LED self-induction bulb lamp

By incorporating clamping components, warning alarm components, and anti-scalding protection components, the design solves the problems of unstable fixing and theft prevention for LED self-sensing bulbs in outdoor camping and night market scenes. It achieves stable clamping, instant alarm, and anti-scalding protection, thereby improving service life and safety.

CN121251997APending Publication Date: 2026-01-02LINAN NEW SANLIAN LIGHTING ELECTRIC +1
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Patent Information

Application Number
CN202511469816.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-15
Publication Date
2026-01-02

AI Technical Summary

Technical Problem

Existing LED self-sensing bulbs have problems such as unstable fixing and poor theft prevention in outdoor camping and night market scenes. They are easily affected by wind and are easily stolen, which affects their service life and normal lighting.

Method used

The lamp body is secured by a combination of clamping components and magnets. The clamping components include a movable base, an adjustment plate, and a clamping plate. The adjustment and control components enable stable clamping. The warning alarm component provides immediate alarm through a laser sensor and a buzzer. The anti-scalding protection component protects the lamp body with high-temperature resistant materials.

Benefits of technology

It improves the stability of LED self-sensing bulbs in windy environments, prevents collision damage, enhances anti-theft capabilities, ensures lighting stability and safety, and reduces the risk of theft.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of bulb lamps, and discloses an LED self-induction bulb lamp which comprises an LED self-induction bulb lamp body and further comprises an LED light source, an LED light source and a power source. And the supporting plate is connected to the LED self-induction bulb lamp body. Through the clamping assembly and the clamping control assembly on the supporting plate, the movable base is controlled to be adjusted on the supporting plate in a sliding mode, and stable clamping can be formed between the movable base and fixing objects such as branches and tent supports in field camping in cooperation with the adjusting plate and the clamping plate installed on the adjusting part; and the magnet block matched with the LED self-induction bulb lamp body can enhance the adsorption force when the LED self-induction bulb lamp body is magnetically attracted and fixed with a frame of a dining car in the night market environment, so that the LED self-induction bulb lamp body is effectively prevented from swinging under the action of wind power, the LED self-induction bulb lamp body can be applied to various environments, the collision probability of the LED self-induction bulb lamp body and objects such as branches is fundamentally reduced, and the service life of the dining car is prolonged. According to the LED self-induction bulb lamp, surface scratching and structural damage are avoided, the service life of the LED self-induction bulb lamp body is prolonged, meanwhile, interference of collision vibration on induction sensitivity is prevented, and illumination stability is guaranteed.
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Description

TECHNICAL FIELD

[0001] The application belongs to the technical field of ball bubble lamps, and specifically relates to an LED self-sensing ball bubble lamp. BACKGROUND

[0002] At present, as an energy-saving and convenient lighting device, the LED self-sensing ball bubble lamp has been widely applied to various scenes by virtue of the characteristics of automatic sensing of human activities to realize light-off, and in the field camping scene, it can provide timely lighting for campers and facilitate night activities; in the night market and other commercial scenes, it can be used as auxiliary lighting of a dining car or a stall to reduce the trouble of manually turning on and off the lamp and improve the operating efficiency. In addition, the design of the self-contained battery makes it free from the constraint of an electric wire and has extremely strong mobility, further expanding the application range and meeting the lighting needs of users in the environment without fixed power supply.

[0003] However, the existing LED self-sensing ball bubble lamp still has many deficiencies in actual use and is difficult to fully adapt to the special needs of the field camping and night market scenes. When being hung in the field camping, the LED self-sensing ball bubble lamp is usually fixed on a tree branch or the like through a simple hook or an ordinary rope. Since the field environment is windy, the LED self-sensing ball bubble lamp is easy to swing with the wind and frequently collide with the tree branch or the like. This not only may cause scratches on the surface of the LED self-sensing ball bubble lamp and structural damage, affecting the service life, but also may interfere with the sensing sensitivity due to the vibration caused by the collision, leading to unstable lighting. In addition, in terms of magnetic attraction theft prevention, the magnetic attraction structure of the existing LED self-sensing ball bubble lamp with the magnetic attraction function only plays a fixing role and lacks effective theft prevention warning function. In the night market and other scenes with a large number of people and high mobility, the LED self-sensing ball bubble lamp is easy to be easily taken down and stolen by others, and the user often has difficulty in timely detection, causing property loss and affecting the normal lighting needs of the operating activities.

[0004] Therefore, for the application of the existing LED self-sensing ball bubble lamp in hanging and fixing stability and magnetic attraction theft prevention safety, an improved LED self-sensing ball bubble lamp capable of meeting the special needs of the field camping and night market scenes is urgently needed. SUMMARY

[0005] To solve the problems proposed in the background, the application provides an LED self-sensing ball bubble lamp, which comprises an LED self-sensing ball bubble lamp body and further comprises; a support plate connected to the LED self-sensing ball bubble lamp body; a clamping assembly arranged on the support plate and used for clamping and fixing with a fixed object in the field camping to prevent shaking under the wind force; The clamping assembly comprises a movable base, the movable base is slidably connected to the support plate, and an adjusting plate is mounted on the movable base through an adjusting piece. The clamping control assembly is arranged below the clamping assembly and is used for controlling the clamping strength of the clamping assembly so that the clamping assembly can adapt to different fixed objects.

