Multi-protection guy protection sleeve for guy hardware
By introducing a motor-driven positioning plate and a photovoltaic panel adjustment structure into the cable protection sleeve, the problems of sleeve swaying and high wind resistance in high wind environments were solved, thereby improving the stability of the equipment and the utilization rate of resources.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- HEBEI JINGYE ELECTRONIC TECHNOLOGY CO LTD
- Filing Date
- 2026-03-11
- Publication Date
- 2026-05-29
AI Technical Summary
Existing guy wire protection sleeves are prone to shifting and swaying in windy conditions, leading to increased wear, shortened service life, and greater wind resistance, which affects equipment stability.
A multi-protection cable protection sleeve for cable fittings was designed, comprising components such as a shell, movable sleeve, support frame, positioning plate, photovoltaic panel, and guide fins. The positioning plate is driven by a motor to fit against the outside of the sleeve, and the photovoltaic panel automatically adjusts its angle to reduce wind resistance and improve wind energy utilization.
It effectively reduces the collision between the movable sleeve and the inner wall of the outer shell, extends the service life, and optimizes wind resistance and photovoltaic power generation under different wind conditions, thereby improving the stability and resource utilization of the equipment.
Smart Images

Figure CN122106323A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of guy wire protection technology, and more specifically, to a multi-protection guy wire protective sleeve for guy wire fittings. Background Technology
[0002] Currently, guy wire sheaths are protective devices used for guy wires on utility poles. They are mainly divided into three categories: telecommunications and power guy wire sheaths, and passageway warning tubes. Most are made of PVC material and feature insulation, strong weather resistance, and easy installation. The main body is a plastic round tube with longitudinal slits, which achieves quick closure through a groove and convex edge interlocking structure. It can cover specifications such as diameters of 30-160mm and lengths of 1500-3000mm. The sheaths feature bright or reflective designs, serving both line marking and safety warning functions. Passageway warning tubes are often coated with road marking paint to enhance visibility.
[0003] Chinese Patent CN120100240A, authorized and published on June 6, 2025, discloses a multi-protection power cable protective sleeve, including a protective tube. An extension mechanism is installed inside the protective tube, and a wind-collecting mechanism is installed on the surface of the protective tube. The extension mechanism includes an electric air pump fixedly connected to the surface of the protective tube, and an air inlet pipe is fixedly connected to the output end of the electric air pump. Because this device relies solely on a guiding device to support the extended protective tube in windy conditions, the extended protective tube is prone to shifting, causing it to shake against the interior of the protective tube, thus increasing wear and reducing the service life of the device. Summary of the Invention
[0004] To address the shortcomings of existing technologies, this invention provides a multi-protective cable sleeve for cable fittings, solving the problems mentioned in the background section.
[0005] To achieve the above objectives, this application provides a multi-protection cable sleeve for cable fittings, including an outer shell, a reflective strip with a warning function on the outer side of the outer shell, a movable sleeve inside the outer shell, a cable protection sleeve on the inner side of the movable sleeve, and a support frame on the outer side of the outer shell. A hinge block is fixedly connected to the outer side of the outer shell. An L-shaped rotating plate is movably connected inside the hinge block. An arc-shaped fixing plate is fixedly connected to the top of the L-shaped rotating plate. An elastic telescopic block is fixedly connected inside the arc-shaped fixing plate. A positioning plate is fixedly connected to the inner side of the elastic telescopic block. A roller is movably connected to the inner side of the positioning plate. A rotating block is fixedly connected to the outer side of the L-shaped rotating plate. A push block is fixedly connected to the outer side of the rotating block. A hydraulic block is movably connected to the bottom of the push block. The bottom of the hydraulic block is fixedly connected to the outer side of the hinge block via a fixing plate. The hydraulic block is movably connected to the first photovoltaic panel via a transmission component. With the first photovoltaic panel and positioning plate in place, when the equipment encounters strong winds, the motor is started, causing the positioning plate to automatically rotate and fit against the outer side of the movable sleeve. This prevents the movable sleeve from swaying due to significant wind resistance during movement, reducing the collision between the movable sleeve and the inner wall of the outer shell, extending the service life of the movable sleeve. Simultaneously, the extended first photovoltaic panel automatically moves inward, reducing the wind resistance of the first photovoltaic panel and making the overall equipment more stable.
