Bioreactor for photosynthetic chlorophyll synthesis
By integrating photosynthesis, purification and temperature control structures into the bioreactor, the problem of single function limitation of traditional bioreactor in photosynthetic chlorophyll synthesis is solved, efficient chlorophyll synthesis is achieved, and a fully suitable environment and precise temperature control are provided, thereby improving the synthesis efficiency and quality of chlorophyll.
Patent Information
- Application Number
- CN202422641338.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-31
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-10-31
AI Technical Summary
Traditional bioreactors fail to comprehensively consider factors such as CO2 concentration and humidity in the synthesis of photosynthetic chlorophyll, resulting in limited chlorophyll synthesis efficiency and yield.
The photosynthetic structure, purification and ventilation structure, and temperature control structure are integrated into one bioreactor to achieve the synergistic effects of stirring and mixing, specific lighting, air purification, and precise temperature control. A transparent tempered glass box and a box-type design of activated carbon, adsorption cotton, and filter cotton are used for air purification. The temperature control structure adjusts the temperature through an aspirator.
Provide all-round suitable environmental conditions, improve the efficiency and quality of chlorophyll synthesis, ensure fresh air and precise temperature control, meet lighting requirements, and break the single function limitations of traditional bioreactors.
Smart Images

Figure CN223409644U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of bioreactors, in particular to a bioreactor for photosynthetic chlorophyll synthesis. Background Art
[0002] The bioreactor for photosynthetic chlorophyll synthesis is a device that imitates the photosynthesis process of plants in nature. It is designed to simulate the photosynthesis process in plant chloroplasts through artificial means to achieve carbon dioxide fixation and organic matter synthesis. Photosynthesis is the process by which plants use light energy to convert carbon dioxide and water into organic matter and release oxygen.
[0003] Since traditional bioreactors often only focus on simulating a specific aspect of photosynthesis, such as providing only light or controlling temperature, without comprehensively considering other influencing factors such as CO2 concentration and humidity, this limits the efficiency and yield of chlorophyll synthesis. Therefore, those skilled in the art provide a bioreactor for photosynthetic chlorophyll synthesis to solve the problems raised in the above background technology. Utility Model Content
[0004] The purpose of the present invention is to solve the shortcomings of the prior art and to propose a photosynthetic chlorophyll synthesis bioreactor, which integrates the photosynthetic structure, purification and ventilation structure and temperature control structure into one bioreactor, thereby realizing the synergistic effect of multiple functions such as stirring and mixing, specific light providing to promote photosynthesis, air purification circulation and precise temperature control. This integrated design breaks the limitation of the single function of traditional bioreactors, provides a full range of suitable environmental conditions for chlorophyll synthesis, greatly improves the synthesis efficiency and quality of chlorophyll, and adopts a box-type design to place activated carbon, adsorption cotton and filter cotton, which is convenient for replacement and maintenance. At the same time, through the coordinated work of the air outlet fan and the air inlet fan, high air quality in the box is achieved. Efficient purification and circulation renewal can not only effectively remove odors, organic pollutants, tiny particles, dust and other impurities in the air inside the box, but also provide a fresh air environment for chlorophyll synthesis, which is of great significance to ensuring the quality of chlorophyll synthesis. The box is made of transparent tempered glass, which not only meets the light requirements of chlorophyll synthesis, but also ensures the structural strength of the box. At the same time, the two air suckers in the temperature control structure suck the hot air and cold air in the temperature control box into the box, so that the hot air and cold air pass through the box for cooling and heating. This design realizes precise control of the temperature in the box and makes full use of the transparent characteristics of the box, so that light and temperature control cooperate with each other to create the best environmental conditions for chlorophyll synthesis.
