Telescopic scaffold for photovoltaic installation
By designing a retractable photovoltaic installation scaffold, the problems of complexity and instability in existing technologies for installation on sloping mountainous areas have been solved, achieving a simple and flexible installation method and improving stability and efficiency.
Patent Information
- Application Number
- CN202423035838.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-10
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-12-10
AI Technical Summary
Existing scaffolding for photovoltaic panel installation is difficult to extend and retract flexibly on sloping mountainous areas, resulting in poor stability and a complicated construction process.
A telescopic scaffold for photovoltaic installation was designed, including a side telescopic frame, a main telescopic frame, and a secondary telescopic frame. It is installed on a slope by splicing, and the side support mechanism and disc are used to increase stability and avoid depressions.
It enables simple and flexible scaffolding installation on sloping terrain, avoiding depressions and improving stability and installation efficiency.
Smart Images

Figure CN223621211U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of photovoltaic panel installation technology, specifically a telescopic scaffold for photovoltaic installation. Background Technology
[0002] In recent years, photovoltaic power generation has developed rapidly. When installing photovoltaic panels, especially in mountainous areas, scaffolding is usually erected on the sloping hillside first, and then workers stand on the scaffolding to install the photovoltaic panels on the top of the columns.
[0003] When existing scaffolding for photovoltaic panel installation is erected on sloping mountainous areas, the fixed length of the scaffolding makes it difficult to stabilize the scaffolding on slopes with concave bottoms, posing certain safety hazards. In addition, existing scaffolding requires a large number of bolts to fix each connection point when erected on sloping slopes, making the erection process complicated and unsuitable for operations on sloping slopes.
[0004] The above content is only used to help understand the technical solution of this utility model and does not represent an admission that the above content is the closest prior art. Utility Model Content
[0005] The purpose of this utility model is to provide a telescopic scaffold for photovoltaic installation, so as to solve the problems mentioned in the background art that the existing scaffolds cannot be flexibly extended and retracted, it is difficult to stably support the scaffolds on the slope for some recessed areas, and the construction process is complicated.
[0006] To achieve the above objectives, this utility model provides the following technical solution:
[0007] A telescopic scaffold for photovoltaic installation includes columns and photovoltaic panels mounted on top of the columns, and further includes:
[0008] The side scaffolding includes a side telescopic frame located on one side of the upright and a side support mechanism located at the bottom of the side telescopic frame.
[0009] The main scaffolding includes a main telescopic frame connected to one side of the side support mechanism and a secondary telescopic frame inserted into the main telescopic frame and cooperating with the side telescopic frame to surround the uprights.
[0010] Furthermore, the side telescopic frame includes:
[0011] The first support rod is located on one side of the column, and one end of the first support rod is provided with a first guide groove. The upper end of the first support rod is provided with a hole that passes through the first guide groove.
[0012] The second support rod is located at one end of the first support rod. A first guide rod is fixedly connected to one end of the first support rod, and one end of the first guide rod is slidably inserted into the first guide groove.
[0013] The first slot is equally spaced on the upper end of the first guide rod;
[0014] The first pin is slidably inserted into the hole at the upper end of the first support rod, and its bottom is inserted into the first slot.
[0015] Furthermore, the side support mechanism includes:
[0016] The support frame is located at the bottom of the side telescopic frame, the main telescopic frame, and the auxiliary telescopic frame near the end, and is used to support the side scaffolding and the main scaffolding on the sloping hillside.
[0017] A disc, connected to the lower end of the support, is used to increase the contact area between the support and the sloping hillside.
[0018] Furthermore, the side telescopic frame also includes:
[0019] The first guide tube has at least two sets, which are connected to the side of the second support rod;
[0020] The second guide groove is located at one end of the first guide cylinder, and the upper end of the first guide cylinder is provided with a second pin that penetrates the interior of the second guide groove.
