Flexible photovoltaic support with automatic deviation correction orientation function and support structure
By designing a flexible photovoltaic bracket with automatic deviation correction and utilizing the synergistic effect of the base and adjustment components, the problem of deviation of the photovoltaic support structure caused by construction errors and force majeure factors in harsh environments is solved, and the service life and safety of the cable and flexible photovoltaic bracket are improved.
Patent Information
- Application Number
- CN202410267351.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-08
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2044-03-08
AI Technical Summary
Existing photovoltaic support structures are susceptible to construction errors, wind or earthquake factors in harsh environments, causing the cables and flexible photovoltaic brackets to twist or tilt, reducing their service life and structural safety and reliability.
A flexible photovoltaic bracket with automatic orientation correction function is designed, which includes a first base, a second base and an adjustment component. By rotating and moving the adjustment component, the position offset and angle offset of the flexible photovoltaic bracket are offset, the installation space of the cable is kept corresponding to the cable, and tilting or twisting is prevented.
It realizes automatic deviation correction of cables and flexible photovoltaic supports in harsh environments, reduces wear and damage, improves service life and structural safety and reliability, and reduces operation and maintenance costs.
Smart Images

Figure CN118157555B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of photovoltaic power generation, in particular to a flexible photovoltaic support with automatic deviation rectification function and support structure. BACKGROUND
[0002] With the vigorous promotion of photovoltaic power generation technology in China, photovoltaic construction sites involve mountains, deserts, wetlands, rooftops, etc., and the available construction land is becoming less and less. How to build photovoltaic power in harsh places has become a difficult point, and the photovoltaic support structure is the key.
[0003] The photovoltaic support structure often includes a plurality of load-bearing cables and a plurality of supports arranged horizontally and vertically. The support is used to erect and support the cable. Usually, one cable is installed on a plurality of vertical supports, and a plurality of cables are installed on one or more horizontal supports in parallel. The support mainly includes a fixed support and a flexible support. The fixed support is suitable for flat land or gently sloping mountains. The flexible support can achieve a larger span and can be used in mountainous areas with large slopes, ponds, etc. Therefore, the flexible photovoltaic support is mainly used in relatively harsh environments with large slopes.
[0004] However, in actual application scenarios, due to the large slope of the mountainous environment, the ground is rugged and uneven, and the span between the installation bases is large, often with construction errors, so that the longitudinally adjacent flexible photovoltaic supports are not in a straight line, and the installation nodes between the horizontally or vertically adjacent flexible photovoltaic supports and the cable are not in a straight line. These construction errors eventually cause the cable to twist or tilt on the flexible photovoltaic support, causing the cable to generate a large additional force on the flexible photovoltaic support, which not only easily wears the cable, but also easily damages the flexible photovoltaic support, reduces the service life of the cable and the flexible photovoltaic support, and has low safety and reliability of the structure.
[0005] In addition, due to the influence of wind or earthquake and other factors, the flexible photovoltaic support has the risk of position deviation or torsion, which also increases the additional force between the cable and the flexible photovoltaic support, reduces the service life of the cable and the flexible photovoltaic support, and reduces the safety and reliability of the structure. SUMMARY
[0006] Therefore, the technical problem to be solved by the present application is to overcome the defects in the prior art that the photovoltaic support structure is easily affected by environmental factors or irresistible factors, reduces the service life of the cable and the flexible photovoltaic support, and reduces the safety and reliability of the structure, thereby providing a flexible photovoltaic support with automatic deviation rectification function and support structure.
[0007] In a first aspect, the present application provides a flexible photovoltaic support with automatic deviation rectification orientation function, which comprises a first base, a second base and an adjusting assembly. Specifically, the second base is movably mounted on the first base along a first direction, one end of the adjusting assembly is rotatably mounted on the second base, and the other end is formed with a mounting space. The mounting space is provided along a second direction, so that a cable can be slidably arranged in the mounting space. The one end of the adjusting assembly is adapted to rotate relative to the second base, so that the mounting space of the other end is opposite to the cable. Wherein, the first direction and the second direction are perpendicular to each other.
[0008] Optionally, the flexible photovoltaic support further comprises at least one set of connecting members; the top of the first base is correspondingly provided with at least one set of sliding grooves, and the sliding grooves are provided along the first direction. One end of the connecting member is slidably connected with the sliding groove, and the other end is connected with the second base.
