A Cordyceps flower production and cultivation system based on strain fermentation optimization method
Through bacterial seed spraying technology without opening or punching, the Cordyceps flower production and cultivation system combined with motor and electric push rods solves the problem of environmental stability of the culture medium, and achieves efficient cultivation and uniform coverage of Cordyceps flower.
Patent Information
- Application Number
- CN202411686821.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-25
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2044-11-25
AI Technical Summary
Prior Art During the cultivation of Cordyceps flower, the stability of the culture medium environment is affected by the sealing membrane opening or hole punching operation, resulting in fluctuations in environmental conditions and affecting the effect of bacterial culture.
The Cordyceps flower production and cultivation system based on the strain fermentation optimization method is adopted. Through the cooperation of the motor, electric push rod and spraying components, bacterial spraying without opening or punching is achieved. The strain spraying is performed using the central hole, and uniform coverage is achieved through the rotation and adjustment of the spray head.
It improves the utilization efficiency of the culture medium, maintains the stability of the culture medium environment, ensures uniform coverage and efficient cultivation of bacterial species, and adapts to the needs of culture medium of different thicknesses.
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Figure CN119464009B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of cordyceps flower production and cultivation, and in particular to a cordyceps flower production and cultivation system based on a strain fermentation optimization method. Background Art
[0002] Cordyceps flower is a fungus rich in various nutrients. It contains rich protein, amino acids, cordycepin, polysaccharides, etc., and has extremely high nutritional value and medicinal value.
[0003] In the prior art, in the cultivation step of Cordyceps flower, it is necessary to inoculate the culture medium after the sterilization treatment with the strain. In order to ensure that the culture medium is in a stable sterile environment throughout the entire cultivation process, the surface of the culture box needs to be sealed with a film or a lid needs to be fastened. During the strain inoculation operation, in order to ensure that the culture medium is evenly covered with the strain, it is necessary to make multiple holes on the surface of the sealing film and inject the strain in the center, or directly open the lid for inoculation. The above-mentioned operation methods will cause the environmental conditions of the culture medium to fluctuate greatly, thereby affecting the stability of the Cordyceps flower strain cultivation environment.
[0004] Therefore, we proposed a Cordyceps flower production and cultivation system based on the strain fermentation optimization method to solve the above problems. Summary of the Invention
[0005] The purpose of the present invention is to provide a Cordyceps flower production and cultivation system based on a strain fermentation optimization method to solve the problem that the existing technology proposed in the above background technology will cause large fluctuations in the environmental conditions of the culture medium, thereby affecting the stability of the Cordyceps flower strain cultivation environment.
[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a cordyceps flower production and cultivation system based on a strain fermentation optimization method, comprising: a supporting component, a cultivation component, an opening component, a supply component, a support component, a drive component and a spraying component, wherein the supporting component is used for bottom support, the supporting component comprises a bottom plate, the top of the bottom plate is fixedly connected to a plane bearing, the top of the plane bearing is fixedly connected to a rotating ring, the top of the bottom plate is fixedly connected to a placement table near the inner center of the rotating ring, and the top of the placement table is fixedly connected to a placement frame; the cultivation component is used to provide growth space for the strain for cultivation, the cultivation component is located above the placement table, the cultivation component comprises a cultivation box and a cover, a center hole is opened at the center of the top of the cover; the opening component is used to control the opening of the cultivation box for spraying the strain, and the opening component is fixedly connected to Connected to the top of the base plate, the opening assembly includes an opening frame; the supply assembly is used for conveying and supplying the bacterial strain, the supply assembly is fixedly connected to the top of the rotating ring, the supply assembly includes a second electric push rod, and the upper end face of the second electric push rod is fixedly connected to the lifting plate; the support assembly, the support assembly is used to provide support for rotation adjustment of the drive assembly and the spray assembly, the support assembly is fixedly connected to the top of the lifting plate, the support assembly includes two support frames; the drive assembly, the drive assembly is used to drive the spray assembly for position adjustment, the drive assembly is located in the front side of the support frame, the drive assembly includes a drive frame; the spray assembly, the spray assembly is used to be inserted into the interior of the cultivation box for evenly covering the bacterial strain spraying, the spray assembly is fixedly connected to the outer surface of the drive frame, the spray assembly includes a sleeve block, and a sleeve rod is inserted into the inner surface of the sleeve block.
[0007] Preferably, the outer surface of the cultivation box is fitted with the inner surface of the placement frame, the rotating ring is consistent with the axis of the placement table, the outer surface of the rotating ring is fixedly connected to a gear ring, the top of the base plate is fixedly connected to a support, the top of the support is fixedly connected to a first motor, the output end of the first motor passes through the support and extends to the lower side, the output end of the first motor is fixedly connected to a first rotating shaft, the lower end face of the first rotating shaft is fixedly connected to a first gear, and the first gear is engaged with the gear ring to drive the rotating ring.
[0008] Preferably, the cover is used to block and seal the top opening of the cultivation box, a plurality of air holes are evenly opened on the top of the cover, and a stopper is fixedly connected to the top of the cover near the center hole.
