Corridor energy-saving lamp mounting structure

The installation structure, which combines hollow tubes and hinged rods, utilizes damping strips and clips to increase friction, thus solving the problem of inconvenient installation of energy-saving lights in corridors and achieving a stable installation effect.

CN223909395UActive Publication Date: 2026-02-13SHANXI FIRST CONSTR GROUP
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Patent Information

Application Number
CN202520661086.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-09
Publication Date
2026-02-13
Estimated Expiration
2035-04-09

AI Technical Summary

Technical Problem

The existing installation methods for energy-saving lights in corridors suffer from poor convenience and insufficient stability. Expansion screws are inconvenient to install, and magnetic installations are prone to falling off.

Method used

The installation structure uses a hollow tube and a hinged rod. The design of damping strips and locking blocks increases friction and secures the lamp housing. Combined with the adjustment of the moving plate and the adjusting plate, stable installation of the lamp housing is achieved.

Benefits of technology

It enables convenient and stable installation of energy-saving lights in corridors, adapts to different hole diameters, and improves the convenience and stability of installation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of energy-saving lamps, in particular to a corridor energy-saving lamp mounting structure. The technical problem is that the corridor energy-saving lamp is inconvenient to install. According to the technical scheme, an LED lamp is arranged in the lamp shell, the connecting barrel is fixedly connected to the top end of the lamp shell, a lampshade is connected to the bottom end of the lamp shell in a threaded mode, and a through hole is formed in the top end of the connecting barrel. The hollow pipe is matched with the four hinge rods, the four hinge rods can slide along the four rectangular through grooves until the damping strips and the clamping blocks make contact with the inner walls of the holes, the lamp shell is limited by the damping strips and the clamping blocks, the lamp shell is prevented from falling off, the movable disc is manually pushed to drive the hollow pipe to move upwards, and therefore the lamp shell is prevented from falling off. And the clamping block can drive the damping bar and the clamping block to be adjusted according to the size of the hole, so that the corridor energy-saving lamp is more convenient to mount.
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Description

TECHNICAL FIELD

[0001] The utility model relates to energy -conserving lamp technical field especially, relates to a corridor energy -consaving lamp mounting structure. BACKGROUND

[0002] Corridor energy -conserving lamp is a kind of intelligent lamps, it only brightens lamp when emitting sound, both can meet the need of illumination, and can save electric energy to maximum, generally used in public places such as apartment building, office building and teaching building, with the characteristics of high efficiency energy saving, green environmental protection and strong stability.

[0003] Corridor energy -conserving lamp usually adopts two ways of expansion screw installation and magnetic attraction installation, the convenience of expansion screw installation is poor, and subsequent replacement of energy -conserving lamp is more inconvenient, the stability of magnetic attraction installation is poor, is easily influenced by outside and leads to energy -conserving lamp drop, therefore a corridor energy -conserving lamp mounting structure is presented to facilitate the installation of corridor energy -conserving lamp. SUMMARY

[0004] In order to overcome the inconvenience of installing corridor energy -conserving lamp.

[0005] The technical implementation scheme of the utility model is: a corridor energy -conserving lamp mounting structure, including lamp shell, LED lamp is arranged in the lamp shell, further including connecting barrel, the connecting barrel is fixedly connected to the top end of the lamp shell, the lamp cover is threadedly connected to the bottom end of the lamp shell, the connecting barrel top is provided with a through hole, the outer wall of the connecting barrel is provided with a plurality of rectangular through slots, the inner wall of the lamp shell is circumferentially arranged with a plurality of inclined racks, the top of the lamp shell is provided with a circular through slot, the hollow tube is slidably connected in the circular through slot of the lamp shell, a plurality of hinged rods are circumferentially arranged and hinged to the outer wall of the hollow tube, the one end of a plurality of hinged rods is hingedly connected with a clamping block, and the clamping block is slidably connected with the rectangular through slot of the connecting barrel.

[0006] As a preferred technical scheme of the utility model, further including damping strip, one side of two clamping blocks is fixedly connected with a plurality of damping strips, and one side of the other two clamping blocks is fixedly connected with a plurality of clamping blocks.

[0007] As a preferred technical scheme of the utility model, further including moving disc, the outer wall of the hollow tube is fixedly connected with the moving disc, a plurality of rectangular grooves are formed in the outer wall of the moving disc, a plurality of inclined blocks are slidably connected in the rectangular grooves, the first spring is connected between the inclined block and the rectangular groove of the moving disc, the inclined block can be clamped with the inclined rack when moving, the second spring is connected between the top of the moving disc and the lamp shell, and a plurality of limiting grooves are uniformly distributed in the arc shape of the bottom end of the moving disc.

