A comprehensive street light pole slider mounting structure

By combining rotating clips and fasteners, the problem of inconvenient installation and maintenance and high maintenance costs of integrated street light pole slider mounting structures is solved, achieving the effects of simplified operation, reduced costs and improved efficiency.

CN224284472UActive Publication Date: 2026-05-26SHANGHAI SANSI ELECTRONICS ENG +4

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHANGHAI SANSI ELECTRONICS ENG
Filing Date
2025-06-20
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

The existing integrated street light pole slider installation structure is inconvenient to install and maintain, has high maintenance costs and low work efficiency, the installation process is complicated and the material cost is high, and it is difficult to quickly disassemble and replace parts.

Method used

The design employs a combination of rotating clamps and fasteners. By rotating the knob, the rotating shaft is controlled to switch the rotating clamps between different postures, thereby locking and unlocking the slider assembly. Combined with the limit groove and sliding connection, the installation and maintenance process is simplified.

Benefits of technology

It improves the accuracy and stability of installation, reduces material and labor costs, extends the service life of components, simplifies the operation process, and improves work efficiency.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This utility model provides a comprehensive street light pole slider installation structure, comprising: a fixed tube with a slot; a sliding assembly including a rotating shaft with a knob, and fixed members on opposite sides of the rotating shaft in the axial direction; a rotating clamp between the fixed members on both sides, the rotating clamp being detachably connected to the rotating shaft; the rotating shaft passing through the rotating clamp and the fixed members respectively; the rotating clamp including a semi-cylindrical shell and a fastener, the semi-cylindrical shell having an arc-shaped groove along its circumference; and a connecting member adapted to the outer contour of the fixed tube, and having a rotating through hole adapted to the end of the fastener, the sliding assembly being detachably connected to the connecting member; the sliding assembly design is simple in structure, facilitates locking or pulling out the fixed tube and the connecting member, is convenient for installation and use, and helps improve work efficiency.
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Description

Technical Field

[0001] This utility model relates to the technical field of integrated street light pole installation structures, and in particular to an integrated street light pole slider installation structure. Background Technology

[0002] Integrated street light poles, also known as smart street light poles or multi-functional street light poles, are a new type of infrastructure that integrates multiple functions into traditional street light poles. The slider mounting structure of integrated street light poles is mainly used to enable flexible installation and sliding adjustment of components (such as cameras, displays, etc.) on the light pole. It is usually made of metal, such as aluminum alloy or stainless steel, and has grooves that fit the shape of the light pole, fitting tightly to the light pole and ensuring stable sliding of the slider along the light pole.

[0003] The existing integrated street light pole slider mounting structure has the following technical problems: 1. Inconvenient installation and maintenance: The installation process of the slider mounting structure is relatively complex, requiring precise positioning and adjustment. If the installer's technical skills are insufficient or the installation tools are unprofessional, it may lead to inaccurate installation, affecting the sliding performance and locking reliability of the slider. 2. High maintenance costs: Traditional slider mounting structures are relatively complex, with high material manufacturing costs. Frequent problems with the installation structure require timely maintenance by staff, increasing material and maintenance costs. 3. Low work efficiency: The design of some slider mounting structures is not conducive to quick disassembly and replacement of parts, further prolonging installation and maintenance time and reducing the installation speed and efficiency of integrated street light poles. Utility Model Content

[0004] In view of the shortcomings of the prior art described above, the technical problem to be solved by this utility model is to provide a sliding block mounting structure for integrated street light poles, which solves the problems of inconvenient installation and maintenance, high maintenance costs and low work efficiency of the existing integrated street light pole mounting structures.

[0005] To solve the above-mentioned technical problems, this utility model provides a comprehensive street light pole slider mounting structure, including:

[0006] A fixing tube, wherein a slot is provided on the fixing tube;

[0007] A sliding assembly includes a rotating shaft with a knob on it. The rotating shaft has fixing members on opposite sides along its axial direction. A rotating locking member is provided between the fixing members on both sides, and the rotating locking member is detachably connected to the rotating shaft. The rotating shaft passes through both the rotating locking member and the fixing members.