[0005] To achieve the above-mentioned object, the present invention provides the following technical solution: a photosynthetic chlorophyll synthesis bioreactor, comprising a box body, a control panel is provided at the center of the front end face of the box body, a box door is rotatably connected at the center of the upper end face of the box body, a photosynthetic structure is provided at the lower end face of the box door and the interior of the box body, a purification and ventilation structure is provided at the upper center of the two side walls of the box body, a temperature control box is provided at the center of the rear end face of the box body, a partition is provided at the center of the interior of the temperature control box, a temperature control structure is provided inside the temperature control box, and four guide plates are arranged in a rectangular shape at the lower center of the interior of the box body;
[0006] Through the above technical solution, by integrating the photosynthetic structure, purification and ventilation structure and temperature control structure into one bioreactor, the synergistic effect of multiple functions such as stirring and mixing, specific light to promote photosynthesis, air purification circulation and precise temperature control is achieved. This integrated design breaks the limitation of the single function of the traditional bioreactor, provides a full range of suitable environmental conditions for chlorophyll synthesis, and greatly improves the synthesis efficiency and quality of chlorophyll. By adopting a box-type design to place activated carbon, adsorption cotton and filter cotton, it is convenient for replacement and maintenance. At the same time, through the coordinated work of the air outlet and air inlet, the efficient purification and circulation renewal of the air in the box is achieved, which can not only effectively remove Impurities such as odor, organic pollutants, tiny particles and dust in the air inside the box can also provide a fresh air environment for chlorophyll synthesis, which is of great significance to ensuring the quality of chlorophyll synthesis. The box is made of transparent tempered glass, which not only meets the light requirements of chlorophyll synthesis, but also ensures the structural strength of the box. At the same time, the two air suckers in the temperature control structure suck the hot air and cold air in the temperature control box into the box, so that the hot air and cold air pass through the box for cooling and heating. This design realizes precise control of the temperature in the box and makes full use of the transparent characteristics of the box, so that light and temperature control cooperate with each other to create the best environmental conditions for chlorophyll synthesis.
[0007] Furthermore, the photosynthetic structure includes three motors, three stirring rods and four plant lighting lamps. The three motors are arranged horizontally at the upper center of the front end surface of the box body, and the three stirring rods are arranged horizontally at the upper center inside the box body. The output ends of the three motors pass through the front end surface of the box body to the inside of the box body in sequence, and the ends are fixedly connected to one end of the three stirring rods respectively. The four plant lighting lamps are arranged in a rectangular shape inside the box body on the lower end surface of the box door.
[0008] Through the above technical solution, when the motor is working, its output end drives the stirring rod to rotate, and the three motors respectively drive the corresponding stirring rods to stir the substances in the box so that the reaction substances are fully mixed. The four plant lighting lamps provide specific lighting conditions for the reaction in the box, promote the progress of photosynthesis, and provide suitable lighting and stirring conditions for the synthesis of chlorophyll, which helps to improve the synthesis efficiency and quality of chlorophyll.
[0009] Furthermore, the purification ventilation structure includes an air outlet rack, six lifting boxes, two activated carbons, two adsorption cottons, two filter cottons, an air outlet fan, an air inlet rack and an air inlet fan, the air outlet rack is arranged at the center of one side wall of the box body, the air inlet rack is arranged at the center of the other side wall of the box body, the six lifting boxes are respectively grouped into three, and the two groups of lifting boxes are respectively arranged transversely at one side of the center inside the air outlet rack and the air inlet rack, the two activated carbons, two adsorption cottons and two filter cottons are respectively arranged at the center inside the two groups of lifting boxes, the air outlet fan is arranged at one side of the center inside the air outlet rack, and the air inlet fan is arranged at one side of the center inside the air inlet rack;
[0010] Through the above technical solution, when the exhaust fan is working, the air in the box is drawn out, and the air passes through the air outlet rack. When passing through the lifting box in the air outlet rack, the activated carbon in the lifting box absorbs odors and some organic pollutants in the air, and the adsorption cotton further absorbs tiny particles and impurities. The filter cotton finely filters the air to remove dust and other particulate matter, thereby achieving purification of the air discharged from the box. When the inlet fan is working, the external air is sucked into the air inlet rack. When the external air passes through the lifting box in the air inlet rack, it is also purified by the activated carbon, adsorption cotton and filter cotton. After removing impurities and harmful substances, it is sent into the box to achieve renewal and circulation of the air in the box.
[0011] Furthermore, the temperature control structure includes a compressor, a condenser, a liquid reservoir, an evaporator, a circulating pump and two air aspirators, wherein the compressor is arranged at the center of one side wall of the temperature control box, the condenser is arranged on the compressor output end, the liquid reservoir is arranged on the condenser output end, the evaporator is arranged on the liquid reservoir output end, the circulating pump is arranged on the evaporator output end, the circulating pump is arranged on the compressor input end, and the two air aspirators are arranged on both sides of the front inner wall of the temperature control box.