[0008] As a preferred technical scheme of the utility model, it further comprises a pull rope, a circular groove is formed at the bottom end of the moving disc, a pull plate is attached to the bottom end of the moving disc, one end of the pull rope is fixedly connected to one side of each of the plurality of inclined blocks, the other end of the pull rope is located in the circular groove and is fixedly connected to the pull plate, the pull rope is slidably connected to the moving disc, a plurality of square guide grooves are formed at the bottom of the moving disc, and a slide column is slidably connected to each of the plurality of square guide grooves.

[0009] As a preferred technical scheme of the utility model, it further comprises a rubber clamp block, the rubber clamp block is fixedly connected to the bottom end of each of the plurality of slide columns, and a limiting plate is fixedly connected to one side of the rubber clamp block.

[0010] As a preferred technical scheme of the utility model, it further comprises an adjusting disc, the adjusting disc is rotatably connected to the bottom end of the moving disc, a plurality of arc-shaped guide grooves are formed in the adjusting disc, the arc-shaped guide grooves are slidably connected to the slide columns, a pull column is slidably connected to one side of the adjusting disc, a third spring is connected between the pull column and the adjusting disc, and the pull column is capable of being clamped with the limiting groove when the pull column moves.

[0011] The utility model discloses a corridor energy-saving lamp mounting structure, through the cooperation of hollow pipe and four hinged rods, hollow pipe moves upwards, can make four hinged rods be extruded and push four clamping blocks to slide along four rectangular through grooves and move outward, until a plurality of damping strips and a plurality of clamping blocks contact and extrude in the inner wall of hole, the damping strip can increase the friction of the inner wall of hole, the clamping block can be inserted into the inner wall of hole and be clamped, make lamp shell be limited by damping strip and clamping block, prevent lamp shell from falling, through artificial driving moving disc and hollow pipe move upwards, can make clamping block drive damping strip and clamping block adjust according to the size of hole, and then make the installation of corridor energy-saving lamp more convenient. BRIEF DESCRIPTION OF DRAWINGS

[0012] Figure 1 The utility model discloses a three-dimensional structure schematic diagram;

[0013] Figure 2 The utility model discloses a three-dimensional structure explosion map;

[0014] Figure 3 The utility model discloses a place amplification diagram of A;

[0015] Figure 4 The utility model discloses a lamp shell structure sectional view;

[0016] Figure 5 The utility model discloses a moving disc bottom structure schematic diagram;

[0017] Figure 6 The utility model discloses a rubber clamp block structure schematic diagram.

[0018] As shown in the figure: 1: connecting cylinder, 101: lamp shell, 102: bevel gear, 2: hollow tube, 201: articulated rod, 202: clamping block, 203: damping strip, 204: clamping block, 3: moving disc, 301: square guide groove, 302: inclined block, 303: pull rope, 304: pull plate, 305: limiting groove, 4: adjusting disc, 401: slide column, 402: rubber clamp block, 403: limiting plate, 404: pull column, 405: arc-shaped guide groove, 5: LED lamp, 501: lampshade. DETAILED DESCRIPTION

[0019] The utility model is described in detail below in combination with the drawings and specific embodiments, but not as the limitation of the utility model.

[0020] Embodiment 1

[0021] A kind of corridor energy-saving lamp mounting structure, as shown in Figures 1-6 It includes lamp shell 101, and the inside of lamp shell 101 is equipped with LED lamp 5, further includes connecting cylinder 1, and the top of lamp shell 101 is fixedly connected with connecting cylinder 1, and the bottom of lamp shell 101 is threadedly connected with lampshade 501, and the top of connecting cylinder 1 is provided with through hole, and the outer wall of connecting cylinder 1 is provided with four rectangular through slots, and the inner wall of lamp shell 101 is circumferentially arrayed with three bevel gears 102, and the top of lamp shell 101 is provided with circular through slot, and the circular through slot of lamp shell 101 is slidably connected with hollow tube 2, and the outer wall of hollow tube 2 is circumferentially arrayed with four articulated rods 201, and the one end of four articulated rods 201 is hingedly connected with clamping block 202, and clamping block 202 is slidably connected with the rectangular through slot of connecting cylinder 1, wherein the side of the opposite two clamping blocks 202 is fixedly connected with a plurality of damping strips 203, and the side of the opposite two clamping blocks 202 is fixedly connected with a plurality of clamping blocks 204.

