Acrylic sensor wall lamp

By incorporating acrylic material and infrared sensors, the wall lamp design solves the problems of inconvenience and safety hazards associated with traditional wall lamps. It achieves energy saving and stable installation without the need for manual switching, thus enhancing user experience and safety.

CN224516703UActive Publication Date: 2026-07-17ZHONGSHAN SONGQI LIGHTING ELECTRIC CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHONGSHAN SONGQI LIGHTING ELECTRIC CO LTD
Filing Date
2025-10-20
Publication Date
2026-07-17

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  • Figure CN224516703U_ABST
    Figure CN224516703U_ABST
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Abstract

This utility model provides an acrylic sensor wall lamp, including a mounting shell, an acrylic light-emitting tube connected to the mounting shell, an LED light circuit assembly disposed within the mounting shell, a detachable mounting base connected to the mounting shell, an infrared sensor and a toggle switch disposed on the mounting shell, and a USB charging port disposed on the mounting shell. The LED light circuit assembly is electrically connected to the infrared sensor and the USB charging port. The acrylic sensor wall lamp provided by this utility model uses an infrared sensor to detect the presence of a user, thereby achieving automatic control of the light switch. This effectively avoids energy waste and improves ease of use. Furthermore, the acrylic light-emitting tube makes the lamp lightweight, preventing safety hazards associated with a heavy lamp body.
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Description

Technical Field

[0001] This utility model relates to the field of wall lamp technology, and in particular to acrylic sensor wall lamps. Background Technology

[0002] Currently, wall lamps, as a common type of wall lighting fixture, are widely used in various spaces such as homes, hotels, and offices. Their core function is to provide localized lighting for specific areas through wall mounting, while also serving a decorative purpose. However, in actual use, wall lamps have two prominent problems that affect user experience and safety.

[0003] On the one hand, from the perspective of ease of use and energy consumption, the current design of most wall lamps requires users to operate the switch actively. Even in short-term use scenarios such as getting up at night or temporarily retrieving items, users must go to the wall lamp to operate the switch. This operation mode not only increases the threshold for use for the elderly, children, or people with mobility difficulties, but also often results in the light being on for a long time due to forgetting to turn off the switch, causing unnecessary waste of electricity. This is not in line with the current green and energy-saving lifestyle concept, and will also increase the user's electricity bill in the long run.

[0004] On the other hand, the choice of light-transmitting material is crucial to the safety of wall lamps, directly affecting installation stability and user safety. Using a heavy light-transmitting shell, such as thick ceramic or solid glass, significantly increases the overall weight of the wall lamp, placing higher demands on the wall's load-bearing capacity and the sturdiness of the fasteners. Over time, this could lead to loosening of fasteners and the shell sagging, posing a risk of injury or damage to property. Conversely, using fragile light-transmitting materials, such as thin ordinary glass, makes the lamp highly susceptible to breakage from impacts, vibrations, or sudden temperature changes. Broken glass shards could cut users, especially in spaces where children are active, further amplifying these safety risks and causing significant inconvenience to daily use.

[0005] Therefore, there is a need to provide an acrylic sensor wall lamp to solve the above-mentioned technical problems. Utility Model Content

[0006] The main technical problem to be solved is to provide an acrylic sensor wall lamp that can be switched on and off at close range without manual operation, which lowers the barrier to entry and saves energy and electricity costs. At the same time, it ensures stable installation and impact-resistant material, which can eliminate the risk of injury and scratches caused by the lamp falling.

[0007] To solve the above-mentioned technical problems, one technical solution adopted by this utility model is to provide an acrylic sensor wall lamp, including a mounting shell 1, an acrylic light-emitting tube 2 connected to the mounting shell 1, an LED light circuit assembly 3 disposed in the mounting shell 1, a detachable mounting base 4 connected to the mounting shell 1, an infrared sensor 5 and a toggle switch 8 disposed on the mounting shell 1, and a USB charging interface 7 disposed on the mounting shell 1. The LED light circuit assembly 3 is electrically connected to the infrared sensor 5 and the USB charging interface 7.

[0008] In one embodiment, a toggle switch 8 is disposed on one side wall of the acrylic sensor wall lamp, and the three positions of the toggle switch 8 correspond to the LED always-on mode, the LED off mode, and the LED infrared sensor control mode, respectively.

[0009] In one embodiment, the LED lamp circuit assembly 3 includes a driver board 31, a lithium battery 32, and two LED lamp boards 33. The driver board 31 is electrically connected to the lithium battery 32, the LED lamp boards 33, the infrared sensor 5, and the USB charging interface 7. The number of acrylic light-emitting tubes 2 is two. Each of the two opposite ends of the mounting shell 1 houses an LED lamp board 33, and each of the two opposite ends of the mounting shell 1 is detachably connected to one of the acrylic light-emitting tubes 2. The LED lamp boards 33 emit light through the corresponding acrylic light-emitting tubes 2.

