Cooling circulation system of biological fermentation tank for glassine invertase
By designing a cooling circulation system in the fermentation tank and using the circulation heating and cooling of hot and cold water, the problem of difficulty in maintaining the optimal temperature of the fermentation tank is solved, and a better fermentation effect is achieved.
Patent Information
- Application Number
- CN202422044659.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-22
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-08-22
AI Technical Summary
Existing fermenters are difficult to maintain the optimal temperature range of 18-25 degrees in different seasons, resulting in poor fermentation effects.
A bio-fermentation tank cooling circulation system for Bosein converting enzymes is designed. By setting a heat exchange chamber in the heat exchange cylinder and using the circulation heating and cooling of hot and cold water, the temperature regulation of the fermentation tank is achieved.
Effectively maintain the temperature of the fermenter between 18-25 degrees to ensure the improvement of fermentation effect.
Smart Images

Figure CN223016850U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of fermentation tank cooling, and specifically relates to a cooling circulation system for a biological fermentation tank for bosentan converting enzyme. Background Art
[0002] Bosentan is a xylose derivative with anti-aging active substances, which can promote the synthesis of collagen, make the skin stronger, more elastic, improve neck fine lines and prevent aging. Bosentan is a mixture of glycoproteins derived from xylose.
[0003] Among them, bosentan is mainly generated by the conversion of converting enzyme. When using converting enzyme for conversion and generation, it is mainly placed in a fermentation tank for fermentation. The optimal temperature for fermentation is 18-25 degrees.
[0004] Among them, since the fermentation tank is often set in the workshop, it is cold in winter and hot in summer in the workshop. Therefore, it is very difficult to keep the fermentation tank between 18-25 degrees, which often leads to poor fermentation effect. Content of the Utility Model
[0005] The utility model provides a cooling circulation system for a biological fermentation tank for bosentan converting enzyme to solve the defects in the prior art.
[0006] The utility model is realized through the following technical solutions:
[0007] A cooling circulation system for a biological fermentation tank for bosentan converting enzyme, comprising a heat exchange cylinder with an upward opening. The fermentation tank is fixedly arranged in the fermentation barrel and there is a heat exchange cavity between the fermentation tank and the inner wall of the fermentation barrel. The two sides of the heat exchange cavity are respectively communicated with a water inlet pipe and a water outlet pipe. The water inlet pipe is respectively communicated with a hot water inlet pipe and a cold water inlet pipe through a three-way pipe. The hot water inlet pipe is communicated with a heating inlet pipe, the cold water inlet pipe is communicated with a first water pump in a reservoir. The water outlet pipe is controlled by a first valve, the hot water inlet pipe and the cold water inlet pipe are respectively controlled by a second valve and a third valve. The discharge port of the fermentation tank is communicated with a discharge pipe, the discharge pipe penetrates through the heat exchange cylinder and is provided with a discharge valve. The reservoir is communicated with a cold water pipe.
[0008] When this application is in use, cold water can be injected into the reservoir through the cold water pipe. The fermentation tank is located inside the heat exchange cylinder. In winter, the second valve is opened, so that the hot water in the heating water inlet pipe enters the heat exchange cylinder through the inlet pipe and the hot water inlet pipe and accumulates in the heat exchange cavity of the heat exchange cylinder, realizing the heating of the fermentation tank. When the water in the heat exchange cylinder cools down, the first valve is opened, so that the water flows out through the outlet pipe. In summer, the third valve and the first water pump are opened, so that the cold water in the reservoir enters the heat exchange cylinder, realizing the cooling of the fermentation tank. At the same time, when the water gets hot, the first valve is opened, so that the water flows out through the outlet pipe. Thus, the fermentation tank can be heated in winter and cooled in summer, ensuring that its temperature is around 18 - 25, and realizing better fermentation of the fermentation tank.
[0009] Preferably, the water outlet end of the outlet pipe is communicated with a water tank. A second water pump is arranged in the water tank. The water outlet end of the second water pump is communicated with the water inlet end of a three-way valve. The water outlet ends of the three-way valve are respectively communicated with a cold water pool and a hot water outlet pipe. A third water pump is arranged in the cold water pool. The water outlet end of the third water pump is communicated with a cold water outlet pipe. The cold water outlet pipe is communicated with the reservoir, and the hot water outlet pipe is communicated with the heating water outlet pipe. The water discharged through the outlet pipe enters the water tank. Among them, in winter, the water in the water tank enters the hot water outlet pipe through the second water pump and the three-way valve, and enters the heating water outlet pipe through the hot water outlet pipe for circulating heating. In summer, the water in the water tank enters the cold water pool through the second water pump and the three-way valve for cooling, and after cooling, enters the reservoir through the third water pump, realizing water circulation.
