Light supplementing device for greenhouse

Through the combination of latent robot and adjustment bracket drive assembly, the problems of inconvenient movement and difficulty in adjusting the fill light in the glass greenhouse are solved, and convenient adjustment and effective irradiation of the fill light are achieved, improving the plant growth effect.

CN223125402UActive Publication Date: 2025-07-22CHINA TRIUMPH INT ENG CO LTD +1
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Patent Information

Application Number
CN202422242234.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-12
Publication Date
2025-07-22
Estimated Expiration
2034-09-12

AI Technical Summary

Technical Problem

The existing fill light fixtures are inconvenient to move in a glass greenhouse and it is difficult to adjust the illumination position at any time according to the lighting needs. This is especially serious for the root entanglement of infinitely growing plants, which affects the fill light effect.

Method used

The latent robot is used to drive the adjustment bracket and fill light, combining the drive component and the rotating component to achieve the height and angle adjustment of the fill light, and the wiring harness is stored through the beam clamp to avoid wrapping.

Benefits of technology

The convenient movement and flexible adjustment of fill lights are achieved, ensuring effective fill light for all parts of the plant, avoiding root entanglement, and improving the aesthetics and functionality of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a light supplementing device for a greenhouse, which comprises a submarine robot, an adjusting support, a light supplementing lamp and a bunching clamp, the adjusting support is arranged at the top of the submarine robot, the light supplementing lamp is rotatably arranged on the adjusting support, the height of the light supplementing lamp is adjusted through the adjusting support, and the bunching clamp is arranged on the adjusting support so as to accommodate a wire harness of the light supplementing lamp in order; the adjusting support comprises a fixed base, an adjusting screw rod, a sliding sleeve, a supporting leg frame and a guide column, the fixed base is fixed to the submarine robot, the adjusting screw rod is rotationally arranged on the fixed base, the sliding sleeve is in threaded connection to the adjusting screw rod, and the supporting leg frame is rotationally connected to the end, away from the submarine robot, of the sliding sleeve; the guide column is arranged on the side, facing the submarine robot, of the supporting foot frame, the submarine robot is provided with a guide sleeve matched with the guide column in an inserted mode, and the light supplementing lamp is rotationally arranged on the supporting foot frame. The light supplementing device for the greenhouse is more convenient to move, and the irradiation position of the light supplementing lamp can be adjusted at any time according to the illumination requirement.
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Description

Technical Field

[0001] The utility model relates to a supplementary lighting device for a greenhouse, belonging to the technical field of greenhouse cultivation. Background Technique

[0002] A glass greenhouse refers to a greenhouse with glass as the lighting material, which belongs to a type of greenhouse. Among cultivation facilities, the glass greenhouse, as a form with the longest service life, is suitable for use in various regions and under various climate conditions.

[0003] Light in a glass greenhouse is an important factor in the formation of the greenhouse environment. Its combination with the glass controls the light and temperature for plant growth. Currently, in order to improve the light transmittance of a glass greenhouse, ultra-clear rolled glass is widely used. However, even ultra-clear rolled glass cannot completely eliminate the shading effects such as shadows. It is necessary to combine with supplementary lighting lamps to transmit light to the middle and lower layers. Although plant growth mainly focuses on the canopy, a certain amount of scattered light and improved light utilization play a very important role in greenhouse control and growth stability guarantee under extreme weather conditions.

[0004] Most current supplementary lighting lamps are mainly fixed and provide supplementary lighting from the upper part to support the growth of the canopy. And some movable supplementary lighting lamps also drive the sliding of the supplementary lighting lamp through arranging a slide rail near the plants and then through a rail vehicle. The movement is greatly restricted and the supplementary lighting effect on the middle and lower parts of the plants is not obvious. At the same time, for plants such as indeterminate tomatoes, their later vine winding will entangle a large number of roots on the slide rail, affecting the sliding of the supplementary lighting lamp. Therefore, there is an urgent need for a supplementary lighting device that is more convenient to move and can adjust the irradiation position of the supplementary lighting lamp according to the lighting requirements at any time. Content of the Utility Model

[0005] In order to solve the above technical problems, the utility model provides a supplementary lighting device for a greenhouse, which is more convenient to move and can adjust the irradiation position of the supplementary lighting lamp according to the lighting requirements at any time.

