Agricultural bacteriophage bacterial liquid conveying device for saline-alkali soil
Through the conveyor belt system driven by a servo motor and the cooling device for air conditioners, the slippage and dumping problems during the delivery of phage bacterial fluid are solved, and accurate and stable low-temperature transportation is achieved, ensuring the activity and delivery efficiency of phage bacterial fluid.
Patent Information
- Application Number
- CN202510602386.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-12
- Publication Date
- 2025-07-18
AI Technical Summary
Traditional phage bacterial fluid delivery equipment is prone to slipping and dumping of bottled materials during the transportation process, which affects the accuracy of batch transportation.
The conveyor belt system driven by servo motor is adopted, combined with the toggle lever and the support block structure, to ensure the smooth operation of the conveyor belt and cool down through the air conditioner. The combination of the support block and the toggle lever is used to prevent the bottled phage bacterial fluid from pouring, and at the same time to achieve low temperature transportation.
Accurate and smooth delivery of phage bacterial fluid is achieved, avoiding slippage and dumping, ensuring the activity of phage bacterial fluid, reducing resource waste, and improving delivery efficiency.
Smart Images

Figure CN120328057A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of conveying equipment, and particularly to a phage bacterial liquid conveying device for saline-alkali land agriculture. Background Art
[0002] Using phage bacterial liquid in saline-alkali land agriculture is a potential means of biological control and soil improvement. Phages have high infectivity to specific soil-borne pathogens, can specifically recognize and "eat" harmful bacteria in the soil, thereby reducing the number of harmful bacteria, decreasing the occurrence probability of soil-borne diseases, effectively preventing and controlling the occurrence of diseases, and enhancing the rhizosphere immunity of crops. After phages infect harmful bacteria, the diversity of beneficial bacteria communities in the soil will be restored. Beneficial bacteria such as Trichoderma harzianum can cooperate with phage bacterial liquid to further inhibit the growth of harmful bacteria and participate in the transformation and circulation of substances in the soil, which helps to improve soil structure and fertility. When producing and preparing phage bacterial liquid, it is necessary to fill the phage bacterial liquid into bottles and convey the bottled phage bacterial liquid, so conveying equipment for bottled phage bacterial liquid is required.
[0003] Currently, when traditionally conveying bottled phage bacterial liquid, as the weight of bottled materials increases when moving onto the conveyor belt, the conveyor belt is prone to slipping, resulting in inaccurate conveying. Moreover, during the conveying process, the bottled materials are prone to tipping over, affecting the batch conveying of bottled materials. Summary of the Invention
[0004] To achieve the above objectives, the present invention is realized through the following technical solutions:
[0005] A phage bacterial liquid conveying device for saline-alkali land agriculture, comprising:
[0006] A machine body, and a rectangular notch opened at the middle of the top of the machine body;
[0007] A conveying mechanism for feeding bottled phage bacterial liquid, and the conveying mechanism is installed at the rectangular notch at the top of the machine body;
[0008] Among them, the conveying mechanism includes a bracket, a driving roller and a driven roller. The bracket is installed at the rectangular notch at the top of the machine body. The driving roller is rotatably installed at one end of the bracket, and the driven roller is rotatably installed at the end of the bracket away from the driving roller. A conveyor belt is installed between the driving roller and the driven roller. A servo motor is fixedly installed at the side of the surface of the bracket. The output end of the servo motor is fixedly installed with the driving roller through a coupling. Grooves are provided on the outer circumferential surfaces of the driving roller and the driven roller. Stirring rods are fixedly connected to the edges of the surface of the conveyor belt. By using the bracket to support the servo motor and the driving roller, and using the rotation of the output end of the servo motor, the driving roller can be driven to rotate. Under the rotational support of the driven roller, the conveyor belt is driven to operate. And combined with the stirring rods being evenly distributed at the edges of the conveyor belt and the stirring rods being inserted into the grooves, the conveyor belt can operate smoothly and is not prone to slipping, which helps the conveyor belt to accurately convey the bottled phage bacterium solution;
[0009] An auxiliary mechanism is used to support and cool the bottled phage bacterium solution. The auxiliary mechanism is installed in the middle at the top of the machine body;
[0010] Among them, the auxiliary mechanism includes a housing and a connecting roller. The housing is fixedly installed in the middle at the top of the machine body. The connecting roller is rotatably installed at the corner of the inner cavity of the housing. A stress rod is fixedly connected to the outer circumferential surface of the connecting roller, and the stress rod and the stirring rod are installed at the same height. A conveyor belt is installed in the middle of the outer circumferential surface of the connecting roller. A supporting block is fixedly connected to the middle of the surface of the conveyor belt. A cooling component is installed on the top of the housing. As the conveyor belt operates, the conveyor belt can move the stirring rod, and then a driving force can be applied to the stress rod through the stirring rod. Combined with the stress rods being evenly distributed at the edges of the conveyor belt, the stress rods will receive a continuous driving force, which can drive the connecting roller to rotate. The conveyor belt is driven by the connecting roller to operate, so that the supporting block moves along with the operation of the conveyor belt. Combined with the bottled phage bacterium solution being driven by the conveyor belt to move, the clamping end of the supporting block contacts the bottle body containing the phage bacterium solution, and then two symmetrically arranged ones can be used to clamp the bottle body containing the phage bacterium solution, so that the bottle body is not prone to tipping, and the structures are connected together by the interaction between the structures.
