Intelligent control cabinet

By designing drive components and photosensitive components in the intelligent control cabinet, the automatic storage and power supply circuit of solar photovoltaic components are realized, solving the problems of short lifespan and power failure disorder of solar panels, improving service life and energy utilization efficiency, and reducing costs.

CN223729263UActive Publication Date: 2025-12-26QINGDAO HAIER AIR CONDITIONING ELECTRONICS CO LTD +2
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520249754.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-17
Publication Date
2025-12-26
Estimated Expiration
2035-02-17

AI Technical Summary

Technical Problem

The solar panels in existing intelligent control cabinets have a short lifespan and data corruption occurs during sudden power outages, which is time-consuming and labor-intensive.

Method used

Design an intelligent control cabinet that drives a solar photovoltaic component to reciprocate along the height of the opening via a first driving component, allowing it to move in and out of the storage cavity. Combined with a photosensitive component to detect the light intensity in real time, the cabinet automatically adjusts the position of the solar photovoltaic component to form a first power supply circuit to reduce dependence on mains power.

Benefits of technology

It improves the lifespan of solar photovoltaic components, reduces operating costs, saves external space, avoids the risk of damage under severe weather conditions, and improves the system's automation and energy efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223729263U_ABST
    Figure CN223729263U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of control cabinets, and discloses an intelligent control cabinet. The intelligent control cabinet comprises a control cabinet body, a solar photovoltaic component and a first driving component, a storage cavity is formed in the control cabinet body, and an opening is formed in the control cabinet body; the opening is communicated with the accommodating cavity; the solar photovoltaic component is electrically connected with the control cabinet body to form a first power supply loop for supplying power to the control cabinet body; the first driving part is mounted in the accommodating cavity; the first driving part is connected with the solar photovoltaic part and used for driving the solar photovoltaic part to reciprocate in the height direction of the opening, so that the solar photovoltaic part enters and exits the storage cavity from the opening. By arranging the first driving part, the first driving part can drive the solar photovoltaic part to enter and exit from the storage cavity from the opening, so that the external space is saved, the damage risk of the solar photovoltaic part in severe weather is avoided, and the service life of the solar photovoltaic part is prolonged.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to control cabinet technical field especially relates to an intelligent control cabinet. BACKGROUND

[0002] Current outdoor intelligent control cabinet generally adopts municipal power supply, not only consumes electric energy, and suddenly drops, and the control part in the intelligent control cabinet will be because suddenly drops and makes data and program send disorder, needs to re-adjust after starting again, time -consuming and labor -saving. Although the scheme that the solar panel is used to power supply intelligent control cabinet exists currently, but the solar panel is fixed on the outside of intelligent control cabinet, leading to the service life of solar panel is shorter. Therefore how to improve the service life of solar panel of intelligent control cabinet is the problem that the industry urgently needs to solve. SUMMARY

[0003] The utility model provides a kind of intelligent control cabinet, to solve the problem of short service life of solar panel in prior art intelligent control cabinet.

[0004] The utility model provides a kind of intelligent control cabinet, comprising:

[0005] Control cabinet body, inside having receiving cavity, and being provided with opening;The opening is communicated with the receiving cavity;

[0006] Solar photovoltaic component, with the control cabinet body electric connection, forms first power supply loop, for to the control cabinet body power supply;

[0007] First drive component, installation in the receiving cavity;The first drive component is connected with the solar photovoltaic component, for driving the solar photovoltaic component reciprocating motion along the height direction of the opening, makes the solar photovoltaic component from the opening into the receiving cavity.

[0008] According to the intelligent control cabinet provided by the utility model, the solar photovoltaic component includes a plurality of solar photovoltaic assemblies and connecting assemblies;Two adjacent solar photovoltaic assemblies are connected by the connecting assemblies, so that a plurality of solar photovoltaic assemblies can be switched between the folded state and the unfolded state.

[0009] According to the intelligent control cabinet provided by the utility model, the first drive component includes:

[0010] First mounting platform, a plurality of sixth hinge shafts are installed on the first mounting platform;A plurality of sixth hinge shafts and a plurality of solar photovoltaic assemblies are one-to-one corresponding, the sixth hinge shaft and the corresponding solar photovoltaic assembly rotate and cooperate;The central axis direction of the sixth hinge shaft is parallel to the height direction of the opening;

[0011] The first driving assembly is hinged to the first mounting platform through a first hinge shaft; the first driving assembly drives the solar photovoltaic component to reciprocate along the height direction of the opening through the first mounting platform; and the central axis direction of the first hinge shaft is parallel to the width direction of the opening.