[0006] Preferably, the clamping assembly further comprises a clamping plate which is slidably connected to the inside of the adjusting plate through the elastic member, the bottom of the clamping plate is connected with a friction strip, the bottom of the clamping plate is connected with a magnet block, a resisting rod is slidably connected to the clamping plate, the resisting rod is connected with a pulling spring, the bottom of the pulling spring is connected with the clamping plate, and the resisting rod is arranged in two groups and symmetrically.

[0007] Preferably, the adjusting member comprises a fixing rod which is connected to the inside of the adjusting plate, the fixing rod is rotatably connected to the inside of the moving base, a square block which is located outside the moving base is inserted into the fixing rod, and a pull tab which is connected to the inside of the moving base is connected to the square block.

[0008] Preferably, the elastic member comprises an elastic pushing piece which is connected to the inside of the adjusting plate and connected with the clamping plate, a protrusion is slidably connected to the clamping plate, and a resisting spring which is connected with the protrusion is arranged in the inside of the clamping plate.

[0009] Preferably, the clamping control assembly comprises a control rod which is connected to the bottom of the moving base, a control pull plate is sleeved on the control rod, a rotating ring is sleeved on the LED self-induction bulb lamp body, the rotating ring is sleeved on the LED self-induction bulb lamp body, a U-shaped ring is connected to the rotating ring, the control pull plate is slidably connected to the inside of the U-shaped ring, the control pull plate and the rotating ring are linked and controlled, a reset spring is connected to the U-shaped ring, and the bottom of the supporting plate is connected with the reset spring through a connecting plate.

[0010] Preferably, the bottom of the rotating ring is connected with a dial ring, the rotating ring is rotated by the friction between the finger and the dial ring when the rotating ring needs to be driven, the locking assembly which is arranged on the LED self-induction bulb lamp body is used for locking the clamping control assembly, and the clamping position of the adjusting plate in use is locked and controlled.

[0011] Preferably, the locking assembly comprises a locking gear and a toothed plate, the locking gear is connected to the LED self-induction bulb lamp body, the toothed plate is inserted into the locking gear, the toothed plate is inserted into the locking gear, the toothed plate is slidably arranged in the inside of the rotating ring, the outside of the toothed plate is connected with a baffle, the baffle is connected with a pushing spring which is connected with the rotating ring, a T-shaped plate is slidably connected to the rotating ring, and the T-shaped plate is connected with the bottom of the baffle.

[0012] Preferably, the LED self-sensing bulb lamp body is provided with a warning alarm component, which comprises a laser sensor installed on the LED self-sensing bulb lamp body, and a buzzer electrically connected to the laser sensor and installed on the LED self-sensing bulb lamp body, for prompting and alarming the user after the laser sensor detects that the position of the LED self-sensing bulb lamp body is shifted.

[0013] Preferably, the LED self-sensing bulb lamp body is provided with an anti-scald protection component for protecting the outside of the LED self-sensing bulb lamp body from scalding, and can be unfolded to increase the support area and push away the surrounding branches and leaves during outdoor camping, the anti-scald protection component comprises a protection sleeve, a pushing block connected to the protection sleeve, an installation plate connected to the LED self-sensing bulb lamp body, an adjusting screw internally threadedly connected to the installation plate, and the pushing block connected to the surface of the adjusting screw.

[0014] Preferably, the bottom of the moving base is connected with a sliding rod which is slidingly connected in the support plate to limit the moving position of the moving base.

[0015] Compared with the prior art, the present application has the following advantages: The clamping component and the clamping control component on the support plate are used to control the sliding adjustment of the moving base on the support plate, and the adjusting plate and the clamping plate installed by the adjusting member can be stably clamped with the fixed objects such as branches and tent supports during outdoor camping, and the magnet block cooperating with the objects can enhance the adsorption force in the magnetic attraction fixation with the frame of a dining car in a night market environment, effectively prevent the LED self-sensing bulb lamp body from swinging under the action of wind force, and adapt to the application in various environments, thereby fundamentally reducing the collision probability of the LED self-sensing bulb lamp body with branches and other objects, avoiding surface scratches and structural damage, prolonging the service life of the LED self-sensing bulb lamp body, and preventing the interference of collision vibration on the sensing sensitivity, thereby ensuring the lighting stability.

