Intelligent cultivation frame
By designing an intelligent cultivation frame, using a fully automatic integrated water and fertilizer irrigation system and transmission sliding device, the problems of insufficient sunlight exposure and irrigation difficulties in the middle and lower crops of multi-layer planting are solved, efficient light source adjustment and automatic irrigation are achieved, and planting efficiency is improved.
Patent Information
- Application Number
- CN202422260013.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-14
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-09-14
AI Technical Summary
The existing greenhouse cultivation stands cannot achieve sufficient sunlight for the lower crops in multi-layer planting, and irrigation and watering are difficult, and most cultivation stands cannot achieve automatic adjustment, which is inefficient.
An intelligent cultivation frame is designed, using a fully automatic integrated water and fertilizer irrigation system, which realizes separate movement and light source adjustment of each layer of cultivation mechanism through transmission and sliding devices, and uses folding pipes and solenoid valves to achieve efficient irrigation.
The independent adjustment of each layer of cultivation mechanism is achieved, the growth needs of different plants are met, the light source utilization efficiency is improved, and the watering process is simplified through a fully automatic irrigation system and the planting efficiency is improved.
Smart Images

Figure CN223008114U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of cultivation racks, in particular to an intelligent cultivation rack. Background Technique
[0002] Greenhouse cultivation requires a sufficiently large space. However, considering the cost, the area of the greenhouse is often limited. If a large area of vegetables needs to be planted, it will occupy too much space. Many greenhouses use flat planting or multi-layer planting platforms. By adjusting the lighting, it is ensured that the crops can fully receive sunlight. However, in practice, most multi-layer planting platforms still cannot ensure that the sun-loving crops in the lower layer can receive sufficient sunlight, and it is also difficult to irrigate and water.
[0003] For example, the seedling cultivation rack with the authorization announcement number CN212368013U: most of them are manually adjusted, unable to achieve automatic adjustment, with low efficiency and not suitable for large-scale application; for example, the cultivation rack with the authorization announcement number CN203206829U: a cultivation rack that adjusts the height of the light source board through a rope winch, with a limited adjustment distance and simultaneous adjustment, unable to achieve separate adjustment of a single layer, not meeting the needs of growing different plants in the laboratory, and for conventional multi-layer cultivation racks, due to the cumbersome watering, the hydroponic mode is mostly used, and the irrigation is independent of the system. Content of the Utility Model
[0004] Aiming at the deficiencies of the prior art, the utility model provides an intelligent cultivation rack, which solves the problems put forward in the background technique.
[0005] To achieve the above object, the utility model provides the following technical solutions:
[0006] An intelligent cultivation rack, including an outer frame 1, characterized in that: a water supply system 2 is fixedly installed at the bottom of the outer frame 1, several cultivation mechanisms 3 are movably installed inside the outer frame 1 from bottom to top in sequence, and a folding pipeline 4 is installed between the water supply system 2 and several cultivation mechanisms 3; a controller 1 5 is installed on the outer frame 1;
[0007] The water supply system 2 includes a bottom plate fixedly connected to the bottom end of the outer frame 1, a water tank 201, a proportioning tank 202 and a nutrient solution tank 203 are placed on the bottom plate, a feed water pump 204 is installed between the water tank 201 and the proportioning tank 202, a peristaltic pump 205 is installed between the proportioning tank 202 and the nutrient solution tank 203, and the proportioning tank 202 is communicated with the folding pipeline 4 through a water outlet pipe 206;
[0008] The nutrient solution tank 203 is divided into a nutrient solution A tank 2031, a nutrient solution B tank 2032, a nutrient solution C tank 2033 and a nutrient solution D tank 2034 by a partition board;
[0009] The cultivation mechanism 3 includes a laminate 301, and the laminate 301 is connected to the outer frame 1 through a transmission device 6. A scanning and water spraying mechanism 8 is provided on two long sides of the laminate 301 through a sliding device 7;