[0006] Preferably, the transmission component includes a first hose, a second hydraulic block, and a second pusher block. The bottom of the first hydraulic block is fixedly connected to one end of the first hose, the other end of the first hose is fixedly connected to the top of the second hydraulic block, the outer side of the second hydraulic block is fixedly connected to the inside of the outer shell, the outer side of the second hydraulic block is movably connected to the second pusher block, and the top of the second pusher block is fixedly connected to a first photovoltaic panel.
[0007] Preferably, the outer surface of the movable sleeve is provided with a guide groove, the outer side of the outer shell is fixedly connected to a wind power generation device, the bottom of the movable sleeve is movably connected to an inflation device, the top of the first photovoltaic panel is movably connected to a flip photovoltaic panel assembly, and the top of the flip photovoltaic panel assembly is fixedly connected to a flow guiding buffer assembly.
[0008] Preferably, the center of the cross-section of the positioning plate coincides with the center of the cross-section of the outer shell, and the inner side of the roller is tangent to the outer surface of the movable sleeve.
[0009] Preferably, the flip-up photovoltaic panel assembly includes a push block three, a hydraulic block three, a hose two, a fixing plate two, a hydraulic block four, a rack, a gear, a rotating shaft one, a fixing plate three, and a second photovoltaic panel. The outer side of the outer shell is fixedly connected to the hydraulic block three, the top of the hydraulic block three is movably connected to the push block three, the outer side of the hydraulic block three is fixedly connected to one end of the hose two, the other end of the hose two is fixedly connected to the rear side of the hydraulic block four, the rear side of the hydraulic block four is fixedly connected to the outer side of the first photovoltaic panel through the fixing plate two, the front side of the hydraulic block four is movably connected to the rack, the rear side of the first photovoltaic panel is fixedly connected to the fixing plate three, the rotating shaft one is movably connected between the fixing plates three, the two ends of the rotating shaft one are fixedly connected to the gear, the rack meshes with the gear, and the outer side of the rotating shaft one is fixedly connected to the second photovoltaic panel. The system is equipped with a flip-up photovoltaic panel assembly. When the movable sleeve retracts, the second photovoltaic panel automatically rotates and opens, thereby increasing photovoltaic power generation and resource utilization when the wind is weak. When the equipment encounters strong winds, the second photovoltaic panel automatically rotates to the top of the first photovoltaic panel, reducing the overall wind resistance of the equipment and improving its wind resistance, making the equipment more stable in use.
[0010] Preferably, the bottom horizontal plane of the second photovoltaic panel is higher than the top horizontal plane of the first photovoltaic panel, and the length of the second photovoltaic panel is the same as the length of the first photovoltaic panel.
[0011] Preferably, a heat dissipation device is fixedly connected inside the second photovoltaic panel, and a heat dissipation device is fixedly connected inside the first photovoltaic panel, and the thickness of the first photovoltaic panel is the same as the thickness of the second photovoltaic panel.
[0012] Preferably, the flow-guiding and buffering assembly includes flow-guiding fins, a second rotating shaft, a wind turbine fan, a first fixing block, an elastic telescopic rod, a spring, a second fixing block, and a groove. Flow-guiding fins are fixedly connected to the top of the second photovoltaic panel. A second rotating shaft is movably connected between the flow-guiding fins. A wind turbine fan is fixedly connected to the outer side of the second rotating shaft. A first fixing block is fixedly connected to the top of the second photovoltaic panel. An elastic telescopic rod is fixedly connected to the top of the first fixing block. A second fixing block is fixedly connected to the top of the elastic telescopic rod. A spring is fixedly connected between the second fixing block and the first fixing block. A groove is formed on the top surface of the second fixing block. By setting up the flow-guiding and buffering assembly, when the second photovoltaic panel rotates to close, the flow-guiding fins guide the crosswind, reducing the wind resistance at the top of the second photovoltaic panel. Simultaneously, wind energy is absorbed by the wind turbine fan and converted into electrical energy, thereby improving resource utilization. When the second photovoltaic panel rotates to open, the second fixing block fits against the outer surface of the outer casing, making the operation of the second photovoltaic panel more stable and the overall equipment more stable.
[0013] Preferably, the arc of the groove is consistent with the arc of the outer surface of the outer shell, and the spacing between the guide fins is greater than the width of the wind turbine fan.
[0014] Preferably, the guide fins have beveled openings on both sides, and the bottom horizontal plane of the wind turbine fan is higher than the bottom horizontal plane of the guide fins.