[0009] Optionally, the connecting member is provided with a limiting part, and the limiting part is clamped in the sliding groove. At least one end of the sliding groove is provided with an expanded part, and the size of the expanded part is matched with the limiting part, so that the limiting part is adapted to enter or separate from the sliding groove through the expanded part.
[0010] Optionally, along the first direction, the sliding groove comprises a straight section and a curved section, the curved section is connected to at least one end of the straight section, and the expanded part is formed on the curved section.
[0011] Optionally, the inner groove wall of the sliding groove is provided with a convex part, and the convex part is located at the connection between the straight section and the curved section.
[0012] Optionally, the second base comprises a bottom plate and a spherical hinge seat, the bottom plate is connected with the connecting member, and the spherical hinge seat is rotatably connected with the adjusting assembly.
[0013] Optionally, the adjusting assembly comprises a spherical first rotating member, and the first rotating member is rotatably embedded in the spherical hinge seat.
[0014] Optionally, the top of the spherical hinge seat is provided with a reinforcing part, the reinforcing part surrounds the periphery of the first rotating member, and the size of the reinforcing part is smaller than the diameter of the first rotating member.
[0015] Optionally, the adjusting assembly further comprises a second rotating member, the second rotating member is rotatably mounted on the top of the first rotating member around its own axis, and the mounting space is formed on the inner side of the second rotating member.
[0016] In a second aspect, the present application further provides a support structure, which comprises the flexible photovoltaic support and at least one cable, and the cable is arranged in the mounting space along the second direction.
[0017] The present application has the following advantages:
[0018] With the technical scheme of the present application, the cable extends along the second direction and is supported in the mounting space of the flexible photovoltaic support, when the flexible photovoltaic support moves in the first direction due to construction errors or the influence of wind, earthquake and other uncontrollable factors, the first base and the second base can move relatively in the first direction to offset the position deviation of the flexible photovoltaic support in the first direction, so that the second base and the adjusting assembly mounted on the second base remain in the original position, and the mounting space formed on the adjusting assembly can also remain in the original position.
[0019] Alternatively, when the flexible photovoltaic support twists or rotates around the second direction, one end of the adjusting assembly can rotate relatively with the second base to offset the angular deviation of the flexible photovoltaic support, so that the mounting space at the other end of the adjusting assembly remains in the state of being directly opposite to the original position of the cable.
[0020] Alternatively, when the flexible photovoltaic support twists or rotates around the first direction, one end of the adjusting assembly can rotate relatively with the second base to offset the angular deviation of the flexible photovoltaic support, so that the mounting space at the other end of the adjusting assembly remains in the state of being directly opposite to the original position of the cable; at the same time, the cable is slidably arranged in the mounting space, and the mounting space of the adjusting assembly can move relatively with the cable in the second direction to offset the position deviation in the second direction caused by the rotation of the flexible photovoltaic support.
[0021] Therefore, in the technical scheme of the present application, the first base, the second base and the adjusting assembly cooperate to realize automatic deviation correction of the orientation, offset the deviation of the flexible photovoltaic support and the cable in the orientation, so that the position of the mounting space always corresponds to the cable, and therefore the cable arranged in the mounting space can also maintain in the original extension direction without tilting or twisting, and the cable will not generate additional additional force on the flexible photovoltaic support, reducing or even eliminating the wear of the cable and the damage to the flexible photovoltaic support, improving the service life of the cable and the flexible photovoltaic support, and improving the safety and reliability of the structure. BRIEF DESCRIPTION OF DRAWINGS
[0022] In order to more clearly illustrate the specific embodiments of the present application or the technical scheme in the prior art, the drawings needed in the specific embodiments or the prior art description will be briefly introduced below. Obviously, the drawings in the following description are some embodiments of the present application, and those skilled in the art can also obtain other drawings according to these drawings without creative labor.
