Photovoltaic power generation power prediction device

By designing a photovoltaic power prediction device including prediction components, adjustment structure and installation structure, the problem of the existing device being complex and inconvenient to disassemble when replacing the prediction components is solved, and higher flexibility and use efficiency are achieved.

CN222977763UActive Publication Date: 2025-06-13HENAN YUEJIANG TECH CO LTD
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Patent Information

Application Number
CN202421777526.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-25
Publication Date
2025-06-13
Estimated Expiration
2034-07-25

AI Technical Summary

Technical Problem

When the existing photovoltaic power prediction device replaces the prediction components, the structure is complex and inconvenient for disassembly and assembly, which reduces the efficiency of prediction of different power generation equipment.

Method used

A photovoltaic power generation prediction device including a prediction component, a regulation structure and an installation structure is designed. Through the combination of sleeve, slide, slot and plug rod, flexible adjustment and replacement of the predictor are achieved, and the disassembly and assembly efficiency of the device is improved.

Benefits of technology

Through simplified structural design, the device can easily disassemble and adjust the predictive components, improve the flexibility and use efficiency of the device, and adapt to the prediction needs of different power generation equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of photovoltaic power generation, and discloses a photovoltaic power generation power prediction device, which is characterized in that the outer wall of one side of the top of a sleeve is provided with a chute, the outer wall of one side, close to the chute, of the sleeve is provided with a slot, the inner walls of the sleeve and the chute are connected with a connecting block in a sliding manner, and one side of the connecting block is provided with a slot; the inserting grooves penetrate through the sleeves and the connecting blocks, predictors are arranged at the top ends of the connecting blocks, and inserting rods are inserted into the inner walls of the inserting grooves, corresponding to the sleeves and the connecting blocks, of the sleeves. Through the arrangement, the cambered surface of the connecting block is attached to the inner wall of the sleeve, the top end of the connecting block is limited by the sliding groove, so that the connecting block is limited on the sleeve to slide in a small range, and the inserting rod is inserted into the corresponding inserting groove of the connecting block and the sleeve, so that the connecting block is fixed in the sleeve. And the inserting rods are pulled out from the inserting grooves, and then the connecting blocks are taken out from the inner walls of the sleeves and the sliding grooves in a sliding manner, so that the prediction assembly is convenient to disassemble and assemble.
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Description

Technical Field

[0001] The utility model relates to the technical field of photovoltaic power generation equipment, and specifically relates to a photovoltaic power generation power prediction device. Background Technique

[0002] Photovoltaic power generation is a technology that directly converts light energy into electrical energy by using the photovoltaic effect at the semiconductor interface. It mainly consists of three major parts: solar panels (modules), controllers, and inverters. The main components are composed of electronic components. Solar cells can be encapsulated and protected after being connected in series to form large-area solar cell modules. Together with components such as power controllers, a photovoltaic power generation device is formed. Before installing existing photovoltaic power generation equipment, it is necessary to select a location for the installation site to predict the power generation power of its area.

[0003] The application number is CN202122923095.2, which discloses a photovoltaic power generation power prediction device, including a base. On both sides of the top of the base, side support plates are provided. A locking bolt is penetrated through the inside of the side support plate. On one side of the locking bolt, a clamping plate is provided. In the middle of the top of the base, an equipment box body is provided. On both sides of the inner part of the top of the equipment box body, support and storage components are provided, and a workbench is jointly provided on the top of the support and storage components. On one side of the top of the workbench, a visibility sensor is provided; through the mutual cooperation between the equipment box body, telescopic sleeve rods, chute A, support columns, internal thread sleeves, outer sleeves, threaded rods, hinge shafts, bottom plates, slider A, bearings, and displacement grooves, the utility model realizes the stable support of the base, enables the device to adapt to uneven roads, and can also be used on flat ground, thereby improving the stability of the device.

[0004] The photovoltaic power generation power prediction device disclosed in the above document has the following defects: The device fixes the prediction component on the base through a locking bolt and a clamping plate. When the power generation equipment to be detected needs to replace the paired prediction component, this structure requires screwing the locking bolt to drive the clamping plate to loosen the clamping of the prediction component before it can be taken out, reducing the efficiency of the device for predicting different power generation equipment.

[0005] It can be seen from this that the existing power generation power prediction device does not have the function of conveniently disassembling, installing, and replacing the prediction structure, and it is necessary to improve the existing deficiencies to provide a function that can conveniently disassemble, install, and replace the prediction structure. Summary of the Utility Model

[0006] The purpose of the utility model is to provide a photovoltaic power generation power prediction device to solve the problems raised in the above background technique.