[0006] To achieve the above technical purpose and reach the above technical effect, the present application is realized through the following technical solutions:

[0007] A supplementary lighting device for a greenhouse includes a latent robot, an adjusting bracket, a supplementary lighting lamp and a wire bundling clip. The adjusting bracket is detachably arranged on the top of the latent robot. The supplementary lighting lamp is rotatably arranged on the adjusting bracket and realizes height adjustment through the adjusting bracket. A plurality of supplementary lighting lamps are arranged in an up-and-down distribution. The wire bundling clip is arranged on the adjusting bracket to collect and regularize the wire harnesses of the plurality of supplementary lighting lamps;

[0008] It further includes a power supply component, which is arranged on the top of the latent robot and is electrically connected to the latent robot and a plurality of supplementary lighting lamps.

[0009] Preferably, the adjusting bracket includes a fixed base, an adjusting screw, a sliding sleeve, a supporting leg bracket and a guiding column. The fixed base is detachably arranged on the latent robot through a buckle. The adjusting screw is rotatably arranged on the fixed base. The sliding sleeve is threadedly connected to the adjusting screw and slides in a direction close to or away from the latent robot. The supporting leg bracket is rotatably connected to one end of the sliding sleeve away from the latent robot. The guiding column is arranged on one side of the supporting leg bracket facing the latent robot and there is at least one guiding column. A guiding sleeve adapted to be inserted into the guiding column is arranged on the latent robot. A plurality of supplementary light lamps are rotatably arranged on the supporting leg bracket. The wire bundling clip is arranged on the outer wall of the sliding sleeve.

[0010] Further, a driving assembly for driving the adjusting screw to rotate bidirectionally is arranged on the latent robot. The driving assembly includes a driving motor, a first bevel gear and a second bevel gear. The driving motor is arranged on the latent robot. The first bevel gear is coaxially sleeved on the output shaft of the driving motor. The second bevel gear is sleeved and fixed on the outer wall of the adjusting screw near the latent robot. The first bevel gear and the second bevel gear are meshed with each other.

[0011] Furthermore, a shield is arranged on the latent robot to shield the driving assembly.

[0012] Further, the supplementary light lamp is rotatably connected to the supporting leg bracket through a rotating assembly. The rotating assembly includes a rotating seat, a universal ball head, a threaded connecting column, a limiting platform, a fastening bolt and a connecting seat. The rotating seat is detachably fixed on the supporting leg bracket. The universal ball head is partially rotatably arranged in the rotating seat and the other part is located outside the rotating seat. The threaded connecting column is fixed on the side wall of the universal ball head outside the rotating seat. The limiting platform is threadedly connected to the threaded connecting column and the end of the threaded connecting column away from the universal ball head extends out of the limiting platform. The fastening bolt is threadedly connected to the outer wall of the rotating seat to limit the rotation of the universal ball head. The connecting seat is fixed on the supplementary light lamp and can be threadedly connected to the threaded connecting seat.

[0013] Furthermore, at least one card slot for clamping the threaded connecting column is formed on the outer wall of the rotating seat.

[0014] Further, the buckle includes a first clamping seat, a second clamping seat and an elastic member. There are two first clamping seats which are fixedly perpendicular to each other. There are two second clamping seats and elastic members corresponding to the first clamping seats. The second clamping seat is slidably arranged in the first clamping seat in a direction close to or away from the first clamping seat. The latent robot is clamped between the first clamping seat and the second clamping seat. The elastic member is arranged between the inner wall of the first clamping seat and the second clamping seat to pull the second clamping seat in a direction close to the first clamping seat.

[0015] The supplementary lighting device for greenhouse provided by the utility model has the following advantages:

[0016] 1. When the utility model is in use, the latent robot drives the supplementary light to move within the greenhouse range. There is no need for rail guidance restriction, and it can be moved to any position within the greenhouse range only by manual driving. Thus, the possibility that the climbing of the indeterminate growth type plants restricts the movement of the supplementary light is avoided as much as possible, and the movement of the supplementary light becomes more convenient.

[0017] 2. When the utility model is in use, the height of the supplementary light can be adjusted by the adjusting bracket, and thus the optimal height of the supplementary light can be selected according to the illumination requirements to achieve the supplementary lighting of each part of the plant, better ensuring the growth of the plant.

[0018] 3. When the utility model is in use, the height of the supplementary light is adjusted by the threaded fit of the adjusting screw and the sliding sleeve, so that the height adjustment range of the supplementary light is wider, and thus the illumination angle required for the growth of the plant can be better selected.

[0019] 4. When the utility model is in use, the illumination angle of the supplementary light can be further adjusted by the driving component, and thus the growth of the plant is better ensured.