[0023] Figure 1 FIG. 1 is a structural schematic view of a flexible photovoltaic support according to an embodiment of the present application;
[0024] Figure 2Fig. 1 is a schematic view of the internal structure of a flexible photovoltaic support in a first direction according to an embodiment of the present application;
[0025] Figure 3 Fig. 2 is a schematic view of the internal structure of a flexible photovoltaic support in a second direction according to an embodiment of the present application;
[0026] Figure 4 Fig. 3 is a top view of a flexible photovoltaic support according to an embodiment of the present application;
[0027] Figure 5 Fig. 4 is a top view of a first base of a flexible photovoltaic support according to an embodiment of the present application;
[0028] Figure 6 Fig. 5 is a schematic view of the internal structure of a first base of a flexible photovoltaic support in a first direction according to an embodiment of the present application; wherein Figs. (a), (b), (c), (d) respectively show four different states of the connecting member when installed on the first base;
[0029] Figure 7 Fig. 6 is a schematic view of the structure of a second base of a flexible photovoltaic support according to an embodiment of the present application;
[0030] Figure 8 Fig. 7 is a schematic view of the structure of a ball hinge base of a flexible photovoltaic support according to an embodiment of the present application;
[0031] Figure 9 Fig. 8 is a schematic view of the structure of a ball hinge base of a flexible photovoltaic support according to an embodiment of the present application, from another perspective;
[0032] Figure 10 Fig. 9 is a schematic view of the structure of an adjusting assembly of a flexible photovoltaic support according to an embodiment of the present application;
[0033] Figure 11 Fig. 10 is a schematic view of the structure of another flexible photovoltaic support according to an embodiment of the present application;
[0034] Figure 12 Fig. 11 is a schematic view of the structure of a flexible photovoltaic support in a first state according to an embodiment of the present application;
[0035] Figure 13 Fig. 12 is a schematic view of the structure of a flexible photovoltaic support in a second state according to an embodiment of the present application;
[0036] Figure 14 Fig. 13 is a schematic view of the structure of a flexible photovoltaic support in a third state according to an embodiment of the present application.
[0037] BRIEF DESCRIPTION OF THE DRAWINGS
[0038] 1, first base; 11, sliding groove; 110, flared portion; 111, flat section; 112, curved section; 113, convex portion; 2, second base; 21, bottom plate; 22, spherical hinge seat; 221, hollow portion; 222, reinforcing portion; 23, reinforcing rib; 3, adjusting assembly; 30, mounting space; 31, first rotating member; 32, second rotating member; 33, support arm; 4, connecting member; 41, limiting portion; 42, connecting portion; 43, fastening portion; 5, sliding member; 6, cable. DETAILED DESCRIPTION
[0039] To make the objects, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are some but not all of the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the protection scope of the present application.
[0040] The embodiments of the present application are described below with reference to the drawings. Figures 1 to 14
[0041] According to the embodiments of the present application, in one aspect, a flexible photovoltaic support with automatic deviation rectification orientation function is provided, which comprises a first base 1, a second base 2 and an adjusting assembly 3. Specifically, the second base 2 is movably mounted on the first base 1 along a first direction, one end of the adjusting assembly 3 is rotatably mounted on the second base 2, and the other end forms a mounting space 30.
[0042] Further, the mounting space 30 is provided along a second direction to allow a cable 6 to be slidably arranged in the mounting space 30. One end of the adjusting assembly 3 is adapted to rotate relative to the second base 2 to make the mounting space 30 at the other end face the cable 6. Wherein, the first direction and the second direction are perpendicular to each other, so that the cable 6 is arranged in the mounting space 30 along the second direction. Figures 1 to 14 As shown in the figure, direction X is the first direction, and direction Y is the second direction.
[0043] By using the technical solutions of the present application, when the flexible photovoltaic support moves in the first direction due to construction errors or the influence of wind, earthquake and other uncontrollable factors (as shown in the figure), the first base 1 and the second base 2 can move relative to each other in the first direction to offset the position deviation of the flexible photovoltaic support in the first direction, so that the second base 2 and the adjusting assembly 3 mounted on the second base 2 remain in the original position, and the mounting space 30 formed on the adjusting assembly 3 can also remain in the original position. Figure 12
[0044] Alternatively, when the flexible photovoltaic support is twisted or rotated about the second direction (such as Figure 13 As shown, the flexible photovoltaic bracket rotates around the direction R1), and one end of the adjustment component 3 can rotate relative to the second base 2, that is, the adjustment component 3 rotates in the direction R2 opposite to the direction R1 relative to the second base 2 to offset the angular deviation of the flexible photovoltaic bracket, so that the installation space 30 at the other end of the adjustment component 3 remains in a state opposite to the original position of the cable 6.