[0016] Further, the laser sensor in the warning alarm component is installed on the LED self-sensing bulb lamp body, which can monitor the distance change between the LED self-sensing bulb lamp body and the magnetic attraction fixed carrier, such as the metal surface of the food cart, in real time. When someone tries to remove the LED self-sensing bulb lamp body, causing it to move away from the fixed position, the laser sensor can quickly capture the position displacement signal and immediately transmit the signal to the buzzer to drive the buzzer to emit a high-decibel alarm sound. This instant response monitoring and alarm mechanism can issue a reminder at the initial stage of the LED self-sensing bulb lamp body being stolen, and the clamping rod on the clamping assembly can be clamped above the magnetic attraction fixed carrier by the pulling of the pulling spring, forming a physical anti-theft clamping. The warning alarm component and the magnetic attraction fixed carrier form a double anti-theft protection of physical fixation and electronic monitoring, effectively preventing the user from losing the LED self-sensing bulb lamp body due to negligence in crowded and complex environments such as night markets, and solving the problem that it is difficult to detect the theft of traditional magnetic attraction type bulb lamps.

[0017] Further, the protective strip sleeve in the anti-scald protection component is made of a material that is resistant to high temperature and has elasticity, tightly wrapping the outside of the LED self-sensing bulb lamp body. It can not only buffer the impact force when the LED self-sensing bulb lamp body is hit, reducing structural damage caused by falling and impact, and achieving the anti-collision function; but also effectively block the heat generated by the LED self-sensing bulb lamp body during operation, preventing the user from being scalded by directly touching the LED self-sensing bulb lamp body after long-term use in outdoor camping scenarios, and solving the problem of single protection function of traditional LED bulb lamps. Moreover, the protective strip sleeve can be expanded and retracted by adjusting the screw thread connection between the adjusting screw and the mounting plate. In the expanded state, the protective strip sleeve extends outward, increasing the support area of the LED self-sensing bulb lamp body, making it more stable when placed and less likely to tip over. When hung on a tree trunk, it can also push away surrounding branches and leaves, preventing the LED self-sensing bulb lamp body from being blocked and affecting the lighting effect, especially suitable for complex natural environments in outdoor camping. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 is a schematic diagram of the three-dimensional structure of the present application; Figure 2 is a schematic diagram of the three-dimensional structure of the present application; Figure 3 is a schematic diagram of the three-dimensional structure of the present application; Figure 4 is a schematic diagram of the three-dimensional structure of the present application; Figure 5 is a schematic diagram of the three-dimensional structure of the present application; Figure 6 is a schematic diagram of the three-dimensional structure of the present application; Figure 7 is a schematic diagram of the three-dimensional structure of the present application; Figure 8 Fig. 1 is a schematic view of the three-dimensional section of the elastic member of the present application. In the figure: 1, LED self-induction bulb lamp body; 2, support plate; 3, clamping assembly; 31, moving base; 32, adjusting plate; 33, adjusting member; 331, fixed rod; 332, square block; 333, pull tab; 34, elastic member; 341, elastic pushing piece; 342, protruding block; 343, abutting elastic piece; 35, friction strip; 36, magnet block; 37, abutting rod; 38, pulling elastic piece; 39, clamping plate; 4, clamping control assembly; 41, control rod; 42, control pull plate; 43, rotating ring; 44, U-shaped ring; 45, reset elastic piece; 5, locking assembly; 51, locking gear; 52, toothed plate; 53, baffle; 54, pushing elastic piece; 55, T-shaped plate; 6, warning alarm assembly; 61, laser sensor; 62, buzzer; 7, anti-scald protection assembly; 71, protection strip sleeve; 72, toggle block; 73, mounting plate; 74, adjusting screw; 8, toggle ring; 9, sliding rod. DETAILED DESCRIPTION

[0019] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the protection scope of the present application.

[0020] As shown in Figures 1 to 8 the present application provides an LED self-induction bulb lamp, which comprises an LED self-induction bulb lamp body 1 and further comprises: a support plate 2 connected to the LED self-induction bulb lamp body 1; a clamping assembly 3 arranged on the support plate 2 and used for clamping and fixing with a fixed object in the field camping to prevent shaking caused by wind force; The clamping assembly 3 comprises a moving base 31 slidably connected to the support plate 2, and an adjusting plate 32 mounted on the moving base 31 through an adjusting member 33; a clamping control assembly 4 arranged below the clamping assembly 3 and used for controlling the clamping force of the clamping assembly 3 so that the clamping assembly 3 can adapt to different fixed objects; The clamping control assembly 4 comprises a control rod 41 connected to the bottom of the moving base 31, and a control pull plate 42 sleeved on the control rod 41; a locking assembly 5 arranged on the LED self-induction bulb lamp body 1 and used for locking the clamping control assembly 4 so that the clamping control assembly 4 can be locked after being controlled and adjusted, and the clamping position of the adjusting plate 32 in use is locked and controlled; The locking assembly 5 comprises a locking gear 51 connected to the LED self-sensing bulb lamp body 1. The warning alarm assembly 6 is arranged on the LED self-sensing bulb lamp body 1 and is used for warning and alarming to remind the user of the displacement of the use position of the LED self-sensing bulb lamp body 1 after the LED self-sensing bulb lamp body 1 is separated from the fixing during use.

