supported.

[0031] Brief description of the use process: the user places the microecological bacteria inside the placement tray 13, and then places the placement tray 13 on the top of the L-shaped plate 12. Then the second motor 29 is started to drive the threaded shaft 30 to rotate, so that the threaded shaft 30 drives the box door 11 to move through the threaded sleeve 32, so that the box door 11 drives the frame 9 to move, and at the same time, the frame 9 drives the moving wheel 10 to slide on the top of the slide rail 8. Then the mother buckle 15 and the child buckle 16 are clamped, so that the microecological bacteria can be effectively and conveniently placed and taken out quickly.

[0032] Embodiment 2:

[0033] refer to Figure 1 , Figure 2 and Figure 3The interior of the drying box 1 is bolted with a slide rail 8, a frame 9 is provided on the top of the slide rail 8, and moving wheels 10 are bolted on both sides of the bottom of the frame 9. The top of the slide rail 8 is slidably connected to the moving wheel 10, and a box door 11 is bolted to one side of the frame 9. A mounting plate 28 is bolted to one end of the slide rail 8, and a second motor 29 is bolted to one side of the mounting plate 28. A threaded shaft 30 is bolted to the output end of the second motor 29 through a coupling, and one end of the threaded shaft 30 is sleeved with a limited bearing 31. The bottom of the limited bearing 31 is bolted to the drying box 1, and a threaded sleeve 32 is threadedly connected to the surface of the threaded shaft 30. The surface of the threaded sleeve 32 is bolted to the box door 11. An L-shaped plate 12 is bolted to the interior of the frame 9, and a placement tray 13 is placed on the top of the L-shaped plate 12. The user can start the first motor 5 to drive the fan blade 6 to rotate, and at the same time start the heating tube 7 for heating, so that the fan blade 6 drives the hot air into the interior of the drying box 1, and it is convenient to dry the microecological bacteria, and the water vapor is discharged through the exhaust pipe 19. At the same time, the hot air flows back to the interior of the shell 23 through the second return pipe 24, and the coil 25 is connected to the cooling water supply pipe and the cooling water return pipe. The moisture in the hot air is condensed by the cooling water and the coil 25, and the condensed water is discharged through the drain pipe 26 and the control valve 27. Then the hot air enters the interior of the circular tube 3 through the first return pipe 22 for circulation, thereby effectively facilitating the condensation heat circulation drying of the microecological bacteria and saving electric energy.

[0034] refer to Figure 1 The bottom of the slide rail 8 is bolted with a second base 18, and the bottom of the second base 18 is bolted with a second anti-slip pad 21. By providing the second base 18, the slide rail 8 can be effectively supported.

[0035] refer to Figure 1 The top of the drying box 1 is connected with an exhaust pipe 19. By providing the exhaust pipe 19, water vapor can be effectively discharged.

[0036] Brief description of the use process: the user can start the first motor 5, so that the first motor 5 drives the fan blade 6 to rotate, and at the same time start the heating tube 7 for heating, so that the fan blade 6 drives the hot air into the interior of the drying box 1, and it is convenient to dry the microecological bacteria, and the water vapor is discharged through the exhaust pipe 19. At the same time, the hot air flows back to the interior of the shell 23 through the second return pipe 24, and at the same time, the coil 25 is connected to the cooling water supply pipe and the cooling water return pipe, and the moisture in the hot air is condensed by the cooling water and the coil 25, so that the condensed water is discharged through the drain pipe 26 and the control valve 27, and then the hot air enters the interior of the circular tube 3 through the first return pipe 22 for circulation, so that the microecological bacteria can be effectively dried by condensation heat circulation, and electric energy is saved.

[0037] This specific embodiment is merely an explanation of the present invention and is not a limitation of the present invention. After reading this specification, those skilled in the art may make non-creative modifications to the present embodiment as needed. However, as long as they are within the scope of the claims of the present invention, they are protected by the patent law.

Claims

1. A drying device for microecological bacterial fermentation, comprising a drying box (1), characterized in that: One side of the drying box (1) is connected to a connecting shell (2), one side of the connecting shell (2) is connected to a circular tube (3), the other end of the circular tube (3) is bolted to a side plate (4), one side of the side plate (4) is bolted to a first motor (5), the output end of the first motor (5) is bolted to a fan blade (6) via a coupling, the inside of the circular tube (3) is bolted to a heating tube (7), the top of the circular tube (3) is connected to a first return pipe (22), and the first return pipe The other end of the housing (22) is connected to a shell (23), the top of the shell (23) is connected to a second return pipe (24), the other end of the second return pipe (24) is connected to the drying box (1), the inside of the shell (23) is bolted with a coil (25), both ends of the coil (25) pass through the outside of the shell (23), the bottom of the shell (23) is connected to a drain pipe (26), the other end of the drain pipe (26) is connected to a control valve (27), The drying box (1) is internally bolted with a slide rail (8), a frame (9) is arranged on the top of the slide rail (8), moving wheels (10) are bolted on both sides of the bottom of the frame (9), the top of the slide rail (8) is slidably connected to the moving wheels (10), one side of the frame (9) is bolted with a box door (11), one end of the slide rail (8) is bolted with a mounting plate (28), one side of the mounting plate (28) is bolted with a second motor (29), and the second motor (2 The output end of the drying box (9) is bolted with a threaded shaft (30) through a coupling, one end of the threaded shaft (30) is sleeved with a limit bearing (31), the bottom of the limit bearing (31) is bolted to the drying box (1), the surface of the threaded shaft (30) is threadedly connected with a threaded sleeve (32), the surface of the threaded sleeve (32) is bolted to the box door (11), the interior of the frame (9) is bolted with an L-shaped plate (12), and a placement plate (13) is placed on the top of the L-shaped plate (12).

2. A drying device for microecological bacterial fermentation according to claim 1, characterized in that: A handle (14) is provided on one side of the box door (11), and one side of the handle (14) is bolted to the box door (11).

3. A drying device for microecological bacterial fermentation according to claim 1, characterized in that: The front and back sides of the drying box (1) are both bolted with female buckles (15), and the front and back sides of the box door (11) are both bolted with sub-buckles (16) that match the female buckles (15).

4. A drying device for microecological bacterial fermentation according to claim 1, characterized in that: A first base (17) is bolted to both sides of the bottom of the drying box (1), and a first anti-slip pad (20) is bolted to the bottom of the first base (17).

5. A drying device for microecological bacterial fermentation according to claim 1, characterized in that: A second base (18) is bolted to the bottom of the slide rail (8), and a second anti-slip pad (21) is bolted to the bottom of the second base (18).

6. A drying device for microecological bacterial fermentation according to claim 1, characterized in that: The top of the drying box (1) is connected to an exhaust pipe (19).

Citation Information

Patent Citations

  • A drying device for micro -ecological agents production

    CN207214690U