[0012] The intelligent control cabinet further comprises:

[0013] The third driving component is installed in the receiving cavity; a driving end of the third driving component is hinged to the solar photovoltaic assembly through a third hinge shaft, and is used for driving the solar photovoltaic assembly to rotate relative to the first hinge shaft and the third hinge shaft, so as to adjust the inclination degree of the solar photovoltaic assembly; the third hinge shaft and the first hinge shaft are arranged in a spaced manner along the height direction of the opening, and the central axis of the third hinge shaft is parallel to the central axis of the first hinge shaft.

[0014] The intelligent control cabinet further comprises:

[0015] The second driving component is hinged to two adjacent solar photovoltaic assemblies through a second hinge shaft, and is used for driving the solar photovoltaic assemblies to rotate relative to the sixth hinge shaft, so as to switch the adjacent two solar photovoltaic assemblies between the folded state and the unfolded state.

[0016] The third driving component comprises:

[0017] The third telescopic driving assembly is hinged to the control cabinet body through a fourth hinge shaft at an installation end; a driving end of the third telescopic driving assembly extends along the height direction of the opening and is hinged to the solar photovoltaic assembly through the third hinge shaft; and the central axis of the third hinge shaft is parallel to the central axis of the fourth hinge shaft.

[0018] The third driving component comprises:

[0019] The third driving assembly is in sliding fit with the bottom surface of the control cabinet body along the length direction of the opening;

[0020] The third connecting rod is hinged to the third driving assembly at one end through a fifth hinge shaft and is hinged to the solar photovoltaic assembly at the other end through the third hinge shaft; and the central axis of the fifth hinge shaft is parallel to the central axis of the third hinge shaft.

[0021] The second driving component comprises:

[0022] A second telescopic driving assembly is arranged in the installation gap between the two adjacent solar photovoltaic assemblies in the folded state, and the installation end of the second telescopic driving assembly is hinged to the connecting assembly through a second hinge shaft, and the driving end is hinged to the solar photovoltaic assembly through another second hinge shaft, so that the two adjacent solar photovoltaic assemblies are switched between the folded state and the unfolded state, and the central axis of the second hinge shaft intersects with the telescopic direction of the second telescopic driving assembly.

[0023] According to the intelligent control cabinet provided by the utility model, the control cabinet body comprises:

[0024] The cabinet body has the receiving cavity inside and is provided with the opening.

[0025] The light sensing component is arranged on the outside of the cabinet body and is used for detecting the light intensity.

[0026] The control component is electrically connected with the light sensing component and the first driving component and is used for controlling the first driving component to drive the solar photovoltaic component to enter and exit the receiving cavity through the opening.

[0027] According to the intelligent control cabinet provided by the utility model, the control cabinet body is further electrically connected with the commercial power to form a second power supply circuit.

[0028] The intelligent control cabinet provided by the utility model has the first power supply circuit formed by the solar photovoltaic component and the control cabinet body, and the control cabinet body can directly obtain power from the solar energy, thereby reducing the dependence on the commercial power. This not only reduces the operation cost, but also helps environmental protection and sustainable use of energy. The first driving component can drive the solar photovoltaic component to enter and exit the receiving cavity through the opening, which means that the solar photovoltaic component can be stored in the receiving cavity of the control cabinet body when it is not needed or the weather condition is poor, such as at night or on a cloudy day. In this way, the external space is saved, and the damage risk of the solar photovoltaic component in bad weather is avoided, the service life of the solar photovoltaic component is prolonged, and the problem of short service life of the solar panel of the intelligent control cabinet in the prior art is solved. BRIEF DESCRIPTION OF DRAWINGS

[0029] In order to more clearly illustrate the technical scheme of the utility model or the prior art, the following will briefly introduce the drawings needed to be used in the embodiment or the prior art description. Obviously, the drawings in the following description are some embodiments of the utility model, and those skilled in the art can also obtain other drawings according to these drawings without creative labor.

[0030] Figure 1is a top view structural schematic diagram of the intelligent control cabinet.