[0007] To solve the above technical problems, the utility model is realized through the following technical solutions:

[0008] The utility model relates to a photovoltaic power generation power prediction device, which comprises a prediction component, an adjustment structure and a mounting structure. The adjustment structure is arranged on the inner wall of the top of the mounting structure, and the prediction component is installed on the outer wall of one side of the top of the adjustment structure. The adjustment structure includes a sleeve. A chute is formed on the outer wall of one side of the top of the sleeve, and a slot is formed on the outer wall of the sleeve close to the chute. A connecting block is slidably connected to the inner walls of the sleeve and the chute. A slot is formed on one side of the connecting block, and the slot penetrates through the sleeve and the connecting block. A predictor is arranged at the top end of the connecting block. A plug rod is inserted into the inner wall of a slot corresponding to the sleeve and the connecting block. The purpose of such a setting is that during the use of the prediction component, the power generation equipment is predicted by the predictor. The connecting block is arranged at the bottom of the predictor. The arc surface of the connecting block is attached to the inner wall of the sleeve, and the top end of the connecting block is limited by the chute, so that the connecting block is limited to slide slightly on the sleeve. The plug rod is inserted into the corresponding slots of the connecting block and the sleeve, so that the connecting block is fixed in the sleeve. When it is necessary to adjust the distance between the predictor and the power generation equipment, the plug rod is pulled out of the slot, the connecting block is slid to correspond to the corresponding slot, and finally the connecting block is fixed by the plug rod. When it is necessary to replace the predictor, the plug rod is pulled out of the slot and then the connecting block is slid out from the inner walls of the sleeve and the chute. This structure facilitates the disassembly and assembly of the prediction component and improves the flexibility of the structure. When it is necessary to adjust the height and turning direction of the prediction component, the fixing block and the connecting rod can be rotated. The rotating block between the connecting rod and the mounting block drives the connecting rod and the mounting block to rotate, and the sleeve and the prediction component are driven to rotate together by the mounting block. This structure is connected by a sleeve block and a clamping block through a hinge rod and a positioning rod, and is connected to the top end of the hinge rod by a baffle plate and another positioning rod. When the sleeve block and the clamping block are attached to the outer periphery of the convex rod, the anti-slip plate enhances the connection tightness of the three. When the baffle plate is driven to rotate by the hinge rod through the positioning rod, the movement range of the baffle plate is limited by the sleeve block, and then the top end of the hinge rod is limited by the baffle plate, so that the clamping block only expands slightly, and the structure is not easy to fall off.

[0009] Further, the mounting structure includes a convex rod, and a sleeve block is sleeved on the outer wall of the top of the convex rod, and an anti-slip plate is arranged on the inner walls around the sleeve block. The purpose of such a setting is that during the use of the prediction component, the convex rod can be fixed on the wall surface, so that the prediction component is not affected by the base and the ground. When the sleeve block and the clamping block are attached to the outer periphery of the convex rod, the anti-slip plate enhances the connection tightness between the two.

[0010] Further, a clamping block is sleeved on the outer wall of one side of the bottom of the convex rod, and an anti-slip plate is arranged on the inner walls of both sides of the clamping block. The purpose of such a setting is that during the use of the prediction component, when the sleeve block and the clamping block are attached to the outer wall of the convex rod, the anti-slip plate enhances the connection tightness of the three.

[0011] Furthermore, a hinge rod is hinged on the outer wall of one side of the clamping block and the sleeve block that are vertically parallel, and a positioning rod is rotatably connected to the inner wall of the sleeve block close to the hinge rod. The purpose of this setting is that during the use of this prediction component, this structure connects the sleeve block and the clamping block through the hinge rod and the positioning rod, and connects the baffle through the positioning rod.

[0012] Furthermore, baffle plates are rotatably connected to the outer walls of both ends of the positioning rod, and another positioning rod is provided on the inner wall of the baffle plate. The two positioning rods are respectively rotatably connected to the middle and top inner walls of the hinge rod. The purpose of this setting is that during the use of this prediction component, the baffle plate and another positioning rod are connected to the top of the hinge rod. When the hinge rod drives the baffle plate to rotate through the positioning rod, the movement range of the baffle plate is limited by the sleeve block. Furthermore, the baffle plate limits the top of the hinge rod, so that the clamping block only unfolds slightly, making this structure not easy to fall off.