[0011] Preferably, the driving roller and the driven roller are installed at the same height, and the stirring rods are evenly distributed at the edges of the surface of the conveyor belt.
[0012] Preferably, there are four connecting rollers, and the four connecting rollers are evenly installed at the corners of the inner cavity of the housing. The connecting rollers are installed vertically, and the supporting blocks are evenly distributed in the middle of the surface of the conveyor belt.
[0013] Preferably, the cooling component includes a cold air generator and a strip-shaped base body. The cold air generator is installed in the middle of the outer shell surface, and the strip-shaped base body is fixedly installed in the middle of the top of the inner cavity of the outer shell. A forked connecting pipe is connected between the air outlet of the cold air generator and the top of the strip-shaped base body. An exhaust hole is opened in the middle of the strip-shaped base body, and the air inlet at the top end of the exhaust hole is communicated with the air outlet of the forked connecting pipe. An opening and closing module is installed inside the outer shell, and the opening and closing module is installed directly below the strip-shaped base body. The cold air generator generates cold air, and under the transportation of the forked connecting pipe, the cold air enters the exhaust hole and is sprayed from the air outlet at the bottom end of the exhaust hole into the inner part of the outer shell, reducing the temperature inside the outer shell. Since the outer shell is in a semi-closed state, the dissipation of cold air is reduced. Through the principle of heat transfer, the temperature of the bottled phage bacterium solution conveyed on the conveyor belt is reduced. Transporting at a low temperature helps to ensure the activity of the phage bacterium solution.
[0014] Preferably, there are two cold air generators, and the two cold air generators are symmetrically installed along the central axis in the middle of the outer shell. The strip-shaped base bodies are evenly distributed in the middle of the top of the inner cavity of the outer shell.
[0015] Preferably, the opening and closing module includes a connecting shaft. One end of the connecting shaft is rotatably installed with the inner wall of the outer shell. The end of the connecting shaft away from the inner wall of the outer shell is fixedly connected with a disc. An arc-shaped swing plate is fixedly connected to the top edge of the disc surface, and the arc-shaped swing plate is installed directly below the strip-shaped base body. A strip-shaped tooth is fixedly connected to the bottom edge of the disc surface. As the conveyor belt operates, the supporting block is driven to move, so that the supporting block contacts the bottom end of the strip-shaped tooth. As the supporting block continues to move, a pushing force can be applied to the strip-shaped tooth. Without a rotational connection, the disc and the arc-shaped swing plate rotate clockwise together, causing the arc-shaped swing plate to disengage from the air outlet at the bottom of the exhaust hole, so that the cold air discharged from the exhaust hole is directly facing the bottled phage bacterium solution, which further helps to cool down the bottled phage bacterium solution.
[0016] Preferably, there are two connecting shafts, and the two connecting shafts are symmetrically installed along the arc-shaped swing plate. The arc-shaped surface at the top of the arc-shaped swing plate fits with the bottom of the strip-shaped base body. As the supporting block and the bottled phage bacterium solution continue to move, when the supporting block disengages from the strip-shaped tooth, the pushing force applied to the strip-shaped tooth disappears. Under the action of the gravity of the strip-shaped tooth itself, the disc and the arc-shaped swing plate rotate counterclockwise to reset. Without rotating directly below the strip-shaped base body again, the air outlet at the bottom of the exhaust hole can be blocked, so that the bottled phage bacterium solution can be removed, and the discharge of cold air can be paused. When the bottled phage bacterium moves to below the exhaust hole again, cooling can be carried out, reducing resource waste.