[0031] Figure 2 is a left view structural schematic diagram of the intelligent control cabinet.

[0032] Figure 3 is a front view structural schematic diagram of the intelligent control cabinet.

[0033] Figure 4 is a rear view structural schematic diagram of the intelligent control cabinet.

[0034] Figure 5 is a second left view structural schematic diagram of the intelligent control cabinet.

[0035] Figure 6 is an assembly structural schematic diagram of a cabinet body, a solar photovoltaic component and a first driving component of the intelligent control cabinet.

[0036] Figure 7 is an assembly structural schematic diagram of the solar photovoltaic component and a third driving component of the intelligent control cabinet; the dotted line in the figure represents the assembly structural schematic diagram of the solar photovoltaic component and the third driving component in an upright state; the solid line represents the assembly structural schematic diagram of the solar photovoltaic component and the third driving component in an inclined state.

[0037] Figure 8 is a structural schematic diagram of the first driving component of the intelligent control cabinet.

[0038] Reference signs:

[0039] 100, control cabinet body; 101, opening;

[0040] 200, solar photovoltaic component; 210, solar photovoltaic assembly; 220, connecting assembly; 230, mounting gap;

[0041] 300, first driving component; 310, first mounting platform; 320, first driving assembly; 330, first hinged shaft; 340, sixth hinged shaft;

[0042] 400, second driving component; 410, second telescopic driving assembly; 420, second hinged shaft;

[0043] 500, third driving component; 510, third driving assembly; 520, third connecting rod; 530, fifth hinged shaft; 540, third hinged shaft. DETAILED DESCRIPTION

[0044] In order to make the purpose, technical scheme and advantages of the utility model clearer, the technical scheme in the utility model will be described clearly and completely in combination with the drawings in the utility model below. Obviously, the described embodiments are part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the person skilled in the art without creative labor belong to the protection scope of the utility model.

[0045] In the description of the embodiments of the utility model, it needs to be explained that the orientation or position relationship indicated by the terms "center", "longitudinal", "lateral", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like is the orientation or position relationship shown based on the drawings, and is only for the convenience of describing the embodiments of the utility model and simplifying the description, and therefore cannot be understood as indicating or implying that the indicated device or element must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the embodiments of the utility model. In addition, the terms "first", "second", "third" are only for the purpose of description, and cannot be understood as indicating or implying relative importance.

[0046] In the description of the utility model, it needs to be explained that, unless otherwise explicitly specified and limited, the terms "connected", "connected" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium. For the person skilled in the art, the specific meaning of the above terms in the embodiments of the utility model can be understood according to the specific circumstances.

[0047] In the embodiments of the utility model, unless otherwise explicitly specified and limited, the first feature is "on" or "under" the second feature, which can be that the first and second features are in direct contact, or the first and second features are in indirect contact through an intermediate medium. Moreover, the first feature "above", "above" and "above" the second feature can be that the first feature is directly above or obliquely above the second feature, or it only means that the horizontal height of the first feature is higher than that of the second feature. The first feature "below", "below" and "below" the second feature can be that the first feature is directly below or obliquely below the second feature, or it only means that the horizontal height of the first feature is less than that of the second feature.

[0048] In the description of the present specification, the description of the terms "one embodiment", "some embodiments", "an example", "a specific example", or "some examples" and the like means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present embodiment. In the present specification, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any suitable manner in any one or more embodiments or examples. In addition, the skilled in the art can combine and combine the different embodiments or examples described in the present specification and the features of the different embodiments or examples without contradiction.

[0049] The following will be described in conjunction with Figures 1 to 8 The structure and working principle of the intelligent control cabinet provided by the present application are described in detail.

[0050] As Figures 1 to 8 shown, the specific embodiment of the present application provides an intelligent control cabinet. The intelligent control cabinet comprises a control cabinet body 100, a solar photovoltaic component 200 and a first driving component 300; the control cabinet body 100 has a receiving cavity inside, and an opening 101 is provided; the opening 101 is communicated with the receiving cavity; the solar photovoltaic component 200 is electrically connected with the control cabinet body 100, forming a first power supply circuit, for supplying power to the control cabinet body 100; the first driving component 300 is installed in the receiving cavity; the first driving component 300 is connected with the solar photovoltaic component 200, for driving the solar photovoltaic component 200 to reciprocate along the height direction of the opening 101, so that the solar photovoltaic component 200 enters and exits the receiving cavity from the opening 101.