[0013] Furthermore, a fixing block is provided on the upper surface of the sleeve block. A connecting rod is provided on one side outer wall of the top of the fixing block, and a mounting block is provided on one side outer wall of the top of the connecting rod. Rotating blocks are respectively rotatably connected to the inner walls at the connection of the fixing block and the connecting rod and at the connection of the connecting rod and the mounting block. The purpose of this setting is that during the use of this prediction component, when it is necessary to adjust the height and turning direction of the prediction component, the fixing block and the connecting rod can be rotated. The rotating blocks between the connecting rod and the mounting block drive the connecting rod and the mounting block to rotate, and the mounting block drives the sleeve and the prediction component to rotate together.

[0014] The utility model has the following beneficial effects:

[0015] (1) Through the setting of the utility model, a connecting block is arranged at the bottom of the predictor. The arc surface of the connecting block fits with the inner wall of the sleeve. The top end of the connecting block is limited by the chute, so that the connecting block is limited to slide slightly on the sleeve. The connecting block is fixed in the sleeve by inserting the insertion rod into the corresponding slots of the connecting block and the sleeve. When it is necessary to adjust the distance between the predictor and the power generation equipment, the insertion rod is pulled out of the slot, the connecting block is slid to the corresponding slot, and finally the connecting block is fixed by the insertion rod. When it is necessary to replace the predictor, the insertion rod is pulled out of the slot and then the connecting block is slid out from the inner walls of the sleeve and the chute. This structure is convenient for disassembling and assembling the prediction component, improving the flexibility of this structure.

[0016] Of course, it is not necessary for any product implementing the utility model to simultaneously achieve all the above-mentioned advantages. Description of the Drawings

[0017] To more clearly illustrate the technical solutions of the embodiments of the present utility model, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0018] Figure 1 Schematic diagram of the main structure of the present utility model;

[0019] Figure 2 Schematic diagram of the installation structure of the present utility model;

[0020] Figure 3 Schematic diagram of a partial structure of the present utility model;

[0021] Figure 4 Schematic diagram of the split structure of the prediction component and the adjustment structure of the present utility model;

[0022] In the drawings, the list of components represented by each reference numeral is as follows:

[0023] In the figure: 1. Prediction component; 101. Predictor; 102. Connecting block; 2. Adjustment structure; 201. Fixed block; 202. Connecting rod; 203. Rotating block; 204. Mounting block; 205. Sleeve; 206. Chute; 207. Slot; 208. Plug rod; 3. Installation structure; 301. Convex rod; 302. Sleeve block; 303. Clamping block; 304. Hinge rod; 305. Positioning rod; 306. Baffle; 307. Anti-slip plate. Specific implementation manners

[0024] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model in conjunction with the drawings in the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, rather than all 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 fall within the protection scope of the present utility model.

[0025] Please refer to Figure 1 - Figure 4As shown in the figure, the utility model is a photovoltaic power generation power prediction device, which includes a prediction component 1, an adjustment structure 2 and a mounting structure 3. The adjustment structure 2 is arranged on the top inner wall of the mounting structure 3, and the prediction component 1 is installed on the outer wall of one side of the top of the adjustment structure 2. The adjustment structure 2 includes a sleeve 205. A chute 206 is opened on the outer wall of one side of the top of the sleeve 205, and a slot 207 is opened on the outer wall of the sleeve 205 close to the chute 206. A connecting block 102 is slidably connected to the inner walls of the sleeve 205 and the chute 206. A slot 207 is opened on one side of the connecting block 102, and the slot 207 penetrates through the sleeve 205 and the connecting block 102. A predictor 101 is provided at the top end of the connecting block 102. A plug rod 208 is inserted into the inner wall of a corresponding slot 207 of the sleeve 205 and the connecting block 102. The purpose of this setting is that during the use of the prediction component 1, the power generation equipment is predicted by the predictor 101. The connecting block 102 is arranged at the bottom of the predictor 101. The arc surface of the connecting block 102 fits with the inner wall of the sleeve 205. The top end of the connecting block 102 is limited by the chute 206, so that the connecting block 102 is limited to slide slightly on the sleeve 205. By inserting the plug rod 208 into the corresponding slot 207 of the connecting block 102 and the sleeve 205, the connecting block 102 is fixed in the sleeve 205. When it is necessary to adjust the distance between the predictor 101 and the power generation equipment, the plug rod 208 is pulled out of the slot 207, the connecting block 102 is slid to correspond to the corresponding slot 207, and finally the connecting block 102 is fixed by the plug rod 208. When it is necessary to replace the predictor 101, the plug rod 208 is pulled out of the slot 207 and then the connecting block 102 is slid out from the inner walls of the sleeve 205 and the chute 206. This structure facilitates the disassembly and assembly of the prediction component 1 and improves the flexibility of the structure. When it is necessary to adjust the height and turning direction of the prediction component 1, the fixing block 201 and the connecting rod 202 can be rotated. The rotating block 203 between the connecting rod 202 and the mounting block 204 drives the connecting rod 202 and the mounting block 204 to rotate. The mounting block 204 drives the sleeve 205 and the prediction component 1 to rotate together. This structure connects the sleeve block 302 and the clamping block 303 through the hinge rod 304 and the positioning rod 305, and connects the baffle 306 and the top end of another positioning rod 305 to the hinge rod 304. When the sleeve block 302 and the clamping block 303 are attached to the outer wall around the convex rod 301, the anti-slip plate 307 enhances the tightness of the connection among the three. When the baffle 306 is connected through the positioning rod 305 and the hinge rod 304 drives the baffle 306 to rotate, the movement range of the baffle 306 is limited by the sleeve block 302. Furthermore, the baffle 306 limits the top end of the hinge rod 304, so that the clamping block 303 only expands slightly, making the structure not easy to fall off.

