Photovoltaic energy storage charging carport
By introducing the cleaning and delivery functions of the guide components into the photovoltaic energy storage charging carport, the problem of foreign objects on the sun visor affecting the energy absorption efficiency of the photovoltaic panel is solved, and the effect of improving the energy absorption efficiency is achieved.
Patent Information
- Application Number
- CN202421352150.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-13
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-06-13
AI Technical Summary
After a long time of use of existing photovoltaic energy storage charging stations, the remaining foreign objects on the sun visor affect the photovoltaic panel's acquisition of sunlight, resulting in a decrease in energy absorption efficiency.
A photovoltaic energy storage charging carport is designed, including support components, shading components, energy supply components, energy absorption components and guide components. The guide assembly cleans foreign matter on the shading assembly and energy-absorbing assembly through the cleaning member and the feed member, reducing the obstacles to energy-absorbing efficiency by foreign matters.
It effectively reduces the obstacles of foreign objects to photovoltaic panels and improves the energy absorption efficiency of photovoltaic energy storage charging stations after long-term use.
Smart Images

Figure CN222909584U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of photovoltaic charging, and in particular to a photovoltaic energy storage charging shed. Background Art
[0002] With the popularization of electric vehicles, electric vehicle charging stations will surely become the focus of the development of the automotive industry and the energy industry, resulting in an increasing demand for charging facilities at present.
[0003] An electric vehicle charging station is a site for charging electric vehicles and can better solve the problem of rapid charging. Among them, the existing photovoltaic energy storage charging station is a new type of charging station integrating photovoltaic power generation, energy storage system and charging piles. The three together constitute a microgrid, which can achieve the efficient utilization of clean energy, energy conservation and emission reduction. When the existing photovoltaic energy storage charging station is in use, the photovoltaic power generation system uses the photovoltaic panels on the top of the sunshade to convert solar energy into direct current electricity and then converts it into alternating current through an inverter, and then stores these electric energies temporarily through the energy storage system. When an electric vehicle needs to be charged, the energy storage system releases electric energy and charges the vehicle through the charging pile.
[0004] At present, in order to facilitate the energy acquisition of the photovoltaic panels, multiple photovoltaic panels are installed on the top of the sunshade in the photovoltaic energy storage charging station. However, after the photovoltaic energy storage charging station has been used for a long time, there will be a lot of foreign objects remaining above the sunshade, resulting in the influence on the acquisition of sunlight by the top photovoltaic panels, and causing the energy absorption efficiency of the photovoltaic energy storage charging station to decline after long-term use. Summary of the Utility Model
[0005] In order to effectively reduce the influence of foreign objects remaining on the sunshade on the photovoltaic panels and at the same time improve the energy absorption efficiency of the existing photovoltaic energy storage charging station after long-term use, the present application provides a photovoltaic energy storage charging shed.
[0006] The photovoltaic energy storage charging shed provided by the present application adopts the following technical solutions:
[0007] A photovoltaic energy storage charging shed, comprising: a support assembly, and further comprising:
[0008] A shielding assembly, which is arranged on the support assembly for shielding and protection;
[0009] An energy supply assembly, which is arranged on the support assembly and located inside the shielding assembly to output electric energy to new energy vehicles through the energy supply assembly;
[0010] An energy absorption assembly, which is arranged above the shielding assembly and is electrically connected to the energy supply unit;
[0011] The guiding component is arranged on the side wall of the shielding component so as to remove foreign matter on the shielding component and the energy absorbing component through the guiding component.
[0012] By adopting the above technical scheme, the supporting component can stably install the shielding component, energy supply component, energy absorption component and guiding component as a whole; the energy absorption component can convert solar energy into electrical energy and output it to the new energy vehicle for energy replenishment through the energy supply component; at the same time, the shielding component can effectively protect the energy supply component and the new energy vehicle for energy replenishment; in addition, compared with the existing photovoltaic energy storage charging carport, the present application can effectively deal with foreign matter remaining on the energy absorption component and the shielding component through the guiding component set up, thereby reducing the obstruction of foreign matter to the energy absorption component, thereby achieving the purpose of improving the energy absorption efficiency of the energy absorption component after long-term use.
[0013] Optionally, the shielding assembly includes: an extension member and a mounting member, the extension member is arranged on the side wall of the supporting assembly to protect the power supply assembly inside the charging shed, and the mounting member is arranged on the extension member and connected to the guiding assembly to position the guiding assembly through the mounting member.
[0014] By adopting the above technical solution, the extension piece can effectively protect the energy supply component and the new energy vehicle being recharged. At the same time, the guide component can be stably installed through the set installation parts, thereby improving the use stability of the guide component.