[0008] The rotating fastener includes a semi-cylindrical housing and a fastener. The semi-cylindrical housing is provided with an arc-shaped groove opened along its circumference. One end of the fastener passes through the arc-shaped groove and is locked inside the semi-cylindrical housing by a locking member.

[0009] A connector is adapted to the outer contour of a fixed tube, and the connector is provided with a rotating through hole adapted to the end of the fastener. The sliding component is detachably connected to the connector.

[0010] When the knob is rotated by an external force, it drives the rotating shaft to rotate. The rotation of the rotating shaft drives the connected rotating clip to rotate, causing a relative displacement between the fastener and the semi-cylindrical housing, so as to lock or loosen the fixing tube and the connecting piece.

[0011] As a preferred method, an external force is used to drive the knob, causing the rotating shaft to rotate and switch the rotating clamp to a first position, embedding the slider assembly into the slot. Then, by rotating the knob again, the external force switches the rotating clamp to a second position. Finally, external force is applied through the rotating through-hole to tighten the fastener, causing the semi-cylindrical housing to fit tightly against the inner wall of the slot, thus locking the connector to the fixing tube. Rotating the knob to switch the rotating clamp to the first position and embedding the slider assembly into the slot ensures initial positioning of the connector. Rotating the knob again to switch the rotating clamp to the second position and tightening the fastener through the rotating through-hole ensures the semi-cylindrical housing fits tightly against the inner wall of the slot. This step-by-step operation allows for more precise control of the tightening degree, avoiding installation deviations caused by a single tightening step and improving overall stability.

[0012] As a preferred method, the fastener is first loosened by external force through the rotating through-hole, causing the semi-cylindrical housing to separate from the inner wall of the slot, thereby loosening the connector from the fixing tube. Then, the knob is driven by external force to rotate the shaft, causing the rotating clamp to switch from the second position to the first position, pulling the slider assembly out of the slot, thus separating the connector from the fixing tube. This distributed "unlocking" method is simple to operate and convenient for staff. By releasing pressure in a distributed manner, the risk of the structure getting stuck can be reduced, extending the service life of the components. In addition, by releasing pressure on the fastener first, the friction is less when the semi-cylindrical housing is pulled out, which can reduce wear and tear over long-term use.

[0013] As a more preferred approach, the first posture includes the posture where the maximum horizontal outer dimension of the semi-cylindrical housing is smaller than the locking size of the slot; the second posture includes the posture where the maximum horizontal outer dimension of the semi-cylindrical housing is larger than the locking size of the slot. By changing the posture of the rotating component (e.g., rotating it by a certain angle), the state switching from "movable" to "locked" can be achieved without additional complex operating tools or steps, improving the efficiency of installation and maintenance. Furthermore, once the rotating component enters the second posture (outer dimension larger than the locking size), due to size limitations, it cannot disengage from the slot, forming a mechanical self-lock; even under external impact or vibration, the connector is not easily loosened or detached, improving the stability and safety of the overall structure.

[0014] As a more preferred approach, the first posture is such that the straight line containing the knob intersects perpendicularly with both the central axis of the slot and the central axis of the fixing tube; the second posture is perpendicular to the first posture. The first posture corresponds to the initial positioning stage of "rotating the locking piece into the slot," and the second posture corresponds to the final fixing stage of "rotating the locking piece to lock the connecting piece." Through these two distinct and orthogonal (perpendicular) postures, operators can clearly distinguish the current installation stage, avoiding confusion or skipping key steps, thereby improving the accuracy and reliability of the installation process. The orthogonal relationship between the two postures forms a "mechanical interlocking" mechanism, further enhancing the system's safety and stability.

[0015] As a preferred embodiment, the rotating shaft is provided with a limiting groove for the knob to be inserted. The limiting groove on the rotating shaft serves as an "assembly guide," allowing the knob to be inserted and helping the operator quickly determine whether the rotating clamp is in the correct position (e.g., first or second posture), reducing reliance on manual experience or measuring tools and making operation more intuitive and efficient. Furthermore, the limiting groove creates a more stable fit with the fasteners and rotating clamp, resulting in more even force distribution during rotation, avoiding localized stress concentration, and helping to extend the service life of the structure and reduce wear or deformation caused by long-term use.