[0010] The transmission device 6 includes a rack 601 fixedly connected to the inner side of the outer frame 1. The transmission device 6 further includes a group of bearing seats one 602 fixedly connected to two short sides of the laminate 301. A first transmission shaft 603 is connected to the bearing seats one 602 through bearings. Gears 604 are connected to both ends of the first transmission shaft 603 extending out of the bearing seats one 602 through keys. The gears 604 are engaged with the rack 601. A worm gear 605 is connected to the middle of the first transmission shaft 603 through a key. A reduction motor 606 is fixedly installed in the middle of the bottom of the laminate 301. The output shaft of the reduction motor 606 is connected to a second transmission shaft 607 through a first universal joint. The other end of the second transmission shaft 607 is connected to a worm 608 through a second universal joint. The worm 608 is engaged with the worm gear 605;
[0011] The sliding device 7 includes sliding grooves 701 opened on two long sides of the laminate 301. The sliding device 7 further includes a group of bearing seats two 702 fixedly connected to two short sides of the laminate 301. A third transmission shaft 703 is connected to the bearing seats two 702 through bearings. Synchronous wheels 704 are fixedly connected to both ends of the third transmission shaft 703. A synchronous belt 705 is connected between the two synchronous wheels 704 on two long sides of the laminate 301. A stepping motor 706 is fixedly installed at the bottom of the laminate 301. A first pulley 707 is fixedly connected to the output end of the stepping motor 706. A second pulley 708 is fixedly connected to the middle of the third transmission shaft 703. The second pulley 708 is connected to the first pulley 707 through a belt 709;
[0012] The scanning and water spraying mechanism 8 further includes a water storage pipe 801. L-shaped supports 802 are fixedly connected to both ends of the water storage pipe 801. Two pulleys 803 are fixedly connected to the inner side walls of the L-shaped supports 802. The two pulleys 803 cooperate with the sliding grooves 701. A synchronous belt connector 804 is fixedly connected to the bottom of the L-shaped support 802. The synchronous belt connector 804 is fixedly connected to the synchronous belt 705 through screws;
[0013] A plurality of spray heads 805 communicating with the water storage pipe 801 are fixedly connected to the bottom of the water storage pipe 801. A ultrasonic distance sensor 806 is fixedly connected to the bottom of the water storage pipe 801 between the spray heads 805. A second controller 807 is fixedly installed on the outer side of one L-shaped support 802. The second controller 807 is connected to the ultrasonic distance sensor 806 through a wire; a display screen 808 is provided on the second controller 807, and charging contacts 809 are provided on the side surface of the second controller 807;
[0014] The folding pipe 4 includes a vertical folding pipeline 401 and a horizontal folding pipeline 402. The vertical folding pipeline 401 includes a bracket 4011. The bracket 4011 is fixedly installed on the side surface of the laminate 301. The upper pipe of a water pipe tee 4015 penetrates through the bracket 4011. The upper pipe of the water pipe tee 4015 is connected to a first compression pipe 4013 through a first corner piece 4012. The other end of the first compression pipe 4013 is connected to a second compression pipe 4014 through a second corner piece 4016. The other end of the second compression pipe 401 is connected to the lower pipe of the water pipe tee 4015 through a first corner piece 4012. The upper pipe of the water pipe tee 4015 penetrates through the upper-layer bracket 4011 and is connected to a first compression pipe 4013 through a first corner piece 4012, and the above is repeated in sequence to form the vertical folding pipeline 401;
[0015] The right pipe of the water pipe tee 4015 is connected to the inlet end of a solenoid valve 4017. The solenoid valve 4017 is fixedly installed on the bottom surface of the laminate 301. The outlet end of the solenoid valve 4017 is connected to the horizontal folding pipeline 402. The other end of the horizontal folding pipeline 402 communicates with the water storage pipe 801; the horizontal folding pipeline 402 includes a plurality of third compression pipes 4021 and fourth compression pipes 4022. The third compression pipes 4021 and the fourth compression pipes 4022 communicate with each other through a second corner piece 4016;
[0016] A plurality of lamp boards 303 are connected to the bottom of the laminate 301 through lamp board connectors 302; a charging female socket 304 is installed on the side surface of the laminate 301. The charging female socket 304 is matched with the charging contacts 809;
[0017] The first controller 5 is electrically connected to the second controller 807. The first controller 5 is electrically connected to the reduction motor 606. The second controller 807 is electrically connected to the solenoid valve 4017; the second controller 807 is electrically connected to the stepping motor 706.