[0015] Optionally, the energy absorbing component includes: a photovoltaic component and a supporting component, the photovoltaic component is connected to an extending component via the supporting component, and the photovoltaic component is electrically connected to the energy supply component.
[0016] By adopting the above technical solution, the photovoltaic component can convert solar energy into electrical energy to transmit the electrical energy to the power supply component for subsequent electrical energy output, and the carrier can stably install the photovoltaic component to improve the overall stability of the photovoltaic component.
[0017] Optionally, the guiding component includes: a cleaning piece and a delivery piece, the cleaning piece is movably arranged on the mounting piece, the delivery piece is arranged on the extension piece and can export foreign matter processed by the cleaning piece to reduce the residue of foreign matter on the energy absorbing component and the shielding component.
[0018] By adopting the above technical solution, the cleaning member can quickly clean the foreign matter on the energy absorbing component and the shielding component, and discharge the foreign matter from the shielding component through the delivery member, thereby reducing the accumulation of foreign matter on the shielding component.
[0019] Optionally, the conveying assembly further includes: a first driving member and a second driving member. The first driving member is disposed on the mounting member and can drive the cleaning member so that the cleaning member can clean foreign matters on the energy absorption assembly and the shielding assembly. The second driving member is disposed on the mounting member and is used to drive the sending member so that the sending member can quickly discharge foreign matters under the drive of the second driving member.
[0020] By adopting the above technical solution, the first driving member can drive the cleaning member, enabling the cleaning member to quickly clean foreign matters on the energy absorption assembly and the shielding assembly, while the second driving member can drive the sending member to remove foreign matters on the shielding assembly, thereby effectively improving the use efficiency of the cleaning member and the sending member.
[0021] Optionally, the conveying assembly further includes: an aggregating member. The aggregating member is disposed on the supporting assembly and is in communication with the sending member to temporarily store foreign matters discharged by the sending member.
[0022] By adopting the above technical solution, the aggregating member can temporarily store foreign matters discharged by the sending member for subsequent collection and reprocessing of the foreign matters.
[0023] Optionally, the energy absorption assembly further includes: an auxiliary conveying member. The auxiliary conveying member is disposed on the bearing member and abuts against the periphery of the photovoltaic member to improve the cleaning degree of the conveying assembly for foreign matters through the auxiliary conveying member.
[0024] By adopting the above technical solution, the auxiliary conveying member can reduce the residue of foreign matters on the photovoltaic member and effectively improve the installation stability of the photovoltaic member, thereby achieving the purpose of improving the energy absorption efficiency of the photovoltaic member.
[0025] Optionally, the energy absorption assembly further includes: an adjusting member. The adjusting member is disposed on the bearing member and is connected to the auxiliary conveying member to adjust the position of the auxiliary conveying member through the adjusting member.
[0026] By adopting the above technical solution, the adjusting member can flexibly change the position of the auxiliary conveying member so that the auxiliary conveying member can tightly install photovoltaic members of different sizes, improving the practicability of the auxiliary conveying member of the present application.
[0027] In summary, the present application includes at least one of the following beneficial technical effects:
[0028] 1. The support component can stably install the shielding component, energy supply component, energy absorption component and guiding component as a whole. The energy absorption component can convert solar energy into electrical energy and output it to the new energy vehicle for energy replenishment through the energy supply component. At the same time, the shielding component can effectively protect the energy supply component and the new energy vehicle for energy replenishment. In addition, compared with the existing photovoltaic energy storage charging carport, the guiding component set in this application can effectively deal with foreign matter remaining on the energy absorption component and the shielding component, thereby reducing the obstruction of foreign matter to the energy absorption component, so as to achieve the purpose of improving the energy absorption efficiency of the energy absorption component after long-term use;
[0029] 2. The cleaning piece can quickly clean foreign matter on the energy absorbing component and the shielding component, and the sending piece can discharge the foreign matter from the shielding component, thereby effectively reducing the accumulation of foreign matter on the shielding component. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 This is a schematic diagram of the overall structure of the photovoltaic energy storage charging carport in the embodiment of the present application;
[0031] Figure 2 yes Figure 1 A schematic diagram of the enlarged structure of part A;
[0032] Figure 3 yes Figure 1 A schematic diagram of the enlarged structure of part B;
[0033] Figure 4 It is a partial structural schematic diagram of the delivery member and the second driving member of the embodiment of the present application;
[0034] Figure 5 It is an exploded schematic diagram of the partial structure of the photovoltaic component, auxiliary component and regulating component of the embodiment of the present application;
[0035] Figure 6 yes Figure 5 Schematic diagram of the enlarged structure of part C.