[0016] As a more preferred approach, the fastener and the connector are detachably connected. This detachable connection allows for independent production, assembly, and replacement of both, simplifying the production process and improving assembly efficiency. Furthermore, if the connector is damaged or requires repair, only the connector needs to be replaced, rather than the entire slider assembly or fastener, reducing maintenance and material costs.

[0017] As a preferred method, the fastener is fixed to the connector using several screws. Fixing the fastener with screws ensures a more stable fixation to the connector, effectively resisting forces and vibrations from different directions. This prevents the fastener from loosening or shifting during operation, guaranteeing the stability of the entire slider installation structure. Using multiple screws, rather than a single-point fixation, evenly distributes the force between the connector and the fastener, avoiding deformation caused by localized stress concentration. For scenarios such as streetlight poles that need to withstand wind loads, vibrations, or their own weight, multi-point fixation significantly improves the fatigue resistance of the overall structure. Furthermore, the axial tightening force of the screws generates frictional resistance and preload, effectively resisting torsion or loosening of the connector under angle adjustments or external forces, ensuring long-term reliability.

[0018] As a preferred approach, the fastener and the arc-shaped groove are slidably connected. This sliding connection allows the fastener to slide freely within the arc-shaped groove, enabling the rotating clamp to be flexibly adjusted within a certain angular range. During installation, once the sliding component engages with the groove of the fixing tube, the angle of the rotating clamp can be finely adjusted according to the actual situation, allowing the fastener to slide along the arc-shaped groove to the appropriate position. This facilitates accurate rotation of the rotating clamp to the locking position, improving installation flexibility and accuracy. Furthermore, rigid connections may cause localized stress concentration at the fastener head or groove wall, which can easily lead to deformation or breakage after prolonged stress. Using a sliding connection, by evenly distributing force (the fastener slides within the groove rather than being fixed and compressed), reduces stress concentration, lowers the risk of wear, ensures structural reliability, and extends the overall service life.

[0019] As a more preferred embodiment, the side of the rotating shaft is tightly fitted to the flat groove surface of the semi-cylindrical housing. This tight fit effectively limits the relative displacement of the rotating shaft within the semi-cylindrical housing. During the rotation of the rotating clamp, whether subjected to external impact or the force generated by its own rotation, it prevents the rotating shaft from wobbling or shifting within the flat groove surface, ensuring the stability of the rotating clamp's movement trajectory. This, in turn, guarantees the stability of the connection between the connector and the fixed tube, improving the reliability of the entire slider mounting structure.

[0020] As described above, the integrated street light pole slider mounting structure of this utility model has the following beneficial effects: In use, rotating the knob switches the rotating clamp to the first position, embedding the slider assembly into the slot and ensuring initial positioning of the connector; then rotating the knob switches the rotating clamp to the second position, and tightening the fastener through the rotating through hole ensures the semi-cylindrical shell is tightly against the inner wall of the slot. This step-by-step operation allows for more precise control of the tightening degree, avoiding installation deviations caused by a single tightening step and improving overall stability.

[0021] By using a distributed operation separation method, compared to the traditional complex integrated street light pole installation structure, the distributed pressure release method can reduce the risk of structural jamming and extend the service life of components. In addition, the structure is simple in design and easy to operate, which can reduce the manpower time and labor costs required for disassembly, making it easier for staff to install and maintain integrated street light poles.

[0022] Because the entire locking and unlocking process is achieved through a rotating mechanical structure, rather than relying on bolts, adhesives, or other methods, it facilitates equipment installation and use, helps extend the service life of the structure, and reduces maintenance and replacement costs.

[0023] The integrated street light pole slider installation structure of this utility model is simple in design and easy to operate, making it convenient for staff to install and maintain the integrated street light pole. In addition, unlike the traditional complex slider structure design, it reduces material waste and saves material costs. Attached Figure Description

[0024] Figure 1 The diagram shows the overall structure of the integrated street light pole slider installation structure of this utility model.

[0025] Figure 2 The image shown is a top view of the integrated street light pole slider mounting structure of this utility model.

[0026] Figure 3 The diagram shows a connecting component structure of the integrated street light pole slider mounting structure of this utility model.