[0021] Furthermore, the main telescopic frame includes:
[0022] The third support rod;
[0023] The fourth support rod, with at least two sets, is connected to one side of the third support rod;
[0024] The second guide rod is connected to one end of the fourth support rod and corresponds to the second guide groove;
[0025] The second slot is evenly spaced at the upper end of the second guide rod;
[0026] The second pin is inserted into the second slot through the hole at the upper end of the first guide groove.
[0027] Furthermore, the main telescopic frame also includes:
[0028] The second guide tube is connected to one side of the third support rod. A guide shaft is slidably inserted into the second guide tube, and one end of the guide shaft is fixedly connected to the side of the first support rod.
[0029] Furthermore, the secondary telescopic frame includes:
[0030] The fifth support rod;
[0031] The third guide rod is connected to one end of the fifth support rod;
[0032] The third slot is equally spaced at the upper end of the third guide rod;
[0033] The third pin has its outer middle part slidably inserted into the third support rod, and its lower end inserted into the third slot.
[0034] Compared with the prior art, the beneficial effects of this utility model are:
[0035] This utility model uses a side support mechanism to erect a side telescopic frame on a slope, positioning the side telescopic frame on one side of the column. Then, the auxiliary telescopic frame is inserted into the main telescopic frame to complete the splicing of the auxiliary and main telescopic frames. Finally, the spliced main and auxiliary telescopic frames are inserted into one side of the side telescopic frame and limited by the second pin and the second slot, completing the installation of the scaffolding around a single column. This splicing method for installation on slopes is simple to set up, allows for flexible extension and retraction, and effectively avoids depressions in the slope. Attached Figure Description
[0036] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0037] Figure 2 This diagram illustrates the relationship between the side scaffolding and the main scaffolding of this utility model.
[0038] Figure 3 This is a schematic diagram of the internal structure of the side scaffolding of this utility model;
[0039] Figure 4 This is an exploded view of the side scaffolding and main scaffolding of this utility model;
[0040] Figure 5 This diagram shows the fit between the guide shaft and the second guide cylinder of this utility model.
[0041] Reference numerals: 1. Side scaffolding; 2. Main scaffolding; 100. Column; 101. Photovoltaic panel; 11. Side support mechanism; 111. Bracket; 112. Disc; 12. Side telescopic frame; 121. First support rod; 1211. First guide groove; 1212. First pin; 122. Second support rod; 1221. First guide rod; 1222. First slot; 123. First guide cylinder; 1231. Second pin; 1232. Second guide groove; 124. Guide shaft; 21. Main telescopic frame; 211. Third support rod; 212. Fourth support rod; 213. Second guide rod; 214. Second slot; 215. Second guide cylinder; 221. Fourth support rod; 22. Secondary telescopic frame; 221. Fifth support rod; 222. Third guide rod; 223. Third slot; 224. Third pin. Detailed Implementation
[0042] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not 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 effort are within the protection scope of the present utility model.
[0043] Please see Figure 1-5 This utility model provides a technical solution:
[0044] A telescopic scaffold for photovoltaic installation includes a column 100 and a photovoltaic panel 101 mounted on top of the column 100, and further includes:
[0045] The side scaffolding 1 includes a side telescopic frame 12 disposed on one side of the upright 100 and a side support mechanism 11 disposed at the bottom of the side telescopic frame 12.
[0046] The main scaffold 2 includes a main telescopic frame 21 connected to one side of the side support mechanism 11 and a secondary telescopic frame 22 inserted in the main telescopic frame 21 and cooperating with the side telescopic frame 12 to surround the column 100.
[0047] It should be noted that during use, the side telescopic frame 12 is first erected on the slope using the side support mechanism 11, so that the side telescopic frame 12 is located on one side of the column 100. Then, the auxiliary telescopic frame 22 is inserted into the main telescopic frame 21 to complete the splicing of the auxiliary telescopic frame 22 and the main telescopic frame 21. Finally, the spliced main telescopic frame 21 and auxiliary telescopic frame 22 are inserted into one side of the side telescopic frame 12 and the second pin 1231 and the second slot 214 are used for locking and limiting, thus completing the installation of the scaffolding around a single column 100. This splicing method for installation on slopes is simple to set up and allows for flexible extension and retraction, effectively avoiding depressions in the slope.