[0015] The advantages of this application are: (1) When encountering strong winds, this application enables the positioning plate to automatically rotate and fit against the outer side of the movable sleeve, so that the movable sleeve will not sway due to large wind resistance when it moves, thereby reducing the collision between the movable sleeve and the inner wall of the outer shell and extending the service life of the movable sleeve. At the same time, it enables the extended first photovoltaic panel to automatically move inward, thereby reducing the wind resistance of the first photovoltaic panel and making the overall use of the equipment more stable.
[0016] (2) When the wind force decreases, the second photovoltaic panel automatically rotates and turns on, thereby increasing the photovoltaic power generation when the equipment encounters weak wind and improving the resource utilization rate. When the equipment encounters strong wind, the second photovoltaic panel automatically rotates to the top of the first photovoltaic panel, thereby reducing the overall wind resistance of the equipment and improving the wind resistance of the equipment, making the equipment more stable in use.
[0017] (3) When the second photovoltaic panel rotates and closes, the guide fins guide the crosswind, reducing the wind resistance at the top of the second photovoltaic panel. At the same time, the wind energy is absorbed by the wind turbine and converted into electrical energy, thereby improving the resource utilization rate. When the second photovoltaic panel rotates and opens, the fixing block two fits against the outer surface of the outer shell, making the second photovoltaic panel run more stably and the overall equipment more stable. Attached Figure Description
[0018] The accompanying drawings, which form part of this application, are used to provide a further understanding of the application and to make other features, objects, and advantages of the application more apparent. The illustrative embodiments and descriptions of this application are used to explain the application and do not constitute an undue limitation of the application. In the drawings: Figure 1 This is a schematic diagram of the overall left side structure of the present invention; Figure 2 This is a schematic diagram of the overall right-side structure of the present invention; Figure 3 This is a schematic diagram of some components of the present invention; Figure 4 This is the present invention. Figure 3 Enlarged structural diagram at point A in the middle; Figure 5 This is a schematic diagram of the structure of the flip-type photovoltaic module of the present invention; Figure 6 This is the present invention. Figure 5 Enlarged structural diagram at point B; Figure 7 This is a schematic diagram of the flow-guiding buffer component structure of the present invention; Figure 8 This is the present invention. Figure 7 Enlarged structural diagram at point C.
[0019] In the above image, 100. Outer casing; 200. Reflective strip; 300. Movable sleeve; 400. Cable protection sleeve; 500. Support frame; 600. Guide groove; 700. Wind power generation equipment; 800. Inflatable equipment; 901. Hinge block; 902. L-shaped rotating plate; 903. Arc-shaped fixing plate; 904. Elastic telescopic block; 905. Positioning plate; 906. Roller; 907. Rotating block; 908. Push block one; 909. Hydraulic block one; 910. Fixing plate one; 911. Hoses one; 912. Hydraulic block two; 913. Push block two; 914. First photovoltaic panel; 1000. Flip-over photovoltaic panel module; 1001. Push block three; 1002. Hydraulic block three; 1003. Hoses two; 1004. Fixing plate two; 1005. Hydraulic block four; 1006. Rack; 1007. Gear; 1008. Rotating shaft one; 1009. Fixing plate three; 1010. Second photovoltaic panel; 1100. Flow guide and buffer assembly; 1101. Flow guide fins; 1102. Rotating shaft two; 1103. Wind turbine fan; 1104. Fixing block one; 1105. Elastic telescopic rod; 1106. Spring; 1107. Fixing block two; 1108. Groove. Detailed Implementation
[0020] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are merely some, not all, of the embodiments of the present application. All other embodiments obtained by those skilled in the art based on the embodiments of the present application without creative effort should fall within the scope of protection of the present application.
[0021] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be used interchangeably where appropriate for the purposes of describing embodiments of this application herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.
[0022] In this application, the terms "upper," "lower," "left," "right," "front," "rear," "top," "bottom," "inner," "outer," "middle," "vertical," "horizontal," "lateral," and "longitudinal" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for the purpose of better describing this application and its embodiments, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation.
[0023] Furthermore, in addition to indicating location or positional relationship, some of the aforementioned terms may also have other meanings. For example, the term "above" may also be used in some cases to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.
[0024] Furthermore, the terms "installation," "setup," "equipped with," "connection," "linking," and "socketing" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral structure; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium, or an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.