[0009] Preferably, a plurality of springs are fixedly connected to the inner bottom of the block at equal intervals, a sealing block is fixedly connected between the end faces of the plurality of springs, the outer surface of the sealing block is fitted with the inner surface of the block, the sealing block is matched with the position of the center hole, side grooves are provided on the outer surfaces of both sides of the block, and a linkage plate is symmetrically fixedly connected to the outer surface of the sealing block, the linkage plate is located on the inner side of the side groove, an extension rod is fixedly connected between the outer surfaces of the two linkage plates, and a pressure plate is fixedly connected between the end faces of the two extension rods.
[0010] Preferably, the outer surface of the opening frame close to the incubation box is fixedly connected to a first electric push rod, and the end face of the first electric push rod is fixedly connected to a push plate, and the push plate is matched with the position of the pressure plate. When the first electric push rod is in a retracted state, the push plate is located outside the incubation box.
[0011] Preferably, a liquid storage box and an infusion pump are fixedly connected to the top of the lifting plate, a supply tube is fixedly connected to the input end of the infusion pump, the supply tube is connected to the liquid storage box, and a rotary joint is rotatably connected to the output end of the infusion pump.
[0012] Preferably, an arc-shaped frame is fixedly connected between the outer surfaces of the two support frames, a tooth groove is provided at the inner bottom of the arc-shaped frame, a slide rail is fixedly connected to the top of the arc-shaped frame, a frame rod is symmetrically fixedly connected to the top of the driving frame, a slider is fixedly connected between the end faces of the two frame rods, and the outer surface of the slider is slidably connected to the inner surface of the slide rail to provide limiting support for the driving frame.
[0013] Preferably, the inner surface of the driving frame is fixedly connected to the second motor, the output end of the second motor passes through the driving frame and extends to the outside, the output end of the second motor is fixedly connected to the second rotating shaft, the end face of the second rotating shaft is fixedly connected to the second gear, the second gear is located at the inner position of the arc frame, and the second gear is meshed with the tooth groove, the bottom of the driving frame is symmetrically fixedly connected to the support arms, a bracket is fixedly connected between the lower end surfaces of the two support arms, the outer surface of the bracket is fixedly connected to the third motor, the output end of the third motor passes through the bracket and extends to the inside, the output end of the third motor is fixedly connected to the third rotating shaft, the outer surface of the third rotating shaft is fixedly connected to the third gear, the outer surface of the sleeve rod is provided with a plane groove, the inner surface of the plane groove is fixedly connected with a tooth block, and the tooth block is meshed with the third gear.
[0014] Preferably, a plurality of balls are evenly arranged on the inner surface of the sleeve block, and the balls are used to provide sliding support for the sleeve rod. A connecting tube is fixedly connected to the upper end surface of the sleeve rod, and a second hose is fixedly connected to the end surface of the connecting tube. The second hose is fixedly connected to the rotary joint, and a first hose is fixedly connected to the top inside the sleeve rod, and the connecting tube is connected to the first hose.
[0015] Preferably, a first ball head is slidingly sleeved on the outer surface of the sleeve rod, a first limit seat is provided on the outer surface of the first ball head, the first limit seat is located inside the center hole, the outer surface of the sleeve rod is fixedly connected to an outer frame near the lower end surface, the outer surface of the outer frame is fixedly connected to the second limit seat, a second ball head is provided on the inner surface of the second limit seat, a through hole is opened on the outer surface of the second ball head, a fixing tube is fixedly connected to the bottom of the second ball head near the through hole, the lower end surface of the fixing tube is fixedly connected to a mounting plate, the bottom of the mounting plate is fixedly connected to a nozzle, the bottom of the mounting plate is fixedly connected to a counterweight block near the edge, the first hose is located inside the through hole, the lower end surface of the first hose is fixedly connected to the top of the mounting plate, and the first hose is connected to the nozzle.
[0016] Compared with the prior art, the present invention has the following beneficial effects:
[0017] 1. Through the coordinated operation of the first motor, the second motor, the first electric push rod and the second electric push rod, under the condition that the cultivation box is not opened or punched, the culture medium is sprayed and inoculated with the strains only through the center hole position, the degree of automation is high, and under the condition that the cultivation box is not opened or punched, the impact on the cultivation environment inside the cultivation box is small, thereby avoiding affecting the sterile environment of the culture medium during the inoculation operation. At the same time, the nozzle gradually moves toward the outer circle for rotation and spraying, which can achieve comprehensive and uniform coverage of the culture medium by spraying the strains, and has a high utilization efficiency of the culture medium. The strains at each position can absorb sufficient nutrients, which is conducive to the efficient cultivation of Cordyceps flowers.
[0018] 2. While the nozzle is spraying the bacteria, the third motor can drive the third gear to rotate through the connection of the third shaft after it is running. When the third gear rotates, it can drive the sleeve rod to move downward through the engagement with the tooth block. The downward movement of the sleeve rod can drive the nozzle to move downward. At this time, the nozzle has completed the adjustment of the distance from the culture medium, which is convenient for appropriate adjustment of the nozzle position according to different cultivation needs and culture media of different thicknesses. It has strong functionality.