[0027] Figure 4 The diagram shows a schematic structure of the slider assembly of the integrated street light pole slider mounting structure of this utility model.

[0028] Figure 5 The diagram shown is a first exploded view of the slider assembly of the integrated street light pole slider mounting structure of this utility model.

[0029] Figure 6 The diagram shown is a second exploded view of the slider assembly of the integrated street light pole slider mounting structure of this utility model.

[0030] Figure 7 This diagram illustrates the locking process of the integrated street light pole slider mounting structure of this utility model.

[0031] Figure 8 The diagram shows the disassembly process of the integrated street light pole slider installation structure of this utility model.

[0032] Component designation explanation

[0033] 1. Fixed tube

[0034] 11 Card Slots

[0035] 2 Connectors

[0036] 21 Rotary through hole

[0037] 3 Slider Components

[0038] 31 Rotating clip

[0039] 311 Semi-cylindrical shell

[0040] 3111 Arc-shaped groove

[0041] 312 Fasteners

[0042] 3121 Nut

[0043] 313 Locking components

[0044] 3131 Through Hole

[0045] 32 pivots

[0046] 321 Limiting groove

[0047] 33 Fasteners

[0048] 34 knobs Detailed Implementation

[0049] The following specific embodiments illustrate the implementation of this utility model. Those skilled in the art can easily understand other advantages and effects of this utility model from the content disclosed in this specification.

[0050] It should be understood that the structures, proportions, sizes, etc., illustrated in the accompanying drawings are merely for illustrative purposes to aid those skilled in the art and are not intended to limit the implementation of this utility model. Therefore, they have no substantial technical significance. Any modifications to the structure, changes in proportions, or adjustments to size, without affecting the effectiveness and purpose of this utility model, should still fall within the scope of the technical content disclosed in this utility model. The following detailed description should not be considered restrictive, and the scope of the embodiments of this application is limited only by the claims of the published patents. The terminology used herein is for describing specific embodiments only and is not intended to limit this application. Spatial terms such as "upper," "lower," "left," "right," "below," "below," "lower part," "above," "upper part," etc., may be used in the text to illustrate the relationship between one element or feature shown in the figures and another element or feature.

[0051] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," "fixing," and "holding" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; 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; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0052] Furthermore, as used herein, the singular forms “a,” “an,” and “the” are intended to include the plural forms as well, unless the context indicates otherwise. It should be further understood that the terms “comprising,” “including,” indicate the presence of the stated feature, operation, element, component, item, kind, and / or group, but do not preclude the presence, occurrence, or addition of one or more other features, operations, elements, components, items, kinds, and / or groups. The terms “or” and “and / or” as used herein are interpreted as inclusive, or mean any one or any combination thereof. Thus, “A, B, or C” or “A, B, and / or C” means “any one of: A; B; C; A and B; A and C; B and C; A, B, and C.” Exceptions to this definition arise only when combinations of elements, functions, or operations are inherently mutually exclusive in some manner.

[0053] To make the objectives, technical solutions, and advantages of this utility model clearer, the technical solutions in the embodiments of this utility model are further described in detail below with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are only for explaining this utility model and are not intended to limit the utility model.

[0054] like Figures 1 to 8 As shown, a comprehensive street light pole slider mounting structure includes:

[0055] A fixing tube 1 is provided with a slot 11;

[0056] The sliding component 3 includes a rotating shaft 32, on which a knob 34 is provided. The rotating shaft 32 has fixing members 33 on opposite sides in the axial direction. A rotating locking member 31 is provided between the fixing members 33 on both sides. The rotating locking member 31 is detachably connected to the rotating shaft 32. The rotating shaft 32 passes through the rotating locking member 31 and the fixing members 33 respectively.

[0057] The rotating locking member 31 includes a semi-cylindrical housing 311 and a fastener 312. The semi-cylindrical housing 311 is provided with an arc-shaped groove 3111 opened along its circumference. One end of the fastener 312 passes through the arc-shaped groove 3111 and then through the through hole 3131 on the locking member 313. The nut 3121 at the end of the fastener 312 is screwed on to lock the fastener 312 inside the semi-cylindrical housing 311.