[0022] It further includes moving disc 3, and the outer wall of hollow tube 2 is fixedly connected with moving disc 3, and the outer wall of moving disc 3 is provided with three rectangular slots, and the three rectangular slots are slidably connected with inclined block 302, and the first spring is connected between inclined block 302 and the rectangular slot of moving disc 3, and inclined block 302 can be clamped with bevel gear 102 when moving, and a plurality of second springs are connected between the top of moving disc 3 and lamp shell 101, and the bottom of moving disc 3 is evenly distributed with a plurality of limiting grooves 305.

[0023] It further includes pull rope 303, and the bottom of moving disc 3 is provided with circular groove, and the bottom of moving disc 3 is attached with pull plate 304, and the side of three inclined blocks 302 is fixedly connected with one end of pull rope 303, and the other end of three pull ropes 303 is located in circular groove and is fixedly connected with pull plate 304, and pull rope 303 is slidably connected with moving disc 3, and the bottom of moving disc 3 is provided with three square guide grooves 301, and the three square guide grooves 301 are slidably connected with slide column 401.

[0024] Further include rubber clamp block 402, the bottom of three slide columns 401 is fixed with rubber clamp block 402, rubber clamp block 402 one side is fixed with limiting plate 403, rubber clamp block 402 and limiting plate 403 are used to clamp LED lamp 5.

[0025] Further include adjusting disc 4, moving disc 3 bottom rotary connection has adjusting disc 4, adjusting disc 4 inside and hollow tube 2 outer wall rotary connection, adjusting disc 4 inside is provided with three arc-shaped guide slot 405, arc-shaped guide slot 405 and slide column 401 sliding connection, adjusting disc 4 one side through type sliding connection has pull column 404, pull column 404 and adjusting disc 4 between connection has third spring, pull column 404 one end activity can with limiting groove 305 clamping.

[0026] In initial state, slide column 401 is located in square guide slot 301 near moving disc 3 outer side, the top of the corridor is provided with hole, when installing corridor lamp, first manually arrange the wire in the hole, then the wire is passed through the through hole of connecting cylinder 1 through hollow tube 2, then connecting cylinder 1 is inserted into the hole, manually pull pull plate 304, pull plate 304 is forced to move away from moving disc 3, three pull ropes 303 are forced to drive three inclined blocks 302 to move into three rectangular slots, three first springs are forced to compress, at this time, manually push moving disc 3 to move upwards, moving disc 3 moves, extruding second spring, at the same time, hollow tube 2 and adjusting disc 4 also move upwards, hollow tube 2 moves through four hinged rods 201 to push four clamping blocks 202 to slide outward in four rectangular through slots, until the damping strip 203 and the clamping block 204 contact and extrude the inner wall of the hole, the damping strip 203 can increase the friction with the inner wall of the hole, the clamping block 204 can be clamped into the inner wall of the hole to be clamped, so that the lamp shell 101 is limited by the damping strip 203 and the clamping block 204, preventing the lamp shell 101 from falling, by manually pushing the moving disc 3 to drive the hollow tube 2 to move upwards, the clamping block 202 can drive the damping strip 203 and the clamping block 204 to adjust according to the size of the hole, so as to adapt to different diameter holes; then manually release the pull plate 304, three pull ropes 303 no longer limit three inclined blocks 302, three first springs release to drive three inclined blocks 302 to move out of three rectangular slots, three inclined blocks 302 move into the gap of the bevel gear 102, so that the bevel gear 102 limits the moving disc 3 through three inclined blocks 302, then manually connect the wire and LED lamp 5, and place LED lamp 5 directly below adjusting disc 4, it is worth noting that one end of pull column 404 is located in one of limiting grooves 305 to limit adjusting disc 4, manually pull pull column 404, so that one end of pull column 404 is separated from limiting groove 305, and adjusting disc 4 is released, such as Figure 5As shown, the artificial passes through the pull column 404 to drive the adjusting disc 4 to rotate counterclockwise, the adjusting disc 4 drives the three arc-shaped guide grooves 405 to rotate synchronously when rotating, the three arc-shaped guide grooves 405 rotate to extrude the three slide columns 401, the three slide columns 401 move along the three square guide grooves 301 and approach each other, the three slide columns 401 drive the rubber clamping blocks 402 and the limiting plates 403 to move synchronously, until the limiting plates 403 are located below the LED lamp 5 and the rubber clamping blocks 402 contact and extrude the LED lamp 5, the LED lamp 5 is clamped by the rubber clamping blocks 402, at this time, the LED lamp 5 is limited by the rubber clamping blocks 402 and the limiting plates 403, then the pull column 404 is loosened, the third spring release drives the pull column 404 to slide into the limiting groove 305, so that the pull column 404 completes the limiting of the adjusting disc 4, through the rotation of the adjusting disc 4 and the arc-shaped guide groove 405, the three slide columns 401 can approach each other along the square guide groove 301, the LED lamp 5 of different diameters is clamped, if the LED lamp 5 is separated from the rubber clamping block 402, the LED lamp 5 falls downward and contacts the limiting plate 403, so that the LED lamp 5 is always located above the limiting plate 403, after the LED lamp 5 is installed, the lamp shell 101 and the lamp shade 501 are screwed, the installation is completed.