[0010] Preferably, an overflow hole is opened in the upper part of the heat exchange cylinder. The overflow hole is communicated with an overflow pipe. The lower end of the overflow pipe is communicated with the water tank. The overflow hole can ensure that when too much water is injected, it can flow out through the overflow hole and be recovered by the water tank, thus avoiding waste.
[0011] Preferably, the upper part of the fermentation tank penetrates upward through the heat exchange cylinder. An annular sealing ring is detachably and fixedly connected inside the heat exchange cylinder. The heat exchange cavity is sealed by the annular sealing ring sleeved on the fermentation tank. In winter, the annular sealing ring can be used to seal the heat exchange cavity, thereby reducing heat loss.
[0012] Preferably, a plurality of support plates are fixedly arranged along the circumferential direction of the inner wall of the heat exchange cylinder. The bottom surface of the annular sealing ring contacts the top surface of the support plate. The support plate can support the annular sealing ring, and further can realize clamping the sealing ring on the heat exchange cavity.
[0013] Preferably, both the cold water pool and the reservoir are buried underground and covered with a cover plate. Both the cold water pool and the reservoir being buried underground can achieve the effect of being warm in winter and cool in summer.
[0014] The beneficial effect of the present utility model is that the use of this application can ensure that the fermentation tank is heated in winter and cooled in summer, so that the temperature in the fermentation tank can be maintained between 18 - 25 degrees, and further realize better fermentation of the fermentation tank. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0016] Figure 1 It is a structural schematic diagram of the present invention.
[0017] As shown in the figure:
[0018] 1. Heat exchange cylinder, 2. Heat exchange chamber, 3. Fermentation tank, 4. Hot water inlet pipe, 5. Cold water inlet pipe, 6. Heating inlet pipe, 7. Water storage tank, 8. First valve, 9. Second valve, 10. Third valve, 11. Water tank, 12. Second water pump, 13. Cold water pool, 14. Third water pump, 15. Heating outlet pipe, 16. Overflow pipe, 17. Support plate, 18. Annular sealing ring. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0019] In order to make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the drawings in the embodiments of the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.
[0020] A cooling circulation system for a biological fermentation tank for bosicain converting enzyme, as Figure 1As shown in the figure. It includes a heat exchange cylinder 1 with an upward opening. The fermentation tank 3 is fixedly arranged in the fermentation barrel and there is a heat exchange cavity 2 between it and the inner wall of the fermentation barrel. Both sides of the heat exchange cavity 2 are respectively connected with a water inlet pipe and a water outlet pipe. The water inlet pipe is respectively connected with a hot water inlet pipe 4 and a cold water inlet pipe 5 through a three-way pipe. The hot water inlet pipe 4 is connected with a heating inlet pipe 6, and the cold water inlet pipe is connected with the first water pump in the water storage tank 7. The water outlet pipe is controlled by a first valve 8. The hot water inlet pipe 4 and the cold water inlet pipe 5 are respectively controlled by a second valve 9 and a third valve 10. The discharge port of the fermentation tank 3 is connected with a discharge pipe, and the discharge pipe passes through the heat exchange cylinder 1 and is provided with a discharge valve. The water storage tank 7 is connected with a cold water pipe. The water outlet end of the water outlet pipe is connected with a water tank 11. There is a second water pump 12 in the water tank 11. The water outlet end of the second water pump 12 is connected with the inlet end of a three-way valve. The outlet end of the three-way valve is respectively connected with a cool water pool 13 and a hot water outlet pipe. There is a third water pump 14 in the cool water pool 13. The water outlet end of the third water pump 14 is connected with a cool water outlet pipe, and the cool water outlet pipe is connected with the water storage tank 7. The hot water outlet pipe is connected with a heating outlet pipe 15.
[0021] When this application is in use, the discharge port of the fermentation tank 3 is connected with a discharge pipe, and the discharge pipe passes through the heat exchange cylinder 1 and is provided with a discharge valve, so as to ensure that the fermented material can flow out through the discharge pipe. Cold water can be injected into the water storage tank 7 through the cold water pipe. The fermentation tank 3 is located inside the heat exchange cylinder 1.
[0022] In winter, open the second valve 9, so that the hot water in the heating inlet pipe 6 enters the heat exchange cylinder 1 through the water inlet pipe and the hot water inlet pipe 4 and accumulates in the heat exchange cavity 2 of the heat exchange cylinder 1 to realize the heating of the fermentation tank 3. When the water in the heat exchange cylinder 1 becomes cold, open the first valve 8, so that the water flows out through the water outlet pipe. The water discharged through the water outlet pipe enters the water tank 11. The water in the water tank 11 enters the hot water outlet pipe through the second water pump 12 and the three-way valve, and enters the heating outlet pipe 15 through the hot water outlet pipe for circulating heating.