[0018] The outer frame 1 is assembled by aluminum profile columns.
[0019] Compared with the prior art, the beneficial effects of the present utility model are:
[0020] 1. The utility model is designed and equipped with a full-automatic integrated water and fertilizer irrigation system, which can meet both the traditional hydroponic mode and the soilless cultivation mode using substrates.
[0021] 2. Each layer of the cultivation mechanism of the utility model can be moved independently. While solving the light source problem, it can meet the growth needs of various plants. For example, leafy vegetables require a small distance between layers, flower ball vegetables require a medium distance between layers, and forage and solanaceous vegetables require a large distance between layers. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 is a schematic diagram of the overall structure of the utility model;
[0023] Figure 2 is a schematic diagram of the structure of the middle plate of the utility model Figure 1 ;
[0024] Figure 3 is a schematic diagram of the structure of the middle plate of the utility model Figure 2 ;
[0025] Figure 4 is a schematic diagram of the structure of the scanning and water spraying mechanism of the utility model;
[0026] Figure 5 is a schematic diagram of the structure of the water supply system of the utility model;
[0027] Figure 6 is a schematic diagram of the structure of the folding pipeline of the utility model Figure 1 ;
[0028] Figure 7 is a schematic diagram of the structure of the folding pipeline of the utility model Figure 2 ;
[0029] Figure 8 is a schematic diagram of the structure of the horizontal folding pipeline of the utility model;
[0030] Figure 9 is a schematic diagram of the structure of the cooperation between the rack and the gear of the utility model;
[0031] Figure 10 is a schematic diagram of the structure of the cooperation between the turbine and the worm of the utility model;
[0032] Figure 11 is a schematic diagram of the structure of the cooperation between the sliding groove and the pulley of the utility model;
[0033] Figure 12 is a schematic diagram of the structure of the cooperation between the synchronous pulley and the synchronous belt of the utility model;
[0034] Figure 13Schematic diagram of the structure of the first pulley, the second pulley and the belt in the present utility model;
[0035] Figure 14 Schematic diagram of the structure of the synchronous belt and the synchronous belt connector in the present utility model.
[0036] In the figure: outer frame 1, water supply system 2, cultivation mechanism 3, folding pipeline 4, first controller 5, transmission device 6, sliding device 7, scanning water spraying mechanism 8, water tank 201, proportioning tank 202, nutrient solution tank 203, inlet water pump 204, peristaltic pump 205, outlet water pipe 206, nutrient solution A tank 2031, nutrient solution B tank 2032, nutrient solution C tank 2033, nutrient solution D tank 2034, laminate 301, vertical folding pipeline 401, horizontal folding pipeline 402, bracket 4011, first corner fitting 4012, first compression pipe 4013, second compression pipe 4014, water pipe tee 4015, second corner fitting 4016, solenoid valve 4017, rack 601, first bearing seat 602, first transmission shaft 603, gear 604, turbine 605, reduction motor 606, second transmission shaft 607, worm 608, chute 701, second bearing seat 702, third transmission shaft 703, synchronous pulley 704, synchronous belt 705, stepping motor 706, first pulley 707, second pulley 708, belt 709, water storage pipe 801, L-shaped support 802, pulley 803, synchronous belt connector 804, nozzle 805, ultrasonic ranging sensor 806, second controller 807, display screen 808, charging contact 809. Detailed implementation manners
[0037] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0038] An intelligent cultivation rack, as Figures 1-14 shown, includes an outer frame 1, a water supply system 2 is fixedly installed at the bottom of the outer frame 1, several cultivation mechanisms 3 are movably installed inside the outer frame 1 in sequence from bottom to top, and a folding pipeline 4 is installed between the water supply system 2 and the several cultivation mechanisms 3; a first controller 5 is installed on the outer frame 1;