[0021] Specifically, the LED self-sensing bulb lamp body 1 is the basic bearing structure of the whole LED self-sensing bulb lamp, and the LED lamp beads, the self-sensing module such as the pyroelectric infrared sensor, the battery module and the core control unit MCU are integrated in the LED self-sensing bulb lamp body 1. The battery module provides energy support for the lighting, sensing and operation of each functional assembly of the LED self-sensing bulb lamp body 1. The LED lamp beads are responsible for lighting, the self-sensing module is used for detecting human activity to realize automatic on-off function, and the MCU is the control core of the whole LED self-sensing bulb lamp body 1, which is connected with the LED lamp beads, the self-sensing module and the battery module through wires, and is also electrically connected with the laser sensor 61 and the buzzer 62 in the warning alarm assembly 6. The work of each component is coordinated. Since the LED self-sensing bulb lamp body 1 is a mature product, it is not described in detail here. The support plate 2 is made of light alloy material and is fixed to the non-lighting surface of the LED self-sensing bulb lamp body 1. The length of the support plate 2 is the same as the diameter of the LED self-sensing bulb lamp body 1, which provides a stable mounting basis for the clamping assembly 3 and ensures the stress balance during clamping. The clamping assembly 3, the clamping control assembly 4, the locking assembly 5 and the warning alarm assembly 6 are orderly distributed around the LED self-sensing bulb lamp body 1 and the support plate 2. Reasonable gaps are reserved between each component to avoid mutual interference during work.

[0022] As shown in Figure 1 , Figure 3 , Figure 4 and Figure 5 , the clamping assembly 3 further comprises a clamping plate 39 which is slidably connected to the inside of the adjusting plate 32 through the elastic piece 34. The bottom of the clamping plate 39 is connected with a friction strip 35. The bottom of the clamping plate 39 is connected with a magnet block 36. A pressing rod 37 is slidably connected to the clamping plate 39. A pulling spring 38 is connected to the pressing rod 37. The bottom of the pulling spring 38 is connected with the clamping plate 39. The pressing rod 37 is provided in two groups and symmetrically arranged.

[0023] Specifically, the clamping plate 39 is sized to fit the internal cavity of the adjusting plate 32 and can slide along the length direction of the adjusting plate 32. The friction strip 35 is made of rubber material and has diamond-shaped anti-slip lines on the surface to increase the friction with the fixed object such as a tree branch. The magnet block 36 is made of neodymium-iron-boron strong magnetic material to further improve the clamping stability by adsorbing the metal fixed object. The abutting rod 37 is made of stainless steel material, and the part of the abutting rod 37 protruding out of the surface of the clamping plate 39 is embedded with a rubber head to increase the friction during abutting. When the clamping plate 39 contacts the fixed object, the abutting rod 37 is forced to contract inwardly, the elastic sheet 38 is deformed, and a reverse elastic force is generated to push the clamping plate 39 to tightly contact the fixed object. When the magnet block 36 is fixed on the dining car frame in the night market, the abutting rod 37 can be clamped above the frame to form a physical clamping anti-theft function. The two sets of symmetrically arranged abutting rods 37 can ensure uniform stress and avoid tilting of the clamping plate 39.

[0024] As shown in Figures 3 to 6 , the adjusting member 33 includes a fixed rod 331 connected inside the adjusting plate 32, the fixed rod 331 is rotationally connected with the inside of the moving base 31, and the fixed rod 331 is inserted with a block 332 located outside the moving base 31, and the block 332 is connected with a pull tab 333 connected with the inside of the moving base 31.

[0025] Specifically, the two ends of the fixed rod 331 are rotationally connected with the inside of the moving base 31, which can provide rotation adjustment for the adjusting plate 32 to be stored and unfolded. When the fixed rod 331 is rotated, it can drive the adjusting plate 32 to move axially along the fixed rod 331 to realize the unfolded and stored states of the adjusting plate 32. The shape of the block 332 matches the square groove at the end of the fixed rod 331. After being inserted into the end of the fixed rod 331, the block 332 can be kept stable after adjustment of the fixed rod 331 by the external square shape and the clamping of the moving base 31. That is, the adjusting plate 32 on the fixed rod 331 cannot be rotationally adjusted unless the block 332 is removed from the end of the fixed rod 331. After the block 332 is pulled out by the pull tab 333, the block 332 is pulled back into the storage slot outside the moving base 31 to avoid accidental touch. This design makes the position adjustment of the adjusting plate 32 more flexible, which can adapt to different specifications of fixed objects and can be stored and unfolded for use.

[0026] As shown in Figures 6 to 8 , the elastic member 34 includes an elastic push piece 341 connected inside the adjusting plate 32 and connected with the clamping plate 39. The clamping plate 39 is slidingly connected with a protrusion 342, and the inside of the clamping plate 39 is provided with an abutting elastic sheet 343 connected with the protrusion 342.