[0010] In one embodiment, the mounting housing 1 includes a top cover 11 and a bottom cover 12. The bottom cover 12 is provided with two recessed first screw holes 121. A first screw passes through the corresponding first screw hole 121 and locks onto a first hollow stud 111 provided on the inner bottom surface of the top cover 11.

[0011] In one embodiment, a second hollow stud 112 is further provided on the inner bottom surface of the top cover 11, and the second screw passes through the second screw hole 311 on the drive plate 31 and is locked onto the corresponding second hollow stud 112.

[0012] In one embodiment, a magnet plate 122 is provided on the bottom cover 12, and the mounting base 4 includes an iron plate 41. The magnet plate 122 and the iron plate 41 are magnetically connected, and the iron plate 41 is provided with two third screw holes 411.

[0013] In one embodiment, the mounting base 4 further includes a double-sided adhesive plate 42 adhered to the bottom surface of the iron plate 41.

[0014] In one embodiment, a protrusion 412 is provided on the top surface of the iron plate 41, and a groove 123 for accommodating the magnet plate 122 is provided on the bottom cover 12. The protrusion 412 is engaged in the groove 123 by the magnetic attraction of the magnet plate 122.

[0015] In one embodiment, the acrylic sensor wall lamp further includes a switch button 6 disposed on the mounting housing 1 for adjusting brightness and color;

[0016] Furthermore, the mounting housing 1 is provided with a light-collecting hole 9, and a brightness sensor is installed inside the light-collecting hole 9. The brightness sensor is electrically connected to the LED lamp circuit assembly 3.

[0017] In one embodiment, a charging indicator light 10 is further provided on the mounting housing 1, and the charging indicator light 10 is electrically connected to the LED light circuit assembly 3.

[0018] The beneficial effects of this utility model are:

[0019] (1) By sensing the presence of the user through an infrared sensor, the user can operate the switch without having to actively go to the light, which lowers the threshold for use for the elderly, children and other groups, and also avoids the waste of electricity and increased electricity bills caused by forgetting to turn off the light.

[0020] (2) By using an acrylic light-emitting tube, the lamp body is lightweight, which ensures that the wall lamp is installed stably and the material is not easily broken, eliminating the risk of falling and being hit or scratched by fragments. Attached Figure Description

[0021] Figure 1 This is a three-dimensional structural schematic diagram of the first preferred embodiment of the acrylic sensor wall lamp of this utility model from one perspective;

[0022] Figure 2 This is a three-dimensional structural schematic diagram of the first preferred embodiment of the acrylic sensor wall lamp of this utility model from another perspective;

[0023] Figure 3 This is a schematic diagram of the split structure from one perspective of the first preferred embodiment of the acrylic sensor wall lamp of this utility model;

[0024] Figure 4 This is a split structural diagram of the first preferred embodiment of the acrylic sensor wall lamp of this utility model from another perspective.

[0025] The component names in the accompanying drawings are as follows:

[0026] 1-Mounting shell; 11-Top cover; 111-First hollow stud; 112-Second hollow stud; 12-Bottom cover; 121-First screw hole; 122-Magnetic plate; 123-Groove; 2-Acrylic light emitter; 3-LED light circuit assembly; 31-Driver board; 311-Second screw hole; 32-Battery; 33-LED light board; 4-Mounting base; 41-Iron plate; 411-Third screw hole; 412-Protrusion; 42-Adhesive plate; 5-Infrared sensor; 6-Switch button; 7-USB charging interface; 8-Toggle switch; 9-Light pickup hole; 10-Charging indicator light. Detailed Implementation

[0027] The technical solution of this utility model will be described in detail below with reference to the illustrations.

[0028] Please see Figure 1 As shown, the acrylic sensor wall lamp of this utility model includes a mounting shell 1 and an acrylic light-emitting tube 2 connected to the mounting shell 1. The acrylic light-emitting tube 2 is lightweight and not easily broken, which makes the lamp light and avoids the difficulty of installing heavy lamps, and prevents the personal safety of users from the fragments when it falls.

[0029] like Figure 1 and Figure 3 As shown, the acrylic sensor wall lamp of this utility model further includes an LED lamp circuit assembly 3 disposed in the mounting housing 1, a detachable mounting base 4 connected to the mounting housing 1, an infrared sensor 5 disposed on the mounting housing 1, and a toggle switch 8. The use of the infrared sensor 5 makes it convenient for users to use without having to walk to the lamp location to manually turn on the switch.