[0017] Preferably, a material guiding mechanism is installed on the top of the bracket, and the material guiding mechanism is installed just above the driven roller, the material guiding mechanism comprises a bending frame and a material guiding trough body, the bottom end of the bending frame is fixedly connected to the top of the bracket, the surface of the material guiding trough body is fixedly installed to the top of the bending frame, a U-shaped plate is fixedly connected to the material outlet on the surface of the material guiding trough body, and the opening of the U-shaped plate faces upward, a baffle is slidably installed inside the U-shaped plate, a spring is fixedly connected between the surface of the baffle plate and the surface of the material guiding trough body, a driven plate is fixedly connected to the side of the bottom of the baffle plate, and the baffle plate is connected to the top of the edge of the conveyor belt surface The toggle levers are installed at the same height, and the bottled phage solution to be transported is placed inside the material guide trough, and the bottled phage solution is evenly arranged inside the material guide trough under the partition of the baffle plate. As the conveyor belt drives the toggle lever to move, the toggle lever contacts the driven plate, and the toggle lever can be used to apply a driving force to the driven plate to push the driven plate outward, and the spring is stretched, so that the symmetrical baffles on both sides move outward together, so that the material can be opened, and combined with the bottom of the material guide trough just above the conveyor belt being hollow, the bottled phage solution can be taken away by the operation of the conveyor belt.
[0018] Preferably, there are two bending frames, and the two bending frames are symmetrically installed along the central axis in the middle of the material guide trough body. The opening of the material guide trough body is upward, and the driving force exerted on the driven plate disappears. Under the elastic force of the spring, the driven plate is pulled toward the inside of the material guide trough body to be reset, so that the remaining bottled bacteriophage liquid in the material guide trough body can be blocked, so that the material can be loaded in an orderly manner, and the material accumulation disorder is not easy to occur.
[0019] Preferably, the surface of the baffle is in contact with the inner wall of the U-shaped plate, there are two baffles, and the two baffles are symmetrically installed along the central axis in the middle of the material guide trough body, and the driven plate is arc-shaped.
[0020] The present invention provides a bacteriophage liquid conveying device for saline-alkali land agriculture, which has the following beneficial effects:
[0021] 1. The bacteriophage liquid conveying device for saline-alkali land agriculture utilizes the rotation of the output end of the servo motor to drive the active roller to rotate, and the conveyor belt is driven to operate under the rotation support of the driven roller. In addition, the toggle rods are evenly distributed on the edge of the conveyor belt, and the toggle rods are embedded in the inside of the card slot, so that the conveyor belt can operate smoothly and is not prone to slipping, thereby helping the conveyor belt to accurately transport the bottled bacteriophage liquid.
[0022] Second, the bacteriophage liquid conveying device for saline-alkali land agriculture applies a toggle force to the force-bearing rod by a toggle rod, which can drive the connecting roller to rotate, and the conveyor belt is driven by the connecting roller to operate, so that the supporting block moves with the operation of the conveyor belt, and the bottled bacteriophage liquid is driven to move by the conveyor belt, so that the clamping end of the supporting block contacts the bottle containing the bacteriophage liquid, and the bottle containing the bacteriophage liquid can be clamped by two symmetrical means, so that the bottle is not easy to tip over.
[0023] 3. The bacteriophage liquid conveying device for saline-alkali land agriculture uses a cold air generator to generate cold air, and under the conveyance of a fork-shaped connecting pipe, the cold air enters the exhaust hole and is ejected from the air outlet at the bottom of the exhaust hole to the inside of the shell, so that the temperature inside the shell is reduced. The shell is in a semi-closed state to reduce the emission of cold air, and through the principle of heat transfer, the temperature of the bottled bacteriophage liquid conveyed on the conveyor belt is reduced, and it is conveyed at a low temperature, which helps to ensure the activity of the bacteriophage liquid.
[0024] Fourth, the bacteriophage liquid conveying device for saline-alkali land agriculture drives the support block to move through the operation of the conveyor belt, so that the support block contacts the bottom end of the bar teeth. As the support block continues to move, a pushing force can be applied to the bar teeth, and without a rotation connection, the disc and the arc-shaped swing plate rotate clockwise together, so that the arc-shaped swing plate is separated from the air outlet at the bottom of the exhaust hole, so that the cold air discharged from the exhaust hole can face the bottled bacteriophage liquid, which further helps to cool the bottled bacteriophage liquid.
[0025] 5. In the bacteriophage liquid conveying device for saline-alkali land agriculture, when the supporting block is separated from the bar teeth, the pushing force on the bar teeth disappears, and under the action of the gravity of the bar teeth themselves, the disc and the arc-shaped swing plate rotate counterclockwise to reset, and do not rotate to the bottom of the bar base again, so that the air outlet at the bottom of the exhaust hole can be blocked, so that the bottled bacteriophage liquid can be removed, and the discharge of cold air is suspended. The bottled bacteriophage bacteria are moved to the bottom of the exhaust hole again, and the cold air can be discharged for cooling, thereby reducing resource waste.