[0025] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. This application will now be described in detail with reference to the accompanying drawings and embodiments.
[0026] Example 1, see Figures 1-4 This embodiment provides a multi-protection cable sleeve for cable fittings, including a housing 100. A reflective strip 200 with a warning function is provided on the outer side of the housing 100. A movable sleeve 300 is provided inside the housing 100 to extend the protection of the cable. A cable protection sleeve 400 is provided on the inner side of the movable sleeve 300. A support frame 500 is provided on the outer side of the housing 100 to provide initial support for the movable sleeve 300. A hinge block 901 is fixedly connected to the outer side of the outer shell 100. An L-shaped rotating plate 902 is movably connected inside the hinge block 901. An arc-shaped fixing plate 903 is fixedly connected to the top of the L-shaped rotating plate 902. An elastic telescopic block 904 is fixedly connected inside the arc-shaped fixing plate 903. The elastic telescopic block 904 is set so that the kinetic energy of the shaking of the movable sleeve 300 is converted into the elastic potential energy of the elastic telescopic block 904. A positioning plate 905 is fixedly connected to the inner side of the elastic telescopic block 904. A roller 906 is movably connected to the inner side of the positioning plate 905. A rotating block 907 is fixedly connected to the outer side of the L-shaped rotating plate 902. A push block 908 is fixedly connected to the outer side of the rotating block 907. A hydraulic block 909 is movably connected to the bottom of the push block 908. The bottom of the hydraulic block 909 is fixedly connected to the outer side of the hinge block 901 through a fixing plate 910. The hydraulic block 909 is movably connected to the first photovoltaic panel 914 through a transmission component. The transmission components include a first hose 911, a second hydraulic block 912, and a second pusher block 913. The bottom of the first hydraulic block 909 is fixedly connected to one end of the first hose 911, and the other end of the first hose 911 is fixedly connected to the top of the second hydraulic block 912. The first hose 911 is provided so that the interior of the first hydraulic block 909 communicates with the interior of the second hydraulic block 912. The outer side of the second hydraulic block 912 is fixedly connected to the interior of the outer casing 100. The second pusher block 913 is movably connected to the outer side of the second hydraulic block 912, and the top of the second pusher block 913 is fixedly connected to the first photovoltaic panel 914. The outer surface of the movable sleeve 300 is provided with a guide groove 600. A wind power generation device 700 is fixedly connected to the outer side of the outer shell 100. The wind power generation device 700 is set so that crosswinds are converted into electrical energy by the wind power generation device 700. An inflation device 800 is movably connected to the bottom of the movable sleeve 300. The inflation device 800 is set so that the inflation device 800 drives the movable sleeve 300 to move. A flip photovoltaic panel assembly 1000 is movably connected to the top of the first photovoltaic panel 914. A flow guiding buffer assembly 1100 is fixedly connected to the top of the flip photovoltaic panel assembly 1000. The center of the cross-section of the positioning plate 905 coincides with the center of the cross-section of the outer shell 100, and the inner side of the roller 906 is tangent to the outer surface of the movable sleeve 300. The equipment is equipped with a first photovoltaic panel 914 and a positioning plate 905. When the equipment encounters strong winds, the motor is started, causing the positioning plate 905 to automatically rotate and fit against the outer side of the movable sleeve 300. This prevents the movable sleeve 300 from swaying due to large wind resistance when it moves, thereby reducing the collision between the movable sleeve 300 and the inner wall of the outer casing 100 and extending the service life of the movable sleeve 300. At the same time, the extended first photovoltaic panel 914 automatically moves inward, reducing the wind resistance of the first photovoltaic panel 914 and making the overall equipment more stable.
[0027] In practical use, when the above-mentioned equipment encounters strong winds, the movable sleeve 300 relies solely on the support frame 500 for support and guidance during movement. This increases the swaying of the movable sleeve 300, making it prone to collisions with the inner wall of the outer casing 100, thus reducing the equipment's service life. At this time, starting the motor causes the L-shaped rotating plate 902 to rotate, bringing the roller 906 into contact with the outer surface of the movable sleeve 300. This allows the elastic telescopic block 904 to absorb the kinetic energy of the movable sleeve 300's swaying and convert it into self-energy. The elastic potential energy of the body reduces the sway of the movable sleeve 300. At the same time, the rotating block 907 rotates with the L-shaped rotating plate 902, causing the push block 908 to move upward, reducing the internal pressure of the hydraulic block 909. The internal pressure of the hydraulic block 909 is then transmitted to the hydraulic block 912 through the hose 911, further reducing the internal pressure of the hydraulic block 912. This causes the push block 913 to move downward, retracting the first photovoltaic panel 914 downward, thereby reducing the wind resistance of the first photovoltaic panel 914 and making the equipment more stable in use.