[0027] Specifically, the elastic pushing piece 341 is a rectangular spring steel piece, one end of which is fixed to the inner wall of the adjusting plate 32, and the other end is connected with the clamping plate 39, providing a continuous outward pushing force for the clamping plate 39, ensuring that the clamping plate 39 can be controlled in use to adapt to the clamping height of the clamping plate 39, so that the position of the clamping plate 39 in contact with the fixed object is controllable and adjustable. The convex block 342 is externally hemispherical in structure and can slide in the sliding groove in the clamping plate 39. The abutting elastic piece 343 is located inside the convex block 342. When it is necessary to adjust the application height of the clamping plate 39, the position of the convex block 342 can be controlled by pressing the convex block 342 to be clamped in different openings of the adjusting plate 32, so as to control the application height of the clamping plate 39. The spherical structure of the convex block 342 can reduce the friction with the opening of the adjusting plate 32, facilitating the quick adjustment of the application position of the convex block 342 after the user presses it.

[0028] As shown in Figures 1 to 4 , the clamping control assembly 4 further comprises a rotating ring 43, which is sleeved on the LED self-induction bulb lamp body 1. The rotating ring 43 is connected with a U-shaped ring 44. The control pull plate 42 is slidingly connected inside the U-shaped ring 44, used to link the control pull plate 42 and the rotating ring 43. The U-shaped ring 44 is connected with a reset spring piece 45. The bottom of the support plate 2 is connected with the reset spring piece 45 through a connecting plate.

[0029] Specifically, the rotating ring 43 is gap-fitted with the LED self-induction bulb lamp body 1 and can rotate freely around the LED self-induction bulb lamp body 1. The U-shaped ring 44 is integrally formed with the rotating ring 43. The two ends of the control pull plate 42 are slidingly connected with the control rod 41 and the U-shaped ring 44, respectively. When the rotating ring 43 rotates counterclockwise, the U-shaped ring 44 drives the control pull plate 42 to pull the control rod 41, so that the control rod 41 drives the moving base 31 to slide towards the inside of the support plate 2 along the direction of the notch opened on the support plate 2, reducing the distance between the adjusting plate 32 and the fixed object, realizing clamping. Moreover, the U-shaped ring 44 continuously extrudes and elastically compresses the reset spring piece 45 during rotation. When it is necessary to release the clamping and fixation, after the locking assembly 5 is released, the reset spring piece 45 elastically releases to reset the U-shaped ring 44, so that the control pull plate 42 movably connected with the U-shaped ring 44 also reversely drives the moving base 31 to move away from the support plate 2 along the notch on the support plate 2.

[0030] As shown in Figures 1 to 4 , the locking assembly 5 comprises a toothed plate 52, which is inserted on the locking gear 51. The toothed plate 52 slides inside the rotating ring 43. The outside of the toothed plate 52 is connected with a baffle 53. The baffle 53 is connected with a pushing spring piece 54 connected with the rotating ring 43. The rotating ring 43 is slidingly connected with a T-shaped plate 55, which is connected with the bottom of the baffle 53.

[0031] Specifically, the locking gear 51 is fixedly sleeved on the LED self-induction bulb lamp body 1, the teeth of the locking gear 51 are uniformly distributed, the end of the toothed plate 52 is provided with a toothed structure engaged with the outside of the locking gear 51, the push spring 54 always pushes the baffle 53 to keep the toothed plate 52 engaged with the locking gear 51, and the sliding of the toothed plate 52 in the inside of the rotating ring 43 is also limited by the rotating ring 43 to make the toothed plate 52 rotate with the rotating position of the rotating ring 43. Whenever the toothed plate 52 rotates by one step, the toothed plate 52 is pushed by the push spring 54 to realize the locking of the rotating ring 43, so that the rotating ring 43 can be fixed in each step in the counterclockwise rotation to prevent the rotation. When it is needed to release the fixing of the rotating ring 43, the toothed plate 52 is pulled outward by the baffle 53 to be separated from the locking gear 51, at this time, the rotating ring 43 can be freely rotated, the baffle 53 is released after the adjustment is completed, the toothed plate 52 is re-engaged with the locking gear 51 under the action of the push spring 54, and the re-locking is completed.

[0032] As shown in Figure 1 The warning alarm assembly 6 includes a laser sensor 61 mounted on the LED self-induction bulb lamp body 1, and a buzzer 62 electrically connected with the laser sensor 61 is mounted on the LED self-induction bulb lamp body 1, for prompting and alarming the user after the laser sensor 61 detects that the use position of the LED self-induction bulb lamp body 1 is shifted.