[0019] 3. The extension of the first electric push rod can drive the push plate to move toward the pressure plate. After the pressure plate is pressurized, it will drive the sealing block to move away from the center hole through the connection between the extension rod and the linkage plate. At this time, the sealing block is displaced from the center hole position, leaving the center hole position in an unobstructed state. After the bacterial inoculation is completed, the first electric push rod contracts and resets, and the rebound force of the spring can drive the sealing block to automatically reset and close the center hole, which is convenient and quick to adjust the opening and closing of the center hole. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 This is a three-dimensional diagram of a Cordyceps flower production and cultivation system based on a strain fermentation optimization method of the present invention;
[0021] Figure 2 This is a rear view of a Cordyceps flower production and cultivation system based on a strain fermentation optimization method according to the present invention;
[0022] Figure 3 This is an exploded diagram of a Cordyceps flower production and cultivation system based on a strain fermentation optimization method of the present invention;
[0023] Figure 4 This is a schematic structural diagram of a supporting component of a Cordyceps flower production and cultivation system based on a strain fermentation optimization method according to the present invention;
[0024] Figure 5 This is a schematic diagram of the structure of the cultivation components of a Cordyceps flower production and cultivation system based on the strain fermentation optimization method of the present invention;
[0025] Figure 6 This is a schematic diagram of the sealing block structure of a Cordyceps flower production and cultivation system based on the strain fermentation optimization method of the present invention;
[0026] Figure 7 This is a schematic diagram of the structure of the opening components of a Cordyceps flower production and cultivation system based on the strain fermentation optimization method of the present invention;
[0027] Figure 8 This is a schematic structural diagram of a supply component of a Cordyceps flower production and cultivation system based on a strain fermentation optimization method according to the present invention;
[0028] Figure 9 A schematic diagram of a partial structural combination of a Cordyceps flower production and cultivation system based on a strain fermentation optimization method of the present invention;
[0029] Figure 10 This is a schematic diagram of the support component structure of a Cordyceps flower production and cultivation system based on the strain fermentation optimization method of the present invention;
[0030] Figure 11 This is a schematic diagram of the structure of the driving components of a Cordyceps flower production and cultivation system based on the strain fermentation optimization method of the present invention;
[0031] Figure 12 This is a schematic diagram of the spraying component structure of a Cordyceps flower production and cultivation system based on a strain fermentation optimization method of the present invention;
[0032] Figure 13 This is a schematic diagram of the sleeve rod structure of a Cordyceps flower production and cultivation system based on the strain fermentation optimization method of the present invention;
[0033] Figure 14 for Figure 13 A magnified view of the structure at point A;
[0034] Figure 15The present invention is a schematic diagram of the regulation state of a Cordyceps flower production and cultivation system based on the strain fermentation optimization method.
[0035] In the picture:
[0036] 1. Support assembly; 101. Bottom plate; 102. Plane bearing; 103. Placement table; 104. Placement frame; 105. Rotating ring; 106. Gear ring; 107. Support; 108. First motor; 109. First rotating shaft; 110. First gear; 2. Cultivation assembly; 201. Cultivation box; 202. Cover; 203. Air vent; 204. Center hole; 205. Stopper; 206. Spring; 207. Sealing block; 208. Side groove; 209. Interlocking plate; 210. Extension rod; 211. Pressure plate; 3. Opening assembly; 301. Opening frame; 302. First electric push rod; 303. Push plate; 4. Supply assembly; 401. Second electric push rod; 402. Lifting plate; 403. Liquid storage box; 404. Infusion pump; 405. Supply tube; 406. 6. Rotary joint; 5. Support assembly; 501. Support frame; 502. Arc frame; 503. Slide rail; 6. Drive assembly; 601. Drive frame; 602. Second motor; 603. Second rotating shaft; 604. Second gear; 605. Frame rod; 606. Slider; 607. Support arm; 608. Bracket; 609. Third motor; 610. Third rotating shaft; 611. Third gear; 7. Spray assembly; 701. Bushing; 702. Bushing; 703. First hose; 704. Gear block; 705. Connecting pipe; 706. Second hose; 707. First ball head; 708. First limit seat; 709. External frame; 710. Second limit seat; 711. Second ball head; 712. Fixed pipe; 713. Mounting plate; 714. Spray head; 715. Counterweight. DETAILED DESCRIPTION
[0037] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the implementation regulations described are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.