[0058] Connector 2, which is adapted to the outer contour of fixed tube 1, and is provided with a rotating through hole 21 adapted to the end of fastener 312. The sliding component 3 is detachably connected to the connector 2.

[0059] When the knob 34 is rotated by an external force, it drives the rotating shaft 32 to rotate. The rotation of the rotating shaft 32 drives the connected rotating clip 31 to rotate, causing a relative displacement between the fastener 312 and the semi-cylindrical housing 311, so as to lock or loosen the fixing tube 1 and the connecting piece 2.

[0060] In some embodiments of this utility model, such as Figure 7 As shown, the knob 34 is driven by external force (manual, motor-driven, etc.), which drives the rotating shaft 32 to rotate, causing the rotating clamp 31 to switch to the first posture. Figure 7 The knob 34 is shown in the position parallel to the y-axis. The slider assembly 3 is then inserted into the slot 11; then, by rotating the knob 34 with external force, the rotating shaft 32 rotates, causing the rotating clamp 31 to switch to the second position. Figure 7 The knob 34 is shown in the position parallel to the x-axis. Then, by applying external force through the rotating through-hole 21, the fastener 312 is tightened. For example, a tool (such as an Allen wrench) is inserted through the rotating through-hole 21 into the hexagonal hole at the end of the fastener 312 and tightened. By using the tool, the semi-cylindrical housing 311 is brought into close contact with the inner wall of the slot 11. Since the sliding assembly and the connector are connected, the connector 2 can be locked to the fixing tube 1. By rotating the knob 34, the rotating clamp 31 is switched to the first position, embedding the slider assembly 3 into the slot 11, ensuring the connector 2 is initially positioned. Then, the knob 34 is rotated to switch the rotating clamp 31 to the second position, and the fastener 312 is tightened through the rotating through-hole 21, bringing the semi-cylindrical housing 311 into close contact with the inner wall of the slot 11. Step-by-step operation allows for more precise control of the tightening degree, avoiding installation deviations caused by a single tightening step and improving overall stability.

[0061] In some embodiments of this utility model, such as Figure 8As shown, the fastener 312 is first loosened by external force through the rotating through-hole 21. For example, a tool (such as an Allen wrench) is inserted through the rotating through-hole 21 into the hexagonal hole at the end of the fastener 312 to loosen it. By using the tool, the semi-cylindrical housing 311 is separated from the inner wall of the slot 11, thereby loosening the connector 2 from the fixing tube 1. Then, the knob 34 is driven by external force (manually, by motor drive, etc.) to rotate the shaft 32, causing the rotating locking member 31 to switch from the second position to the first position, pulling the slider assembly 3 out of the slot 11, thus separating the connector 2 from the fixing tube 1. This distributed "unlocking" method is simple to operate and easy for staff to use. By releasing pressure in a distributed manner, the risk of the structure getting stuck can be reduced, extending the service life of the components. In addition, by releasing pressure first through the fastener 312, the friction is smaller when the semi-cylindrical housing 311 is pulled out, which can reduce wear during long-term use.

[0062] In some embodiments of this utility model, such as Figure 7 and Figure 8 As shown, the first posture includes the posture where the maximum outer dimension of the semi-cylindrical housing 311 in the horizontal direction is smaller than the size of the slot 11; the second posture includes the posture where the maximum outer dimension of the semi-cylindrical housing 311 in the horizontal direction is larger than the size of the slot 11. By changing the posture of the rotating clamp 31 (e.g., rotating it by a certain angle), the state switching from "movable" to "locked" can be achieved without additional complex operating tools or steps, improving the efficiency of installation and maintenance. In addition, once the rotating clamp 31 enters the second posture (outer dimension larger than the slot), due to size limitations, it cannot be dislodged from the slot 11, forming a mechanical self-lock; even under external impact or vibration, the connecting piece 2 is not easily loosened or detached, improving the stability and safety of the overall structure.