[0045] Alternatively, when the flexible photovoltaic support is twisted or rotated around the first direction (such as Figure 14 As shown, the flexible photovoltaic bracket rotates around direction P), one end of the adjustment component 3 can rotate relative to the second base 2, that is, the adjustment component 3 rotates in the direction opposite to the direction P relative to the second base 2 to offset the angular offset of the flexible photovoltaic bracket, so that the installation space 30 at the other end of the adjustment component 3 remains in a state opposite to the original position of the cable 6; at the same time, the cable 6 can be slidably arranged in the installation space 30, and the installation space 30 of the adjustment component 3 can produce relative movement with the cable 6 in the second direction to offset the position offset in the second direction generated when the flexible photovoltaic bracket rotates.
[0046] Therefore, in the technical solution of the present invention, the first base 1, the second base 2 and the adjustment component 3 work together to achieve automatic azimuth correction, offset the azimuth offset of the flexible photovoltaic bracket and the rope 6, so that the position of the installation space 30 always corresponds to the rope 6, so the rope 6 passing through the installation space 30 can also maintain its original extension direction without tilting or twisting, and the rope 6 will not generate additional additional force on the flexible photovoltaic bracket, reducing or even eliminating the wear on the rope 6 and the damage to the flexible photovoltaic bracket, thereby improving the service life of the rope 6 and the flexible photovoltaic bracket, and improving the safety and reliability of the structure.
[0047] Furthermore, the first base 1 and the second base 2 can be moved relative to each other in the first direction through a driving component, such as a linear motor, a cylinder, etc.; or the first base 1 and the second base 2 can be moved relative to each other in the first direction through a connecting member 4.
[0048] Specifically, in some embodiments, the flexible photovoltaic support further includes at least one set of connectors 4, and at least one set of slide grooves 11 is correspondingly provided on the top of the first base 1, and the slide grooves 11 extend along the first direction. One end of the connector 4 is slidably connected to the slide groove 11, and the other end is connected to the second base 2. Since the connector 4 and the slide groove 11 are slidably connected, when the flexible photovoltaic support is offset in the first direction, the connector 4 can spontaneously slide relative to the slide groove 11, thereby driving the second base 2 connected to the other end of the connector 4 to move, that is, driving the second base 2 to move in the first direction, which has a simple structure and high reliability.
[0049] It should be noted that the number of each group of connecting pieces 4 and the number of each group of sliding grooves 11 are not limited in the present application, as long as the relative movement of the first base 1 and the second base 2 in the first direction can be realized.
[0050] For example, as shown in Figures 1 to 6 , the number of each group of connecting pieces 4 is four, and the number of each group of sliding grooves 11 is two. The two sliding grooves 11 are arranged in the second direction with a certain interval, and two connecting pieces 4 are arranged in each sliding groove 11. In this way, the stability of the movement between the first base 1 and the second base 2 can be maintained. Alternatively, in some embodiments not shown in the drawings, the number of each group of connecting pieces 4 can be two, the number of each group of sliding grooves 11 can be two, and one connecting piece 4 can be arranged in each sliding groove 11. Alternatively, in some embodiments not shown in the drawings, the number of each group of sliding grooves 11 is one, and the number of each group of connecting pieces 4 is one, two or other numbers.
[0051] Further, in some embodiments, as shown in Figure 2 and Figure 5 , the connecting piece 4 is provided with a limiting portion 41, and the limiting portion 41 is clamped in the sliding groove 11. At least one end of the sliding groove 11 is provided with an expanded portion 110, and the size of the expanded portion 110 is matched with the limiting portion 41, so that the limiting portion 41 is adapted to enter or disengage from the sliding groove 11 through the expanded portion 110. In this way, the convenience of installing and dismounting the connecting piece 4 on the first base 1 is improved, which is convenient for construction.
[0052] For example, both ends of the sliding groove 11 can be provided with the expanded portion 110, and the connecting piece 4 can be installed or dismounted at both ends of the sliding groove 11.