[0028] Example 2, see Figures 1-6 Based on Embodiment 1, this embodiment of the rotating photovoltaic panel assembly 1000 includes a push block 3 1001, a hydraulic block 3 1002, a hose 2 1003, a fixing plate 2 1004, a hydraulic block 4 1005, a rack 1006, a gear 1007, a rotating shaft 1008, a fixing plate 3 1009, and a second photovoltaic panel 1010. The hydraulic block 3 1002 is fixedly connected to the outer side of the outer casing 100. The push block 3 1001 is movably connected to the top of the hydraulic block 3 1002. The outer side of the hydraulic block 3 1002 is fixedly connected to one end of the hose 2 1003, and the other end of the hose 2 1003 is fixedly connected to the rear side of the hydraulic block 4 1005. The hose 2 1003 is configured to... The interior of hydraulic block three 1002 is connected to the interior of hydraulic block four 1005. The rear side of hydraulic block four 1005 is fixedly connected to the outer side of the first photovoltaic panel 914 through fixing plate two 1004. A rack 1006 is movably connected to the front side of hydraulic block four 1005. A fixing plate three 1009 is fixedly connected to the rear side of the first photovoltaic panel 914. A rotating shaft one 1008 is movably connected between the fixing plates three 1009. Gears 1007 are fixedly connected to both ends of the rotating shaft one 1008. The rack 1006 meshes with the gears 1007. A second photovoltaic panel 1010 is fixedly connected to the outer side of the rotating shaft one 1008. The installation of the second photovoltaic panel 1010 improves the equipment's ability to absorb solar energy. The bottom horizontal plane of the second photovoltaic panel 1010 is higher than the top horizontal plane of the first photovoltaic panel 914, and the length of the second photovoltaic panel 1010 is the same as the length of the first photovoltaic panel 914. The second photovoltaic panel 1010 has a heat dissipation device fixedly connected inside, and the first photovoltaic panel 914 has a heat dissipation device fixedly connected inside. The thickness of the first photovoltaic panel 914 is the same as the thickness of the second photovoltaic panel 1010. The rotating photovoltaic panel module 1000 is set up so that when the movable sleeve 300 is retracted, the second photovoltaic panel 1010 automatically rotates and opens, thereby increasing the photovoltaic power generation when the equipment encounters weak winds and improving resource utilization. When the equipment encounters strong winds, the second photovoltaic panel 1010 automatically rotates to the top of the first photovoltaic panel 914, reducing the overall wind resistance of the equipment and improving its wind resistance, making the equipment more stable in use.
[0029] In practical use, when the wind weakens, the L-shaped rotating plate 902 rotates under the drive of the motor, causing the push block 1001 to move downwards. This increases the internal pressure of the hydraulic block 1002, which is then transmitted through the hose 1003 to the hydraulic block 1005. This increased pressure in the hydraulic block 1005 causes the rack 1006 to push outwards, causing the gear 1007 to rotate under the drive of the rack 1006. This causes the rotating shaft 1008 to rotate, opening the second photovoltaic panel 1010. This allows the first photovoltaic panel 914 and the second photovoltaic panel 1010 to simultaneously receive sunlight and generate electricity, thereby improving the equipment's resource utilization rate. When the wind increases, the second photovoltaic panel 1010 automatically rotates and resets, reducing the overall wind resistance of the equipment, improving its wind resistance, and making its operation more stable.