[0051] In the present embodiment, through the first power supply circuit formed by the solar photovoltaic component 200 and the control cabinet body 100, the control cabinet body 100 can directly obtain power from solar energy, reducing the dependence on commercial power. This not only reduces the operating cost, but also helps environmental protection and sustainable use of energy. By setting the first driving component 300, the first driving component 300 can drive the solar photovoltaic component 200 to enter and exit the receiving cavity from the opening 101, which means that when it is not needed or the weather condition is not good (such as night or overcast), the solar photovoltaic component 200 can be stored in the receiving cavity of the control cabinet body 100, which not only saves external space, but also avoids the damage risk of the solar photovoltaic component 200 in bad weather, improves the service life of the solar photovoltaic component 200, and solves the problem of short service life of the solar panel of the intelligent control cabinet in the prior art.

[0052] Meanwhile, this design also facilitates the maintenance and replacement of the solar photovoltaic component 200. As the solar photovoltaic component 200 can be automatically stowed, the intelligent control cabinet exhibits higher flexibility in dealing with different climates and environmental conditions. For example, in strong winds, heavy rain, or snowy weather, by stowing the solar photovoltaic component 200, the damage of external factors to the equipment can be effectively reduced, and the service life is prolonged.

[0053] Preferably, the top end of the control cabinet body 100 is provided with an opening 101, and the first driving component 300 drives the solar photovoltaic assembly 210 to move in the up-down direction to enter or exit the stowage cavity of the control cabinet body 100 from the opening 101.

[0054] When the opening 101 is provided at the top end of the control cabinet body 100, the height direction of the opening 101 is the up-down direction, the length direction of the opening 101 is the left-right direction, and the width direction of the opening 101 is the front-rear direction.

[0055] In some embodiments, the solar photovoltaic component 200 includes a plurality of solar photovoltaic assemblies 210 and a connecting assembly 220; two adjacent solar photovoltaic assemblies 210 are connected by the connecting assembly 220, so that the plurality of solar photovoltaic assemblies 210 can switch between the folded state and the unfolded state.

[0056] In this embodiment, the folding function of the plurality of solar photovoltaic assemblies 210 is realized by the connecting assembly 220, so that the entire solar photovoltaic component 200 is more compact and portable, and this design is convenient for transportation and storage. In a limited storage space, the power generation efficiency of the solar photovoltaic component 200 can be adjusted by increasing or decreasing the number of solar photovoltaic assemblies 210. The folding photovoltaic assembly can be quickly unfolded and connected, greatly simplifying the installation process. At the same time, due to the closer and standardized connection between the components, the error and failure rate in the installation process is reduced. In the unfolded state, the plurality of solar photovoltaic assemblies 210 can form a larger light-illuminating area, thereby capturing more solar energy. This helps to improve the overall power generation efficiency and energy output of the solar photovoltaic component 200.

[0057] Preferably, the solar photovoltaic component 200 includes two solar photovoltaic assemblies 210; the two solar photovoltaic assemblies 210 are connected by the connecting assembly 220. In the folded state, the two solar photovoltaic assemblies 210 are arranged in layers; in the unfolded state, the two solar photovoltaic assemblies 210 are laid in a single layer.

[0058] Preferably, the connecting assembly 220 can include a hinge; the two sides of the hinge are respectively connected with the side surfaces of the two solar photovoltaic assemblies 210, and the hinge is used to switch the two solar photovoltaic assemblies 210 between the folded state and the unfolded state.

[0059] As Figure 8As shown, preferably, in the folded state, there is a mounting gap 230 between two adjacent solar photovoltaic components 210. The mounting gap 230 can provide mounting space for the second driving component 400 or the third driving component 500.