[0038] Example 1
[0039] Reference Figures 1-15As shown, the present invention provides a technical solution: a cordyceps flower production and cultivation system based on a strain fermentation optimization method, comprising: a supporting component 1, a cultivation component 2, an opening component 3, a supply component 4, a support component 5, a driving component 6 and a spraying component 7, wherein the supporting component 1 is used for bottom support, and the supporting component 1 comprises a bottom plate 101, a plane bearing 102 is fixedly connected to the top of the bottom plate 101, a rotating ring 105 is fixedly connected to the top of the plane bearing 102, a placing table 103 is fixedly connected to the top of the bottom plate 101 near the inner center of the rotating ring 105, and a placing frame 104 is fixedly connected to the top of the placing table 103; the cultivation component 2 is used to provide a growth space for the strain for cultivation, and the cultivation component 2 is located above the placing table 103, and the cultivation component 2 includes The incubation box 201 and the cover 202 are provided with a center hole 204 at the center of the top of the cover 202; the opening component 3 is used to control the opening of the incubation box 201 for spraying the bacteria, the opening component 3 is fixedly connected to the top of the bottom plate 101, and the opening component 3 includes an opening frame 301; the supply component 4 is used for conveying and supplying the bacteria, the supply component 4 is fixedly connected to the top of the rotating ring 105, the supply component 4 includes a second electric push rod 401, and the upper end surface of the second electric push rod 401 is fixedly connected to the lifting plate 402; the support component 5, the support component 5 is used to provide support for rotation adjustment of the drive component 6 and the spray component 7, the support component 5 is fixedly connected to the top of the lifting plate 402, and the support component 5 includes two support frames 501; the drive component 6, the drive component 6 is used to drive the spraying assembly 7 for position adjustment. The driving assembly 6 is located in the front side of the support frame 501. The driving assembly 6 includes a driving frame 601; a spraying assembly 7, which is used to be inserted into the interior of the cultivation box 201 for spraying the bacteria evenly. The spraying assembly 7 is fixedly connected to the outer surface of the driving frame 601. The spraying assembly 7 includes a sleeve block 701. The inner surface of the sleeve block 701 is inserted with a sleeve rod 702. The outer surface of the cultivation box 201 fits the inner surface of the placement frame 104. The rotating ring 105 is consistent with the axis of the placement table 103. The outer surface of the rotating ring 105 is fixedly connected to the gear ring 106. The top of the bottom plate 101 is fixedly connected to the support 107. The top of the support 107 is fixedly connected to the first motor 108. The output end of the first motor 108 passes through the support The seat 107 extends to the lower side, the output end of the first motor 108 is fixedly connected to the first rotating shaft 109, the lower end surface of the first rotating shaft 109 is fixedly connected to the first gear 110, the first gear 110 is engaged with the ring gear 106 to drive the rotating ring 105, the cover 202 is used to block and seal the top opening of the cultivation box 201, a plurality of air holes 203 are evenly opened on the top of the cover 202, a stopper 205 is fixedly connected to the top of the cover 202 near the center hole 204, a plurality of springs 206 are equidistantly fixedly connected to the bottom of the stopper 205, a sealing block 207 is fixedly connected between the end surfaces of the plurality of springs 206, the outer surface of the sealing block 207 is in contact with the inner surface of the stopper 205, and the sealing block 207 is matched with the position of the center hole 204,The top of the lifting plate 402 is fixedly connected to a liquid storage box 403 and an infusion pump 404, the input end of the infusion pump 404 is fixedly connected to a supply pipe 405, the supply pipe 405 is connected to the liquid storage box 403, the output end of the infusion pump 404 is rotatably connected to a rotary joint 406, an arc frame 502 is fixedly connected between the outer surfaces of the two support frames 501, a tooth groove is provided at the bottom of the arc frame 502, a slide rail 503 is fixedly connected to the top of the arc frame 502, a frame rod 605 is symmetrically fixedly connected to the top of the driving frame 601, a slider 606 is fixedly connected between the end faces of the two frame rods 605, and the outer surface of the slider 606 The surface is slidably connected to the inner surface of the slide rail 503 to provide limited support for the drive frame 601. The inner surface of the drive frame 601 is fixedly connected to the second motor 602. The output end of the second motor 602 passes through the drive frame 601 and extends to the outside. The output end of the second motor 602 is fixedly connected to the second shaft 603. The end face of the second shaft 603 is fixedly connected to the second gear 604. The second gear 604 is located on the inner side of the arc frame 502. The second gear 604 is in meshing with the tooth groove. A plurality of balls are evenly arranged on the inner surface of the sleeve block 701. The balls are used to provide sliding support for the sleeve rod 702. The upper end of the sleeve rod 702 The surface is fixedly connected with a connecting pipe 705, and the end surface of the connecting pipe 705 is fixedly connected with a second hose 706. The second hose 706 is fixedly connected to the rotary joint 406. The top of the sleeve rod 702 is fixedly connected with a first hose 703. The connecting pipe 705 and the first hose 703 are in a connected state. The outer surface of the sleeve rod 702 is slidingly sleeved with a first ball head 707. The outer surface of the first ball head 707 is provided with a first limiting seat 708. The first limiting seat 708 is located on the inner side of the center hole 204. The outer surface of the sleeve rod 702 is fixedly connected with an outer frame 709 near the lower end surface. The outer surface of the outer frame 709 is fixedly connected with A second limiting seat 710 is provided with a second ball head 711 on its inner surface. A through-hole is formed on its outer surface. A fixing tube 712 is fixedly connected to the bottom of the second ball head 711 near the through-hole. A mounting plate 713 is fixedly connected to the lower end of the fixing tube 712. A nozzle 714 is fixedly connected to the bottom of the mounting plate 713. A counterweight 715 is fixedly connected to the bottom edge of the mounting plate 713. The first hose 703 is located inside the through-hole. The lower end of the first hose 703 is fixedly connected to the top of the mounting plate 713, and the first hose 703 is connected to the nozzle 714.