[0012] Through the above technical solution, the compressor compresses the refrigerant into high-temperature and high-pressure gas, which enters the condenser and is cooled into high-pressure liquid in the condenser. The high-pressure liquid then flows into the liquid reservoir for storage and pressure stabilization. Then, the high-pressure liquid enters the evaporator, evaporates and absorbs heat in the evaporator, and lowers the temperature inside the box. The evaporated refrigerant gas is then transported back to the compressor by the circulating pump, forming a cycle. The two air intakes draw the hot air and cold air in the temperature-controlled box into the box, so that the hot air and cold air pass through the box for cooling and heating, thereby achieving precise control of the temperature inside the box. Precise control of the temperature inside the box provides suitable temperature conditions for the synthesis of chlorophyll. Different temperatures have a great influence on the synthesis rate and quality of chlorophyll. The temperature control structure can stabilize the temperature within the range that is most conducive to the reaction, thereby improving the efficiency and quality of chlorophyll synthesis.
[0013] Furthermore, the box body is made of transparent tempered glass;
[0014] Through the above technical solution, the box made of transparent tempered glass can allow light to pass through fully, so that the inside of the box can receive sufficient light to meet the light requirements of the chlorophyll synthesis process. At the same time, tempered glass has high strength and stability, and can withstand certain external force impact and pressure to ensure the structural integrity of the box.
[0015] Furthermore, air inlets are provided on both sides of the center of the lower end surface of the temperature control box;
[0016] Through the above technical solution, the air inlet is used to inhale external air into the temperature control box.
[0017] Furthermore, one end of the four guide plates is fixedly connected to a discharge solenoid valve;
[0018] Through the above technical solution, when the material inside the box needs to be discharged, the discharge solenoid valve is opened, and the material flows out of the box along the guide plate under the action of gravity. The discharge solenoid valve can be precisely controlled by the electronic control system to realize the automation of the discharge process.
[0019] The utility model has the following beneficial effects:
[0020] 1. In the present invention, the photosynthetic chlorophyll synthesis bioreactor integrates the photosynthetic structure, purification and ventilation structure, and temperature control structure into one bioreactor, thereby achieving the synergistic effect of multiple functions such as stirring and mixing, specific light providing to promote photosynthesis, air purification circulation, and precise temperature control. This integrated design breaks the limitation of the single function of traditional bioreactors, provides a full range of suitable environmental conditions for chlorophyll synthesis, and greatly improves the synthesis efficiency and quality of chlorophyll.
[0021] 2. In the utility model, activated carbon, adsorption cotton and filter cotton are placed in a box-type design, which is convenient for replacement and maintenance. At the same time, the coordinated work of the air outlet fan and the air inlet fan can achieve efficient purification and circulation of the air in the box. It can not only effectively remove odors, organic pollutants, tiny particles and dust and other impurities in the air in the box, but also provide a fresh air environment for chlorophyll synthesis, which is of great significance to ensuring the quality of chlorophyll synthesis.
[0022] 3. In the present invention, the box body is made of transparent tempered glass, which not only meets the light requirements of chlorophyll synthesis, but also ensures the structural strength of the box body. At the same time, the two air suckers in the temperature control structure suck the hot air and cold air in the temperature control box into the box body, so that the hot air and cold air pass through the box body for cooling and heating. This design realizes the precise control of the temperature in the box body and makes full use of the transparent characteristics of the box body, so that the light and temperature control cooperate with each other, creating the best environmental conditions for chlorophyll synthesis. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 This is a three-dimensional diagram of a bioreactor for photosynthetic chlorophyll synthesis proposed in the present invention;
[0024] Figure 2 This is a side sectional view of a bioreactor for photosynthetic chlorophyll synthesis proposed in the present invention;
[0025] Figure 3 This is a front cross-sectional view of a bioreactor for photosynthetic chlorophyll synthesis proposed in the present invention;
[0026] Figure 4 This is a rear cross-sectional view of a temperature control structure of a bioreactor for photosynthetic chlorophyll synthesis proposed by the present invention.