[0039] The water supply system 2 includes a bottom plate fixedly connected to the bottom end of the outer frame 1. A water tank 201, a proportioning tank 202, and a nutrient solution tank 203 are placed on the bottom plate. A water inlet pump 204 is installed between the water tank 201 and the proportioning tank 202. A peristaltic pump 205 is installed between the proportioning tank 202 and the nutrient solution tank 203. The proportioning tank 202 is communicated with the folding pipeline 4 through a water outlet pipe 206;
[0040] The nutrient solution tank 203 is divided by a partition into a nutrient solution A tank 2031, a nutrient solution B tank 2032, a nutrient solution C tank 2033, and a nutrient solution D tank 2034;
[0041] The cultivation mechanism 3 includes a laminate 301. The laminate 301 is connected to the outer frame 1 through a transmission device 6. Scanning and water spraying mechanisms 8 are provided on two long sides of the laminate 301 through sliding devices 7;
[0042] The transmission device 6 includes a rack 601 fixedly connected to the inner side of the outer frame 1. The transmission device 6 further includes a group of bearing seats one 602 fixedly connected to two short sides of the laminate 301. A first transmission shaft 603 is connected to the bearing seats one 602 through bearings. Gears 604 are connected to both ends of the first transmission shaft 603 extending out of the bearing seats one 602 through keys. The gears 604 are engaged with the rack 601. A turbine 605 is connected to the middle of the first transmission shaft 603 through a key. A reduction motor 606 is fixedly installed in the middle of the bottom of the laminate 301. The output shaft of the reduction motor 606 is connected to a second transmission shaft 607 through a universal joint one. The other end of the second transmission shaft 607 is connected to a worm 608 through a universal joint two. The worm 608 is engaged with the turbine 605;
[0043] The sliding device 7 includes sliding grooves 701 opened on two long sides of the laminate 301. The sliding device 7 further includes a group of bearing seats two 702 fixedly connected to two short sides of the laminate 301. A third transmission shaft 703 is connected to the bearing seats two 702 through bearings. Synchronous wheels 704 are fixedly connected to both ends of the third transmission shaft 703. Synchronous belts 705 are connected between the two synchronous wheels 704 on two long sides of the laminate 301. A stepping motor 706 is fixedly installed at the bottom of the laminate 301. A first pulley 707 is fixedly connected to the output end of the stepping motor 706. A second pulley 708 is fixedly connected to the middle of the third transmission shaft 703. The second pulley 708 is connected to the first pulley 707 through a belt 709;
[0044] The scanning and water spraying mechanism 8 further includes a water storage pipe 801. Both ends of the water storage pipe 801 are fixedly connected with L-shaped supports 802. Two pulleys 803 are fixedly connected to the inner side walls of the L-shaped supports 802. The two pulleys 803 cooperate with the chute 701. The bottom of the L-shaped support 802 is fixedly connected with a synchronous belt connecting piece 804. The synchronous belt connecting piece 804 is fixedly connected to the synchronous belt 705 by screws;
[0045] A plurality of nozzles 805 communicating with the water storage pipe 801 are fixedly connected to the bottom of the water storage pipe 801. An ultrasonic distance measuring sensor 806 is fixedly connected to the bottom of the water storage pipe 801 between the nozzles 805. A controller two 807 is fixedly installed on the outside of one L-shaped support 802. The controller two 807 is connected to the ultrasonic distance measuring sensor 806 through a wire; A display screen 808 is provided on the controller two 807, and charging contacts 809 are provided on the side of the controller two 807;