[0020] 5. When the utility model is in use, the wire harnesses of electrical components such as the supplementary light are collected and regulated by the wire harness clip, thus the possibility that the wire harnesses are disorderly and wound by the climbing of the indeterminate growth type plants can be avoided, and at the same time, the overall device can be made more beautiful. Description of the Drawings

[0021] Figure 1 is an axonometric schematic diagram mainly showing the overall structure of a supplementary lighting device for greenhouse of the utility model;

[0022] Figure 2 is an axonometric schematic diagram mainly showing the driving component and the buckle structure of the utility model;

[0023] In the figure:

[0024] 1 - latent robot; 2 - adjusting bracket; 21 - fixed base; 22 - adjusting screw; 23 - sliding sleeve; 24 - supporting leg frame; 25 - guiding column; 26 - guiding sleeve; 3 - supplementary light; 4 - wire harness clip; 5 - power supply component; 6 - driving component; 61 - driving motor; 62 - bevel gear one; 63 - bevel gear two; 7 - shield; 8 - rotating component; 81 - rotating seat; 811 - clamping groove; 82 - universal ball head; 83 - threaded connecting column; 84 - limiting platform; 85 - fastening bolt; 86 - connecting seat; 9 - buckle; 91 - first clamping seat; 92 - second clamping seat; 93 - elastic component. Detailed Embodiment

[0025] Next, the technical solutions in the embodiments of the present application will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present application. 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 in the present application, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the protection scope of the present utility model.

[0026] Referring to Figure 1 and Figure 2 , a supplementary lighting device for a greenhouse, comprising a latent robot 1, an adjustment bracket 2, a supplementary light 3, a wire harness clamp 4 and a power supply component 5. The adjustment bracket 2 is detachably installed on the top of the latent robot 1 through a buckle 9. The supplementary light 3 is rotatably installed on the adjustment bracket 2 and its height can be adjusted through the adjustment bracket 2. A plurality of supplementary lights 3 are arranged in an up-and-down distribution. The wire harness clamp 4 is installed on the adjustment bracket 2 to collect and regularize the wire harnesses of the plurality of supplementary lights 3. The power supply component 5 is embedded and installed on the top of the latent robot 1 and is electrically connected to the latent robot 1 and the plurality of supplementary lights 3 to provide energy for the movement of the supplementary lights 3 and the latent robot 1. In this embodiment, the latent robot 1 is a prior art and will not be elaborated too much.

[0027] Furthermore, the adjustment bracket 2 includes a fixed base 21, an adjustment screw 22, a sliding sleeve 23, a support leg 24 and a guide post 25. The fixed base 21 is fixed on the latent robot 1 through a buckle 9. The adjustment screw 22 is rotatably installed on the fixed base 21. The sliding sleeve 23 is threadedly connected to the adjustment screw 22. When the adjustment screw 22 rotates clockwise or counterclockwise, the sliding sleeve 23 can slide in a direction approaching or departing from the latent robot 1. The support leg 24 is rotatably installed at one end of the sliding sleeve 23 departing from the latent robot 1. The guide post 25 is welded and fixed on the side of the support leg 24 facing the latent robot 1 and there is at least one. A guide sleeve 26 adapted to be inserted into the guide post 25 is fixedly installed on the latent robot 1 through bolts. A plurality of supplementary lights 3 are rotatably installed on the support leg 24. The lifting of the sliding sleeve 23 can drive the lifting of the support leg 24 and the supplementary light, thereby realizing the adjustment of the irradiation height of the supplementary light 3. The setting of the guide post 25 can limit the rotation of the support leg 24 and avoid the possibility that the sliding sleeve 23 drives the support leg 24 to rotate together.

[0028] Furthermore, the wire harness clamp 4 is welded and fixed on the outer wall of the sliding sleeve 23, and the wire harnesses of the plurality of supplementary lights 3 are clamped in the wire harness clamp 4 to achieve collection and regularization.