[0033] Specifically, the laser sensor 61 selects a TOF distance measuring module, is mounted on the LED self-induction bulb lamp body 1, and is on the same side with a magnetic attraction surface on the LED self-induction bulb lamp body 1, the detection direction of the laser sensor 61 is perpendicular to the magnetic attraction surface, the distance between the LED self-induction bulb lamp body 1 and the magnetic attraction carrier can be measured in real time, the measurement range is adjustable, the buzzer 62 is a passive buzzer, is mounted on the side of the LED self-induction bulb lamp body 1, and is communicated with the outside through a hole, the laser sensor 61 and the buzzer 62 are connected with an MCU micro control unit in the inside of the LED self-induction bulb lamp body 1 through wires, and the power sources are all from a battery module of the LED self-induction bulb lamp body 1. When the laser sensor 61 detects that the distance exceeds a preset threshold value such as two centimeters and lasts for more than zero point five seconds, the MCU drives the buzzer 62 to emit intermittent alarm sound of “tick-tick”, and the LED lamp beads can also be linked to flash, until the distance returns to normal or the reset button is manually pressed. The laser sensor 61 and the buzzer 62 are powered by a lithium battery of the LED self-induction bulb lamp body 1, are converted into an adaptive voltage through a DC-DC power module on a main control board, and voltage fluctuation caused by direct power supply is avoided.

[0034] As shown in Figures 1 to 2As shown, the LED self-induction bulb lamp body 1 is provided with an anti-scald protection assembly 7 for anti-scald protection of the outside of the LED self-induction bulb lamp body 1, and can be expanded to increase the support area and push away the surrounding branches and leaves in the field camping. The anti-scald protection assembly comprises a protection strip sleeve 71, a pushing block 72 connected to the protection strip sleeve 71, an installation plate 73 connected to the LED self-induction bulb lamp body 1, and an adjusting screw 74 threadedly connected to the inside of the installation plate 73. The pushing block 72 is connected to the surface of the adjusting screw 74.

[0035] Specifically, the protection strip sleeve 71 is made of high-temperature-resistant silica gel material and internally provided with a metal framework to enhance the structural strength. In a natural state, the protection strip sleeve 71 is arranged outside the LED self-induction bulb lamp body 1 for protection. When expanded, the protection strip sleeve 71 can form a four-corner support structure, which can be placed on the ground for lighting. After complete expansion, the protection strip sleeve 71 can be placed on a tree trunk to provide a larger support area, so that it does not shake during use, and can push away branches and leaves to avoid blocking light. When the pushing block 72 is rotated, the adjusting screw 74 moves axially along the installation plate 73 to drive the expansion or folding of the protection strip sleeve 71. When expanded, the protection strip sleeve 71 extends outward, and gaps are formed between adjacent protection strip sleeves 71, which do not affect heat dissipation and can increase the support area. When folded, the protection strip sleeve 71 is attached to the LED self-induction bulb lamp body 1 to reduce space occupation. The protection strip sleeve 71 can prevent scalding when the LED self-induction bulb lamp body 1 is taken, and can also provide partial buffer protection when the LED self-induction bulb lamp body 1 falls during use.

[0036] As shown in Figure 4 The bottom of the rotating ring 43 is connected with a pushing ring 8, which is used to rotate the rotating ring 43 by friction between the fingers and the pushing ring 8 when the rotating ring 43 needs to be driven.

[0037] Specifically, the pushing ring 8 is provided with uniformly distributed strip-shaped grooves on the surface to increase the friction between the fingers and the pushing ring 8, facilitating the rotation of the rotating ring 43 after the fingers are rubbed thereon.

[0038] As shown in Figure 5 The bottom of the moving base 31 is connected with a sliding rod 9, which is slidingly connected in the support plate 2 to limit the moving position of the moving base 31.

[0039] Specifically, the sliding rod 9 is a metal round rod and is connected perpendicularly to the moving base 31. The support plate 2 is provided with a slot that is adapted to the sliding rod 9. The sliding rod 9 can slide along the slot direction to drive the moving base 31 to slide in the support plate 2. The end of the sliding rod 9 is larger than the width of the slot to prevent the sliding rod 9 from coming out of the support plate 2. The cooperation between the sliding rod 9 and the slot can ensure that the moving base 31 does not deviate or rotate during sliding, thereby ensuring the stable operation of the clamping assembly 3.