[0026] The installation structure 3 includes a convex rod 301. A sleeve block 302 is sleeved on the outer wall of the top of the convex rod 301, and anti-slip plates 307 are provided on the inner walls around the sleeve block 302. The purpose of this setting is that during the use of the prediction component 1, the convex rod 301 can be fixed on the wall surface so that the prediction component 1 will not be affected by the base and the ground. When the sleeve block 302 and the clamping block 303 are attached to the outer periphery of the convex rod 301, the anti-slip plates 307 enhance the connection tightness between the two.

[0027] A clamping block 303 is sleeved on the outer wall of one side at the bottom of the convex rod 301, and anti-slip plates 307 are provided on the inner walls on both sides of the clamping block 303. The purpose of this setting is that during the use of the prediction component 1, when the sleeve block 302 and the clamping block 303 are attached to the outer periphery of the convex rod 301, the anti-slip plates 307 enhance the connection tightness among the three.

[0028] A hinge rod 304 is hinged on the outer wall of the side of the clamping block 303 and the sleeve block 302 that are perpendicular and parallel to each other. A positioning rod 305 is rotatably connected to the inner wall of the sleeve block 302 near the hinge rod 304. The purpose of this setting is that during the use of the prediction component 1, in this structure, the sleeve block 302 and the clamping block 303 are connected through the hinge rod 304 and the positioning rod 305, and the baffle 306 is connected through the positioning rod 305.

[0029] Baffle plates 306 are rotatably connected to the outer walls at both ends of the positioning rod 305. Another positioning rod 305 is provided on the inner wall of the baffle plate 306. The two positioning rods 305 are respectively rotatably connected to the middle and the inner wall of the top of the hinge rod 304. The purpose of this setting is that during the use of the prediction component 1, through the connection between the baffle plate 306 and another positioning rod 305 and the top end of the hinge rod 304, when the hinge rod 304 drives the baffle plate 306 to rotate through the positioning rod 305, the moving range of the baffle plate 306 is limited by the sleeve block 302. Furthermore, the baffle plate 306 limits the top end of the hinge rod 304, so that the clamping block 303 only expands slightly, making this structure not easy to fall off.

[0030] A fixing block 201 is provided on the upper surface of the sleeve block 302. A connecting rod 202 is provided on the outer wall of one side at the top of the fixing block 201. An installation block 204 is provided on the outer wall of one side at the top of the connecting rod 202. Rotating blocks 203 are respectively rotatably connected to the inner walls at the connection between the fixing block 201 and the connecting rod 202 and at the connection between the connecting rod 202 and the installation block 204. The purpose of this setting is that during the use of the prediction component 1, when it is necessary to adjust the height and the turning direction of the prediction component 1, the fixing block 201 and the connecting rod 202 can be rotated. The rotating block 203 between the connecting rod 202 and the installation block 204 drives the connecting rod 202 and the installation block 204 to rotate, and the sleeve 205 and the prediction component 1 are driven to rotate together through the installation block 204.