[0029] Referring to Figure 1 and Figure 2In a further embodiment, a driving assembly 6 for driving the adjusting screw 22 to rotate bidirectionally is installed on the latent robot 1. The driving assembly 6 includes a driving motor 61, a bevel gear 1 62 and a bevel gear 2 63. The driving motor 61 is fixedly installed on the latent robot 1 by bolts. The bevel gear 1 62 is coaxially sleeved on the output shaft of the driving motor 61, and the bevel gear 2 63 is sleeved and fixed on the outer wall of one end of the adjusting screw 22 close to the latent robot 1. The bevel gear 1 62 and the bevel gear 2 63 are meshed with each other, and then the height of the fill light 3 can be automatically adjusted by the bevel gear transmission driving adjustment assembly. Specifically, the staff can send instructions to the driving motor 61 through the computer PC according to the lighting requirements of the plants in the area where the device is located, and then adjust the fill light 3 to an appropriate height to complete the fill light through the cooperation of the driving assembly 6 and the adjustment assembly, which is convenient and quick. In this embodiment, the operation of the driving motor 61 in the corresponding area controlled by the computer PC is a prior art and will not be described in detail.

[0030] Furthermore, a shield 7 for shielding the driving assembly 6 is fixed to the lurking robot 1 by bolts. The setting of the shield 7 can avoid the possibility that the winding of the unlimited growth type plant will affect the driving assembly 6 when the device moves, and at the same time can improve the overall aesthetics of the device.

[0031] Reference Figure 1 and Figure 2 In a further embodiment, the fill light 3 is rotatably mounted on the support frame 24 through a rotating assembly 8. The rotating assembly 8 includes a rotating seat 81, a universal ball head 82, a threaded connection column 83, a limiting platform 84, a fastening bolt 85 and a connecting seat 86. The rotating seat 81 is fixedly mounted on the support frame 24 by bolts. A part of the universal ball head 82 is rotatably embedded in the rotating seat 81, and the other part is located outside the rotating seat 81. The threaded connection column 83 is welded and fixed on the side wall of the universal ball head 82 located outside the rotating seat 81. The limiting platform 84 is threadedly connected to the threaded connection column 83 and the threaded connection column 83 is fixedly connected to the support frame 24 by bolts. The end away from the universal ball head 82 extends out of the limit platform 84, and the fastening bolt 85 is threadedly connected to the outer wall of the rotating seat 81 to limit the rotation of the universal ball head 82 to ensure that when the fill light 3 is rotated to a desired angle, the fill light 3 and the universal ball head 82 remain fixed. The connecting seat 86 is welded and fixed or integrally formed on the fill light 3 to be threadedly connected to the threaded connecting seat 86, thereby realizing the fixation of the universal ball head 82 of the fill light 3 so that it rotates synchronously with the universal ball head 82, and the limit platform 84 can avoid the possibility that the fill light 3 and the universal ball head 82 are too close to interfere with the rotating seat 81 and limit the rotation.

[0032] Furthermore, at least one slot 811 for accommodating the threaded connecting column 83 is provided on the outer wall of the rotating seat 81. When the threaded connecting column 83 is inserted into the slot 811, the irradiation direction of the fill light 3 can be adjusted downward, thereby further improving the irradiation adjustment range of the fill light 3.

[0033] Referring to Figure 1 and Figure 2 In a further embodiment, the buckle 9 includes a first clamping seat 91, a second clamping seat 92 and an elastic member 93. Two first clamping seats 91 are integrally injection-molded and are perpendicularly arranged to each other. The fixed base 21 is fixedly welded to the two first clamping seats 91. Two second clamping seats 92 and elastic members 93 are correspondingly arranged with the first clamping seats 91. The second clamping seat 92 is slidably installed in the first clamping seat 91 in a direction close to or away from the first clamping seat 91. The stealth robot 1 is clamped between the first clamping seat 91 and the second clamping seat 92. The elastic member 93 is installed between the inner wall of the first clamping seat 91 and the second clamping seat 92 and is used to pull the second clamping seat 92 in a direction close to the first clamping seat 91. In this embodiment, the elastic member 93 is a spring. One end of the elastic member 93 is fixedly welded to the inner wall of the first clamping seat 91, and the other end is fixedly welded to the side wall of the second clamping seat 92 facing the inner wall of the first clamping seat 91. The clamping principle of the buckle 9 by the elastic member 93 is prior art and will not be elaborated here.

[0034] The above is only the preferred embodiment of the present utility model, and it does not impose any formal or substantial limitations on the present utility model. It should be pointed out that for those of ordinary skill in the art in this technical field, without departing from the premise of the present utility model, several improvements and supplements can still be made, and these improvements and supplements should also be regarded as the protection scope of the present utility model. For those skilled in the art, without departing from the spirit and scope of the present utility model, any equivalent changes, such as slight modifications, decorations and evolutions made by using the technical content disclosed above, are all equivalent embodiments of the present utility model; at the same time, any equivalent changes, modifications and evolutions made to the above embodiments according to the essential technology of the present utility model still fall within the scope of the technical solution of the present utility model.