[0046] The folding pipe 4 includes a vertical folding pipeline 401 and a horizontal folding pipeline 402. The vertical folding pipeline 401 includes a bracket 4011. The bracket 4011 is fixedly installed on the side of the laminate 301. The upper pipe of a water pipe tee 4015 penetrates through the bracket 4011. The upper pipe of the water pipe tee 4015 is connected to a first compression pipe 4013 through a first corner piece 4012. The other end of the first compression pipe 4013 is connected to a second compression pipe 4014 through a second corner piece 4016. The other end of the second compression pipe 401 is connected to the lower pipe of the water pipe tee 4015 through a first corner piece 4012. The upper pipe of the water pipe tee 4015 passes through the upper layer bracket 4011 and is connected to a first compression pipe 4013 through a first corner piece 4012, and the above is repeated in sequence to form the vertical folding pipeline 401;
[0047] The right pipe of the water pipe tee 4015 is connected to the inlet end of an electromagnetic valve 4017. The electromagnetic valve 4017 is fixedly installed on the bottom surface of the laminate 301. The outlet end of the electromagnetic valve 4017 is connected to a horizontal folding pipeline 402. The other end of the horizontal folding pipeline 402 is communicated with the water storage pipe 801; The horizontal folding pipeline 402 includes a plurality of third compression pipes 4021 and fourth compression pipes 4022. The third compression pipes 4021 and the fourth compression pipes 4022 are communicated through a second corner piece 4016;
[0048] A plurality of lamp boards 303 are connected to the bottom of the laminate 301 through lamp board connecting pieces 302; A charging female socket 304 is installed on the side of the laminate 301. The charging female socket 304 is matched with the charging contacts 809;
[0049] The first controller 5 is electrically connected to the second controller 807, the first controller 5 is electrically connected to the reduction motor 606, and the second controller 807 is electrically connected to the solenoid valve 4017; the second controller 807 is electrically connected to the stepping motor 706.
[0050] The outer frame 1 is assembled by aluminum profile columns.
[0051] In the present utility model, the second controller 807 is charged by installing a sliding contact wire and a plug-in charger in the aluminum profile column.
[0052] The working principle of the present utility model is as follows:
[0053] Through the control of the second controller 807, the scanning and watering mechanism 8 can be controlled to perform daily timed scanning on the laminate 301. When the ultrasonic ranging sensor 806 detects that the data is lower than the threshold value, it sends a signal to the first controller 5, and the first controller 5 controls the upper and lower movement of each layer of laminate 301 to the set layer distance.
[0054] Specifically, the second controller 807 on each layer of laminate 301 controls the stepping motor 706 to start daily. Then, through the transmission of the first pulley 707, the second pulley 708 and the belt 709, the power is transmitted to the third transmission shaft 703. Then, through the transmission of the synchronous pulley 704 and the synchronous belt 705, under the action of the synchronous belt connector 804, the scanning and watering mechanism 8 reciprocates on the laminate 301 under the cooperation of the chute 701 and the pulley 803, so as to realize the timed scanning and sprinkler irrigation of the ultrasonic ranging sensor 806;
[0055] As the plants cultivated on the laminate 301 grow, the distance between the plants and the upper laminate will shorten, resulting in insufficient space for plant growth. When the ultrasonic ranging sensor 806 detects that the distance between the top of the plant and the upper laminate is less than the set value, the second controller 807 on this layer of laminate will send a signal to the first controller 5, and the first controller 5 controls the reduction motor 606 to start. Then, through the transmission of the first universal joint, the second transmission shaft 607, the second universal joint, the worm 608 and the turbine 605, the power is transmitted to the first transmission shaft 603. Then, through the meshing of the gear 604 and the rack 601, the lifting of the corresponding laminate 301 is realized, so as to realize the adjustment of the distance between the laminates.