[0030] like Figure 2 As shown, the acrylic sensor wall lamp of this utility model further includes a USB charging interface 7 provided on the mounting shell 1, so that the lamp is no longer limited to the fixed position of the lamp power socket. It can be charged first with the USB power cord, and after charging, the lamp of this utility model can be installed in the predetermined position for use.

[0031] In this invention, the LED light circuit assembly 3 is electrically connected to the infrared sensor 5 and the USB charging interface 7.

[0032] Furthermore, such as Figure 1 As shown, the toggle switch 8 is located on one side wall of the acrylic sensor wall lamp. The three positions of the toggle switch 8 correspond to the LED always-on mode, LED off mode, and LED infrared sensor control mode, respectively. In the LED infrared sensor control mode, the lamp will turn off when the user goes out of the detection range of the infrared sensor 5, which can effectively save energy and extend the life of the lamp.

[0033] In a specific embodiment, the specific structure of the LED lamp circuit assembly 3 is as follows: Figure 3 As shown, it includes a driver board 31, a lithium battery 32, and two LED light boards 33. The driver board 31 is electrically connected to the lithium battery 32, the LED light boards 33, the infrared sensor 5, and the USB charging interface 7. There are two acrylic light-emitting tubes 2. Each of the two opposite ends of the mounting shell 1 houses an LED light board 33, and each of the two opposite ends of the mounting shell 1 is detachably connected to one of the acrylic light-emitting tubes 2. The LED light boards 33 emit light through the corresponding acrylic light-emitting tubes 2.

[0034] In this invention, two acrylic light-emitting tubes 2 cooperate with corresponding LED light panels 33, resulting in a larger light-emitting space for the lamp and the ability to illuminate more areas. This embodiment uses a storage battery 32 for power storage, eliminating the need for the lamp to be constantly connected to a power cord. This frees the lamp from the limitations of power outlet locations; users can charge it and then place it wherever needed, improving the user experience.

[0035] like Figure 3 As shown, to facilitate easy assembly and disassembly of the mounting housing 1, in one embodiment, the mounting housing 1 includes a top cover 11 and a bottom cover 12, as described above. Figure 4 As shown, the bottom cover 12 has two recessed first screw holes 121. The first screw passes through the corresponding first screw holes 121 and locks onto the first hollow stud 111 provided on the inner bottom surface of the top cover 11. Therefore, the mounting shell 1 can be easily opened for maintenance.

[0036] Further as Figure 4 As shown, a second hollow stud 112 is further provided on the inner bottom surface of the top cover 11, as... Figure 3 As shown, the drive board 31 is provided with a second screw hole 311, and the second screw passes through the second screw hole 311 and locks onto the corresponding second hollow stud 112, so as to realize the detachable locking of the drive board 31 onto the inner bottom surface of the top cover 11. The drive board 31 is locked by screws, which can improve the stability of the circuit.

[0037] Furthermore, such as Figure 4 As shown, a magnetic plate 122 is provided on the bottom cover 12, such as Figure 3 As shown, the mounting base 4 includes an iron plate 41 and a magnetic plate 122, which are magnetically connected to the iron plate 41. The iron plate 41 has two third screw holes 411, allowing the base 4 to be locked onto the mounting surface using the cooperation of the third screw holes 411 and corresponding screws. Therefore, when installing the lamp in this embodiment, it is only necessary to first install the mounting base 4 onto the predetermined mounting surface, and then magnetically attach the other part of the lamp to the iron plate 41 of the mounting base 4 using its magnetic plate 122, thus completing the installation.

[0038] In addition, in order to get rid of the limitation of screw locking, further such as Figure 3 As shown, in one embodiment, the mounting base 4 further includes a double-sided adhesive board 42 that is pasted onto the bottom surface of the iron plate 41. This double-sided adhesive board 42 allows the mounting base 4 to be pasted onto the smooth mounting surface, avoiding damage to the mounting surface. The combination of the magnet plate 122 and the double-sided adhesive board 42 makes the lamp structure of this invention suitable for installation locations such as bedside tables, corridors, and walls.

[0039] To ensure a precise magnetic connection between mounting base 4 and bottom cover 12, further... Figure 3As shown, a protrusion 412 is provided on the top surface of the iron plate 41, such as... Figure 4 As shown, the bottom cover 12 is provided with a groove 123 for accommodating the magnet plate 122. The protrusion 412 is engaged in the groove 123 by the magnetic attraction of the magnet plate 122, thus realizing the precise magnetic connection between the protrusion 412 and the magnet plate 122.

[0040] like Figure 2 and Figure 3 As shown in the figure, the acrylic sensor wall lamp of this utility model further includes a switch button 6 on the mounting shell 1 for adjusting brightness and color. For example, by pressing and holding the button for a long time to adjust the brightness and by pressing it for a short time to switch the color, the user can adjust the brightness and color of the light according to their own preferences to suit their use, thereby improving the user experience.