[0036] Explanation of the reference numerals in the accompanying drawings: 1. Support assembly; 2. Shielding assembly; 21. Extension piece; 22. Mounting piece; 3. Energy supply assembly; 4. Energy absorption assembly; 41. Photovoltaic piece; 42. Carrying piece; 43. Auxiliary delivery piece; 44. Adjusting piece; 5. Guide assembly; 51. Cleaning piece; 511. Moving rod; 512. Brush; 52. Delivery piece; 521. Receiving box; 521a. Rubber protective strip; 522. Toggle plate; 53. First driving piece; 531. First servo motor; 532. First lead screw; 54. Second driving piece; 541. Second servo motor; 542. Second lead screw; 55. Material collecting piece; 551. Material guiding track; 552. Storage box. DETAILED DESCRIPTION
[0037] The following will further elaborate on this application in conjunction with the attached drawings. Figures 1-6 A further detailed description of this application will be given. Embodiment
[0038] An embodiment of this application discloses a photovoltaic energy storage charging shed. Referring to Figure 1 , the photovoltaic energy storage charging shed includes a support assembly 1, a shielding assembly 2, and an energy supply assembly 3. Among them, the support assembly 1 is arranged on a support surface to provide support for the entire charging shed. At the same time, the shielding assembly 2 is installed above the support assembly 1 and extends obliquely upward on both sides of the support assembly 1, mainly used to shield the inside of the charging shed to effectively reduce the direct entry of external foreign objects such as rain or sunlight into the inside of the charging shed, and to protect the new energy vehicles inside the charging shed. The energy supply assembly 3 is installed inside the charging shed and on one side of the support assembly 1 to supply energy to the new energy vehicles inside the charging shed through the energy supply assembly 3.
[0039] In addition, an energy absorption assembly 4 is arranged above the shielding assembly 2, and the energy absorption assembly 4 is electrically connected to the energy supply assembly 3. During use, the energy absorption assembly 4 absorbs sunlight and converts it into electrical energy, and then the energy supply assembly 3 stores the electrical energy converted by the energy absorption assembly 4 for the new energy vehicles in the charging shed to replenish energy and charge.
[0040] Referring to Figure 1 , in this embodiment, the support assembly 1 includes support columns. There are multiple support columns, and all the support columns are installed on the support surface and connected to the bottom of the shielding assembly 2. At the same time, in this embodiment, the energy supply assembly 3 includes a storage battery, an inverter, and a charging pile. Among them, the storage battery and the inverter are both installed inside the charging pile (not shown in the figure), and the charging pile is installed on the side walls of multiple support columns to facilitate the replenishment of energy for the new energy vehicles in the charging shed. In addition, in this embodiment, the energy absorption assembly 4 is electrically connected to the inverter, the storage battery, and the charging pile.
[0041] In this embodiment, the shielding assembly 2 includes an extension member 21 and a mounting member 22. Among them, the extension member 21 is installed above multiple support columns, and both sides of the extension member 21 extend obliquely upward on both sides of the support columns, so as to effectively shield and protect the inside of the charging shed. In addition, there are two mounting members 22, and the two mounting members 22 are respectively fixed on both sides of the extension member 21 and connected to the side walls of the outermost two support columns. At the same time, the energy absorption assembly 4 is arranged above the extension member 21 to install and position the energy absorption assembly 4 through the extension member 21.
[0042] Referring to Figure 1In this embodiment, the energy absorption unit includes a photovoltaic component 41 and a carrier 42. The carrier 42 is arranged on the upper surface of the extension member 21, and a plurality of mounting grooves are provided on the upper surface of the carrier 42. At the same time, a plurality of photovoltaic components 41 are provided, and the plurality of photovoltaic components 41 are respectively installed in the plurality of mounting grooves. In addition, the plurality of photovoltaic components 41 are electrically connected to the inverter, the battery and the charging pile.
[0043] In addition, in order to effectively reduce the obstruction of foreign matter on the extension member 21 to the photovoltaic member 41, a guide assembly is provided on the extension member 21 and the mounting member 22. In this embodiment, the guide assembly includes a cleaning member 51 and a delivery member 52. The cleaning member 51 is provided on the mounting member 22, and the delivery member 52 is installed on the side wall of the extension member 21.
[0044] Reference Figures 1-3 In this embodiment, the cleaning member 51 includes a moving rod 511 and bristles 512. One end of the moving rod 511 is slidably connected to the inner side wall of the mounting member 22, and the other end extends to the upper middle portion of the bearing member 42. The bristles 512 are mounted on a side of the moving rod 511 close to the photovoltaic member 41, and the end of the bristles 512 away from the moving rod 511 can abut against the photovoltaic member 41.