[0048] As an improvement, such as Figure 1 As shown, the side telescopic frame 12 includes:
[0049] The first support rod 121 is located on one side of the column 100, and one end of it is provided with a first guide groove 1211. The upper end of the first support rod 121 is provided with a hole that passes through the first guide groove 1211.
[0050] The second support rod 122 is located at one end of the first support rod 121. One end of the first support rod 121 is fixedly connected to the first guide rod 1221. One end of the first guide rod 1221 is slidably inserted into the first guide groove 1211.
[0051] The first slot 1222 is equally spaced on the upper end of the first guide rod 1221;
[0052] The first pin 1212 is slidably inserted into the hole at the upper end of the first support rod 121, and its bottom is inserted into the first slot 1222.
[0053] Furthermore, such as Figure 1-3 As shown, the side support mechanism 11 includes:
[0054] Support 111 is located at the bottom of the side telescopic frame 12, the main telescopic frame 21, and the auxiliary telescopic frame 22 near the end, and is used to support the side scaffold 1 and the main scaffold 2 on the sloping hillside.
[0055] The disc 112 is connected to the lower end of the bracket 111 to increase the contact area between the bracket 111 and the sloping hillside.
[0056] Furthermore, such as Figure 4-5 As shown, the side telescopic frame 12 further includes:
[0057] The first guide tube 123 is provided in at least two sets and is connected to the side of the second support rod 122;
[0058] The second guide groove 1232 is provided at one end of the first guide cylinder 123, and the upper end of the first guide cylinder 123 is provided with a second pin 1231 that penetrates the interior of the second guide groove 1232.
[0059] The main telescopic frame 21 includes:
[0060] Third support rod 211;
[0061] The fourth support rod 212 has at least two sets, which are connected to one side of the third support rod 211;
[0062] The second guide rod 213 is connected to one end of the fourth support rod 212 and corresponds to the second guide groove 1232;
[0063] The second slot 214 is equally spaced on the upper end of the second guide rod 213;
[0064] The second pin 1231 is inserted into the second slot 214 through the hole at the upper end of the first guide groove 1211.
[0065] In addition, the main telescopic frame 21 also includes:
[0066] The second guide tube 215 is connected to one side of the third support rod 211. A guide shaft 124 is slidably inserted into the second guide tube 215, and one end of the guide shaft 124 is fixedly connected to the side of the first support rod 121.
[0067] As an improvement, the secondary telescopic frame 22 includes:
[0068] Fifth support rod 221;
[0069] The third guide rod 222 is connected to one end of the fifth support rod 221;
[0070] The third slot 223 is equally spaced at the upper end of the third guide rod 222;
[0071] The third pin 224 is slidably inserted into the third support rod 211 at its outer middle part, and its lower end is inserted into the third slot 223.
[0072] It should be noted that: in the specific implementation process of this utility model, if... Figure 3 As shown, workers can insert the first guide rod 1221 into the first guide groove 1211 at the bottom of the slope in advance. The depth of the first guide rod 1221 inserted into the first guide groove 1211 is selected according to the actual required length. Then, the first pin 1212 is inserted into the first slot 1222 through the first support rod 121 to complete the splicing of the second support rod 122 and the first support rod 121, thus completing the splicing of the scaffold 1 on the opposite side, thereby achieving the effect of simple splicing process.
[0073] Subsequently, as Figure 4 As shown, the worker inserts the third guide rod 222 into the third support rod 211 at the bottom of the slope, and inserts the third pin 224 through the third support rod 211 into the third slot 223 to complete the splicing of the main scaffold 2. The overall positive length of the main scaffold 2 is guaranteed to be equal to the length of the side scaffold 1 after splicing.