[0060] As shown, in some embodiments, the first driving component 300 comprises a first mounting platform 310 and a first driving assembly 320; the first mounting platform 310 is mounted with a plurality of sixth hinge shafts 340; the plurality of sixth hinge shafts 340 correspond to the plurality of solar photovoltaic components 210 one by one, and the sixth hinge shaft 340 is rotationally matched with the corresponding solar photovoltaic component 210; the central axis direction of the sixth hinge shaft 340 is parallel to the height direction of the opening 101; the first driving assembly 320 is hinged to the first mounting platform 310 through the first hinge shaft 330; the first driving assembly 320 drives the solar photovoltaic component 200 to reciprocate along the height direction of the opening 101 through the first mounting platform 310; the central axis direction of the first hinge shaft 330 is parallel to the width direction of the opening 101. Figure 8 In this embodiment, by providing the first mounting platform 310, a mounting base can be provided for the solar photovoltaic component 210; by providing the first hinge shaft 330 and the sixth hinge shaft 340 with intersecting central axes, the solar photovoltaic component 210 can be ensured to have two degrees of freedom. Specifically, the solar photovoltaic component 210 is hinged to the first mounting platform 310 through the sixth hinge shaft 340, which can ensure the folding and unfolding of the solar photovoltaic component 210. The first mounting platform 310 is hinged to the first driving assembly 320 through the first hinge shaft 330, which not only realizes the connection of the first driving assembly 320 and the solar photovoltaic component, but also ensures that the first driving assembly 320 can drive the solar photovoltaic component 210 to reciprocate in the up-down direction through the first mounting platform 310; by providing the solar photovoltaic component 210 with a force in the left-right direction, the solar photovoltaic component 210 can also be rotated relative to the first hinge shaft 330, so that the inclination angle of the solar photovoltaic component 210 can be adjusted to maximize the reception of sunlight by the solar photovoltaic component 210 and improve the power generation efficiency of the solar photovoltaic component 210.

[0061] Further, the first driving assembly 320 comprises an electric telescopic rod. The electric telescopic rod telescopes in the up-down direction. The mounting end of the electric telescopic rod is mounted to the cabinet, and the driving end is hinged to the first mounting platform 310 through the first hinge shaft 330.

[0062] As shown, specifically, the number of the first driving components 300 is two, and the two first driving components 300 are spaced apart along the length direction of the opening 101; the two first driving components 300 are respectively hinged to the two sides of the solar photovoltaic component 200.

[0063] Figure 6 As shown, specifically, the number of the first driving components 300 is two, and the two first driving components 300 are spaced apart along the length direction of the opening 101; the two first driving components 300 are respectively hinged to the two sides of the solar photovoltaic component 200.​

[0064] Specifically, the left side plate and the right side plate of the cabinet body of the control cabinet body 100 are provided with rails, and the rails are slidably connected with the solar photovoltaic component 200 in the up-down direction.

[0065] As shown in Figure 5 Further, the intelligent control cabinet further comprises a third driving component 500; the third driving component 500 is installed in the receiving cavity; the driving end of the third driving component 500 is hingedly connected with the solar photovoltaic assembly 210 through a third hinge shaft 540, and is used to drive the solar photovoltaic assembly 210 to rotate relative to the first hinge shaft 330 and the third hinge shaft 540, so as to adjust the inclination degree of the solar photovoltaic assembly 210; the third hinge shaft 540 and the first hinge shaft 330 are arranged in a spaced manner along the height direction of the opening 101, and the central axis of the third hinge shaft 540 is parallel to the central axis of the first hinge shaft 330.

[0066] By arranging the third driving component 500, the third driving component 500 is hingedly connected with the solar photovoltaic assembly 210 through the third hinge shaft 540, and the degree of freedom of the solar photovoltaic component 200 is further increased. The third hinge shaft 540 and the first hinge shaft 330 are arranged in a spaced manner along the height direction of the opening 101, and the central axes are parallel, which means that the solar photovoltaic assembly 210 can not only move in the up-down direction (through the first driving component 300), but also rotate relative to the first hinge shaft 330 through the driving of the third driving component 500, so as to adjust the included angle between the solar photovoltaic component 200 and the horizontal plane. By arranging the third driving component 500, automatic control of the solar photovoltaic assembly 210 can be realized, manpower can be saved, and labor cost can be reduced.

[0067] As shown in Figure 5 Illustratively, the third driving component 500 comprises a third telescopic driving assembly; the mounting end of the third telescopic driving assembly is hingedly connected with the control cabinet body 100 through a fourth hinge shaft; the driving end of the third telescopic driving assembly is hingedly connected with the solar photovoltaic assembly 210 through the third hinge shaft 540; and the central axis of the third hinge shaft 540 is parallel to the central axis of the fourth hinge shaft.