[0026] Sixth, the bacteriophage liquid conveying device for saline-alkali land agriculture, as the conveyor belt drives the toggle rod to move, the toggle rod contacts the driven plate, and the toggle rod can be used to apply a driving force to the driven plate, pushing the driven plate outward, and the spring is stretched, so that the symmetrical baffles on both sides move outward together, so that the material can be opened, and combined with the bottom of the material guide trough just above the conveyor belt being hollow, the bottled bacteriophage liquid can be taken away by the operation of the conveyor belt;
[0027] VII. For the phage bacterial liquid conveying device for saline-alkali land agriculture, when the driving force received by the driven plate disappears and under the elastic force of the spring, the driven plate is pulled to move inward in the direction of the material guiding groove body for resetting, so as to block the remaining bottled phage bacterial liquid inside the material guiding groove body, and then orderly feeding can be carried out, and it is not easy to have the situation of material accumulation and disorder. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 FIG. is a schematic structural diagram of the overall phage bacterial liquid conveying device for saline-alkali land agriculture of the present invention;
[0029] Figure 2 FIG. is a schematic structural diagram of the phage bacterial liquid conveying device for saline-alkali land agriculture of the present invention when viewed from below;
[0030] Figure 3 FIG. is a schematic structural diagram of the connection structure between the conveying mechanism and the machine body of the present invention;
[0031] Figure 4 FIG. is a schematic structural diagram of the connection structure between the auxiliary mechanism and the machine body of the present invention;
[0032] Figure 5 FIG. is a schematic structural diagram of the overall auxiliary mechanism of the present invention;
[0033] Figure 6 FIG. is a schematic structural diagram of the connection structure between the cooling component and the housing of the present invention;
[0034] Figure 7 FIG. is a schematic structural diagram of the overall cooling component of the present invention;
[0035] Figure 8 FIG. is a schematic structural diagram of the overall opening and closing module of the present invention;
[0036] Figure 9 FIG. is a schematic structural diagram of the connection structure between the material guiding mechanism and the bracket of the present invention;
[0037] Figure 10 FIG. is a schematic structural diagram of the overall material guiding mechanism of the present invention.
[0038] In the figure: 1, body; 2, rectangular notch; 3, conveying mechanism; 4, auxiliary mechanism; 5, material guiding mechanism; 31, bracket; 32, driving roller; 33, driven roller; 34, conveyor belt; 35, servo motor; 36, card slot; 37, toggle rod; 41, housing; 42, connecting roller; 43, stress rod; 44, conveyor belt; 45, supporting block; 46, cooling component; 461, cold air generator; 462, strip-shaped base body; 463, fork-shaped connecting pipe; 464, exhaust hole; 465, opening and closing module; 4651, connecting shaft; 4652, disc; 4653, arc-shaped swing plate; 4654, strip-shaped tooth; 51, bent frame; 52, material guiding trough body; 53, U-shaped plate; 54, baffle; 55, spring; 56, driven plate. Specific implementation mode
[0039] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0040] The first embodiment is as Figures 1 to 3 shown. The present invention provides a technical solution:
[0041] A phage bacterial liquid conveying device for saline-alkali land agriculture, comprising:
[0042] A body 1 and a rectangular notch 2 opened in the middle of the top of the body 1;
[0043] A conveying mechanism 3 for conveying bottled phage bacterial liquid, and the conveying mechanism 3 is installed at the rectangular notch 2 at the top of the body 1;
[0044] Among them, the conveying mechanism 3 includes a bracket 31, a driving roller 32 and a driven roller 33. The bracket 31 is installed at the rectangular notch 2 on the top of the machine body 1. The driving roller 32 is rotatably installed at one end of the bracket 31, and the driven roller 33 is rotatably installed at the end of the bracket 31 far from the driving roller 32. A conveyor belt 34 is installed between the driving roller 32 and the driven roller 33. A servo motor 35 is fixedly installed at the side of the surface of the bracket 31. The output end of the servo motor 35 is fixedly installed with the driving roller 32 through a coupling. Card slots 36 are formed on the outer circumferential surfaces of the driving roller 32 and the driven roller 33. Stirring rods 37 are fixedly connected to the edges of the surface of the conveyor belt 34. With the support of the bracket 31 for the servo motor 35 and the driving roller 32, the staff turns on the servo motor 35 to work. By the rotation of the output end of the servo motor 35, the driving roller 32 can be driven to rotate. Under the rotational support of the driven roller 33, the conveyor belt 34 is driven to operate. Moreover, in combination with the stirring rods 37 being evenly distributed at the edges of the conveyor belt 34 and the stirring rods 37 being inserted into the internal parts of the card slots 36, the conveyor belt 34 can operate smoothly and is not prone to slipping, and the conveyor belt 34 accurately conveys the bottled phage bacterial liquid;
[0045] The driving roller 32 and the driven roller 33 are installed at the same height, and the stirring rods 37 are evenly distributed at the edges of the surface of the conveyor belt 34.
