Cable-stayed line warning light

By designing a slanted wire warning light and utilizing a combination of detachable pins and elastic clamps, the cumbersome installation problem in existing technologies is solved, enabling quick and easy installation of the slanted wire warning light.

CN224531510UActive Publication Date: 2026-07-21ZHEJIANG TORMIN ELECTRICAL CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHEJIANG TORMIN ELECTRICAL CO LTD
Filing Date
2026-06-17
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

The existing guy wire warning lights are cumbersome to install, requiring construction workers to climb to heights for installation, which makes operation inconvenient.

Method used

A guy wire warning light was designed, including a guy wire sleeve, a warning light strip, an energy storage component, and a clamping component. Through the cooperation of a detachable pin and an elastic clamp, the guy wire can be quickly fixed and its position locked, avoiding high-altitude operations.

Benefits of technology

It enables rapid installation and fixation of the guy wire warning light, simplifies the construction process, and reduces construction difficulty and time costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to a warning light of a cable-stayed line, and relates to the technical field of warning devices, which comprises at least one cable-stayed line sleeve, at least one warning light strip, an energy storage component, a clamping component arranged on the side of the energy storage component away from the cable-stayed line sleeve, and a space formed between the energy storage component and the clamping component for accommodating the cable-stayed line; the clamping component is provided with at least one clamping piece moving towards the space and a detachable bolt. The energy storage component and the clamping component are fixed to the cable-stayed line on the ground, the bolt is not removed at this time, the energy storage component can move relative to the cable-stayed line, the energy storage component is pushed to a fixed position by the cable-stayed line sleeve, a rod with a hook or a wire harness connected with the bolt is used, the bolt is removed, the locking piece clamps the cable-stayed line, the position is fixed, the installation mode is simple and fast, and high-altitude operation is not needed.
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Description

Technical Field

[0001] This utility model relates to the field of warning equipment technology, specifically to a diagonal wire warning light. Background Technology

[0002] In the power, telecommunications and other related industries, in order to ensure the stability of buildings that occupy relatively small areas but are very tall, such as light poles, utility poles and iron towers, and to effectively prevent them from collapsing, a special structural support measure is usually adopted, namely, setting up diagonal guy wires to provide the necessary support for these structures.

[0003] The existing guy wire warning lights are complicated to install, requiring construction workers to climb to heights to install them. Utility Model Content

[0004] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a diagonal wire warning light.

[0005] To achieve the above objectives, the present invention provides the following technical solution: A guy wire warning light, comprising: At least one guy wire sleeve; At least one warning light strip is installed inside the guy wire sleeve; The energy storage component is electrically connected to the warning light strip via a connecting wire, and the energy storage component is detachably connected to the guy wire sleeve; A clamping assembly is disposed on the side of the energy storage assembly facing away from the guy wire sleeve, and a space for accommodating the guy wire is formed between the clamping assembly and the energy storage assembly. The clamping assembly is provided with at least one clamping member that moves toward the spatial direction and a detachable pin. The clamping member is elastically biased to clamp the inclined wire located in the space. The pin is detachably inserted between the clamping member and the energy storage component to resist the elastic bias and keep the clamping member in the first state of releasing the inclined wire. When the pin is pulled out, the clamping member automatically switches to the second state of clamping the inclined wire under the action of elastic bias.

[0006] The clamping member includes a main body, and the front end of the main body is provided with a pointed portion.

[0007] The clamping assembly includes a clamping seat, which has an arc-shaped groove on the side facing the energy storage assembly and at least one mounting seat for accommodating the clamping member on the side facing away from the energy storage assembly. The mounting seat has a first through hole that is perpendicular to the moving direction of the clamping member.

[0008] The clamping member is slidably disposed within the mounting base, and an elastic element for providing the elastic bias is provided between the clamping member and the mounting base.

[0009] The clamping member is provided with a second through hole corresponding to the first through hole. The pin passes through the mounting base and the clamping member in sequence to keep the clamping member in the first state.

[0010] The clamping seat has several symmetrically arranged first L-shaped locking blocks at its bottom. The energy storage component has corresponding second L-shaped locking blocks that form a radial interlock with the first L-shaped locking blocks. The energy storage component has a release space above the second L-shaped locking blocks for the first L-shaped locking blocks to slide and release.