[0068] In this embodiment, by arranging the third telescopic driving assembly, the third telescopic driving assembly can be telescopic, and the mounting end of the third telescopic driving assembly is hingedly connected with the control cabinet body 100 through the fourth hinge shaft; at the same time, the driving end of the third telescopic driving assembly is hingedly connected with the solar photovoltaic assembly 210 through the third hinge shaft 540, and the third telescopic driving assembly can adjust the included angle between the solar photovoltaic assembly 210 and the horizontal plane through its own telescopic, so as to improve the light receiving area of the solar photovoltaic component 200, and improve the power generation efficiency and the utilization rate of light energy.

[0069] Preferably, the mounting end of the third telescopic drive component is located on the side of the solar photovoltaic module 210 away from the first hinge axis 330, and is hinged to the solar photovoltaic module 210 via the fourth hinge axis.

[0070] Specifically, there can be multiple third telescopic drive components, which are arranged at intervals along the length of the opening 101 to improve the stability of the movement of the solar photovoltaic module 210 during the tilt adjustment process.

[0071] like Figure 7 As shown, exemplarily, the third driving component 500 includes a third driving assembly 510 and a third connecting rod 520; the third driving assembly 510 is slidably engaged with the bottom surface of the control cabinet body 100 along the length direction of the opening 101; one end of the third connecting rod 520 is hinged to the third driving assembly 510 via a fifth hinge shaft 530, and the other end is hinged to the solar photovoltaic module 210 via a third hinge shaft 540; the central axis of the fifth hinge shaft 530 is parallel to the central axis of the third hinge shaft 540. With this design, when the third driving component 500 moves along the length direction of the opening 101 in a direction away from the first hinge shaft 330, the length of the third connecting rod 520 is fixed, and it rotates relative to the third hinge shaft 540 and the fifth hinge shaft 530. The third connecting rod 520 can pull the solar photovoltaic module 210 to rotate relative to the first hinge shaft 330, thereby adjusting the angle between the solar photovoltaic module 210 and the horizontal plane, increasing the light-receiving area of ​​the solar photovoltaic module 210, and improving power generation efficiency and light energy utilization.

[0072] In some embodiments, the intelligent control cabinet further includes a second drive component 400; the second drive component 400 is hinged to two adjacent solar photovoltaic modules 210 via a second hinge shaft 420, and is used to drive the solar photovoltaic modules 210 to rotate relative to a sixth hinge shaft 340, so that the two adjacent solar photovoltaic modules 210 switch between a folded state and an unfolded state.

[0073] In this embodiment, the second driving component 400 can drive the adjacent solar photovoltaic modules 210 to switch between the folded and unfolded states, which flexibility enables the system to quickly adjust according to actual needs. For example, when there is insufficient sunlight or bad weather, the system can fold the photovoltaic modules to protect them from damage; when there is sufficient sunlight, the system can unfold the photovoltaic modules to maximize the absorption efficiency of solar energy. Through the design of folding and unfolding, the system can more effectively utilize space. In the folded state, the photovoltaic modules can be closely arranged to reduce the footprint; in the unfolded state, the photovoltaic modules can be fully unfolded to capture more sunlight. This optimization of space utilization helps to reduce the overall cost of the system and improve the conversion efficiency of solar energy. The design of the second driving component 400 and the hinge shaft enables the system to maintain a stable structure during folding and unfolding. The design of the hinge shaft allows the photovoltaic modules to have a certain degree of buffering and adaptation when subjected to external forces, thereby reducing the risk of damage to the system. At the same time, precise control of the driving component helps to ensure smooth operation of the photovoltaic modules during folding and unfolding.

[0074] Further, the second driving component 400 includes a second telescopic driving assembly 410; in the folded state, there is a mounting gap 230 between the adjacent two solar photovoltaic modules 210; the second telescopic driving assembly 410 is located in the mounting gap 230; the mounting end of the second telescopic driving assembly 410 is hinged to the connecting assembly 220 through a second hinge shaft 420, and the driving end is hinged to the solar photovoltaic module 210 through another second hinge shaft 420, so that the adjacent two solar photovoltaic modules 210 can switch between the folded and unfolded states; the central axis of the second hinge shaft 420 intersects the telescopic direction of the second telescopic driving assembly 410.