[0045] In this embodiment, the delivery member 52 includes a receiving box 521 and a toggle plate 522. The receiving box 521 is installed in the middle of the extension member 21 and is located as a whole at the top of multiple support columns. At the same time, the opening of the receiving box 521 is located on the lower side of the extension member 21. The toggle plate 522 is installed on the inner side of the receiving box 521 and the two sides are respectively slidably connected to the two inner side walls of the receiving box 521. In addition, rubber protective strips 521a are provided at the sliding positions of the toggle plates 522 on the two inner side walls of the receiving box 521. In addition, one end of the mounting member 22 protrudes from the side of the extension member 21 away from the receiving box 521, and the other end of the mounting member 22 extends to the top of the receiving box 521, so as to reduce the obstruction of the moving strip to the photovoltaic member 41, and at the same time enable the cleaning member 51 to move to the top of the receiving box 521.
[0046] Reference Figures 1-2 In this embodiment, in order to more efficiently clean the foreign matter on the extension member 21 and the photovoltaic member 41, the guide assembly 5 further includes a first drive member 53 and a second drive member 54. The first drive member 53 is disposed on the mounting member 22, and the second drive member 54 is disposed on the inner side wall of the receiving box 521.
[0047] In this embodiment, the first driving member 53 includes a first servo motor 531 and a first lead screw 532. The first servo motor 531 is mounted on one end of the mounting member 22 and the output shaft thereof penetrates the interior of the mounting member 22, while the first lead screw 532 is integrally disposed inside the mounting member 22. One end of the first lead screw 532 is assembled with the output shaft of the servo motor, and the other end is rotatably connected with the inner wall of the mounting member 22. At the same time, the first lead screw 532 is threadedly connected with one end of the moving rod 511 close to the mounting member 22.
[0048] In addition, refer to Figure 1 and 3 -4, in this embodiment, the second driving member 54 includes a second servo motor 541 and a second lead screw 542. The second lead screw 542 is integrally mounted inside the side wall of the receiving box 521 and is threadedly connected to one side of the toggle plate 522, while the second servo motor 541 is mounted on one end of the receiving box 521 and assembled with one end of the second lead screw 542 through an output shaft, and at the same time, the other end of the second lead screw 542 is rotatably connected to one end of the side wall of the receiving box 521.
[0049] Reference Figure 1 In order to temporarily store the foreign matter discharged from the receiving part, in this embodiment, the guide assembly 5 further includes a material collecting part 55. The two ends of the receiving box 521 are through-opened, and two material collecting parts 55 are provided. The two material collecting parts 55 are respectively connected and arranged at the two ends of the receiving box 521 and are located outside the two outermost support columns as a whole.
[0050] In this embodiment, the material collecting member 55 includes a material guide track 551 and a storage box 552. The material guide track 551 is connected to the end of the receiving box 521, and the storage box 552 is installed on the support surface outside the support column and connected to the end of the material guide track 551.
[0051] When in use, the first servo motor 531 is started, so that the first servo motor 531 drives the moving rod 511 and the brush 512 located on the side away from the receiving box 521 to move toward the top of the photovoltaic component 41 through the first lead screw 532, thereby cleaning foreign matter on the photovoltaic component 41 and cleaning the foreign matter into the receiving box 521. Then the second servo motor 541 is started, so that the second servo motor 541 drives the second lead screw 542 to rotate. After the second lead screw 542 rotates, it drives the prying plate 522 to quickly remove foreign matter in the receiving box 521, and discharges the foreign matter from both ends of the receiving box 521, and finally discharges it into the storage box 552 through the material guide track 551 for temporary storage.
[0052] Reference Figure 1 and 5-6. In order to effectively reduce the residue of foreign objects on the photovoltaic component 41 when being cleaned by the cleaning component 51, in this embodiment, the energy absorption component 4 further includes a conveying component 43 and an adjusting component 44. Among them, the conveying component 43 is arranged in the installation groove of the bearing component 42 and abuts against the circumferential side of the photovoltaic component 41. And the adjusting component 44 is installed at the groove wall of the installation groove and is connected to the side wall of the conveying component 43.
[0053] In this embodiment, the conveying component 43 includes four abutting strips, and the four abutting strips respectively abut against the four side walls of the photovoltaic component 41. At the same time, the longitudinal section of each abutting strip is triangular, and the corner of the abutting strip far from the photovoltaic component 41 is slidably inserted and matched with the fitting groove starting from the groove wall of the installation groove. Among them, the adjusting component 44 can be selected as a spring. One end of the spring is connected to the inner side wall of the fitting groove, and the other end is connected to the inclined side of the abutting strip far from the photovoltaic component 41.