[0027] Legend:
[0028] 1. Box body; 2. Control panel; 3. Box door; 4. Photosynthetic structure; 401. Motor; 402. Stirring rod; 403. Plant lighting lamp; 5. Purification and ventilation structure; 501. Air outlet rack; 502. Lifting box; 503. Activated carbon; 504. Adsorption cotton; 505. Filter cotton; 506. Air outlet fan; 507. Air inlet rack; 508. Air inlet fan; 6. Temperature control box; 7. Partition; 8. Temperature control structure; 801. Compressor; 802. Condenser; 803. Liquid reservoir; 804. Evaporator; 805. Circulation pump; 806. Air suction machine; 807. Air inlet; 9. Material guide plate; 10. Discharge solenoid valve. DETAILED DESCRIPTION
[0029] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0030] Reference Figure 1-4The utility model provides an embodiment: a photosynthetic chlorophyll synthesis bioreactor, comprising a box body 1, a control panel 2 is provided at the center of the front end surface of the box body 1, a box door 3 is rotatably connected at the center of the upper end surface of the box body 1, a photosynthetic structure 4 is provided at the lower end surface of the box door 3 and the interior of the box body 1, a purification and ventilation structure 5 is provided at the upper center of both side walls of the box body 1, a temperature control box 6 is provided at the center of the rear end surface of the box body 1, a partition 7 is provided at the center of the temperature control box 6, a temperature control structure 8 is provided inside the temperature control box 6, and four material guide plates 9 are arranged in a rectangular shape at the lower center of the interior of the box body 1.
[0031] The photosynthetic structure 4 receives light above the box 1 and provides the light energy required for photosynthesis inside the box 1. The purification and ventilation structure 5 purifies and ventilates the air inside the box 1 to ensure the quality of the air inside the box 1. The temperature control structure 8 in the temperature control box 6 realizes precise control of the temperature inside the box 1. When the reaction is completed, the material is discharged through four guide plates 9. The parameters of the photosynthetic structure 4, the purification and ventilation structure 5 and the temperature control structure 8 can be set and operated through the control panel 2. The box 1 is made of transparent tempered glass. The box 1 made of transparent tempered glass can allow light to fully penetrate, so that the inside of the box 1 can receive sufficient light. , meeting the demand for light in the process of chlorophyll synthesis. At the same time, tempered glass has high strength and stability, and can withstand certain external impact and pressure to ensure the structural integrity of the box 1. Air inlets 807 are provided on both sides of the center of the lower end surface of the temperature control box 6. The air inlet 807 is used to inhale external air into the temperature control box 6. A discharge solenoid valve 10 is fixedly connected to one end of the four guide plates 9. When the material inside the box 1 needs to be discharged, the discharge solenoid valve 10 is opened, and the material flows out of the box 1 along the guide plate 9 under the action of gravity. The discharge solenoid valve 10 can be precisely controlled by the electronic control system to realize the automatic operation of the discharge process.
[0032] The photosynthetic structure 4 includes three motors 401, three stirring rods 402 and four plant lighting lamps 403. The three motors 401 are arranged horizontally at the upper center of the front end face of the box body 1, and the three stirring rods 402 are arranged horizontally at the upper center of the interior of the box body 1. The output ends of the three motors 401 pass through the front end face of the box body 1 in sequence and pass into the interior of the box body 1, and the ends are fixedly connected to one end of the three stirring rods 402. The four plant lighting lamps 403 are arranged in a rectangular shape inside the box body 1 on the lower end face of the box door 3. When the motor 401 is working, its output end drives the stirring rod 402 to rotate, and the three motors 401 drive the corresponding stirring rods 402 respectively to stir the substances in the box body 1 so that the reaction substances are fully mixed. The four plant lighting lamps 403 provide specific lighting conditions for the reaction in the box body 1, promote the progress of photosynthesis, and provide suitable lighting and stirring conditions for the synthesis of chlorophyll, which helps to improve the synthesis efficiency and quality of chlorophyll.
[0033] The purification ventilation structure 5 includes an air outlet rack 501, six lifting boxes 502, two activated carbons 503, two adsorption cottons 504, two filter cottons 505, an air outlet fan 506, an air inlet rack 507 and an air inlet fan 508. The air outlet rack 501 is arranged at the center of one side wall of the box body 1, and the air inlet rack 507 is arranged at the center of the other side wall of the box body 1. The six lifting boxes 502 are respectively grouped into three groups. The two groups of lifting boxes 502 are arranged horizontally at one side of the center of the air outlet rack 501 and the air inlet rack 507. The two activated carbons 503, two adsorption cottons 504 and two filter cottons 505 are respectively arranged at the center of the two groups of lifting boxes 502. The air outlet fan 506 is arranged at one side of the center of the air outlet rack 501, and the air inlet fan 508 is arranged at the center of the air inlet rack 507. On one side, when the exhaust fan 506 is working, the air in the box 1 is drawn out, and the air passes through the air outlet rack 501. When passing through the lifting box 502 in the air outlet rack 501, the activated carbon 503 in the lifting box 502 absorbs odors and some organic pollutants in the air, and the adsorption cotton 504 further absorbs tiny particles and impurities. The filter cotton 505 finely filters the air to remove dust and other particulate matter, thereby achieving the purification of the air discharged from the box 1. When the air inlet fan 508 is working, it draws external air into the air inlet rack 507. When the external air passes through the lifting box 502 in the air inlet rack 507, it is also purified by the activated carbon 503, adsorption cotton 504 and filter cotton 505. After removing impurities and harmful substances, it is sent into the box 1 to achieve the renewal and circulation of the air in the box 1.