[0011] One end of the clamping seat is provided with an L-shaped buckle, and the bottom surface of the energy storage component is provided with a guide groove that matches the L-shaped buckle. A limiting block is provided in the guide groove, and the limiting block and the wall of the guide groove together define the slot.

[0012] The guy wire sleeve is an annular tubular structure with a movable connecting structure on its annular wall for opening or closing the annular tubular structure.

[0013] The movable connection structure includes a limiting groove disposed at one end of the annular wall, and the other end of the annular wall is embedded in the limiting groove.

[0014] The bottom of the guy wire sleeve is equipped with a locking assembly.

[0015] The beneficial effects of this utility model are as follows: By fixing the energy storage component and clamping component to the guy wire on the ground without removing the pin, the energy storage component can move relative to the guy wire. After connecting the guy wire sleeve and using the guy wire sleeve to push the energy storage component to a fixed position, the locking component clamps the guy wire by removing the pin through the hook rod or the wire harness connected to the pin, thus fixing the position. The installation method is simple and quick, and no high-altitude operation is required. Attached Figure Description

[0016] Figure 1 This is a schematic diagram and a partially enlarged schematic diagram of the present invention.

[0017] Figure 2 This is a front view of the energy storage component of this utility model.

[0018] Figure 3 for Figure 2 A cross-sectional view at point AA.

[0019] Figure 4 This is a schematic diagram of the rear side of the energy storage component of this utility model.

[0020] Figure 5 for Figure 2 A cross-sectional view of section BB.

[0021] Figure 6 for Figure 2 A cross-sectional view at point CC.

[0022] Figure 7 This is a cross-sectional schematic diagram of the mounting base and clamping component of this utility model.

[0023] Figure 8 This is a cross-sectional schematic diagram of the inclined guy wire sleeve of this utility model. Detailed Implementation

[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0025] It should be noted that all directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of this utility model are only used to explain a specific posture (as shown in the attached figure).

[0026] like Figure 1 As shown, an embodiment of this utility model provides a guy wire warning light, particularly suitable for nighttime warning of guy wires on power poles, communication poles, and other facilities. The guy wire warning light mainly includes: an energy storage component 100, at least one guy wire sleeve 200, and a clamping component. The clamping component cooperates with the energy storage component 100 to fix it to the guy wire. The guy wire sleeve 200 is fitted over the guy wire and has a warning light strip inside (not shown in the figure).

[0027] like Figure 2 and Figure 6 As shown, the energy storage component 100 is used to provide operating power for the warning light strip. Specifically, the energy storage component 100 includes a housing 110. The housing 110 has a back side and a front side. The back side is configured as a connecting surface for cooperating with a clamping component described later, so as to fix the whole assembly to the guy wire. The front side is configured as a mounting surface for fixing the solar panel 140.

[0028] In this embodiment, to more efficiently absorb sunlight from different angles and improve charging efficiency, the mounting surface is not a single plane, but rather composed of two planes at a certain angle (e.g., between 150 and 180 degrees). Correspondingly, the energy storage component 100 includes two solar panels 140, which are respectively fixed on the two planes. The two solar panels 140 form a predetermined angle, ensuring that at least one solar panel receives good illumination regardless of the sun's azimuth.

[0029] In addition, the housing 110 contains a rechargeable battery (such as a lithium battery, not shown in the figure) and a control circuit board (not shown in the figure). The solar panel 140 is electrically connected to the rechargeable battery through the control circuit board, and is used to convert light energy into electrical energy and store it. The energy storage component 100 is also provided with a connecting wire 150 for electrical connection with the warning light strip. Preferably, the end of the connecting wire 150 is provided with a waterproof terminal, which is directly electrically connected to the input end of the warning light strip, thereby ensuring the electrical reliability of the connection point and effectively preventing rainwater infiltration that could cause short circuits or corrosion.

[0030] The number of guy wire sleeves 200 is determined according to the actual length of the guy wire in use. Each guy wire sleeve 200 has a ring-shaped hollow tubular structure and is fitted over the outside of the guy wire. The inside of each guy wire sleeve 200 is equipped with a warning light strip (not shown in the figure). This warning light strip is preferably an LED light strip, which can emit warning colors such as red and yellow light, and can be set to a constant light or flashing mode according to the control circuit.