[0046] Second embodiment, on the basis of the first embodiment, please refer to Figures 1 to 8 as shown:
[0047] The auxiliary mechanism 4 is used to support and cool the bottled phage bacterial liquid, and the auxiliary mechanism 4 is installed in the middle of the top of the machine body 1;
[0048] Among them, the auxiliary mechanism 4 includes a housing 41 and a connecting roller 42. The housing 41 is fixedly installed in the middle of the top of the machine body 1. The connecting roller 42 is rotatably installed at the corner of the inner cavity of the housing 41. A stress rod 43 is fixedly connected to the outer circumferential surface of the connecting roller 42, and the stress rod 43 and the stirring rod 37 are installed at the same height. A conveyor belt 44 is installed at the middle of the outer circumferential surface of the connecting roller 42. A support block 45 is fixedly connected to the middle of the surface of the conveyor belt 44. A cooling assembly 46 is installed on the top of the housing 41. As the conveyor belt 34 operates, the conveyor belt 34 can move the stirring rod 37, and then a pushing force can be applied to the stress rod 43 through the stirring rod 37. In combination with the stress rods 43 being evenly distributed at the edges of the conveyor belt 34, the stress rods 43 will receive continuous pushing forces, and then the connecting roller 42 can be driven to rotate. The conveyor belt 44 is driven to operate by the connecting roller 42, so that the support block 45 moves as the conveyor belt 44 operates. In combination with the bottled phage bacterial liquid being driven to move by the conveyor belt 34, the clamping end of the support block 45 contacts the bottle body filled with the phage bacterial liquid, and then two symmetric support blocks 45 can clamp the bottle body filled with the phage bacterial liquid.
[0049] There are four connecting rollers 42, and the four connecting rollers 42 are evenly installed at the corners of the inner cavity of the housing 41. The connecting rollers 42 are installed vertically, and the supporting blocks 45 are evenly distributed in the middle of the surface of the conveyor belt 44.
[0050] The temperature reduction component 46 includes a cold air generator 461 and a strip-shaped base 462. The cold air generator 461 is installed in the middle of the surface of the housing 41, and the strip-shaped base 462 is fixedly installed in the middle of the top of the inner cavity of the housing 41. A forked connecting pipe 463 is communicated between the air outlet of the cold air generator 461 and the top of the strip-shaped base 462. An exhaust hole 464 is opened in the middle of the strip-shaped base 462. The air inlet at the top end of the exhaust hole 464 is communicated with the air outlet of the forked connecting pipe 463. An opening and closing module 465 is installed inside the housing 41, and the opening and closing module 465 is installed directly below the strip-shaped base 462. The staff turns on the cold air generator 461 to work, generates cold air by the cold air generator 461, and under the transportation of the forked connecting pipe 463, makes the cold air enter the exhaust hole 464 and spray out from the air outlet at the bottom end of the exhaust hole 464 into the inside of the housing 41, so that the temperature inside the housing 41 is reduced. And because the housing 41 is in a semi-closed state, the dissipation of cold air is reduced, and through the principle of heat transfer, the temperature of the bottled phage bacteria solution conveyed on the conveyor belt 34 is reduced for low-temperature transportation.
[0051] There are two cold air generators 461, and the two cold air generators 461 are symmetrically installed along the central axis of the middle of the housing 41. The strip-shaped bases 462 are evenly distributed in the middle of the top of the inner cavity of the housing 41.
[0052] The opening and closing module 465 includes a connecting shaft 4651. One end of the connecting shaft 4651 is rotatably installed with the inner wall of the housing 41. The end of the connecting shaft 4651 away from the inner wall of the housing 41 is fixedly connected with a disc 4652. The top of the edge of the surface of the disc 4652 is fixedly connected with an arc-shaped swing plate 4653, and the arc-shaped swing plate 4653 is installed directly below the strip-shaped base 462. The bottom of the edge of the surface of the disc 4652 is fixedly connected with a strip-shaped tooth 4654. The operation of the conveyor belt 44 drives the supporting block 45 to move, so that the supporting block 45 contacts the bottom end of the strip-shaped tooth 4654. As the supporting block 45 continues to move, a pushing force can be applied to the strip-shaped tooth 4654, and under the condition of less than rotational connection, the disc 4652 and the arc-shaped swing plate 4653 rotate clockwise together, so that the arc-shaped swing plate 4653 is separated from the air outlet at the bottom of the exhaust hole 464, and the cold air discharged from the exhaust hole 464 can be directly directed at the bottled phage bacteria.