[0040] In this embodiment, after the culture box 201 is filled with culture medium, water is injected, and then the top of the culture box 201 is sealed with the cover 202, and the resilience of the spring 206 is used to provide support for the sealing block 207. The sealing block 207 is in a state above the center hole 204. When the inoculation operation starts, the liquid strain that has completed the optimized fermentation is poured into the liquid storage box 403 for use. Then the culture box 201 and the cover 202 are placed on the top of the placement table 103. When the spraying and inoculation of the liquid strain begins, the first electric push rod 302 is extended to drive the push plate 303 to move toward the pressure plate 211. After the pressure plate 211 is pressurized, it will drive the sealing block 207 away from the center hole 204 through the connection between the extension rod 210 and the linkage plate 209. The second electric push rod 401 is started to run and retract to drive the lifting plate 402 to move downward. At this time, the sleeve rod 702 in the vertical downward state will move downward from the center hole 204 to the inside of the cultivation box 201. The counterweight block 715, the nozzle 714, the mounting plate 713, the fixing tube 712, the second ball head 711, the second limit seat 710 and the outer frame 709 move to the inside of the cultivation box 201. The nozzle 714 at the bottom is facing the center of the inner bottom of the cultivation box 201. After the infusion pump 404 is started, the liquid bacteria stored in the liquid storage box 403 is extracted through the connection of the supply tube 405. The nozzle 714 When the bacteria are sprayed downward, the bacteria are sprayed on the center of the culture medium. Then the position of the nozzle 714 is adjusted, and the second motor 602 is started, which can drive the second gear 604 to rotate with the connection of the second shaft 603. At this time, the driving frame 601 is displaced and can drive the sleeve rod 702 to rotate with the first ball head 707 as the support through the connection of the sleeve block 701. After the sleeve rod 702 rotates, it is in an inclined state. Through the use of the counterweight block 715, the mounting plate 713 and the nozzle 714 can use natural gravity to maintain a vertical state. Therefore, at this time, the bottom surface of the nozzle 714 is in a horizontal state with the bottom of the cultivation box 201. The first hose 703 is deformed at this time, and still provides communication and transportation for the nozzle 714. The current state of the nozzle 714 In order to face the central peripheral position of the culture medium inside the cultivation box 201, the infusion pump 404 is started at this time to spray and inoculate the culture medium. After the first motor 108 is running, it drives the rotating ring 105 to rotate accordingly. The nozzle 714 will cover a circle of culture medium below and rotate around to achieve the covering culture medium spraying. Then, the second motor 602 continues to run, driving the sleeve rod 702 to increase the amplitude of rotation adjustment, and the position of the nozzle 714 continues to move outward to align with a circle of culture medium further outward. Then, the first motor 108 and the infusion pump 404 are run to complete the covering culture medium spraying. At this point, through the coordinated operation of the first motor 108, the second motor 602, the first electric push rod 302 and the second electric push rod 401,Under the condition that the cultivation box 201 is not opened and not punched, the culture medium is sprayed with the bacteria to inoculate the bacteria.
[0041] Example 2
[0042] Figure 9 、 Figure 11 and Figure 12 As shown, the bottom of the driving frame 601 is symmetrically fixedly connected with support arms 607, and a bracket 608 is fixedly connected between the lower end surfaces of the two support arms 607. The outer surface of the bracket 608 is fixedly connected to the third motor 609, and the output end of the third motor 609 passes through the bracket 608 and extends to the inner side. The output end of the third motor 609 is fixedly connected to the third rotating shaft 610, and the outer surface of the third rotating shaft 610 is fixedly connected to the third gear 611. A flat groove is provided on the outer surface of the sleeve rod 702, and a tooth block 704 is fixedly connected to the inner surface of the flat groove. The tooth block 704 is in a meshing state with the third gear 611.
[0043] In this embodiment, while the nozzle 714 is spraying the bacteria, the third motor 609 can drive the third gear 611 to rotate through the connection with the third rotating shaft 610 after it is running. When the third gear 611 rotates, it can drive the sleeve rod 702 to move downward through the engagement with the tooth block 704. The downward movement of the sleeve rod 702 can drive the nozzle 714 to move downward. At this time, the nozzle 714 has completed the adjustment of the distance from the culture medium, which is convenient for appropriate adjustment of the position of the nozzle 714 according to different cultivation requirements and to adapt to culture media of different thicknesses. It has strong functionality.
[0044] Example 3
[0045] Figure 1 、 Figure 5 、 Figure 6 and Figure 7 As shown, multiple springs 206 are equidistantly fixedly connected to the bottom of the stopper 205, and a sealing block 207 is fixedly connected between the end faces of the multiple springs 206. The outer surface of the sealing block 207 fits the inner surface of the stopper 205, and the sealing block 207 cooperates with the position of the center hole 204. Side grooves 208 are opened on the outer surfaces of both sides of the stopper 205. The outer surface of the sealing block 207 is symmetrically fixedly connected to the linking plate 209, and the linking plate 209 is located at the inner position of the side groove 208. An extension rod 210 is fixedly connected between the outer surfaces of the two linking plates 209, and a pressure plate 211 is fixedly connected between the end faces of the two extension rods 210. The outer surface of the opening frame 301 close to the incubation box 201 is fixedly connected to the first electric push rod 302, and the end face of the first electric push rod 302 is fixedly connected to the push plate 303. The push plate 303 cooperates with the pressure plate 211. When the first electric push rod 302 is in the retracted state, the push plate 303 is located outside the incubation box 201.
[0046] In this embodiment, the extension of the first electric push rod 302 can drive the push plate 303 to move toward the pressure plate 211. After the pressure plate 211 is pressurized, it will drive the sealing block 207 to move away from the center hole 204 through the connection between the extension rod 210 and the linkage plate 209. At this time, the sealing block 207 is displaced from the position of the center hole 204, so that the position of the center hole 204 is in an unobstructed state. After the inoculation of the bacteria is completed, the first electric push rod 302 contracts and resets, and the rebound force of the spring 206 can drive the sealing block 207 to automatically reset and close the center hole 204, which is convenient and quick to adjust the opening and closing of the center hole 204.