[0040] The working process of the technical scheme provided by the application is as follows: When the LED self-induction bulb lamp body 1 needs to be fixed on a fixing object such as a tree trunk for use in field camping, first, the adjusting plate 32 is unfolded by adjusting the adjusting piece 33, the square block 332 is pulled out of the square groove at the end of the fixing rod 331, then the adjusting plate 32 is unfolded from the storage state to a suitable angle with the fixing rod 331 as the center, then the square block 332 is pulled back to the moving base 31 by the pull piece 333, at this time, the position of the fixing rod 331 is fixed, the adjusting plate 32 remains in the unfolded state, then the clamping force is adjusted by the clamping control assembly 4, the finger contacts the knob ring 8 at the bottom of the rotating ring 43, the friction force is increased by using the strip-shaped groove on the surface of the knob ring 8, the rotating ring 43 is counterclockwise rotated, the U-shaped ring 44 is synchronously rotated by the rotating ring 43, the control pull plate 42 is pulled by the U-shaped ring 44, the moving base 31 is slid inwards along the slot on the support plate 2 by the control pull plate 42 through the control rod 41, the adjusting plate 32 and the clamping plate 39 gradually approach the fixing object, during the clamping process, the rubber head at the top of the abutting rod 37 is in contact with the fixing object and is forced to shrink, the elastic sheet 38 is deformed to generate a reverse elastic force to continuously push the abutting rod 37 to contact with the fixing object, and the friction strip 35 on the clamping plate 39 can clamp and fix the fixing object when the friction strip 35 is in contact with the fixing object, when the clamping force is appropriate, the locking assembly 5 plays a role, during the rotation of the rotating ring 43, the tooth plate 52 is always in mesh with the locking gear 51 under the action of the push spring 54, every time the tooth plate 52 is turned by one tooth, the tooth plate 52 is clamped into the corresponding tooth of the locking gear 51, the rotating ring 43 is instantaneously locked, and the rotating ring 43 is prevented from rotating, the fixing object such as a tree trunk is clamped and fixed in field camping, the LED self-induction bulb lamp body 1 is not easy to move with the wind after being fixed thereon, the swing caused by the wind force is effectively resisted, collision with branches and the like is avoided to cause scratches, and the stable lighting requirement in field camping is met; In the night market and other scenarios, when the LED self-induction bulb lamp body 1 is fixed on the metal carrier such as a dining car frame, the magnetic attraction fixing of the LED self-induction bulb lamp body 1 mainly relies on the magnet block 36 on the clamping plate 39, which can be firmly adsorbed on the metal surface of the dining car frame during the clamping process. At the same time, the magnet originally on the LED self-induction bulb lamp body 1 can also play a magnetic attraction role. The abutting rod 37 is clamped above the frame under the action of the elastic force, forming a physical clamping, further enhancing the fixing effect and increasing the difficulty of others to take down the LED self-induction bulb lamp body 1. When someone tries to take down the LED self-induction bulb lamp body 1, causing the distance between the LED self-induction bulb lamp body 1 and the carrier to exceed the preset threshold, and the state continues for more than zero point five seconds, the MCU determines that it is an abnormal displacement. At this time, the MCU immediately sends a control signal to the buzzer 62, and the buzzer 62 emits intermittent alarm sound, and the LED lamp beads flash at the same time, which attracts the attention of the surrounding people through the combination of sound and light, and warns against theft. If the LED self-induction bulb lamp body 1 is re-fixed, the laser sensor 61 detects that the distance returns to within the threshold and continues for 1 second, or the user presses the manual reset button, the MCU will control the buzzer 62 to stop alarming, and the LED lamp beads return to the normal lighting state. Through the combination of magnetic attraction fixing, physical clamping and abnormal monitoring alarm, the LED self-induction bulb lamp body 1 is effectively prevented from being stolen in the night market and other scenarios, and the user is reminded in time in abnormal circumstances. The protective strip sleeve 71 outside the LED self-induction bulb lamp body 1 is attached to the outside of the LED self-induction bulb lamp body 1 in a natural state. When taking, the user contacts the protective strip sleeve 71, avoiding being scalded when the user directly touches the LED self-induction bulb lamp body 1. It is suitable for the scene after the LED self-induction bulb lamp body 1 illuminates for a long time in the field camping. When it is necessary to unfold the protective strip sleeve 71, rotate the driving block 72 to drive the adjusting screw 74 to rotate in the threaded hole of the mounting plate 73. The adjusting screw 74 moves along the axial direction to push the protective strip sleeve 71 to unfold outward. The unfolded protective strip sleeve 71 forms a four-corner support structure, leaving a gap between adjacent strip sleeves, which does not affect the heat dissipation of the LED self-induction bulb lamp body 1. In field camping, the unfolded protective strip sleeve 71 has multiple effects. First, it increases the contact area of the LED self-induction bulb lamp body 1 with the placement surface, making the LED self-induction bulb lamp body 1 more stable when placed on the ground or tree trunk, reducing the risk of falling. Second, it can push away the surrounding branches and leaves during unfolding, avoiding blocking the light and ensuring the lighting effect. Third, the combination of silicone material and metal skeleton can play a buffering role when the LED self-induction bulb lamp body 1 accidentally falls, reducing the impact damage and effectively increasing the application effect in the field camping scenario.

[0041] It is to be understood that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting; it is not intended to exclude myriad other embodiments of the present application that other inventors can develop based on the same general inventive concepts embodied by the described embodiments. That is, although the present application is described in terms of particular embodiments and illustrative figures, it should be apparent that the scope of the present application is not limited to these specific embodiments.