[0053] There are two connecting shafts 4651, and the two connecting shafts 4651 are symmetrically installed along the arc-shaped swinging plate 4653. The arc surface on the top of the arc-shaped swinging plate 4653 fits with the bottom of the strip base 462. As the supporting block 45 and the bottled bacteriophage solution continue to move, when the supporting block 45 is disengaged from the strip teeth 4654, the plucking force on the strip teeth 4654 disappears, and under the action of the gravity of the strip teeth 4654 itself, the disc 4652 and the arc-shaped swinging plate 4653 rotate counterclockwise to reset, and do not rotate to the bottom of the strip base 462 again, so that the air outlet at the bottom of the exhaust hole 464 can be blocked, so that the bottled bacteriophage solution can be removed, and the discharge of cold air is stopped. The bottled bacteriophage bacteria moves to the bottom of the exhaust hole 464 again, and the cold air can be discharged for cooling.
[0054] The third embodiment is based on the first and second embodiments. Figures 1 to 10 As shown:
[0055] A material guide mechanism 5 is installed on the top of the bracket 31, and the material guide mechanism 5 is installed just above the driven roller 33. The material guide mechanism 5 includes a bending frame 51 and a material guide trough 52. The bottom end of the bending frame 51 is fixedly connected to the top of the bracket 31, and the surface of the material guide trough 52 is fixedly installed to the top of the bending frame 51. A U-shaped plate 53 is fixedly connected to the material outlet on the surface of the material guide trough 52, and the opening of the U-shaped plate 53 faces upward. A baffle 54 is slidably installed inside the U-shaped plate 53, and a spring 55 is fixedly connected between the surface of the baffle 54 and the surface of the material guide trough 52. A driven plate 56 is fixedly connected to the side of the bottom of the baffle 54. The baffle 54 is connected to the toggle rod 37 at the top of the edge of the surface of the conveyor belt 34. The two phage liquid bottles to be transported are installed at the same height, and the bottled phage liquid to be transported is placed inside the guide trough 52, and the bottled phage liquid is evenly arranged inside the guide trough 52 under the isolation of the baffle plate 54. As the conveyor belt 34 drives the toggle rod 37 to move, the toggle rod 37 contacts the driven plate 56, and the toggle rod 37 can be used to apply a driving force to the driven plate 56, pushing the driven plate 56 outward, and the spring 55 is stretched, so that the symmetrical baffle plates 54 on both sides move outward together, so that the material can be opened, and combined with the bottom of the guide trough 52 directly above the conveyor belt 34 being hollow, the bottled phage liquid can be taken away by the operation of the conveyor belt 34.
[0056] There are two bending frames 51 , and the two bending frames 51 are symmetrically installed along the central axis of the middle of the material guiding trough body 52 , and the opening of the material guiding trough body 52 faces upward.
[0057] When the toggle rod 37 is disengaged from the driven plate 56, the driving force on the driven plate 56 disappears, and under the elastic force of the spring 55, the driven plate 56 is pulled to move toward the inside of the guide trough 52 to reset, so as to block the remaining bottled phage solution in the guide trough 52.
[0058] The surface of the baffle 54 is in contact with the inner wall of the U-shaped plate 53 . There are two baffles 54 , and the two baffles 54 are symmetrically installed along the central axis of the middle of the material guide trough body 52 . The driven plate 56 is arc-shaped.
[0059] When in use, the staff first turns on the servo motor 35 to work, and the active roller 32 can be driven to rotate by the rotation of the output end of the servo motor 35. Under the rotation support of the driven roller 33, the conveyor belt 34 is driven to operate, and the toggle rods 37 are evenly distributed on the edge of the conveyor belt 34, and the toggle rods 37 are embedded in the inside of the card slot 36, so that the conveyor belt 34 can operate smoothly;
[0060] The staff puts the bottled phage solution to be transported into the guide trough 52, and the bottled phage solution is evenly arranged in the guide trough 52 under the isolation of the baffle 54. As the conveyor belt 34 drives the toggle rod 37 to move, the toggle rod 37 contacts the driven plate 56, and the toggle rod 37 can be used to apply a driving force to the driven plate 56, pushing the driven plate 56 outward, and the spring 55 is stretched, so that the symmetrical baffles 54 on both sides move outward together, so that the material can be opened, and combined with the hollow bottom of the guide trough 52 directly above the conveyor belt 34, the bottled phage solution can be driven by the conveyor belt 34 for transportation;
[0061] At the same time, when the toggle rod 37 is disengaged from the driven plate 56, the driving force on the driven plate 56 disappears, and under the elastic force of the spring 55, the driven plate 56 is pulled to move toward the inside of the guide trough 52 to reset, so as to block the remaining bottled phage solution in the guide trough 52.