[0031] In the assembly of multiple guy wire sleeves 200, the uppermost guy wire sleeve (i.e., the sleeve closest to the energy storage module 100) is fixedly connected to the energy storage module 100. Specifically, the energy storage module 100 has an arc-shaped connecting plate at its bottom, the inner arc surface of which matches the shape of the outer shell of the guy wire sleeve 200. The arc-shaped connecting plate is locked to the outer shell of the guy wire sleeve 200 using locking screws, thus achieving a rigid connection between the two.

[0032] The remaining lower guy wire sleeves 200 are sequentially fitted onto the outside of the guy wire, and adjacent guy wire sleeves 200 are in sequential contact (i.e., end-to-end contact). When it is necessary to move the entire warning light device upward (e.g., for installation or position adjustment), the energy storage component 100, which is in the "first state" (i.e., the state where the clamping element is released from the guy wire, see below) can be pushed upward by pushing the lowermost guy wire sleeve 200 upward, utilizing the transmission effect of the sequential contact between each guy wire sleeve 200.

[0033] The lowermost guy wire sleeve 200 is finally locked in position with the guy wire by the locking assembly 300. In this embodiment, the locking assembly 300 is a clamp structure that locks together. Specifically, one half of the clamp is fixedly connected to the outer wall of the lowermost guy wire sleeve 200 (e.g., by welding or integral molding), and the other half of the clamp is locked to the other half by bolts, thereby clamping and fixing the lowermost guy wire sleeve 200 to the guy wire and preventing it from sliding along the guy wire.

[0034] The clamping assembly is disposed on the side of the energy storage assembly 100 facing away from the guy wire sleeve 200 (i.e., the side opposite to the side connected to the guy wire sleeve 200). A space 500 for accommodating the guy wire is formed between the clamping assembly and the back of the energy storage assembly 100. The space 500 extends vertically through the guy wire.

[0035] The clamping assembly includes at least one clamping member 160 and a removable pin 180. The clamping member 160 is configured to move toward the interior of the space 500 (i.e., toward the direction of the guy wire). Under normal conditions, the clamping member 160 is subjected to an elastic biasing force (e.g., achieved by a built-in spring or torsion spring), which always pushes the clamping member 160 toward a position capable of clamping the guy wire located within the space 500.

[0036] The pin 180 is detachably inserted between the clamping member 160 and the housing 110 of the energy storage component 100. When the pin 180 is inserted, it overcomes the elastic biasing force, pushes the clamping member 160 open, and holds it away from the space 500. At this time, the clamping member 160 releases the diagonal cable, allowing the entire energy storage component 100 to move freely up and down along the diagonal cable (i.e., the first state). When the pin 180 is manually pulled out, the elastic biasing force loses its resistance, driving the clamping member 160 to automatically move towards the space 500 until its front end presses tightly against the surface of the diagonal cable, thereby clamping and fixing the diagonal cable between the clamping member 160 and the back of the energy storage component 100 (i.e., the second state). In this second state, the energy storage component 100 cannot move along the diagonal cable, achieving a quick locking function.

[0037] During installation, the energy storage component, clamping component, and guy wire are first fixed and maintained in the first state. Preferably, a line is tied to the pin. Then, multiple guy wire sleeves 200 are sequentially inserted into the guy wire, and the uppermost guy wire sleeve 200 is fixed to the energy storage component 100 using an arc-shaped connecting plate and locking screws. The energy storage component 100 is pushed upwards using the guy wire sleeves. Subsequently, each guy wire sleeve 200 is pushed upwards sequentially until they contact each other and push the energy storage component 100 upwards, bringing it to the predetermined position. Then, the pin 180 is pulled out using the pull wire (in other embodiments, the pin can also be pulled out using a hooked rod or a drone). The clamping component 160 automatically pops out and clamps the guy wire, fixing the energy storage component 100 at the top. Finally, a locking component 300 (clamp) is installed at the lowermost guy wire sleeve 200 and locked onto the guy wire, completing the fixing of the entire warning light device. At this time, the warning light strips inside each guy wire sleeve 200 receive power from the energy storage component 100 through the connecting wire 150 and begin to emit warning light.