[0047] The method of use and working principle of this device: when producing and cultivating Cordyceps sinensis flowers, first prepare the strains, screen out the excellent strains with high yield and high activity characteristics from the strains, then process the strains, use a fermentation tank to optimize the fermentation of the strains, and process the culture medium at the same time, fill the culture box 201 with culture medium and then add water, then use the cover 202 to seal the top of the culture box 201, and in the static state, use the rebound force of the spring 206 to provide support for the sealing block 207, and the sealing block 207 is in a state above the center hole 204. In this state, that is, at this time, only the air vents 203 exist on the surface of the cover 202. The size and spacing of the air vents 203 are accurately calculated based on the growth requirements of the strain and obtained through experiments. After the culture medium is placed in the culture box 201, the culture box 201 and the internal culture medium are sterilized. After the culture box 201 is treated, the liquid strain is sprayed and inoculated. When the inoculation operation begins, the liquid strain that has completed the optimized fermentation is poured into the liquid storage box 403 for use. Then, the culture box 201 and the cover 202 are placed on the top of the placement table 103. Through the design of the placement frame 104, the liquid strain is sprayed and inoculated. The position of the culture box 201 can play a role in positioning the placement of the culture box 201. At this time, it is ensured that the culture box 201 is inside the placement frame 104, and the pressure plate 211 and the push plate 303 are in a horizontal state. When the liquid culture is sprayed and inoculated, the first electric push rod 302 is started to run. The extension of the first electric push rod 302 can drive the push plate 303 to move toward the pressure plate 211. After the push plate 303 contacts the pressure plate 211, it will apply pressure to it. After the pressure plate 211 is pressurized, it will drive the sealing block 207 to The sealing block 207 is displaced away from the center hole 204. At this time, the sealing block 207 is displaced from the center hole 204, so that the center hole 204 is in an unobstructed state. When the pressure plate 211 is under pressure, the placement frame 104 provides limited support for the cultivation box 201 to ensure the stability of the position of the cultivation box 201. After the opening operation of the center hole 204 is completed, the culture medium at the bottom of the cultivation box 201 is sprayed and inoculated with bacteria through the coordinated use of the supply component 4, the support component 5, the drive component 6 and the spray component 7. The initial state of the drive component 6 and the spray component 7 is as follows: Figure 15As shown, the sleeve rod 702 is in a vertical downward state. At this time, the second electric push rod 401 is in an extended state. Starting the second electric push rod 401 to run and retract can drive the lifting plate 402 to move downward. The lifting plate 402 can drive the supporting assembly 5, the driving assembly 6 and the spraying assembly 7 to move downward. At this time, the sleeve rod 702 in a vertical downward state will move downward from the center hole 204 position into the cultivation box 201. The counterweight block 715, the nozzle 714, the mounting plate 713, the fixing tube 712, the second ball head 711, the second limiting seat 710 and the outer frame 709 move to the interior of the cultivation box 201, and the first limiting seat 708 and the first ball head 707 will be at the inner position of the center hole 204. The nozzle 71 is currently at the bottom. 4 is facing the center of the inner bottom of the cultivation box 201, and the infusion pump 404 is started to spray the bacteria. After the infusion pump 404 is started, the liquid bacteria stored in the liquid storage box 403 is extracted through the connection of the supply pipe 405, and then the bacteria are transported to the position of the nozzle 714 through the connection of the rotary joint 406, the second hose 706, the connecting pipe 705 and the first hose 703. The nozzle 714 then sprays the bacteria downward, completing the spraying of the bacteria at the center of the culture medium. The position of the nozzle 714 is then adjusted, and the second motor 602 is started to drive the second gear 604 to rotate accordingly through the connection of the second rotating shaft 603. When the second gear 604 rotates, it engages with the tooth groove and cooperates with the slider 606 and the frame rod 60 5 is connected with the slide rail 503 to provide support for the driving frame 601, so at this time, the rotation of the second gear 604 can drive the driving frame 601 to follow the arc path position of the slide rail 503. The axis of the slide rail 503 is consistent with that of the arc frame 502, and at the same time, it is consistent with the axis of the first ball head 707. Therefore, when the driving frame 601 is displaced, the sleeve rod 702 can be driven to rotate with the first ball head 707 as the support through the connection of the sleeve block 701. After the sleeve rod 702 rotates, it is in a tilted state, and the position of the nozzle 714 can be automatically adjusted. The second limiting seat 710 is fixed to the sleeve rod 702 through the connection of the outer frame 709, and the second ball head 711 can rotate freely inside the second limiting seat 710. The mounting plate 713 and the nozzle 714 can be kept in a vertical position by natural gravity, so the bottom surface of the nozzle 714 is horizontal with the bottom of the cultivation box 201. The first hose 703 is deformed at this time, but still provides communication and transportation for the nozzle 714. The nozzle 714 is currently facing the central peripheral position of the culture medium inside the cultivation box 201. At this time, the infusion pump 404 is continued to be started to spray and inoculate the bacteria. At the same time, the first motor 108 is started. After the first motor 108 is running, it can drive the first gear 110 to rotate accordingly through the connection with the first rotating shaft 109. The first gear 110 drives the rotating ring 105 to rotate accordingly by meshing with the ring gear 106. The bottom of the rotating ring 105 is supported by the plane bearing 102.At this time, the rotating ring 105 can drive the lifting plate 402 to rotate through the connection of the second electric push rod 401. The wiring of the second electric push rod 401, the second motor 602, the third motor 609 and the infusion pump 404 are all connected from the top by a conductive slip ring to avoid the line entanglement when the rotating ring 105 rotates. Since the first ball head 707 is inside the center hole 204, that is, the rotation support center point of the sleeve rod 702 is consistent with the axis of the center hole 204, and the rotation path of the lifting plate 402 is also centered on the incubation box 201, the sleeve rod can be driven by the rotation of the lifting plate 402. 