[0034] The temperature control structure 8 includes a compressor 801, a condenser 802, a liquid reservoir 803, an evaporator 804, a circulating pump 805 and two air suckers 806. The compressor 801 is arranged at the center of one side wall of the temperature control box 6, the condenser 802 is arranged on the output end of the compressor 801, the liquid reservoir 803 is arranged on the output end of the condenser 802, the evaporator 804 is arranged on the output end of the liquid reservoir 803, the circulating pump 805 is arranged on the output end of the evaporator 804, the circulating pump 805 is arranged on the input end of the compressor 801, and the two air suckers 806 are arranged on both sides of the front inner wall of the temperature control box 6. The compressor 801 compresses the refrigerant into high-temperature and high-pressure gas. The high-temperature and high-pressure gas enters the condenser 802 and is cooled into high-pressure liquid in the condenser 802. The high-pressure liquid is then It flows into the liquid storage tank 803 for storage and pressure stabilization, and then the high-pressure liquid enters the evaporator 804, where it evaporates and absorbs heat, lowering the temperature inside the box 1. The evaporated refrigerant gas is then transported back to the compressor 801 by the circulation pump 805, forming a cycle. The two air suckers 806 suck the hot air and cold air in the temperature-controlled box 6 into the inside of the box 1, so that the hot air and cold air pass through the box 1 for cooling and heating, thereby achieving precise control of the temperature inside the box 1. Precise control of the temperature inside the box 1 provides suitable temperature conditions for the synthesis of chlorophyll. Different temperatures have a great influence on the synthesis rate and quality of chlorophyll. The temperature control structure 8 can stabilize the temperature within the range that is most conducive to the reaction, thereby improving the efficiency and quality of chlorophyll synthesis.
[0035] Working principle: After the user opens the door 3 and puts the photosynthetic chlorophyll he needs into the box 1, he closes the door 3 and starts the motor 401. Its output end drives the stirring rod 402 to rotate. The three motors 401 drive the corresponding stirring rods 402 respectively to stir the substances in the box 1 so that the reaction substances are fully mixed. The four plant lighting lamps 403 provide specific lighting conditions for the reaction in the box 1, promote the progress of photosynthesis, provide suitable lighting and stirring conditions for the synthesis of chlorophyll, and help improve the synthesis efficiency and quality of chlorophyll. When the air outlet fan 506 is working, the air in the box 1 is extracted, and the air passes through the air outlet rack 501 and is then When passing through the lifting box 502 in the air outlet rack 501, the activated carbon 503 in the lifting box 502 absorbs odors and some organic pollutants in the air, the adsorption cotton 504 further absorbs tiny particles and impurities, and the filter cotton 505 finely filters the air to remove dust and other particulate matter, thereby achieving the purification of the exhaust air in the box 1. When the air intake fan 508 is working, it draws external air into the air intake rack 507. When the external air passes through the lifting box 502 in the air intake rack 507, it is also purified by the activated carbon 503, adsorption cotton 504 and filter cotton 505. After removing impurities and harmful substances, it is sent into the box 1 to achieve the renewal and circulation of the air in the box 1.
[0036] The temperature in the box 1 is precisely controlled by the temperature control structure 8 in the temperature control box 6. The compressor 801 compresses the refrigerant into high-temperature and high-pressure gas. The high-temperature and high-pressure gas enters the condenser 802 and is cooled into high-pressure liquid in the condenser 802. The high-pressure liquid then flows into the liquid reservoir 803 for storage and pressure stabilization. Then, the high-pressure liquid enters the evaporator 804, where it evaporates and absorbs heat, lowering the temperature in the box 1. The evaporated refrigerant gas is then transported back to the compressor 801 by the circulation pump 805, forming a cycle. The two air intake machines 806 suck the hot air and cold air in the temperature control box 6 Inside the box 1, hot air and cold air are cooled and heated through the box 1, thereby realizing precise control of the temperature inside the box 1. Precise control of the temperature inside the box 1 provides suitable temperature conditions for the synthesis of chlorophyll. Different temperatures have a great influence on the synthesis rate and quality of chlorophyll. The temperature can be stabilized within the range that is most conducive to the reaction through the temperature control structure 8, thereby improving the efficiency and quality of chlorophyll synthesis. When the reaction is completed, the material is discharged through four guide plates 9. The parameters of the photosynthetic structure 4, the purification and ventilation structure 5 and the temperature control structure 8 can be set and operated through the control panel 2.