[0063] In some embodiments of this utility model, such as Figure 7 and Figure 8 As shown, the first posture is when the straight line containing the knob 34 intersects perpendicularly with both the central axis of the slot 11 and the central axis of the fixing tube 1. The second posture is perpendicular to the first posture. That is, as... Figure 7 The direction shown is parallel to the y-axis. It should be understood that, since the rotating clamp 31 is semi-cylindrical, the horizontal outer dimension of the semi-cylindrical shell 311 is minimized when the first posture is parallel to the y-axis, which is most advantageous for it to pass through the opening and embed into the clamp 11. Correspondingly, the second posture is perpendicular to the first posture, i.e., as shown... Figure 7The direction shown is parallel to the x-axis. It can also be understood that, since the rotating clamp 31 is semi-cylindrical, the semi-cylindrical shell 311 has the largest outer shell size in the horizontal direction when the second posture is parallel to the x-axis, which is the least favorable for passing through the clamp and detaching from the clamp 11. That is, at this time, the slider assembly 3 is firmly locked in the clamp 11.

[0064] The first posture corresponds to the initial positioning stage of "rotating clip 31 embedding into slot 11", and the second posture corresponds to the final fixing stage of "rotating clip 31 locking connector 2". Through these two distinct and orthogonal (perpendicular) postures, operators can clearly distinguish the current installation stage, avoiding confusion or skipping of key steps, thereby improving the accuracy and reliability of the installation process. Furthermore, the first posture ensures that the rotating clip 31 has been rotated to the position where it can be embedded into slot 11, providing stable initial support for subsequent locking; the second posture ensures that the rotating clip 31 has been rotated to the final locking position, preventing structural loosening due to insufficient or excessive angle. The orthogonal relationship between the two postures forms a "mechanical interlocking" mechanism, further enhancing the system's safety and stability.

[0065] In some embodiments of this utility model, such as Figures 3 to 6 As shown, a limiting groove 321 is provided on the rotating shaft 32 for the knob 34 to be inserted. The limiting groove 321 on the rotating shaft 32 serves as an "assembly guide," helping operators quickly determine whether the rotating clamp 31 is in the correct position (such as the first or second posture), reducing reliance on manual experience or measuring tools, and making operation more intuitive and efficient. In addition, the limiting groove 321 can form a more stable fit with the fastener 312 and the rotating clamp 31, making the force during rotation more uniform, avoiding local stress concentration, helping to extend the service life of the structure, and reducing wear or deformation caused by long-term use.

[0066] In some embodiments of this utility model, such as Figures 2 to 3 As shown, the fixing member 33 and the connecting member 2 are detachably connected. The detachable connection (such as threaded connection, snap-fit ​​connection, pin connection, etc.) allows for independent production, assembly, and replacement, simplifying the production process and improving assembly efficiency. For example, in actual use, if the connecting member 2 (such as a lamp holder or monitoring mounting base) is damaged or needs upgrading, only the connecting member 2 needs to be replaced, without replacing the entire slider assembly 3 or the fixing member 33. Similarly, if the fixing member 33 (such as the core rotating component that mates with the slot 11) malfunctions, it can also be replaced separately without affecting other parts, reducing maintenance and material costs.

[0067] In some embodiments of this utility model, such as Figure 5and Figure 6 As shown, the fixing member 33 is fixed to the connecting member 2 by a number of screws. Fixing the fixing member 33 with screws ensures its stable attachment to the connecting member 2, effectively resisting forces and vibrations from different directions. This prevents the fixing member 33 from loosening or shifting during operation, guaranteeing the stability of the entire slider installation structure. Using multiple screws instead of a single-point fixation evenly distributes the force between the connecting member 2 and the fixing member 33, avoiding deformation caused by localized stress concentration. For scenarios such as streetlight poles that need to withstand wind loads, vibrations, or their own weight, multi-point fixation significantly improves the fatigue resistance of the overall structure. Furthermore, the axial tightening force of the screws generates frictional resistance and preload, effectively resisting torsion or loosening of the connecting member 2 under angle adjustment or external force, ensuring long-term reliability.