[0038] like Figure 3 , Figure 6 and Figure 7 As shown, the clamping assembly includes a clamping seat 130. The clamping seat 130 has an arc-shaped groove on the side facing the energy storage assembly 100 (i.e., the side opposite to the back of the energy storage assembly housing 110). This arc-shaped groove, together with the back of the energy storage assembly 100, forms the aforementioned space 500 for accommodating the guy wire. The inner diameter of the arc-shaped groove matches the outer diameter of a commonly used guy wire to increase the contact area during clamping. Preferably, several reinforcing ribs to increase friction can be provided on one side of the energy storage assembly to ensure the reliability of the fixation between the energy storage assembly and the guy wire.

[0039] At least one mounting base 120 is provided on the side of the clamping base 130 facing away from the energy storage component 100 (i.e., the side away from the housing). In this embodiment, there are two mounting bases 120, arranged alternately along the central axis of the clamping base 130. The mounting base 120 is hollow inside and is used to accommodate the clamping member 160. Specifically, the mounting base 120 is provided with a first through hole 124 perpendicular to the moving direction of the clamping member 160 (i.e., perpendicular to the direction of the inclined cable axis), and the first through hole 124 penetrates the opposite side walls of the mounting base 120.

[0040] The clamping member 160 is slidably disposed within the mounting base 120, with its sliding direction perpendicular to the axis of the guy wire. The clamping member 160 includes a body, the front end of which (the end facing the space 500) is provided with a tip 161. The tip 161 is preferably conical or wedge-shaped, so as to embed into the twisted gap of the guy wire or to more tightly press the wire surface during clamping, thereby improving clamping reliability.

[0041] An elastic element 170 is provided between the clamping member 160 and the mounting base 120 to provide the elastic bias. In this embodiment, the elastic element 170 is a compression spring. One end of the spring abuts against the rear end face of the clamping member 160, and the other end abuts against the inner wall surface of the mounting base 120, thereby always pushing the clamping member 160 forward (i.e., towards the spatial direction 500).

[0042] The clamping member 160 is provided with a second through hole 162 corresponding to the first through hole 124. The second through hole 162 penetrates the main body of the clamping member 160 along a sliding direction perpendicular to the clamping member 160. When the clamping member 160 is in the retracted position (first state), the first through hole 124 and the second through hole 162 are exactly coaxially aligned.

[0043] The pin 180 is a detachable rod-shaped component, whose outer diameter slides into the inner diameter of the first through hole 124 and the second through hole 162. During installation or adjustment, the clamping member 160 is pushed backward to compress the spring, aligning the first through hole 124 with the second through hole 162. Then, the pin 180 passes sequentially through the first through hole 124 on one side of the mounting base 120, the second through hole 162 on the clamping member 160, and then exits through the first through hole 124 on the other side of the mounting base 120 (or simply passes it a short distance). At this point, the pin 180 spans between the clamping member 160 and the mounting base 120, resisting the spring force and locking the clamping member 160 in a loosened position away from the tie wire (i.e., the first state). When clamping is required, simply pull out the pin 180; the clamping member 160 automatically slides forward under the action of the spring, and its tip 161 presses against the tie wire, entering the second state.

[0044] like Figure 4 and Figure 5 As shown, in order to achieve detachable fixing of the clamping seat 130 and the energy storage component 100, this embodiment designs a dual connection structure.

[0045] First, a plurality of symmetrically arranged first L-shaped locking blocks 123 are provided at the bottom of the clamping seat 130 (i.e., at one end adjacent to the guy wire sleeve 200). Specifically, in this embodiment, two first L-shaped locking blocks 123 are provided, located on the left and right sides of the bottom of the clamping seat 130, respectively. The opening direction of each first L-shaped locking block 123 faces the center line of the clamping seat 130.

[0046] Correspondingly, on the lower part of the back side of the housing 110 of the energy storage component 100 (the connecting surface that mates with the clamping component), there are second L-shaped locking blocks 115 in the same number and position as the first L-shaped locking blocks 123. The second L-shaped locking blocks 115 are also L-shaped, but their opening direction is opposite to that of the first L-shaped locking blocks 123. When the clamping seat 130 is inserted from top to bottom, the first L-shaped locking blocks 123 and the second L-shaped locking blocks 115 engage with each other to form a radial interlock (i.e., mutually limit each other in the direction perpendicular to the back side of the housing), thereby preventing the clamping seat 130 from detaching from the housing 110.