[0037] Finally, it should be noted that the above is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or make equivalent replacements for some of the technical features therein. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A bioreactor for photosynthetic chlorophyll synthesis, comprising a housing (1), characterized in that: A control panel (2) is provided at the center of the front end face of the box (1); a box door (3) is rotatably connected at the center of the upper end face of the box (1); a photosynthetic structure (4) is provided at the lower end face of the box door (3) and the interior of the box (1); a purification and ventilation structure (5) is provided at the upper center of the two side walls of the box (1); a temperature control box (6) is provided at the center of the rear end face of the box (1); a partition (7) is provided at the center of the interior of the temperature control box (6); a temperature control structure (8) is provided inside the temperature control box (6); and four material guide plates (9) are arranged in a rectangular shape at the lower center of the interior of the box (1).
2. A bioreactor for photosynthetic chlorophyll synthesis according to claim 1, characterized in that: The photosynthetic structure (4) comprises three motors (401), three stirring rods (402) and four plant lighting lamps (403). The three motors (401) are arranged transversely at the center upper portion of the front end face of the box body (1). The three stirring rods (402) are arranged transversely at the center upper portion of the interior of the box body (1). The output ends of the three motors (401) sequentially pass through the front end face of the box body (1) and pass into the interior of the box body (1), and the ends are respectively fixedly connected to one end portion of the three stirring rods (402). The four plant lighting lamps (403) are arranged in a rectangular shape on the lower end face of the box door (3) inside the box body (1).
3. A bioreactor for photosynthetic chlorophyll synthesis according to claim 1, characterized in that: The purification ventilation structure (5) comprises an air outlet frame (501), six lifting boxes (502), two activated carbons (503), two adsorption cottons (504), two filter cottons (505), an air outlet fan (506), an air inlet frame (507) and an air inlet fan (508), wherein the air outlet frame (501) is arranged at the center upper part of one side wall of the box body (1), and the air inlet frame (507) is arranged at the center upper part of the other side wall of the box body (1). Three of the six lifting boxes (502) are respectively In one group, the two groups of the lifting boxes (502) are arranged horizontally at one side of the inner center of the air outlet frame (501) and the air inlet frame (507), the two activated carbons (503), the two adsorption cottons (504) and the two filter cottons (505) are respectively arranged at the inner center of the two groups of lifting boxes (502), the air outlet fan (506) is arranged at one side of the inner center of the air outlet frame (501), and the air inlet fan (508) is arranged at one side of the inner center of the air inlet frame (507).
4. A bioreactor for photosynthetic chlorophyll synthesis according to claim 1, characterized in that: The temperature control structure (8) comprises a compressor (801), a condenser (802), a liquid reservoir (803), an evaporator (804), a circulation pump (805) and two air suckers (806), wherein the compressor (801) is arranged at the center of a side wall of the temperature control box (6), the condenser (802) is arranged on the output end of the compressor (801), the liquid reservoir (803) is arranged on the output end of the condenser (802), the evaporator (804) is arranged on the output end of the liquid reservoir (803), the circulation pump (805) is arranged on the output end of the evaporator (804), the circulation pump (805) is arranged on the input end of the compressor (801), and the two air suckers (806) are arranged on both sides of the front inner wall of the temperature control box (6) close to the upper part.
5. A bioreactor for photosynthetic chlorophyll synthesis according to claim 1, characterized in that: The box body (1) is made of transparent tempered glass.
6. A bioreactor for photosynthetic chlorophyll synthesis according to claim 1, characterized in that: Air inlets (807) are provided at both sides of the center of the lower end surface of the temperature control box (6).
7. A bioreactor for photosynthetic chlorophyll synthesis according to claim 1, characterized in that: One end of the four material guide plates (9) is fixedly connected to a discharge solenoid valve (10).