[0042] While the embodiments of the application have been shown and described herein, it will be understood by those skilled in the art that many changes, modifications, substitutions and alterations to these embodiments can be made without departing from the principles and spirits of the application, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An LED self-sensing bulb lamp, comprising an LED self-sensing bulb lamp body (1), characterized in that, Also includes; Support plate (2), which is connected to the LED self-sensing bulb body (1); The clamping assembly (3) is set on the support plate (2) and is used to clamp and fix it to a fixed object during outdoor camping to prevent it from shaking due to wind. The clamping assembly (3) includes a movable base (31), which is slidably connected to the support plate (2), and an adjustment plate (32) is installed on the movable base (31) via an adjustment member (33). The clamping control component (4) is located below the clamping component (3) and is used to control the clamping force of the clamping component (3) so that the clamping component (3) can adapt to different objects.

2. The LED self-sensing bulb lamp according to claim 1, characterized in that: The clamping assembly (3) further includes a clamping plate (39), which is slidably connected to the inside of the adjusting plate (32) via an elastic element (34). A friction strip (35) is connected to the bottom of the clamping plate (39), and a magnet (36) is connected to the bottom of the clamping plate (39). A retaining rod (37) is slidably connected to the clamping plate (39), and a pulling spring (38) is connected to the retaining rod (37). The bottom of the pulling spring (38) is connected to the clamping plate (39), and the retaining rod (37) consists of two sets arranged symmetrically.

3. The LED self-sensing bulb lamp according to claim 2, characterized in that: The adjusting component (33) includes a fixing rod (331), which is connected inside the adjusting plate (32). The fixing rod (331) is rotatably connected to the inside of the movable base (31). A block (332) located outside the movable base (31) is inserted into the fixing rod (331). A pull tab (333) connected to the inside of the movable base (31) is connected to the block (332).

4. The LED self-sensing bulb lamp according to claim 2, characterized in that: The elastic element (34) includes an elastic push plate (341), which is connected inside the adjusting plate (32) and connected to the clamping plate (39). A protrusion (342) is slidably connected on the clamping plate (39), and a clamping spring (343) connected to the protrusion (342) is provided inside the clamping plate (39).

5. An LED self-sensing bulb lamp according to claim 1, characterized in that: The clamping control assembly (4) includes a control rod (41), which is connected to the bottom of the movable base (31). A control pull plate (42) is sleeved on the control rod (41). A rotating ring (43) is sleeved on the LED self-sensing bulb body (1). A U-shaped ring (44) is connected to the rotating ring (43). The control pull plate (42) is slidably connected inside the U-shaped ring (44) to link the control pull plate (42) and the rotating ring (43) for linkage control. A reset spring (45) is connected to the U-shaped ring (44). The bottom of the support plate (2) is connected to the reset spring (45) through a connecting plate.

6. An LED self-sensing bulb lamp according to claim 5, characterized in that: The bottom of the rotating ring (43) is connected to a toggle ring (8), which is used to rotate the rotating ring (43) by friction between the finger and the toggle ring (8) when the rotating ring (43) needs to be driven. It also includes a locking component (5) set on the LED self-sensing bulb body (1) for locking the clamping control component (4) so ​​that the clamping position of the adjusting plate (32) during use is locked and controlled.

7. An LED self-sensing bulb lamp according to claim 6, characterized in that: The locking assembly (5) includes a locking gear (51) and a toothed plate (52). The locking gear (51) is connected to the LED self-sensing bulb body (1). The toothed plate (52) is inserted into the locking gear (51). The toothed plate (52) slides inside the rotating ring (43). A baffle (53) is connected to the outside of the toothed plate (52). A push spring (54) connected to the rotating ring (43) is connected to the baffle (53). A T-shaped plate (55) is slidably connected to the rotating ring (43). The T-shaped plate (55) is connected to the bottom of the baffle (53).

8. An LED self-sensing bulb lamp according to claim 1, characterized in that: It also includes a warning alarm component (6) installed on the LED self-sensing bulb body (1). The warning alarm component (6) includes a laser sensor (61). The laser sensor (61) is installed on the LED self-sensing bulb body (1). A buzzer (62) electrically connected to the laser sensor (61) is installed on the LED self-sensing bulb body (1) to provide a prompt alarm to the user after the laser sensor (61) detects that the LED self-sensing bulb body (1) has shifted its position.

9. An LED self-sensing bulb according to claim 1, characterized in that: The LED self-sensing bulb body (1) is also provided with an anti-scalding protection component (7), which is used to protect the exterior of the LED self-sensing bulb body (1) from scalding. It can also be unfolded to increase the supporting area and clear away surrounding branches and leaves during outdoor camping. The anti-scalding protection component includes a protective sleeve (71), a toggle block (72) is connected to the protective sleeve (71), and a mounting plate (73) is connected to the LED self-sensing bulb body (1). An adjusting screw (74) is connected to the internal thread of the mounting plate (73), and the toggle block (72) is connected to the surface of the adjusting screw (74).

10. An LED self-sensing bulb according to claim 1, characterized in that: The bottom of the movable base (31) is connected to a sliding rod (9), which is slidably connected in the support plate (2) to limit the movement position of the movable base (31).