[0075] In this embodiment, the second telescopic driving assembly 410 is hinged to the connecting assembly 220 and the solar photovoltaic module 210 through the second hinge shaft 420, so that the adjacent solar photovoltaic modules 210 can easily switch between the folded and unfolded states without the need for additional space or complex mechanisms. The central axis of the second hinge shaft 420 intersects the telescopic direction of the second telescopic driving assembly 410, which design provides more stable driving effect and reduces the impact of lateral force generated by telescopic motion on the hinge shaft.

[0076] Preferably, the second telescopic driving assembly 410 includes an electric telescopic rod or a linear motor.

[0077] In some embodiments, the control cabinet body 100 comprises a cabinet body, a light sensing component and a control component; the cabinet body has a receiving cavity inside and is provided with an opening 101; the light sensing component is arranged on the outside of the cabinet body and is used for detecting the light intensity; the control component is electrically connected with the light sensing component and the first driving component 300 and is used for controlling the first driving component 300 to drive the solar photovoltaic component 200 to enter or exit the receiving cavity from the opening 101.

[0078] In the present embodiment, the light sensing component is arranged to detect the light intensity outside the cabinet body in real time; when the light intensity is within the light intensity threshold range, the control component outputs an entering or exiting control instruction to control the first driving component 300 to be started to drive the solar photovoltaic component 200 to exit the receiving cavity from the opening 101. After the solar photovoltaic component 200 is moved to the position, the control component controls the first driving component 300 to stop moving, at this time, the solar photovoltaic component 200 is completely located outside the receiving cavity, and the solar photovoltaic component 200 converts the light energy into electric energy to supply power to the control component. By detecting the light intensity in real time through the light sensing component, the control component can intelligently determine when the solar photovoltaic component 200 needs to be extended or retracted into the receiving cavity to maximize the utilization of light. Without manual intervention, the system can automatically adjust the position of the solar photovoltaic component 200 according to the light conditions, thereby improving the automation degree of the system. The design of the receiving cavity makes the solar photovoltaic component 200 convenient to be retracted when not in use, thereby saving external space and maintaining the neatness and beauty of the control cabinet body 100.

[0079] Further, an isolation plate is arranged in the cabinet body; the isolation plate divides the receiving cavity into a first receiving space and a second receiving space; the opening 101 is in communication with the first receiving space, and the first receiving space is used for receiving the first driving component 300 and the solar photovoltaic component 200. The second receiving space is used for receiving the control component. The isolation plate is used for closing the second receiving space to prevent rain and snow from affecting the control component.

[0080] Preferably, the control component comprises a first power connector, a PCB control board and a second power connector; the second power connector is electrically connected with the commercial power to form a second power supply circuit with the PCB control board; and the first power connector is electrically connected with the solar photovoltaic component 200 to form a first power supply circuit with the PCB control board.

[0081] In some embodiments, the control cabinet body 100 is also electrically connected with the commercial power to form a second power supply circuit. The control cabinet body 100 can form a first power supply circuit with the solar photovoltaic component 200 and a second power supply circuit with the commercial power, so that different power supply modes can be selected according to the actual situation to avoid the problem that the control cabinet body 100 is shut down when the commercial power is off.

[0082] Finally, it should be noted that: the above examples are used to illustrate the technical solutions of the present application, but not limited to; although the present application is described in detail with reference to the foregoing examples, those skilled in the art should understand that: it can still be modified to the technical solutions recorded in the foregoing examples, or part of the technical features are replaced; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present application.

Claims

1. An intelligent control cabinet, characterized in that, The utility model relates to a control cabinet, and specifically relates to a solar photovoltaic component driving device. The utility model discloses a control cabinet solar photovoltaic component driving device, including: Control cabinet body (100) inside having the accommodation cavity, and open the opening (101);The opening (101) with the accommodation cavity intercommunication; Solar photovoltaic component (200) with control cabinet body (100) electricity is connected, forms first power supply circuit, is used for to control cabinet body (100) power supply; 2. The intelligent control cabinet of claim 1, wherein, First drive component (300) is installed in the accommodation cavity;First drive component (300) with solar photovoltaic component (200) are connected, are used for driving solar photovoltaic component (200) reciprocating movement along the height direction of opening (101), makes solar photovoltaic component (200) from the opening (101) in and out the accommodation cavity.