[0053] For example, as shown in Figure 2 , the connecting piece 4 is further provided with a connecting portion 42 and a fastening portion 43. One end of the connecting portion 42 is connected with the limiting portion 41, and the other end of the connecting portion 42 extends out of the sliding groove 11. The second base 2 is provided with a connecting hole corresponding to the position of the connecting portion 42. One end of the connecting portion 42 extending out of the sliding groove 11 passes through the connecting hole and is connected with the fastening portion 43. In this way, in the third direction (the third direction is perpendicular to the first direction and the second direction), the first base 1 and the second base 2 are clamped between the fastening portion 43 and the limiting portion 41, which is simple in structure and convenient to install. For example, the connecting portion 42 and the limiting portion 41 can be integrally formed, and the connecting portion 42 and the fastening portion 43 are threadedly connected. Preferably, the connecting portion 42 and the limiting portion 41 can adopt a bolt structure, and the fastening portion 43 adopts a nut structure.
[0054] It should be noted that, as shown in Figure 4 and Figure 5 , the connecting piece 4 is further provided with a limiting portion 41, and the limiting portion 41 is clamped in the sliding groove 11. At least one end of the sliding groove 11 is provided with an expanded portion 110, and the size of the expanded portion 110 is matched with the limiting portion 41, so that the limiting portion 41 is adapted to enter or disengage from the sliding groove 11 through the expanded portion 110. In this way, the convenience of installing and dismounting the connecting piece 4 on the first base 1 is improved, which is convenient for construction.As shown, the slot of the sliding groove 11 comprises the flared portion 110 and a necked portion inside the flared portion 110, the setting size of the necked portion in the second direction is smaller than the setting size of the limiting portion 41 and larger than the setting size of the connecting portion 42.
[0055] For example, the limiting portion 41 and the connecting portion 42 are both substantially configured as a cylindrical structure, the setting size of the flared portion 110 in the second direction is slightly larger than the radial size of the limiting portion 41, and the setting size of the flared portion 110 in the first direction is slightly larger than the axial size of the limiting portion 41. The setting size of the necked portion in the second direction is smaller than the radial size of the limiting portion 41 and larger than the radial size of the connecting portion 42.
[0056] Further, as shown in Figure 2 and Figure 6 in the first direction, the sliding groove 11 comprises a straight section 111 and a curved section 112, the curved section 112 is connected to at least one end of the straight section 111, and the flared portion 110 is formed in the curved section 112 to improve the smoothness of the limiting portion 41 installed in the sliding groove 11. Preferably, both ends of the straight section 111 are provided with the curved section 112.
[0057] As shown in Figure 6 (a) and Figure 6 (b), after the limiting portion 41 of the connecting piece 4 enters the curved section 112 from the flared portion 110, it can slide into the straight section along the extension direction of the curved section 112, realizing the automatic standing of the connecting piece 4 in the sliding groove 11, and facilitating installation.
[0058] Further, the inner groove wall of the sliding groove 11 is provided with a convex portion 113, which is located at the connection between the straight section 111 and the curved section 112. For example, both ends of the sliding groove 11 are provided with the convex portion 113, which is used to limit the movement range of the connecting piece 4 in the first direction, avoiding the connecting piece 4 from leaving the sliding groove 11.
[0059] As shown in Figure 6 (c) and Figure 6 (d), under the limiting action of the convex portion 113, the limiting portion 41 of the connecting piece 4 can be reliably clamped in the sliding groove 11 whether in a tightened state or an untightened state.
[0060] As can be understood, as shown in Figure 6 , at the position corresponding to the convex portion 113, the setting height of the lowest point of the curved section 112 in the third direction is lower than the setting height of the straight section 111, so as to facilitate the smooth sliding of the limiting portion 41 into the straight section 111.
[0061] Further, as shown in Figures 7-9As shown, the second base 2 comprises a bottom plate 21 connected with the connecting piece 4 and a spherical hinge base 22 rotatably connected with the adjusting assembly 3. The bottom plate 21 and the spherical hinge base 22 can be fixedly connected or detachably connected. For example, the bottom plate 21 and the spherical hinge base 22 are welded into an integral structure by a reinforcing rib 23. The reinforcing rib 23 can be provided with multiple reinforcing ribs, which are arranged along the circumference of the spherical hinge base 22 to improve the structural strength of the spherical hinge base 22. Preferably, the reinforcing rib 23 is provided with four reinforcing ribs, two of which are arranged on the two sides of the spherical hinge base 22 along a first direction, and the other two are arranged on the two sides of the spherical hinge base 22 along a second direction.