[0056] When the soil humidity detected by the humidity sensor buried in the soil of the plants cultivated on each layer board 301 is lower than the set threshold value, a detection signal is sent to the first controller 5. The first controller 5 controls the start of the stepping motor 706, causing the scanning water spraying mechanism 8 to start moving on the layer board. At the same time, it controls the opening of the solenoid valve 4017 corresponding to the layer board, so that the irrigation water in the water supply system 2 is sprayed onto the plants on the corresponding layer board through the cooperation of the vertical folding pipeline 401 and the horizontal folding pipeline 402, via the water storage pipe 801 and the nozzle 805;
[0057] Alternatively, the second controller 807 controls the start of the stepping motor 706 at a fixed time every day, and at the same time controls the opening of the solenoid valve 4017 corresponding to the layer board to perform fixed-time irrigation on the plants on the layer board every day.
[0058] The embodiments of the present application have been described above in conjunction with the accompanying drawings. However, the present application is not limited to the above specific embodiments. The above specific embodiments are merely illustrative and not restrictive. Under the inspiration of the present application, those of ordinary skill in the art can also make many forms without departing from the purpose of the present application and the scope protected by the claims, and all of them fall within the protection scope of the present application.
Claims
1. An intelligent cultivation rack, comprising an outer frame (1), characterized in that: A water supply system (2) is fixedly installed at the bottom of the outer frame (1); a plurality of cultivation mechanisms (3) are movably installed on the inner side of the outer frame (1) from bottom to top; a foldable pipe (4) is installed between the water supply system (2) and the plurality of cultivation mechanisms (3); a controller (5) is installed on the outer frame (1); The cultivation mechanism (3) comprises a layer plate (301), wherein the layer plate (301) is connected to the outer frame (1) via a transmission device (6), and scanning water spraying mechanisms (8) are provided on two long sides of the layer plate (301) via a sliding device (7).
2. The intelligent cultivation rack according to claim 1, characterized in that: The water supply system (2) comprises a bottom plate fixedly connected to the bottom end of the outer frame (1); a water tank (201), a mixing box (202) and a nutrient solution tank (203) are placed on the bottom plate; a water inlet pump (204) is installed between the water tank (201) and the mixing box (202); a peristaltic pump (205) is installed between the mixing box (202) and the nutrient solution tank (203); and the mixing box (202) is connected to the folding pipe (4) via a water outlet pipe (206).
3. The intelligent cultivation rack according to claim 2, characterized in that: The nutrient solution tank (203) is divided by a partition into a nutrient solution A tank (2031), a nutrient solution B tank (2032), a nutrient solution C tank (2033) and a nutrient solution D tank (2034).
4. The intelligent cultivation rack according to claim 2, characterized in that: The transmission device (6) comprises a rack (601) fixedly connected to the inner side of the outer frame (1), and the transmission device (6) also comprises a group of bearing seats (602) fixedly connected to the two short side surfaces of the layer plate (301), the first transmission shaft (603) is connected to the bearing seat (602) through a bearing, the two ends of the first transmission shaft (603) extending out of the bearing seat (602) are connected to gears (604) through a key, the gear (604) is meshed with the rack (601), the middle part of the first transmission shaft (603) is connected to a worm gear (605) through a key, and a reduction motor (606) is fixedly installed in the middle part of the bottom of the layer plate (301), the output shaft of the reduction motor (606) is connected to a second transmission shaft (607) through a universal joint (1), the other end of the second transmission shaft (607) is connected to a worm gear (608) through a universal joint (2), and the worm gear (608) is meshed with the worm gear (605).