[0041] like Figure 2 As shown, in one embodiment, the mounting housing 1 is provided with a light-collecting hole 9, and a brightness sensor is disposed within the light-collecting hole 9. The brightness sensor is electrically connected to the LED lamp circuit assembly 3. The presence of this brightness sensor is used to collect the brightness of ambient light. When the ambient light brightness exceeds a predetermined threshold, the driver board 31 controls the infrared sensor 5 to enter a sensing standby state; when the ambient light brightness is lower than the predetermined threshold, the driver board 31 controls the infrared sensor 5 to enter an infrared sensing working state to detect whether there is a user in the target area in real time. When a user is detected in the target area, the driver board 31 controls the LED lamp board to light up the LED beads.

[0042] Further as Figure 2 As shown, a charging indicator light 10 is further provided on the mounting housing 1. The charging indicator light 10 is electrically connected to the LED lamp circuit assembly 3, so that when the USB charging port 7 is in the state of charging the lamp, the charging status can be seen intuitively through the charging indicator light 10, which makes it convenient for users to remove the lamp for use when it is fully charged.

[0043] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structure made using the contents of this utility model specification and drawings, or directly or indirectly applied to other related technical fields, are similarly included within the patent protection scope of this utility model.

Claims

1. A wall lamp of acrylic material, characterized in that: It includes an installation shell (1), an acrylic light-emitting cylinder (2) connected to the installation shell (1), an LED lamp circuit assembly (3) arranged inside the installation shell (1), a mounting base (4) detachably connected to the installation shell (1), an infrared sensor (5) and a toggle switch (8) arranged on the installation shell (1), and a USB charging interface (7) arranged on the installation shell (1). The LED lamp circuit assembly (3) is electrically connected to the infrared sensor (5) and the USB charging interface (7).

2. The acrylic induction wall lamp according to claim 1, characterized in that: The toggle switch (8) is arranged on a side wall of the acrylic induction wall lamp. The three gears of the toggle switch (8) respectively correspond to the LED constant-on mode, the LED off mode, and the LED infrared induction control mode.

3. The acrylic induction wall lamp according to claim 1, characterized in that: The LED lamp circuit assembly (3) includes a driving board (31), a lithium battery (32), and two LED lamp boards (33). The driving board (31) is electrically connected to the lithium battery (32), the LED lamp boards (33), the infrared sensor (5), and the USB charging interface (7). The number of the acrylic light-emitting cylinders (2) is 2. One LED lamp board (33) is respectively accommodated at two opposite end parts of the installation shell (1), and one of the acrylic light-emitting cylinders (2) is respectively detachably connected to two opposite end parts of the installation shell (1). The LED lamp board (33) emits light through the corresponding acrylic light-emitting cylinder (2).

4. The acrylic induction wall lamp according to claim 3, characterized in that: The installation shell (1) includes a top cover (11) and a bottom cover (12). Two sunken first screw holes (121) are arranged on the bottom cover (12). A first screw passes through the corresponding first screw hole (121) and is locked on a first hollow stud (111) arranged on the inner bottom surface of the top cover (11).

5. The acrylic induction wall lamp according to claim 4, characterized in that: A second hollow stud (112) is further arranged on the inner bottom surface of the top cover (11). A second screw passes through a second screw hole (311) on the driving board (31) and is locked on the corresponding second hollow stud (112).

6. The acryl inductive wall lamp according to claim 3, wherein: A magnet plate (122) is arranged on the bottom cover (12). The mounting base (4) includes an iron plate (41). The magnet plate (122) and the iron plate (41) are magnetically connected. Two third screw holes (411) are arranged on the iron plate (41).

7. The acrylic induction wall lamp according to claim 6, characterized in that: The mounting base (4) further includes a double-sided adhesive board (42) pasted on the bottom surface of the iron plate (41).

8. The acrylic induction wall lamp according to claim 6, characterized in that: A protrusion (412) is arranged on the top surface of the iron plate (41). A groove (123) for accommodating the magnet plate (122) is arranged on the bottom cover (12). The protrusion (412) is snapped into the groove (123) by the magnetic attraction force of the magnet plate (122).

9. The acryl inductive wall lamp according to any one of claims 2 to 8, wherein: The acrylic induction wall lamp further includes a switch button (6) arranged on the installation shell (1) for adjusting the brightness and color; and the installation shell (1) is provided with a light collection hole (9). A brightness sensor is arranged in the light collection hole (9), and the brightness sensor is electrically connected to the LED lamp circuit assembly (3).

10. The acrylic induction wall lamp according to claim 9, characterized in that: A charging indicator light (10) is further arranged on the installation shell (1), and the charging indicator light (10) is electrically connected to the LED lamp circuit assembly (3).