[0068] In some embodiments of this utility model, such as Figure 5 and Figure 6 As shown, the fastener 312 and the arc-shaped groove 3111 are slidably connected. This sliding connection allows the fastener 312 to slide freely within the arc-shaped groove 3111, enabling the rotating clamp 31 to be flexibly adjusted within a certain angular range. During installation, after the sliding component 3 is engaged in the groove 11 of the fixed tube 1, the angle of the rotating clamp 31 can be finely adjusted according to the actual situation, allowing the fastener 312 to slide along the arc-shaped groove 3111 to a suitable position. This facilitates accurately rotating the rotating clamp 31 to the locking position, improving the flexibility and accuracy of installation. Furthermore, rigid connections may cause localized stress concentration at the head of the fastener 312 or the groove wall, which can easily lead to deformation or breakage after long-term stress. The sliding connection, by evenly distributing the force (the fastener 312 slides within the arc-shaped groove 3111 rather than being fixed and compressed), reduces stress concentration, lowers the risk of wear, ensures the reliability of the structure, and extends the overall service life.

[0069] In some embodiments of this utility model, such as Figures 2 to 6 As shown, the side of the rotating shaft 32 is tightly fitted to the flat groove surface of the semi-cylindrical housing 311. This tight fit effectively restricts the relative displacement of the rotating shaft 32 within the semi-cylindrical housing 311. During the rotation of the rotating clamp 31, whether subjected to external impact or the force generated by its own rotation, the rotating shaft 32 is prevented from shaking or shifting within the flat groove surface, ensuring the stability of the rotating clamp 31's movement trajectory. This, in turn, guarantees the stability of the connection between the connecting piece 2 and the fixed tube 1, improving the reliability of the entire slider installation structure.

[0070] like Figure 5As shown, the fastener 312 is displaced within the arc-shaped groove 3111 after being driven by an external force. The two ends of the arc-shaped groove 3111 are located at positions A and B, respectively. Assuming that the fastener 312 is initially located at position B, the knob 34 is rotated counterclockwise by an external force, causing the rotating shaft 32 to rotate synchronously with the knob 34. The rotating shaft 32 synchronously drives the rotating clamp 31 connected to it to rotate counterclockwise as well (as shown by the arrow in the figure). Therefore, the arc-shaped groove 3111 on the rotating clamp 31 produces a relative displacement with the fastener 312, that is, the fastener 312 is displaced within the arc-shaped groove 3111.

[0071] like Figure 6 As shown, the fastener 312 is displaced within the arc-shaped groove 3111 after being driven by an external force. The two ends of the arc-shaped groove 3111 are located at positions A and B, respectively. Assuming that the fastener 312 is initially located at position A, the knob 34 is rotated clockwise by an external force, causing the rotating shaft 32 to rotate synchronously with the knob 34. The rotating shaft 32 synchronously drives the rotating retainer 31 connected to it to rotate clockwise as well (as shown by the arrow in the figure). Therefore, the arc-shaped groove 3111 on the rotating retainer 31 produces a relative displacement with the fastener 312, that is, the fastener 312 is displaced within the arc-shaped groove 3111.

[0072] To better illustrate the integrated street light pole slider installation structure of this utility model, the following specific application will be used as an example: In use, rotating the knob 34 switches the rotating clamp 31 to the first position, embedding the slider assembly 3 into the slot 11 to ensure the initial positioning of the connector 2. Then, rotating the knob 34 switches the rotating clamp 31 to the second position, and tightening the fastener 312 with external force ensures the semi-cylindrical housing 311 is tightly against the inner wall of the slot 11. This step-by-step operation allows for more precise control of the tightening degree, avoiding installation deviations caused by a single tightening step and improving overall stability.

[0073] By using a distributed operation separation method, compared to the traditional complex integrated street light pole installation structure, the distributed pressure release method can reduce the risk of structural jamming and extend the service life of components. In addition, the structure is simple in design and easy to operate, which can reduce the manpower time and labor costs required for disassembly, making it easier for staff to install and maintain integrated street light poles.

[0074] Because the entire locking and unlocking process is achieved through a rotating mechanical structure, rather than relying on bolts, adhesives, or other methods, it facilitates equipment installation and use, helps extend the service life of the structure, and reduces maintenance and replacement costs.

[0075] In summary, the integrated street light pole slider mounting structure of this utility model has the following advantages:

[0076] 1. Simple operation and easy installation:

[0077] Locking can be achieved by rotating knob 34 to a specific position and then tightening fastener 312. To disassemble, simply reverse the operation to loosen the fastener, saving time and effort, reducing labor costs, and facilitating installation and maintenance.