702 follows the rotation, and at the same time, the nozzle 714 will also cover a circle of culture medium below and rotate around to achieve the spraying of covering bacteria on the circle outside the center of the culture medium. Then, the second motor 602 continues to operate, driving the sleeve rod 702 to increase the rotation adjustment, and the position of the nozzle 714 continues to move outward to align with a circle of culture medium further outward. Then, the first motor 108 and the infusion pump 404 are operated to complete the spraying of covering bacteria on the culture medium. At this point, through the coordinated operation of the first motor 108, the second motor 602, the first electric push rod 302 and the second electric push rod 401, when the incubation box 201 is not Under the condition that the cover is opened but no holes are punched, the culture medium is sprayed with the strains and inoculated with the strains only through the center hole position, which has a high degree of automation. In addition, under the condition that the culture box 201 is not opened but no holes are punched, the influence on the culture environment inside the culture box 201 is small, and the sterile environment of the culture medium is not affected during the inoculation operation. At the same time, the nozzle 714 gradually moves toward the outer circle to rotate and spray, which can achieve comprehensive and uniform coverage of the culture medium by the strain spraying, and has a high utilization efficiency of the culture medium. The strains at each position can absorb enough nutrients, which is beneficial to the efficient cultivation of Cordyceps flower. At the same time, the operation of the third motor 609 can adjust the distance between the nozzle 714 and the culture medium, making it convenient to adjust the position of the nozzle 714 according to different culture medium thicknesses. After the third motor 609 is running, it can drive the third gear 611 to rotate accordingly through the connection with the third rotating shaft 610. When the third gear 611 rotates, it can drive the sleeve rod 702 to move downward through the engagement with the tooth block 704. The downward movement of the sleeve rod 702 can also drive the nozzle 714 to move downward. At this point, the nozzle 714 has completed the adjustment of the distance from the culture medium, making it easy to make appropriate adjustments according to different cultivation needs and having strong functionality.
[0048] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, 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 Cordyceps flower production and cultivation system based on a strain fermentation optimization method, comprising: The supporting component (1), the cultivating component (2), the opening component (3), the supply component (4), the supporting component (5), the driving component (6) and the spraying component (7) are characterized in that: The supporting assembly (1) is used for bottom support, and the supporting assembly (1) comprises a bottom plate (101), a plane bearing (102) is fixedly connected to the top of the bottom plate (101), a rotating ring (105) is fixedly connected to the top of the plane bearing (102), a placement platform (103) is fixedly connected to the top of the bottom plate (101) near the inner center of the rotating ring (105), and a placement frame (104) is fixedly connected to the top of the placement platform (103); The cultivation component (2) is used to provide a growth space for the bacterial strain for cultivation. The cultivation component (2) is located above the placement table (103). The cultivation component (2) includes a cultivation box (201) and a cover (202). A center hole (204) is provided at the center of the top of the cover (202). The cover (202) is used to block and seal the top opening of the cultivation box (201). A plurality of air holes (203) are evenly provided on the top of the cover (202). A stopper (205) is fixedly connected to the top of the cover (202) near the center hole (204). The opening assembly (3) is used to control the opening of the cultivation box (201) for spraying the bacterial strains. The opening assembly (3) is fixedly connected to the top of the bottom plate (101). The opening assembly (3) includes an opening frame (301); The supply assembly (4) is used for conveying and supplying bacterial strains. The supply assembly (4) is fixedly connected to the top of the rotating ring (105). The supply assembly (4) includes a second electric push rod (401). The upper end surface of the second electric push rod (401) is fixedly connected to a lifting plate (402). A support assembly (5), the support assembly (5) is used to provide rotationally adjustable support for the drive assembly (6) and the spray assembly (7), the support assembly (5) is fixedly connected to the top of the lifting plate (402), and the support assembly (5) includes two support frames (501); A drive assembly (6), the drive assembly (6) is used to drive the spray assembly (7) to adjust the position, the drive assembly (6) is located in front of the support frame (501), and the drive assembly (6) includes a drive frame (601); A spraying assembly (7) is used for being inserted into the interior of the cultivation box (201) to spray the bacteria evenly, the spraying assembly (7) being fixedly connected to the outer surface of the driving frame (601), the spraying assembly (7) comprising a sleeve block (701), the inner surface of which is provided with a sleeve rod (702); An arc frame (502) is fixedly connected between the outer surfaces of the two support frames (501), a tooth groove is provided at the inner bottom of the arc frame (502), a slide rail (503) is fixedly connected to the top of the arc frame (502), a frame rod (605) is symmetrically fixedly connected to the top of the driving frame (601), a slider (606) is fixedly connected between the end surfaces of the two frame rods (605), and the outer surface of the slider (606) is slidably connected to the inner surface of the slide rail (503) to provide limited support for the driving frame (601).