[0074] Finally, as Figure 5 As shown, the workers moved the assembled side scaffolding 1 and main scaffolding 2 to the slopes on both sides of the column 100, keeping the main scaffolding 2 parallel to the side scaffolding 1. They pushed the main scaffolding 2 toward the side scaffolding 1, so that the second guide rod 213 was inserted into the second guide groove 1232. When it was ensured that there was no depression in the ground at the bottom of the disc 112, the second pin 1231 was inserted into the second slot 214 through the first guide cylinder 123. This achieved the installation of the scaffolding in a telescopic manner, which can stably install the scaffolding even on slopes with depressions in the ground.
[0075] Furthermore, during the insertion of the second guide rod 213 along the second guide groove 1232, the second guide cylinder 215 gradually moves along the outside of the guide shaft 124, thereby further reinforcing the stability of the scaffold under the cooperative action of the second guide cylinder 215 and the guide shaft 124.
[0076] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0077] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A telescopic photovoltaic installation scaffold, comprising columns (100) and photovoltaic panels (101) mounted on top of the columns (100), characterized in that, Also includes: The side scaffolding (1) includes a side telescopic frame (12) located on one side of the upright (100) and a side support mechanism (11) located at the bottom of the side telescopic frame (12): The main scaffold (2) includes a main telescopic frame (21) connected to one side of the side support mechanism (11) and a secondary telescopic frame (22) inserted in the main telescopic frame (21) and cooperating with the side telescopic frame (12) to surround the column (100).
2. The telescopic scaffolding for photovoltaic installation according to claim 1, characterized in that: The side telescopic frame (12) includes: The first support rod (121) is located on one side of the column (100), and one end of it is provided with a first guide groove (1211). The upper end of the first support rod (121) is provided with a hole that passes through the first guide groove (1211). The second support rod (122) is located at one end of the first support rod (121). One end of the first support rod (121) is fixedly connected to the first guide rod (1221), and one end of the first guide rod (1221) is slidably inserted into the first guide groove (1211). The first slot (1222) is equally spaced on the upper end of the first guide rod (1221); The first pin (1212) is slidably inserted into the hole provided at the upper end of the first support rod (121), and its bottom is inserted into the first slot (1222).
3. The telescopic scaffolding for photovoltaic installation according to claim 2, characterized in that: The side support mechanism (11) includes: A support (111) is provided at the bottom near the end of the side telescopic frame (12), the main telescopic frame (21), and the auxiliary telescopic frame (22) to support the side scaffold (1) and the main scaffold (2) on the sloping hillside. A disc (112) is attached to the lower end of the support (111) to increase the contact area between the support (111) and the sloping hillside.
4. The telescopic scaffolding for photovoltaic installation according to claim 3, characterized in that: The side telescopic frame (12) also includes: The first guide tube (123) is provided in at least two sets and is connected to the side of the second support rod (122); The second guide groove (1232) is provided at one end of the first guide cylinder (123), and the upper end of the first guide cylinder (123) is provided with a second pin (1231) that penetrates the interior of the second guide groove (1232).
5. The telescopic scaffolding for photovoltaic installation according to claim 4, characterized in that: The main telescopic frame (21) includes: The third support rod (211); The fourth support rod (212) is provided in at least two sets and is connected to one side of the third support rod (211); The second guide rod (213) is connected to one end of the fourth support rod (212) and corresponds to the second guide groove (1232); The second slot (214) is evenly spaced at the upper end of the second guide rod (213); The second pin (1231) is inserted into the second slot (214) through the hole at the upper end of the first guide groove (1211).
6. The telescopic scaffolding for photovoltaic installation according to claim 5, characterized in that: The main telescopic frame (21) also includes: The second guide tube (215) is connected to one side of the third support rod (211). A guide shaft (124) is slidably inserted into the second guide tube (215). One end of the guide shaft (124) is fixedly connected to the side of the first support rod (121).
7. A telescopic scaffold for photovoltaic installation according to claim 6, characterized in that: The secondary telescopic frame (22) includes: Fifth support rod (221); The third guide rod (222) is connected to one end of the fifth support rod (221); The third slot (223) is evenly spaced at the upper end of the third guide rod (222); The third pin (224) is slidably inserted into the third support rod (211) at its outer middle part, and its lower end is inserted into the third slot (223).