3. The intelligent control cabinet of claim 2, wherein, Solar photovoltaic component (200) includes a plurality of solar photovoltaic assembly (210) and connecting assembly (220);Adjacent two solar photovoltaic assembly (210) are connected through connecting assembly (220), make a plurality of solar photovoltaic assembly (210) switch in folding state and unfolded state. First drive component (300) includes: First mounting platform (310), a plurality of sixth hinged shafts (340) are installed on the first mounting platform (310);A plurality of sixth hinged shafts (340) correspond to a plurality of solar photovoltaic assembly (210) one by one, and the sixth hinged shaft (340) is rotationally connected with the corresponding solar photovoltaic assembly (210);The central axis direction of the sixth hinged shaft (340) is parallel to the height direction of the opening (101); 4. The intelligent control cabinet of claim 3, wherein, First drive assembly (320) is hinged with the first mounting platform (310) through the first hinged shaft (330);The first drive assembly (320) drives the solar photovoltaic component (200) reciprocating movement along the height direction of the opening (101) through the first mounting platform (310);The central axis direction of the first hinged shaft (330) is parallel to the width direction of the opening (101). Further including: Third drive component (500) is installed in the accommodation cavity; 5. The intelligent control cabinet of claim 3, wherein, The driving end of third drive component (500) is hinged with the solar photovoltaic assembly (210) through the third hinged shaft (540), is used for driving the solar photovoltaic assembly (210) relative to the first hinged shaft (330) and the third hinged shaft (540) rotation, to adjust the inclination degree of solar photovoltaic assembly (210);The third hinged shaft (540) and the first hinged shaft (330) are arranged at intervals along the height direction of the opening (101), and the central axis of the third hinged shaft (540) is parallel to the central axis of the first hinged shaft (330). Further including: Second drive component (400) is hinged with adjacent two solar photovoltaic assembly (210) through the second hinged shaft (420), is used for driving the solar photovoltaic assembly (210) relative to the sixth hinged shaft (340) rotation, makes adjacent two solar photovoltaic assembly (210) switch in folding state and unfolded state.

6. The intelligent control cabinet of claim 4, wherein, The third driving component (500) comprises: A third telescopic driving assembly, the mounting end of the third telescopic driving assembly is hinged to the control cabinet body (100) through a fourth hinge shaft; the driving end of the third telescopic driving assembly extends along the height direction of the opening (101) and is hinged to the solar photovoltaic assembly (210) through the third hinge shaft (540); the central axis of the third hinge shaft (540) is parallel to the central axis of the fourth hinge shaft.

7. The intelligent control cabinet of claim 4, wherein, The third driving component (500) comprises: A third driving assembly (510) which is slidingly fitted with the bottom surface of the control cabinet body (100) along the length direction of the opening (101); A third connecting rod (520) which is hinged to the third driving assembly (510) through a fifth hinge shaft (530) at one end and is hinged to the solar photovoltaic assembly (210) through the third hinge shaft (540) at the other end; the central axis of the fifth hinge shaft (530) is parallel to the central axis of the third hinge shaft (540).

8. The intelligent control cabinet of claim 5, wherein, The second driving component (400) comprises: A second telescopic driving assembly (410) which has a mounting gap (230) between two adjacent solar photovoltaic assemblies (210) in the folded state; the second telescopic driving assembly (410) is located in the mounting gap (230); the mounting end of the second telescopic driving assembly (410) is hinged to the connecting assembly (220) through one of the second hinge shafts (420) and the driving end is hinged to the solar photovoltaic assembly (210) through the other second hinge shaft (420), so that the two adjacent solar photovoltaic assemblies (210) can be switched between the folded state and the unfolded state; the central axis of the second hinge shaft (420) intersects the telescopic direction of the second telescopic driving assembly (410).

9. The intelligent control cabinet of claim 1, wherein, The control cabinet body (100) comprises: A cabinet body which has the receiving cavity inside and is provided with the opening (101); A photosensitive component which is arranged outside the cabinet body and is used for detecting the light intensity; A control component which is electrically connected with the photosensitive component and the first driving component (300) and is used for controlling the first driving component (300) to drive the solar photovoltaic component (200) to enter and exit the receiving cavity from the opening (101).

10. The intelligent control cabinet according to any one of claims 1 to 9, characterized in that The control cabinet body (100) is also electrically connected with the commercial power supply to form a second power supply circuit.