[0062] Further, the adjusting assembly 3 comprises a spherical first rotating member 31 rotatably embedded in the spherical hinge base 22. The spherical first rotating member 31 and the spherical hinge base 22 are matched with each other, which can realize rotation in any direction between the adjusting assembly 3 and the second base 2, and the reliability of the azimuth correction is higher.
[0063] Specifically, the spherical hinge base 22 is hollow and formed with a hollow portion 221, which is substantially configured as a spherical structure and matched with the size of the first rotating member 31. The first rotating member 31 is rotatably arranged in the hollow portion 221.
[0064] Further, the top of the spherical hinge base 22 is provided with a reinforcing portion 222 surrounding the periphery of the first rotating member 31. The size of the reinforcing portion 222 is smaller than the diameter of the first rotating member 31, which can further improve the structural strength of the spherical hinge base 22 and prevent the first rotating member 31 from being separated from the hollow portion 221. For example, the reinforcing portion 222 is configured as a circular ring structure and integrally formed with the spherical hinge base 22, or the reinforcing portion 222 is welded on the top of the spherical hinge base 22.
[0065] Further, as shown, Figure 10 The adjusting assembly 3 further comprises a second rotating member 32 rotatably mounted on the top of the first rotating member 31 around its own axis. An installation space 30 is formed on the inner side of the second rotating member 32, so that the cable 6 is slidably installed in the installation space 30, which reduces the sliding friction between the flexible photovoltaic support and the cable 6 and protects the PE protective sleeve or the anti-corrosion galvanized layer on the surface of the cable 6 from being torn. For example, the second rotating member 32 can be a pulley.
[0066] Specifically, the top of the first rotating member 31 is provided with two supporting arms 33, and the second rotating member 32 is connected between the two supporting arms 33 by a rotating shaft, and the second rotating member 32 can rotate around the rotating shaft.
[0067] It can be understood that the support arm 33 is arranged on the part of the first rotating member 31 located outside the hollow portion 221, and the support arm 33 is connected between the first rotating member 31 and the second rotating member 32, so as to support the second rotating member 32 and limit the rotating angle of the first rotating member 31.
[0068] Further, the flexible photovoltaic support further comprises a plurality of sliding members 5, the sliding members 5 are made of a slidable material with a small friction coefficient, and the plurality of sliding members 5 are respectively arranged between the connecting member 4 and the first base 1, between the first base 1 and the second base 2, and between the second base 2 and the adjusting assembly 3, so as to improve the smoothness of mutual movement or rotation. For example, the material of the sliding member 5 can be polytetrafluoroethylene.
[0069] For example, the sliding member 5 comprises a first sliding member, a second sliding member and a third sliding member.
[0070] The first sliding member is arranged between the limiting portion 41 and the inner groove wall of the sliding groove 11, and the number of the first sliding members is the same as the number of the connecting members 4. Specifically, the first sliding member can be a gasket coated with a polytetrafluoroethylene layer, or the first sliding member can be a polytetrafluoroethylene layer coated on the top surface of the limiting portion 41.
[0071] The second sliding member is arranged between the top surface of the first base 1 and the bottom surface of the bottom plate 21. Specifically, the second sliding member can be a polytetrafluoroethylene layer coated on the bottom surface of the bottom plate 21.
[0072] The third sliding member is arranged between the inner cavity wall of the hollow portion 221 and the outer wall of the first rotating member 31. Specifically, the third sliding member can be a polytetrafluoroethylene layer coated on the outer wall of the first rotating member 31.
[0073] Further, in another embodiment, as shown in FIG. 1, Figure 11 The flexible photovoltaic support comprises a first base 1, a plurality of second bases 2 and a plurality of adjusting assemblies 3. The first base 1 is provided with a plurality of groups of sliding grooves 11, the groups of sliding grooves 11 are arranged at intervals along a first direction, and each group of sliding grooves 11 is connected with one second base 2 through a group of connecting members 4. The top of each second base 2 is rotatably provided with one adjusting assembly 3, and each adjusting assembly 3 is formed with the above-mentioned mounting space 30.
[0074] According to the embodiment of the present application, on the other hand, a support structure is also provided, comprising the flexible photovoltaic support as described above and at least one cable 6, the cable 6 is arranged in the mounting space 30 along a second direction. The number of the cables 6 can be adjusted adaptively according to the actual use, which is not limited in the present application.