[0047] Furthermore, the energy storage component 100 has a release space 116 above the second L-shaped locking block 115, allowing the first L-shaped locking block 123 to slide out. This release space 116 is a vertical groove or planar area, the width of which allows the first L-shaped locking block 123 to move upwards without being obstructed by the second L-shaped locking block 115. Specifically, when it is necessary to disassemble the clamping seat 130, the entire clamping assembly is first lifted upwards, causing the first L-shaped locking block 123 to enter the release space 116. At this time, the radial interlock is released, and the clamping seat 130 can be pulled outwards.

[0048] Secondly, an L-shaped buckle 122 is provided at one end of the clamping seat 130 (preferably the upper end, i.e., the end away from the guy wire sleeve 200). The hook of the L-shaped buckle 122 faces the energy storage component 100.

[0049] A guide groove 112 is provided on the bottom surface of the housing 110 of the energy storage component 100. The width of the guide groove 112 matches the width of the rod of the L-shaped buckle 122, and the extension direction of the guide groove 112 is consistent with the installation direction (vertical direction) of the clamping seat 130. A limiting block 113 is further provided inside the guide groove 112. The limiting block 113 and the wall of the guide groove 112 together define a slot 114. The upper end surface of the limiting block is inclined, and the lower end surface is straight. Therefore, when the L-shaped buckle moves downward along the upper end surface of the limiting block, it will deform to a certain extent due to the inclined surface and enter the slot. When the L-shaped buckle enters the slot, it directly abuts against the lower end surface of the limiting block, so it is not easy to disengage from the slot, thereby ensuring a reliable connection between the clamping component and the energy storage component.

[0050] When installing the clamping assembly, first align the L-shaped latch 122 at the upper end of the clamping seat 130 with the entrance of the guide groove 112 (usually located on the upper part of the bottom surface of the housing 110), and then push the clamping seat 130 downward along the guide groove 112. The L-shaped latch 122 slides along the guide groove 112 until it reaches the bottom end of the guide groove 112. At this point, the hook of the L-shaped latch 122 just passes the limiting block 113 and falls into the latching slot 114. The limiting block 113 prevents the L-shaped latch 122 from retracting upward, thereby locking the upper end of the clamping seat 130 to the housing 110. At the same time, the first L-shaped latch 123 at the bottom of the clamping seat 130 and the second L-shaped latch 115 on the housing complete radial interlocking. In this way, the clamping seat 130 is firmly fixed to the back of the energy storage component 100 through the cooperation of the upper L-shaped buckle and the slot and the interlocking of the lower L-shaped block, without the need for additional screws or tools, which facilitates quick assembly and disassembly.

[0051] like Figure 8 As shown, the guy wire sleeve 200 adopts an annular tubular structure, and its entire body is made of a material with a certain degree of flexibility and resilience (such as engineering plastics). A movable connecting structure 220 is provided on the annular wall 210 of the guy wire sleeve 200. This movable connecting structure 220 is used to open or close the annular tubular structure, thereby facilitating the direct insertion or removal of the guy wire sleeve 200 from the side of the guy wire without needing to thread the wire through the end, greatly simplifying installation and maintenance operations.

[0052] Specifically, the movable connection structure 220 includes a limiting groove disposed at one end of the annular wall 210, and the other end of the annular wall 210 serving as an insertion end. The limiting groove extends along the longitudinal direction of the annular wall 210 (i.e., the length direction of the sleeve), and its cross-sectional shape is U-shaped or C-shaped, with an opening facing the inner or outer side of the ring. Correspondingly, the cross-sectional dimensions and shape of the other end (free end) of the annular wall 210 match the limiting groove, allowing it to be tightly embedded in the limiting groove.

[0053] In this embodiment, the limiting groove is preferably located on the inner side of one end of the annular wall 210 (it can also be located on the outer side, depending on the actual assembly requirements). When it is necessary to close the guy wire sleeve 200, the operator presses the free end of the annular wall 210 radially into the limiting groove. Due to the elasticity of the material, the free end will overcome the slight interference resistance of the opening of the limiting groove and lock into the bottom of the groove. At this time, an interference fit or snap fit is formed between the free end and the limiting groove, keeping the annular wall 210 in a closed state, thereby fitting the guy wire inside the sleeve.

[0054] To further enhance the reliability after closure, the inner wall of the limiting groove may be provided with at least one raised anti-detachment rib, and correspondingly, a recessed locking groove is provided on the outer surface of the free end of the annular wall 210. When the free end is fully embedded in the limiting groove, the anti-detachment rib falls into the locking groove, forming a mechanical interlock to prevent accidental disengagement under vibration or external force.