[0054] Working principle: During use, the cleaning component 51 and the feeding component 52 can be controlled respectively by the first driving component 53 and the second driving component, so that the foreign objects remaining on the photovoltaic component 41 and the extension component 21 can be discharged from both ends of the receiving box 521 into the aggregating component 55 for temporary storage, thereby effectively reducing the influence of the residue of foreign objects on the energy absorption efficiency of the photovoltaic component 41 after the charging shed has been used for a long time;
[0055] Secondly, when the cleaning component 51 cleans the upper surface of the photovoltaic component 41, due to the setting of the conveying component 43, the foreign objects can slide out along the inclined surface of the conveying component 43, thereby effectively reducing the situation of foreign object residue caused by the installation gap between the photovoltaic component 41 and the bearing component 42, and achieving the purpose of further improving the cleaning degree of the cleaning component 51 of this application.
[0056] The above are all the preferred embodiments of this application, and the protection scope of this application is not limited accordingly. Therefore, all equivalent changes made according to the structure, shape, and principle of this application should be covered within the protection scope of this application.
Claims
1. A photovoltaic energy storage charging carport, characterized in that: include: The support assembly (1) further comprises: A shielding component (2), wherein the shielding component (2) is arranged on the supporting component (1) to provide shielding protection; An energy supply component (3), the energy supply component (3) being arranged on the support component (1) and located on the inner side of the shielding component (2), so as to output electric energy to the new energy vehicle through the energy supply component (3); an energy absorption component (4), the energy absorption component (4) being arranged above the shielding component (2) and electrically connected to the energy supply component (3); A guiding component (5) is arranged on a side wall of the shielding component (2) so as to remove foreign matter on the shielding component (2) and the energy absorbing component (4) through the guiding component (5).
2. A photovoltaic energy storage charging carport according to claim 1, characterized in that: The shielding component (2) comprises: an extension member (21) and a mounting member (22); the extension member (21) is arranged on a side wall of the support member (1) to protect the energy supply component (3) inside the charging carport; the mounting member (22) is arranged on the extension member (21) and connected to the guide component (5) so as to position the guide component (5) through the mounting member (22).
3. A photovoltaic energy storage charging carport according to claim 2, characterized in that: The energy absorbing component (4) comprises: a photovoltaic component (41) and a bearing component (42); the photovoltaic component (41) is connected to the extension component (21) via the bearing component (42); and the photovoltaic component (41) is electrically connected to the energy supply component (3).
4. A photovoltaic energy storage charging carport according to any one of claims 2-3, characterized in that: The guide assembly (5) comprises: a cleaning member (51) and a delivery member (52); the cleaning member (51) is movably arranged on the mounting member (22); the delivery member (52) is arranged on the extension member (21) and is capable of guiding out foreign matter processed by the cleaning member (51), so as to reduce the amount of foreign matter remaining on the energy absorbing member (4) and the shielding member (2).
5. A photovoltaic energy storage charging carport according to claim 4, characterized in that: The guide assembly (5) further comprises: a first driving member (53) and a second driving member (54); the first driving member (53) is arranged on the mounting member (22) and is capable of driving the cleaning member (51), so that the cleaning member (51) can clean foreign matter on the energy absorbing member (4) and the shielding member (2); the second driving member (54) is arranged on the mounting member (22) and is used to drive the delivery member (52), so that the delivery member (52) can quickly discharge foreign matter under the drive of the second driving member (54).
6. A photovoltaic energy storage charging carport according to claim 4, characterized in that: The guiding assembly (5) further comprises: a material collecting member (55), wherein the material collecting member (55) is arranged on the supporting assembly (1) and is in communication with the delivery member (52) so as to temporarily store foreign matter discharged by the delivery member (52).
7. The photovoltaic energy storage charging carport according to claim 3, characterized in that: The energy absorbing component (4) further comprises: an auxiliary delivery component (43), wherein the auxiliary delivery component (43) is arranged on the carrier component (42) and abuts against the peripheral side of the photovoltaic component (41), so as to improve the degree of cleaning of foreign matter by the guiding component (5) through the auxiliary delivery component (43).
8. A photovoltaic energy storage charging carport according to claim 7, characterized in that: The energy absorbing component (4) further comprises: an adjusting member (44), wherein the adjusting member (44) is arranged on the bearing member (42) and connected to the auxiliary delivery member (43), so that the position of the auxiliary delivery member (43) can be adjusted through the adjusting member (44).