[0075] The first base 1, the second base 2 and the adjusting assembly 3 in the support structure of the present application work together to realize automatic deviation correction of the azimuth, offset the deviation of the flexible photovoltaic support and the cable 6 in the azimuth, so that the position of the mounting space 30 always corresponds to the cable 6, and therefore the cable 6 arranged in the mounting space 30 can also be maintained in the original extension direction, without tilting or twisting, so that the cable 6 will not generate additional additional force on the flexible photovoltaic support, reducing or even eliminating the wear and tear of the cable 6 and the damage to the flexible photovoltaic support, improving the service life of the cable 6 and the flexible photovoltaic support, and improving the safety and reliability of the structure.
[0076] The flexible photovoltaic support and the support structure with automatic deviation correction function provided by the present application can realize automatic deviation correction of the azimuth when deviation in the azimuth occurs due to construction errors or force majeure factors, protect the cable and the flexible photovoltaic support, improve the service life and structural safety of the structure, and the structure is simple, low in cost, and the correction of the azimuth does not require manual intervention, reducing the operation and maintenance cost.
[0077] Although the embodiments of the present application are described in combination with the drawings, various modifications and variations can be made by those skilled in the art without departing from the spirit and scope of the present application, and such modifications and variations all fall within the scope defined by the appended claims.
Claims
1. A flexible photovoltaic bracket with automatic orientation correction function, characterized in that: The flexible photovoltaic support comprises: a first base (1); A second base (2) is movably mounted on the first base (1) along a first direction; An adjusting component (3), one end of the adjusting component (3) is rotatably mounted on the second base (2), and the other end is formed with an installation space (30), the installation space (30) is arranged to penetrate along the second direction so that the rope (6) can be slidably inserted into the installation space (30); one end of the adjusting component (3) is suitable for relative rotation with the second base (2) so that the installation space (30) at the other end is opposite to the rope (6); The first direction and the second direction are perpendicular to each other; The flexible photovoltaic support further comprises at least one set of connecting members (4); At least one set of slide grooves (11) is correspondingly provided on the top of the first base (1), and the slide grooves (11) are extended along the first direction; one end of the connecting member (4) is slidably connected to the slide grooves (11), and the other end is connected to the second base (2); The connecting member (4) is provided with a limiting portion (41), and the limiting portion (41) is clamped in the sliding groove (11); At least one end of the chute (11) is provided with a flared portion (110), and the setting size of the flared portion (110) is adapted to the limiting portion (41), so that the limiting portion (41) is suitable for entering or exiting the chute (11) through the flared portion (110); Along the first direction, the chute (11) comprises a straight section (111) and a curved section (112), the curved section (112) is connected to at least one end of the straight section (111), and the flared portion (110) is formed in the curved section (112); The inner groove wall of the chute (11) is provided with a convex portion (113), and the convex portion (113) is located at the junction of the straight section (111) and the curved section (112); The second base (2) comprises a bottom plate (21) and a ball joint seat (22), wherein the bottom plate (21) is connected to the connecting member (4), and the ball joint seat (22) is rotatably connected to the adjustment assembly (3).
2. The flexible photovoltaic support with automatic orientation correction function according to claim 1, characterized in that: The adjustment assembly (3) comprises a spherical first rotating member (31), and the first rotating member (31) is rotatably embedded in the spherical joint seat (22).
3. The flexible photovoltaic support with automatic orientation correction function according to claim 2, characterized in that: A reinforcement portion (222) is provided on the top of the ball joint seat (22), and the reinforcement portion (222) is arranged around the periphery of the first rotating member (31). The setting size of the reinforcement portion (222) is smaller than the diameter of the first rotating member (31).
4. The flexible photovoltaic support with automatic orientation correction function according to claim 2, characterized in that: The adjustment assembly (3) further comprises a second rotating member (32), the second rotating member (32) being rotatably mounted on the top of the first rotating member (31) around its own axis, and the mounting space (30) is formed on the inner side of the second rotating member (32).
5. A support structure, characterized in that: include: The flexible photovoltaic bracket according to any one of claims 1 to 4; At least one cable (6), the cable (6) passing through the installation space (30) along the second direction.
Citation Information
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