[0055] When it is necessary to open the guy wire sleeve 200 for maintenance or replacement, the operator only needs to apply a certain outward pulling force to make the free end disengage from the limiting groove, and the annular wall 210 can be unfolded, thereby removing the sleeve from the guy wire.

[0056] The movable connection structure 220 is continuously arranged along the entire length of the guy wire sleeve 200, or arranged in intervals. A continuous limiting groove provides a more uniform closing force and better dust and water resistance; a segmented design facilitates production and reduces the effort required for opening and closing.

[0057] Through the aforementioned active connection structure 220, the guy wire sleeve 200 can be easily installed in an "open and close" manner without disassembling the anchor points at both ends of the guy wire. This is especially suitable for the later installation of warning devices on already erected guy wire lines, significantly reducing construction difficulty and time costs.

[0058] The embodiments should not be regarded as limitations on the present invention, but any improvements made based on the spirit of the present invention should be within the protection scope of the present invention.

Claims

1. A diagonal guy wire warning light, characterized in that: It includes: At least one guy wire sleeve (200); At least one warning light strip is installed inside the guy wire sleeve (200); The energy storage component (100) is electrically connected to the warning light strip via a connecting line (150), and the energy storage component (100) is detachably connected to the guy wire sleeve (200); A clamping assembly is disposed on the side of the energy storage assembly (100) facing away from the guy wire sleeve (200), and a space (500) for accommodating the guy wire is formed between the clamping assembly and the energy storage assembly (100). The clamping assembly is provided with at least one clamping member (160) that moves toward the space (500) and a detachable pin (180). The clamping member (160) is elastically biased toward clamping the guy wire located in the space (500). The pin (180) is detachably inserted between the clamping member (160) and the energy storage component (100) to resist the elastic bias and keep the clamping member (160) in a first state of releasing the guy wire. When the pin (180) is pulled out, the clamping member (160) automatically switches to a second state of clamping the guy wire under the action of the elastic bias.

2. The inclined wire warning light according to claim 1, characterized in that: The clamping member (160) includes a main body, the front end of which is provided with a tip (161).

3. The inclined wire warning light according to claim 1 or 2, characterized in that: The clamping assembly includes a clamping seat (130), which has an arc-shaped groove on the side facing the energy storage assembly (100) and at least one mounting seat (120) for accommodating the clamping member (160) on the side facing away from the energy storage assembly (100). The mounting seat (120) has a first through hole (124) perpendicular to the moving direction of the clamping member.

4. The inclined wire warning light according to claim 3, characterized in that: The clamping member (160) is slidably disposed within the mounting base (120), and an elastic member (170) for providing the elastic bias is provided between the clamping member (160) and the mounting base (120).

5. The inclined wire warning light according to claim 3, characterized in that: The clamping member (160) is provided with a second through hole (162) corresponding to the first through hole (124). The pin (180) passes through the mounting base (120) and the clamping member (160) in sequence to keep the clamping member (160) in the first state.

6. The inclined wire warning light according to claim 3, characterized in that: The clamping seat (130) has a plurality of symmetrically arranged first L-shaped locking blocks (123) at its bottom. The energy storage component (100) has a corresponding second L-shaped locking block (115) that forms a radial interlock with the first L-shaped locking block (123). The energy storage component (100) has a release space (116) above the second L-shaped locking block (115) for the first L-shaped locking block (123) to slide and release.

7. The inclined wire warning light according to claim 6, characterized in that: One end of the clamping seat (130) is provided with an L-shaped buckle (122), and the bottom surface of the energy storage component (100) is provided with a guide groove (112) that is adapted to the L-shaped buckle (122). A limiting block (113) is provided in the guide groove (112), and the limiting block and the wall of the guide groove (112) together define the slot (114).

8. The inclined wire warning light according to claim 1, characterized in that: The guy wire sleeve (200) is an annular tubular structure, and its annular wall (210) has a movable connection structure (220) for opening or closing the annular tubular structure.

9. The inclined wire warning light according to claim 8, characterized in that: The movable connection structure (220) includes a limiting groove disposed at one end of the annular wall (210), and the other end of the annular wall (210) is embedded in the limiting groove.

10. The inclined wire warning light according to claim 1, characterized in that: The bottom of the guy wire sleeve (200) is provided with a locking assembly (300).