[0023] In summer, open the third valve 10 and the first water pump, so that the cool water in the water storage tank 7 enters the heat exchange cylinder 1 to realize the cooling of the fermentation tank 3. At the same time, when the water becomes hot, open the first valve 8, so that the water flows out through the water outlet pipe. The water in the water tank 11 enters the cool water pool 13 through the second water pump 12 and the three-way valve for cooling, and then enters the water storage tank 7 through the third water pump 14 after cooling to realize water circulation.
[0024] Thus, the fermentation tank 3 can be heated in winter and cooled in summer, ensuring that its temperature is around 18 - 25, and realizing better fermentation of the fermentation tank 3.
[0025] An overflow hole is opened at the upper part of the heat exchange cylinder 1. The overflow hole is connected with an overflow pipe 16, and the lower end of the overflow pipe 16 is connected with the water tank 11. The overflow hole can ensure that when too much water is injected, it can flow out through the overflow hole and be recovered by the water tank 11, thus avoiding waste.
[0026] The upper part of the fermentation tank 3 penetrates upward through the heat exchange cylinder 1, so as to facilitate the discharging of the fermentation tank 3. An annular sealing ring 18 is arranged in the heat exchange cylinder 1. A plurality of support plates 17 are fixedly arranged along the circumferential direction of the inner wall of the heat exchange cylinder 1. The bottom surface of the annular sealing ring 18 is in contact with the top surface of the support plate 17. The heat exchange cavity 2 is sealed by the annular sealing ring 18 sleeved on the fermentation tank 3. In winter, the heat exchange cavity 2 can be closed by using the annular sealing ring 18, so as to reduce heat loss. The support plate 17 can support the annular sealing ring 18, and further can realize clamping the sealing ring on the heat exchange cavity 2.
[0027] Both the cooling water pool 13 and the reservoir 7 are buried underground and covered with a cover plate. The fact that both the cooling water pool 13 and the reservoir 7 are buried underground can achieve the effect of warm in winter and cool in summer.
[0028] During the use of this application, the hot water in the heating pipeline and the cold water in the reservoir 7 can be utilized to ensure that the fermentation tank 3 is heated in winter and cooled in summer, so as to maintain the temperature in the fermentation tank 3 between 18 - 25 degrees, and further realize better fermentation of the fermentation tank 3.
[0029] Finally, it should be noted that: the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A cooling circulation system for a biofermentation tank for bosin invertase, characterized in that: It includes a heat exchange cylinder with an opening upward, the fermentation tank is fixedly arranged in the fermentation barrel and a heat exchange chamber is arranged between the fermentation tank and the inner wall of the fermentation barrel, the two sides of the heat exchange chamber are respectively connected with a water inlet pipe and a water outlet pipe, the water inlet pipe is respectively connected with a hot water inlet pipe and a cold water inlet pipe through a three-way pipe, the hot water inlet pipe is connected with a heating inlet pipe, the cold water inlet pipe is connected with a first water pump in a water reservoir, the outlet pipe is controlled by a first valve, the hot water inlet pipe and the cold water inlet pipe are respectively controlled by a second valve and a third valve, the discharge port of the fermentation tank is connected with a discharge pipe, the discharge pipe runs through the heat exchange cylinder and is provided with a discharge valve, and the water reservoir is connected with a cold water pipe.
2. The cooling circulation system for the biofermentation tank for bosin invertase according to claim 1, characterized in that: The outlet end of the water outlet pipe is connected to a water tank, a second water pump is arranged in the water tank, the water outlet end of the second water pump is connected to the water inlet end of the three-way valve, the water outlet end of the three-way valve is respectively connected to a cold water pool and a hot water outlet pipe, a third water pump is arranged in the cold water pool, the water outlet end of the third water pump is connected to a cold water outlet pipe, the cold water outlet pipe is connected to a water storage tank, and the hot water outlet pipe is connected to a heating outlet pipe.
3. The cooling circulation system for the biofermentation tank for bosin invertase according to claim 2, characterized in that: An overflow hole is opened on the upper part of the heat exchange tube, the overflow hole is connected with an overflow pipe, and the lower end of the overflow pipe is connected with the water tank.
4. The cooling circulation system for the biofermentation tank for bosera invertase according to claim 1, characterized in that: The upper part of the fermentation tank passes through the heat exchange cylinder upward, and a ring-shaped sealing ring is detachably fixedly connected in the heat exchange cylinder. The heat exchange cavity is sealed by the ring-shaped sealing ring sleeved on the fermentation tank.
5. The cooling circulation system for the biofermentation tank for bosin invertase according to claim 4, characterized in that: A plurality of support plates are fixedly arranged on the inner wall of the heat exchange cylinder along its circumference, and the bottom surface of the annular sealing ring contacts the top surface of the support plate.
6. The cooling circulation system for the biofermentation tank for bosera invertase according to claim 2, characterized in that: The cooling pool and the water storage tank are buried underground and covered with covers.
Citation Information
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