Claims

1. A supplementary lighting device for a greenhouse, characterized in that, It includes a stealth robot (1), an adjustment bracket (2), a fill light (3) and a wire bundling clip (4). The adjustment bracket (2) is detachably arranged on the top of the stealth robot (1). The fill light (3) is rotatably arranged on the adjustment bracket (2) and its height can be adjusted through the adjustment bracket (2). A plurality of fill lights (3) are arranged in an up-and-down distribution. The wire bundling clip (4) is arranged on the adjustment bracket (2) to collect and regularize the wire harnesses of the plurality of fill lights (3). It further includes a power supply component (5). The power supply component (5) is arranged on the top of the stealth robot (1) and is electrically connected to the stealth robot (1) and the plurality of fill lights (3).

2. The supplementary lighting device for a greenhouse according to claim 1, wherein The adjustment bracket (2) includes a fixed base (21), an adjustment screw (22), a sliding sleeve (23), a support leg bracket (24) and a guide post (25). The fixed base (21) is detachably arranged on the stealth robot (1) through a buckle (9). The adjustment screw (22) is rotatably arranged on the fixed base (21). The sliding sleeve (23) is threadedly connected to the adjustment screw (22) and slides in a direction close to or away from the stealth robot (1). The support leg bracket (24) is rotatably connected to one end of the sliding sleeve (23) away from the stealth robot (1). At least one guide post (25) is arranged on the side of the support leg bracket (24) facing the stealth robot (1). A guide sleeve (26) adapted to be inserted into the guide post (25) is arranged on the stealth robot (1). A plurality of fill lights (3) are rotatably arranged on the support leg bracket (24). The wire bundling clip (4) is arranged on the outer wall of the sliding sleeve (23).

3. The supplementary lighting device for a greenhouse according to claim 2, characterized in that, A driving component (6) for driving the adjustment screw (22) to rotate bidirectionally is arranged on the stealth robot (1). The driving component (6) includes a driving motor (61), a first bevel gear (62) and a second bevel gear (63). The driving motor (61) is arranged on the stealth robot (1). The first bevel gear (62) is coaxially sleeved on the output shaft of the driving motor (61). The second bevel gear (63) is sleeved and fixed on the outer wall of one end of the adjustment screw (22) close to the stealth robot (1). The first bevel gear (62) and the second bevel gear (63) are meshed with each other.

4. The supplementary lighting device for a greenhouse according to claim 3, wherein, A shield (7) for shielding the driving component (6) is arranged on the stealth robot (1).

5. The supplementary lighting device for a greenhouse according to claim 2, wherein, The fill light (3) is rotatably connected to the support frame (24) via a rotating assembly (8); the rotating assembly (8) comprises a rotating seat (81), a universal ball head (82), a threaded connection column (83), a limit platform (84), a fastening bolt (85) and a connection seat (86); the rotating seat (81) is detachably fixed to the support frame (24); a portion of the universal ball head (82) is rotatably arranged in the rotating seat (81), and the other portion is located outside the rotating seat (81); The connecting column (83) is fixed on the side wall of the universal ball head (82) outside the rotating seat (81); the limiting platform (84) is threadedly connected to the threaded connecting column (83) and one end of the threaded connecting column (83) away from the universal ball head (82) extends out of the limiting platform (84); the fastening bolt (85) is threadedly connected to the outer wall of the rotating seat (81) to limit the rotation of the universal ball head (82); and the connecting seat (86) is fixed on the fill light (3) and can be threadedly connected to the threaded connecting seat (86).

6. The supplementary lighting device for a greenhouse according to claim 5, characterized in that, At least one slot (811) for clamping the threaded connection column (83) is provided on the outer wall of the rotating seat (81).

7. The supplementary lighting device for a greenhouse according to claim 2, characterized in that, The buckle (9) comprises a first card seat (91), a second card seat (92) and an elastic member (93); the first card seat (91) is provided with two and fixed perpendicularly to each other; the second card seat (92) and the elastic member (93) are provided with two corresponding to the first card seat (91); the second card seat (92) is slidably arranged in the first card seat (91) in a direction approaching or away from the first card seat (91); the latent robot (1) is arranged between the first card seat (91) and the second card seat (92); the elastic member (93) is arranged between the inner wall of the first card seat (91) and the second card seat (92) for pulling the second card seat (92) in a direction approaching the first card seat (91).

Citation Information

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