[0030] Example 3, see Figures 1-8 Based on Embodiment 1, this embodiment includes a flow-guiding buffer assembly 1100 comprising flow-guiding fins 1101, a second rotating shaft 1102, a wind turbine fan 1103, a first fixing block 1104, an elastic telescopic rod 1105, a spring 1106, a second fixing block 1107, and a groove 1108. The top of the second photovoltaic panel 1010 is fixedly connected to the flow-guiding fins 1101. The flow-guiding fins 1101 reduce the wind resistance at the top of the second photovoltaic panel 1010. The second rotating shaft 1102 is movably connected between the flow-guiding fins 1101. The outer side of the second rotating shaft 1102 is fixedly connected to… A wind turbine fan 1103 is connected to the top of the second photovoltaic panel 1010. A first fixing block 1104 is fixedly connected to the top of the first fixing block 1104. An elastic telescopic rod 1105 is fixedly connected to the top of the first fixing block 1104. The elastic telescopic rod 1105 is set so that it converts the kinetic energy of the second fixing block 1107 into elastic potential energy. A second fixing block 1107 is fixedly connected to the top of the elastic telescopic rod 1105. A spring 1106 is fixedly connected between the second fixing block 1107 and the first fixing block 1104. A groove 1108 is opened on the top surface of the second fixing block 1107. The arc of the groove 1108 is consistent with the arc of the outer surface of the outer shell 100, and the spacing between the guide fins 1101 is greater than the width of the wind turbine fan 1103. Both sides of the guide fin 1101 are provided with beveled openings, and the bottom horizontal plane of the wind turbine fan 1103 is higher than the bottom horizontal plane of the guide fin 1101. The flow-guiding buffer component 1100 is set up so that when the second photovoltaic panel 1010 rotates to close, the flow-guiding fins 1101 guide the crosswind, reducing the wind resistance at the top of the second photovoltaic panel 1010. At the same time, the wind energy is absorbed by the wind turbine fan 1103 and converted into electrical energy, thereby improving the resource utilization rate. When the second photovoltaic panel 1010 rotates to open, the fixing block 1107 is attached to the outer surface of the outer shell 100, making the second photovoltaic panel 1010 more stable during operation and making the overall equipment more stable.
[0031] In practical use, when the equipment encounters strong winds, the second photovoltaic panel 1010 rotates and closes, causing its top to directly contact the wind. This high wind resistance can easily cause the equipment to rotate. To address this, guide fins 1101 are installed to direct crosswinds, reducing wind resistance at the top of the second photovoltaic panel 1010. The guided crosswinds, passing through the guide fins 1101, cause the wind turbine fan 1103 to rotate, converting wind power into electrical energy and improving the equipment's resource utilization. When the second photovoltaic panel 1010 rotates and opens, the groove 1108 contacts the outer surface of the outer casing 100, allowing the elastic telescopic rod 1105 to support the bottom of the second photovoltaic panel 1010. When the second photovoltaic panel 1010 sways, the kinetic energy of the swaying is converted into elastic potential energy by the elastic telescopic rod 1105, making the overall equipment more stable.
[0032] The above are merely preferred embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A multi-protection pull cable protective sleeve for pull cable fittings, comprising an outer shell (100), wherein a reflective strip (200) with a warning function is provided on the outer side of the outer shell (100), a movable sleeve (300) is provided inside the outer shell (100), a pull cable protective sleeve (400) is provided on the inner side of the movable sleeve (300), and a support frame (500) is provided on the outer side of the outer shell (100). A hinge block (901) is fixedly connected to the outer side of the outer shell (100). An L-shaped rotating plate (902) is movably connected inside the hinge block (901). An arc-shaped fixing plate (903) is fixedly connected to the top of the L-shaped rotating plate (902). An elastic telescopic block (904) is fixedly connected inside the arc-shaped fixing plate (903). A positioning plate (905) is fixedly connected to the inner side of the elastic telescopic block (904). A roller is movably connected to the inner side of the positioning plate (905). The wheel (906) has a rotating block (907) fixedly connected to the outer side of the L-shaped rotating plate (902). The rotating block (907) has a push block (908) fixedly connected to the outer side of the push block (907). The bottom of the push block (908) is movably connected to a hydraulic block (909). The bottom of the hydraulic block (909) is fixedly connected to the outer side of the hinge block (901) through a fixing plate (910). The hydraulic block (909) is movably connected to the first photovoltaic panel (914) through a transmission component.
2. The multi-protection cable sleeve for cable fittings according to claim 1, characterized in that, The transmission component includes a first hose (911), a second hydraulic block (912), and a second pusher (913). The bottom of the first hydraulic block (909) is fixedly connected to one end of the first hose (911), and the other end of the first hose (911) is fixedly connected to the top of the second hydraulic block (912). The outer side of the second hydraulic block (912) is fixedly connected to the inside of the outer shell (100). The outer side of the second hydraulic block (912) is movably connected to the second pusher (913), and the top of the second pusher (913) is fixedly connected to the first photovoltaic panel (914).