5. The intelligent cultivation rack according to claim 4, characterized in that: The sliding device (7) comprises a slide groove (701) provided on two long side surfaces of the layer plate (301), and the sliding device (7) further comprises a group of bearing seats (702) fixedly connected to two short side surfaces of the layer plate (301); a third transmission shaft (703) is connected to the bearing seats (702) via bearings; two ends of the third transmission shaft (703) are fixedly connected to synchronous wheels (704); a synchronous belt (705) is connected between the two synchronous wheels (704) on the two long side surfaces of the layer plate (301); a stepping motor (706) is fixedly installed at the bottom of the layer plate (301); an output end of the stepping motor (706) is fixedly connected to a first belt pulley (707); a middle part of the third transmission shaft (703) is fixedly connected to a second belt pulley (708); the second belt pulley (708) and the first belt pulley (707) are connected via a belt (709).
6. The intelligent cultivation rack according to claim 5, characterized in that: The scanning water spraying mechanism (8) further comprises a water storage pipe (801), both ends of the water storage pipe (801) are fixedly connected to an L-shaped support (802), the inner side wall of the L-shaped support (802) is fixedly connected to two pulleys (803), the two pulleys (803) are matched with the slide groove (701), the bottom of the L-shaped support (802) is fixedly connected to a synchronous belt connector (804), and the synchronous belt connector (804) is fixedly connected to the synchronous belt (705) by screws; The bottom of the water storage pipe (801) is fixedly connected to a plurality of nozzles (805) in communication with the water storage pipe (801); the bottom of the water storage pipe (801) between the nozzles (805) is fixedly connected to an ultrasonic distance sensor (806); a second controller (807) is fixedly mounted on the outer side of one of the L-shaped supports (802); the second controller (807) and the ultrasonic distance sensor (806) are connected via a wire; a display screen (808) is provided on the second controller (807); and a charging contact (809) is provided on the side of the second controller (807).
7. The intelligent cultivation rack according to claim 6, characterized in that: The foldable pipeline (4) comprises a vertical foldable pipeline (401) and a horizontal foldable pipeline (402). The vertical foldable pipeline (401) comprises a bracket (4011). The bracket (4011) is fixedly installed on the side of the layer board (301). The bracket (4011) runs through an upper tube connected to a water pipe tee (4015). The upper tube of the water pipe tee (4015) is connected to a first compression tube (4013) via a first corner piece (4012). The other end of the compression tube (4013) is connected to the second compression tube (4014) through the second corner piece (4016), and the other end of the second compression tube (4014) is connected to the lower tube of the water pipe tee (4015) through the first corner piece (4012). The upper tube of the water pipe tee (4015) passes through the upper support (4011) and is connected to the first compression tube (4013) through the first corner piece (4012), and the vertical folded pipeline (401) is formed repeatedly in sequence; The right pipe of the water pipe tee (4015) is connected to the inlet end of the electromagnetic valve (4017), and the electromagnetic valve (4017) is fixedly installed on the bottom surface of the layer plate (301). The outlet end of the electromagnetic valve (4017) is connected to a transverse folding pipeline (402), and the other end of the transverse folding pipeline (402) is connected to the water storage pipe (801); the transverse folding pipeline (402) includes a plurality of third compression pipes (4021) and a fourth compression pipe (4022), and the third compression pipe (4021) and the fourth compression pipe (4022) are connected through a second corner piece (4016).
8. The intelligent cultivation rack according to claim 7, characterized in that: The bottom of the layer plate (301) is connected to a plurality of light boards (303) via a light board connector (302); a charging socket (304) is installed on the side of the layer plate (301), and the charging socket (304) matches the charging contact (809).
9. The intelligent cultivation rack according to claim 8, characterized in that: The controller 1 (5) is electrically connected to the controller 2 (807), the controller 1 (5) is electrically connected to the reduction motor (606), the controller 2 (807) is electrically connected to the solenoid valve (4017); the controller 2 (807) is electrically connected to the stepping motor (706).
Citation Information
Patent Citations
Intelligent LEDs (Light Emitting Diode) lamp bracket regulating and controlling system of planting frame in plant factory
CN203206829U
Modularly-assembled artificial light seedling raising frame
CN212368013U
Cited By
Intelligent cultivation frame
CN119138323A