[0031] When in use, when it is necessary to adjust the distance between the predictor 101 and the power generation device, the insertion rod 208 is pulled out of the slot 207, the sliding connection block 102 corresponds to the corresponding slot 207, and finally the connection block 102 is fixed by the insertion rod 208. When it is necessary to replace the predictor 101, the insertion rod 208 is pulled out of the slot 207 and then the connection block 102 is slid out from the inner walls of the sleeve 205 and the chute 206. This structure facilitates the disassembly and assembly of the prediction component 1 and improves the flexibility of the structure. When it is necessary to adjust the height and turning direction of the prediction component 1, the fixing block 201 and the connecting rod 202 can be rotated. The rotating block 203 between the connecting rod 202 and the mounting block 204 drives the connecting rod 202 and the mounting block 204 to rotate. The mounting block 204 drives the sleeve 205 and the prediction component 1 to rotate together. This structure connects the sleeve block 302 and the clamping block 303 through the hinge rod 304 and the positioning rod 305, and connects the baffle 306 and another positioning rod 305 to the top of the hinge rod 304. When the sleeve block 302 and the clamping block 303 are attached to the outer wall around the convex rod 301, the anti-slip plate 307 enhances the tightness of the connection among the three. When the baffle 306 is connected by the positioning rod 305 and the hinge rod 304 drives the baffle 306 to rotate through the positioning rod 305, the movement range of the baffle 306 is limited by the sleeve block 302. Furthermore, the baffle 306 limits the top of the hinge rod 304, so that the clamping block 303 only expands slightly, making the structure not easy to fall off.

[0032] The preferred embodiments of the present invention disclosed above are only used to help explain the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the present invention to the specific embodiments described. Obviously, many modifications and changes can be made according to the content of this specification. These embodiments are selected and specifically described in this specification to better explain the principle and practical application of the present invention, so that those skilled in the art can well understand and utilize the present invention. The present invention is only limited by the claims and their full scope and equivalents.

Claims

1. A photovoltaic power generation prediction device, comprising a prediction component (1), an adjustment structure (2) and a mounting structure (3), characterized in that: The adjustment structure (2) is arranged on the top inner wall of the mounting structure (3); The prediction component (1) is mounted on an outer wall on one side of the top of the adjustment structure (2); The adjustment structure (2) comprises a sleeve (205), a slide groove (206) is provided on an outer wall on one side of the top of the sleeve (205), a slot (207) is provided on an outer wall on one side of the sleeve (205) close to the slide groove (206), a connecting block (102) is slidably connected on the inner wall of the sleeve (205) and the slide groove (206), and a slot (207) is provided on one side of the connecting block (102).

2. A photovoltaic power generation prediction device according to claim 1, characterized in that: The slot (207) passes through the sleeve (205) and the connection block (102); a predictor (101) is provided at the top of the connection block (102); and an insertion rod (208) is inserted into the inner wall of a slot (207) corresponding to the sleeve (205) and the connection block (102).

3. A photovoltaic power generation prediction device according to claim 1, characterized in that: The mounting structure (3) comprises a protruding rod (301), a sleeve block (302) is sleeved on the top outer wall of the protruding rod (301), and anti-slip plates (307) are provided on the inner walls around the sleeve block (302).

4. A photovoltaic power generation prediction device according to claim 3, characterized in that: A clamping block (303) is sleeved on the outer wall of one side of the bottom of the protruding rod (301), and anti-slip plates (307) are provided on the inner walls on both sides of the clamping block (303).

5. A photovoltaic power generation prediction device according to claim 4, characterized in that: A hinge rod (304) is hingedly connected to an outer wall of one side of the clamping block (303) and the sleeve block (302) which is vertically parallel to each other, and a positioning rod (305) is rotatably connected to an inner wall of a side of the sleeve block (302) close to the hinge rod (304).

6. A photovoltaic power generation prediction device according to claim 5, characterized in that: Baffles (306) are rotatably connected to the outer walls at both ends of the positioning rod (305), another positioning rod (305) is provided on the inner wall of the baffle (306), and the two positioning rods (305) are rotatably connected to the middle and top inner walls of the hinge rod (304) respectively.

7. A photovoltaic power generation prediction device according to claim 3, characterized in that: A fixing block (201) is provided on the upper surface of the sleeve block (302), a connecting rod (202) is provided on the outer wall on the top side of the fixing block (201), and a mounting block (204) is provided on the outer wall on the top side of the connecting rod (202).

8. A photovoltaic power generation prediction device according to claim 7, characterized in that: A rotating block (203) is rotatably connected to the inner wall of the connection point between the fixed block (201) and the connecting rod (202), and the connection point between the connecting rod (202) and the mounting block (204).

Citation Information

Patent Citations

  • Photovoltaic power generation power prediction device

    CN216280431U