3. The multi-protection cable sleeve for cable fittings according to claim 1, characterized in that, The outer surface of the movable sleeve (300) is provided with a guide groove (600), the outer side of the outer shell (100) is fixedly connected to a wind power generation device (700), the bottom of the movable sleeve (300) is movably connected to an inflation device (800), the top of the first photovoltaic panel (914) is movably connected to a flip photovoltaic panel assembly (1000), and the top of the flip photovoltaic panel assembly (1000) is fixedly connected to a flow guiding buffer assembly (1100).
4. The multi-protection cable sleeve for cable fittings according to claim 1, characterized in that, The center of the cross section of the positioning plate (905) coincides with the center of the cross section of the outer shell (100), and the inner side of the roller (906) is tangent to the outer surface of the movable sleeve (300).
5. A multi-protection cable sleeve for cable fittings according to claim 3, characterized in that, The flip-up photovoltaic panel assembly (1000) includes a push block three (1001), a hydraulic block three (1002), a hose two (1003), a fixing plate two (1004), a hydraulic block four (1005), a rack (1006), a gear (1007), a rotating shaft one (1008), a fixing plate three (1009), and a second photovoltaic panel (1010). The outer side of the outer shell (100) is fixedly connected to the hydraulic block three (1002), and the top of the hydraulic block three (1002) is movably connected to the push block three (1001). The outer side of the hydraulic block three (1002) is fixedly connected to one end of the hose two (1003), and the other end of the hose two (1003) is fixedly connected to the hydraulic block three (1001). The rear side of the hydraulic block four (1005) is fixedly connected, and the rear side of the hydraulic block four (1005) is fixedly connected to the outer side of the first photovoltaic panel (914) through the fixing plate two (1004). The front side of the hydraulic block four (1005) is movably connected to a rack (1006). The rear side of the first photovoltaic panel (914) is fixedly connected to a fixing plate three (1009). The fixing plates three (1009) are movably connected to a rotating shaft one (1008). The two ends of the rotating shaft one (1008) are fixedly connected to gears (1007). The rack (1006) meshes with the gears (1007). The outer side of the rotating shaft one (1008) is fixedly connected to a second photovoltaic panel (1010).
6. A multi-protection cable sleeve for cable fittings according to claim 5, characterized in that, The bottom horizontal plane of the second photovoltaic panel (1010) is higher than the top horizontal plane of the first photovoltaic panel (914), and the length of the second photovoltaic panel (1010) is the same as the length of the first photovoltaic panel (914).
7. A multi-protection cable sleeve for cable fittings according to claim 5, characterized in that, The second photovoltaic panel (1010) is internally connected to a heat dissipation device, and the first photovoltaic panel (914) is internally connected to a heat dissipation device. The thickness of the first photovoltaic panel (914) is the same as the thickness of the second photovoltaic panel (1010).
8. A multi-protection cable sleeve for cable fittings according to claim 3, characterized in that, The flow-guiding buffer assembly (1100) includes flow-guiding fins (1101), a second rotating shaft (1102), a wind turbine fan (1103), a first fixing block (1104), an elastic telescopic rod (1105), a spring (1106), a second fixing block (1107), and a groove (1108). The top of the second photovoltaic panel (1010) is fixedly connected to the flow-guiding fins (1101), and the second rotating shaft (1102) is movably connected between the flow-guiding fins (1101). The outer side of the second rotating shaft (1102) is fixed. A wind turbine fan (1103) is connected to the top of the second photovoltaic panel (1010). A fixing block one (1104) is fixedly connected to the top of the fixing block one (1104). An elastic telescopic rod (1105) is fixedly connected to the top of the elastic telescopic rod (1105). A fixing block two (1107) is fixedly connected to the top of the elastic telescopic rod (1105). A spring (1106) is fixedly connected between the fixing block two (1107) and the fixing block one (1104). A groove (1108) is provided on the top surface of the fixing block two (1107).
9. A multi-protection cable sleeve for cable fittings according to claim 8, characterized in that, The arc of the groove (1108) is consistent with the arc of the outer surface of the outer shell (100), and the spacing between the guide fins (1101) is greater than the width of the wind turbine fan (1103).
10. A multi-protection cable sleeve for cable fittings according to claim 8, characterized in that, Both sides of the guide fin (1101) are provided with beveled openings, and the bottom horizontal plane of the wind turbine fan (1103) is higher than the bottom horizontal plane of the guide fin (1101).