[0027] The above-described embodiments only express the preferred embodiments of the present application, and the description is more specific and detailed, but it should not be understood as limiting the scope of the present application. It should be noted that for ordinary skilled in the art, without departing from the concept of the present application, a number of modifications, improvements and substitutions can be made, which all belong to the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the appended claims.

Claims

1. A corridor energy-saving lamp installation structure, comprising a lamp housing (101), wherein an LED lamp (5) is provided inside the lamp housing (101), characterized in that: It also includes a connecting cylinder (1), the top of the lamp housing (101) is fixedly connected to the connecting cylinder (1), the bottom of the lamp housing (101) is threadedly connected to the lamp cover (501), the top of the connecting cylinder (1) is provided with a through hole, the outer wall of the connecting cylinder (1) is provided with several rectangular through slots, the inner wall of the lamp housing (101) is circumferentially arrayed with several oblique racks (102), the top of the lamp housing (101) is provided with a circular through slot, a hollow tube (2) is slidably connected in the circular through slot of the lamp housing (101), the outer wall of the hollow tube (2) is circumferentially arrayed with several hinge rods (201), one end of each of the several hinge rods (201) is hinged with a locking block (202), and the locking block (202) is slidably connected to the rectangular through slot of the connecting cylinder (1).

2. The corridor energy-saving light installation structure as described in claim 1, characterized in that: It also includes damping strips (203), wherein several damping strips (203) are fixed to one side of two locking blocks (202), and several locking blocks (204) are fixed to one side of the other two locking blocks (202).

3. The corridor energy-saving lamp installation structure as described in claim 2, characterized in that: It also includes a movable disk (3), the outer wall of the hollow tube (2) is fixed to the movable disk (3), the outer wall of the movable disk (3) is provided with several rectangular grooves, and the inclined blocks (302) are slidably connected in the several rectangular grooves. A first spring is connected between the inclined blocks (302) and the rectangular grooves of the movable disk (3). When the inclined blocks (302) move, they can engage with the inclined rack (102). A second spring is connected between the top of the movable disk (3) and the lamp housing (101). Several limiting grooves (305) are evenly distributed in an arc shape at the bottom of the movable disk (3).

4. The corridor energy-saving lamp installation structure as described in claim 3, characterized in that: It also includes a pull rope (303), a circular groove at the bottom of the movable disk (3), a pull plate (304) attached to the bottom of the movable disk (3), one end of the pull rope (303) fixed to one side of several inclined blocks (302), the other end of several pull ropes (303) located in the circular groove and fixed to the pull plate (304), the pull rope (303) slidably connected to the movable disk (3), several square guide grooves (301) at the bottom of the movable disk (3), and a sliding column (401) slidably connected in several square guide grooves (301).

5. The corridor energy-saving lamp installation structure as described in claim 4, characterized in that: It also includes rubber clamps (402), and several sliding columns (401) are fixedly connected to the bottom of the rubber clamps (402), and a limit plate (403) is fixedly connected to one side of the rubber clamps (402).

6. The corridor energy-saving lamp installation structure as described in claim 5, characterized in that: It also includes an adjustment plate (4), the bottom of the movable plate (3) is rotatably connected to the adjustment plate (4), the adjustment plate (4) has several arc-shaped guide grooves (405) inside, the arc-shaped guide grooves (405) are slidably connected to the sliding column (401), a pull column (404) is slidably connected through one side of the adjustment plate (4), a third spring is connected between the pull column (404) and the adjustment plate (4), and one end of the pull column (404) can engage with the limiting groove (305) when it moves.