[0062] And as the conveyor belt 34 runs, the conveyor belt 34 can move by toggling the rod 37, and the toggling rod 37 can apply a toggling force to the force-bearing rod 43, and the force-bearing rod 43 is evenly distributed on the edge of the conveyor belt 34, and the force-bearing rod 43 is subjected to a continuous toggling force, which can drive the connecting roller 42 to rotate, and the conveyor belt 44 is driven by the connecting roller 42 to run, so that the support block 45 moves with the operation of the conveyor belt 44, and the bottled bacteriophage liquid is driven by the conveyor belt 34 to move, so that the clamping end of the support block 45 contacts the bottle containing the bacteriophage liquid, and the bottle containing the bacteriophage liquid can be clamped by two symmetrical means;
[0063] The staff turns on the cold air generator 461 to generate cold air, and the cold air is transported by the fork-shaped connecting pipe 463 so that the cold air enters the exhaust hole 464.
[0064] The operation of the conveyor belt 44 drives the supporting block 45 to move, so that the supporting block 45 contacts the bottom end of the strip tooth 4654. As the supporting block 45 continues to move, a pushing force can be applied to the strip tooth 4654, and without a rotational connection, the disc 4652 and the arc swing plate 4653 rotate clockwise together, so that the arc swing plate 4653 disengages from the air outlet at the bottom of the exhaust hole 464, and the cold air discharged from the exhaust hole 464 can be directed at the bottled phage bacteria;
[0065] As the supporting block 45 and the bottled phage bacteria solution continue to move, when the supporting block 45 disengages from the strip tooth 4654, the pushing force applied to the strip tooth 4654 disappears, and under the action of the self-gravity of the strip tooth 4654, the disc 4652 and the arc swing plate 4653 rotate counterclockwise to reset, and do not rotate to directly below the strip base 462 again, so that the air outlet at the bottom of the exhaust hole 464 can be blocked, and the bottled phage bacteria solution can be removed, the cold air discharge can be paused, and when the bottled phage bacteria moves to below the exhaust hole 464 again, the cold air can be discharged for cooling;
[0066] And it is sprayed into the interior of the housing 41 from the air outlet at the bottom end of the exhaust hole 464, so that the temperature inside the housing 41 is reduced. By using the housing 41 in a semi-closed state, the dissipation of cold air is reduced, and by the principle of heat transfer, the temperature of the bottled phage bacteria solution conveyed on the conveyor belt 34 is reduced for low-temperature conveying.
[0067] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "including a..." does not exclude the existence of additional identical elements in the process, method, article or device including the said element.
[0068] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A phage bacterial liquid delivery device for saline-alkali land agriculture, characterized in that, include: A body (1), and a rectangular notch (2) provided in the middle of the top of the body (1); A conveying mechanism (3), the conveying mechanism (3) is used to convey the bottled bacteriophage liquid, and the conveying mechanism (3) is installed at the rectangular notch (2) on the top of the body (1); The conveying mechanism (3) comprises a bracket (31), a driving roller (32) and a driven roller (33); the bracket (31) is mounted at a rectangular notch (2) on the top of the machine body (1); the driving roller (32) is rotatably mounted on one end of the bracket (31); the driven roller (33) is rotatably mounted on an end of the bracket (31) away from the driving roller (32); a conveying belt (34) is mounted between the driving roller (32) and the driven roller (33); a servo motor (35) is fixedly mounted on the side of the surface of the bracket (31); the output end of the servo motor (35) is fixedly mounted on the driving roller (32) via a coupling; a card slot (36) is provided on the outer circumferential surface of the driving roller (32) and the outer circumferential surface of the driven roller (33); and a toggle rod (37) is fixedly connected to the edge of the surface of the conveying belt (34); An auxiliary mechanism (4), the auxiliary mechanism (4) is used to support and cool the bottled bacteriophage solution, and the auxiliary mechanism (4) is installed in the middle of the top of the machine body (1); The auxiliary mechanism (4) comprises an outer shell (41) and a connecting roller (42); the outer shell (41) is fixedly mounted in the middle of the top of the machine body (1); the connecting roller (42) is rotatably mounted at a corner of the inner cavity of the outer shell (41); a force-bearing rod (43) is fixedly connected to the outer cylindrical surface of the connecting roller (42); the force-bearing rod (43) and the toggle rod (37) are mounted at the same height; a conveyor belt (44) is mounted in the middle of the outer cylindrical surface of the connecting roller (42); a supporting block (45) is fixedly connected to the middle of the surface of the conveyor belt (44); and a cooling component (46) is mounted on the top of the outer shell (41).