2. The Cordyceps flower production and cultivation system based on the strain fermentation optimization method according to claim 1, characterized in that: The outer surface of the cultivation box (201) is fitted with the inner surface of the placement frame (104); the axis of the rotating ring (105) is consistent with that of the placement platform (103); the outer surface of the rotating ring (105) is fixedly connected with a gear ring (106); the top of the bottom plate (101) is fixedly connected with a support (107); the top of the support (107) is fixedly connected with a first motor (108); the output end of the first motor (108) passes through the support (107) and extends to the lower side; the output end of the first motor (108) is fixedly connected with a first rotating shaft (109); the lower end surface of the first rotating shaft (109) is fixedly connected with a first gear (110); the first gear (110) engages with the gear ring (106) to drive the rotating ring (105).
3. The Cordyceps flower production and cultivation system based on the strain fermentation optimization method according to claim 1 is characterized in that: A plurality of springs (206) are fixedly connected to the inner bottom of the stopper (205) at equal intervals, a sealing block (207) is fixedly connected between the end surfaces of the plurality of springs (206), the outer surface of the sealing block (207) is fitted with the inner surface of the stopper (205), the sealing block (207) is matched with the position of the center hole (204), side grooves (208) are provided on the outer surfaces of both sides of the stopper (205), and a linkage plate (209) is symmetrically fixedly connected to the outer surface of the sealing block (207), the linkage plate (209) is located at the inner side of the side groove (208), an extension rod (210) is fixedly connected between the outer surfaces of the two linkage plates (209), and a pressure plate (211) is fixedly connected between the end surfaces of the two extension rods (210).
4. The Cordyceps flower production and cultivation system based on the strain fermentation optimization method according to claim 3, characterized in that: A first electric push rod (302) is fixedly connected to the outer surface of one side of the opening frame (301) close to the cultivation box (201), and a push plate (303) is fixedly connected to the end surface of the first electric push rod (302). The position of the push plate (303) and the pressure plate (211) are matched. When the first electric push rod (302) is in a retracted state, the push plate (303) is located outside the cultivation box (201).
5. The Cordyceps flower production and cultivation system based on the strain fermentation optimization method according to claim 1, characterized in that: The top of the lifting plate (402) is fixedly connected to a liquid storage box (403) and an infusion pump (404); the input end of the infusion pump (404) is fixedly connected to a supply pipe (405); the supply pipe (405) is connected to the liquid storage box (403); the output end of the infusion pump (404) is rotatably connected to a rotary joint (406).
6. The Cordyceps flower production and cultivation system based on the strain fermentation optimization method according to claim 1, characterized in that: The inner surface of the driving frame (601) is fixedly connected to a second motor (602), the output end of the second motor (602) passes through the driving frame (601) and extends to the outside, the output end of the second motor (602) is fixedly connected to a second rotating shaft (603), the end surface of the second rotating shaft (603) is fixedly connected to a second gear (604), the second gear (604) is located at the inner side of the arc frame (502), and the second gear (604) is in meshing state with the tooth groove, and the bottom of the driving frame (601) is symmetrically fixedly connected to support arms (607), and the two support arms (607) are fixedly connected to the driving frame (601). ) is fixedly connected between the lower end surfaces thereof, a bracket (608) is fixedly connected to the outer surface of the bracket (608), an output end of the third motor (609) passes through the bracket (608) and extends to the inner side, a third rotating shaft (610) is fixedly connected to the output end of the third motor (609), a third gear (611) is fixedly connected to the outer surface of the third rotating shaft (610), a planar groove is provided on the outer surface of the sleeve rod (702), a tooth block (704) is fixedly connected to the inner surface of the planar groove, and the tooth block (704) is in meshing state with the third gear (611).
7. The Cordyceps flower production and cultivation system based on the strain fermentation optimization method according to claim 5, characterized in that: A plurality of balls are evenly arranged on the inner surface of the sleeve block (701), and the balls are used to provide sliding support for the sleeve rod (702). The upper end surface of the sleeve rod (702) is fixedly connected to a connecting pipe (705), and the end surface of the connecting pipe (705) is fixedly connected to a second hose (706). The second hose (706) is fixedly connected to the rotary joint (406). The top of the sleeve rod (702) is fixedly connected to a first hose (703), and the connecting pipe (705) is in a communicating state with the first hose (703).
8. The Cordyceps flower production and cultivation system based on the strain fermentation optimization method according to claim 7, characterized in that: The outer surface of the sleeve rod (702) is slidably sleeved with a first ball head (707), the outer surface of the first ball head (707) is provided with a first limiting seat (708), the first limiting seat (708) is located at the inner side of the center hole (204), the outer surface of the sleeve rod (702) is fixedly connected with an outer frame (709) near the lower end surface, the outer surface of the outer frame (709) is fixedly connected with a second limiting seat (710), the inner surface of the second limiting seat (710) is provided with a second ball head (711), the outer surface of the second ball head (711) is provided with a through hole, the outer surface of the second ball head (711) is provided with a through hole, The bottom of the second ball head (711) is fixedly connected to a fixed tube (712) near the through hole, the lower end surface of the fixed tube (712) is fixedly connected to a mounting plate (713), the bottom of the mounting plate (713) is fixedly connected to a nozzle (714), the bottom of the mounting plate (713) is fixedly connected to a counterweight (715) near the edge, the first hose (703) is located inside the through hole, the lower end surface of the first hose (703) is fixedly connected to the top of the mounting plate (713), and the first hose (703) is in a communicating state with the nozzle (714).
Citation Information
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