[0078] 2. Reliable connection and high stability:

[0079] The semi-cylindrical housing 311 is designed to be parallel to the central axis of the slot 11, which makes the force uniform during the locking process, reduces local stress concentration, and improves connection stability; the precise fit ensures that the slider assembly 3 is fixed reliably and improves installation accuracy.

[0080] 3. Reduce material consumption and save costs:

[0081] Compared with traditional installation structure designs, the slider installation structure designed in this utility model is simple, which can reduce material waste and lower material costs. In addition, it is easier to install and maintain, which can reduce manpower time and labor costs during the maintenance process.

[0082] In summary, this utility model effectively overcomes the various shortcomings of the prior art and has high industrial application value.

[0083] The above embodiments are merely illustrative of the principles and effects of this utility model and are not intended to limit the scope of this utility model. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of this utility model. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in this utility model should still be covered by the claims of this utility model.

Claims

1. A comprehensive street light pole slider mounting structure, characterized in that, include: A fixing tube, wherein a slot is provided on the fixing tube; A sliding assembly includes a rotating shaft with a knob on it. The rotating shaft has fixing members on opposite sides along its axial direction. A rotating locking member is provided between the fixing members on both sides, and the rotating locking member is detachably connected to the rotating shaft. The rotating shaft passes through both the rotating locking member and the fixing members. The rotating fastener includes a semi-cylindrical housing and a fastener. The semi-cylindrical housing is provided with an arc-shaped groove opened along its circumference. One end of the fastener passes through the arc-shaped groove and is locked inside the semi-cylindrical housing by a locking member. A connector is adapted to the outer contour of a fixed tube, and the connector is provided with a rotating through hole adapted to the end of the fastener. The sliding component is detachably connected to the connector. When the knob is rotated by an external force, it drives the rotating shaft to rotate. The rotation of the rotating shaft drives the connected rotating clip to rotate, causing a relative displacement between the fastener and the semi-cylindrical housing, so as to lock or loosen the fixing tube and the connecting piece.

2. The integrated street light pole slider mounting structure according to claim 1, characterized in that: By using external force to drive the knob, the rotating shaft is rotated, causing the rotating clamp to switch to the first position and embed the sliding component into the slot. Then, by using external force to rotate the knob, the rotating shaft is rotated, causing the rotating clamp to switch to the second position. Then, by using external force to pass through the rotating through hole and tighten the fastener, the semi-cylindrical shell is pressed tightly against the inner wall of the slot, thereby locking the connector and the fixing tube.

3. The integrated street light pole slider mounting structure according to claim 1, characterized in that: First, the fastener is loosened by external force through the rotating through hole, causing the semi-cylindrical housing to separate from the inner wall of the slot, thereby loosening the connector from the fixing tube. Then, the knob is driven by external force to rotate the shaft, causing the rotating clamp to switch from the second position to the first position, and the sliding component is pulled out from the slot, so that the connector is separated from the fixing tube.

4. The integrated street light pole slider mounting structure according to claim 2 or 3, characterized in that: The first posture includes the posture in which the maximum outer dimension of the semi-cylindrical shell in the horizontal direction is smaller than the opening size of the slot; the second posture includes the posture in which the maximum outer dimension of the semi-cylindrical shell in the horizontal direction is larger than the opening size of the slot.

5. The integrated street light pole slider mounting structure according to claim 4, characterized in that: The first posture is such that the straight line where the knob is located intersects perpendicularly with both the central axis of the slot and the central axis of the fixing tube; the second posture is perpendicular to the first posture.

6. The integrated street light pole slider mounting structure according to claim 1, characterized in that: The rotating shaft is provided with a limiting groove for the knob to be inserted.

7. The integrated street light pole slider mounting structure according to claim 1, characterized in that: The fastener and the connector are detachably connected.

8. The integrated street light pole slider mounting structure according to claim 7, characterized in that: The fastener is fixed to the connector by a number of screws.

9. The integrated street light pole slider mounting structure according to claim 1, characterized in that: The fastener and the arc-shaped groove are slidably connected.

10. The integrated street light pole slider mounting structure according to claim 1, characterized in that: The side of the rotating shaft is in close contact with the flat groove surface of the semi-cylindrical housing.