2. The phage bacterial liquid delivery device for saline-alkali land agriculture according to claim 1, characterized in that: The active roller (32) and the driven roller (33) are installed at the same height, and the toggle rods (37) are evenly distributed at the edge of the surface of the conveyor belt (34).
3. The phage bacterial liquid conveying device for saline-alkali land agriculture according to claim 1, wherein: There are four connecting rollers (42), and the four connecting rollers (42) are evenly installed at the corners of the inner cavity of the shell (41). The connecting rollers (42) are installed vertically, and the supporting blocks (45) are evenly distributed in the middle of the surface of the conveyor belt (44).
4. The phage bacterial liquid conveying device for saline-alkali land agriculture according to claim 1, wherein: The cooling component (46) includes a cold air generator (461) and a strip base (462), wherein the cold air generator (461) is installed in the middle of the surface of the outer shell (41), and the strip base (462) is fixedly installed in the middle of the top of the inner cavity of the outer shell (41), and a fork-shaped connecting pipe (463) is connected between the air outlet of the cold air generator (461) and the top of the strip base (462), and an exhaust hole (464) is opened in the middle of the interior of the strip base (462), and the air inlet at the top of the exhaust hole (464) is connected to the air outlet of the fork-shaped connecting pipe (463), and an opening and closing module (465) is installed inside the outer shell (41), and the opening and closing module (465) is installed directly below the strip base (462).
5. A phage bacterial liquid delivery device for saline-alkali land agriculture according to claim 4, characterized in that: There are two cold air generators (461), and the two cold air generators (461) are symmetrically installed along the central axis in the middle of the outer shell (41), and the strip-shaped base (462) is evenly distributed in the middle of the top of the inner cavity of the outer shell (41).
6. The phage bacterial liquid conveying device for saline-alkali land agriculture according to claim 4, characterized in that: The opening and closing module (465) comprises a connecting shaft (4651), one end of which is rotatably mounted between the inner wall of the outer shell (41), one end of which is away from the inner wall of the outer shell (41) being fixedly connected to a disc (4652), the top of the surface edge of the disc (4652) being fixedly connected to an arc-shaped swing plate (4653), and the arc-shaped swing plate (4653) being mounted directly below the strip-shaped base (462), and the bottom of the surface edge of the disc (4652) being fixedly connected to a strip-shaped tooth (4654).
7. A phage bacterial liquid delivery device for saline-alkali land agriculture according to claim 6, characterized in that: There are two connecting shafts (4651), and the two connecting shafts (4651) are symmetrically installed along the arc-shaped swing plate (4653), and the arc surface at the top of the arc-shaped swing plate (4653) fits with the bottom of the strip base (462).
8. A phage bacterial liquid conveying device for saline-alkali land agriculture according to claim 1, characterized in that: A material guiding mechanism (5) is installed on the top of the bracket (31), and the material guiding mechanism (5) is installed just above the driven roller (33). The material guiding mechanism (5) comprises a bending frame (51) and a material guiding trough (52). The bottom end of the bending frame (51) is fixedly connected to the top of the bracket (31), and the surface of the material guiding trough (52) is fixedly installed to the top of the bending frame (51). A U-shaped plate (53) is fixedly connected to the material outlet on the surface of the material guiding trough (52), and the opening of the U-shaped plate (53) faces upward. A baffle (54) is slidably installed inside the U-shaped plate (53), and a spring (55) is fixedly connected between the surface of the baffle (54) and the surface of the material guiding trough (52). A driven plate (56) is fixedly connected to the side of the bottom of the baffle (54), and the baffle (54) and the toggle rod (37) at the top of the edge of the conveyor belt (34) are installed at the same height.
9. The phage bacterial liquid conveying device for saline-alkali land agriculture according to claim 8, wherein: There are two bending frames (51), and the two bending frames (51) are symmetrically installed along the central axis in the middle of the material guide trough body (52), and the opening of the material guide trough body (52) faces upward.
10. A phage bacterial liquid conveying device for saline-alkali land agriculture according to claim 8, characterized in that: The surface of the baffle plate (54) fits against the inner wall of the U-shaped plate (53). There are two baffle plates (54), and the two baffle plates (54) are symmetrically installed along the central axis at the middle of the material guiding trough body (52). The driven plate (56) is arc-shaped.