Solar powered induction light

By incorporating a multi-degree-of-freedom rotating joint and intelligent mode switching design, the problem of adjustment flexibility and environmental adaptability of solar sensor lights in complex environments has been solved, achieving multi-angle adjustment and energy-saving effects.

CN224316076UActive Publication Date: 2026-06-02YUYAO CITY YUDA IND

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
YUYAO CITY YUDA IND
Filing Date
2025-05-29
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

Existing solar sensor lights lack flexibility in adjustment under complex installation environments, have low light energy utilization, limited functional modes, poor environmental adaptability, and are easily affected by complex environments.

Method used

Employing a multi-degree-of-freedom rotary joint design and intelligent mode switching, the solar panel and sensing device achieve multi-angle adjustment through vertical and horizontal rotary joints. The sensing device has multiple modes, and the slider has anti-slip protrusions to prevent accidental operation.

Benefits of technology

It improves the overall performance of solar sensor lights, enabling precise multi-angle adjustment to meet the needs of different scenarios, saving energy and preventing misoperation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a solar power induction lamp, its characterized in that, including lamp, solar panel is set up in the lamp top, and the induction device is set up in the lamp bottom, the lamp top sets up the first rotary joint perpendicular to the horizontal plane, solar panel is close to the lamp direction and sets up the second rotary joint parallel to the horizontal plane, and the first rotary joint is set up with the second rotary joint between first connecting piece, a kind of solar power induction lamp provided in the utility model, solar panel and induction device realize multi-angle accurate adjustment through vertical and horizontal rotary joint, induction device three gears mode covers all scene demand, compared with traditional lamp, it is more energy-saving, and mode slider anti -skid boss realizes blind operation and false touch protection.
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Description

Technical Field

[0001] This utility model relates to the field of lighting equipment technology, and in particular to a solar-powered induction lamp. Background Technology

[0002] With the popularization of solar lighting technology, solar sensor lights are widely used in courtyards, roads, public facilities, and other scenarios due to their advantages such as energy saving, environmental protection, and no need for wiring. However, existing technologies still have significant drawbacks: 1. Insufficient adjustment flexibility: The solar panels and sensing devices of traditional lights are mostly fixed installations, making it difficult to adjust the angle according to the installation environment, resulting in low light energy utilization and limited detection range, especially when installed on non-horizontal surfaces, which can easily create blind spots; 2. Limited functional modes: Most products only support "always on" or "fully automatic" modes, failing to meet the combined needs of low-power constant on and intelligent sensing, requiring users to frequently switch manually, which is cumbersome and consumes more energy; 3. Poor environmental adaptability: The sensing devices lack multi-dimensional adjustment capabilities and are easily affected by complex environments.

[0003] To address the aforementioned issues, existing improvement solutions mostly focus on optimizing a single function. Therefore, there is an urgent need for a solar sensor lamp that integrates multi-degree-of-freedom adjustment, multi-mode collaborative control, and a highly reliable structure to improve energy efficiency and environmental adaptability. Utility Model Content

[0004] (a) Technical problems to be solved

[0005] The technical problem to be solved by this utility model is to provide a solar-powered sensor light that can be stably installed in complex installation environments, provides multi-angle lighting, and is not easily affected by complex environments.

[0006] (II) Technical Solution

[0007] The technical solution adopted by this utility model to solve the above problems is:

[0008] A solar-powered sensor light includes a light fixture that provides a light source. A solar panel is mounted on the top of the light fixture, and a sensor device is mounted on the bottom of the light fixture. The light fixture includes a main light, an auxiliary light, and a power supply compartment. The main light is located on the front of the light fixture, the power supply compartment is located on the back of the light fixture, and the auxiliary lights are located on the left and right sides of the main light. The sensor device is used to detect whether there is a person in its detection area and to control the brightness of the light fixture according to a set mode. A groove is provided on the bottom of the sensor device, and a slidable mode switching slider is provided in the groove. The surface of the mode switching slider is provided with anti-slip protrusions. Mode identifiers are set at certain intervals on the outside of the groove. The mode identifiers include an off mode identifier, a smart sensing mode identifier, and a low brightness constant light mode identifier, which are arranged sequentially along the length of the bottom of the sensor device. The translation range of the mode switching slider is set from the off mode identifier to the low brightness constant light mode identifier.

[0009] In the above technical solution, the electricity generated by the solar panel is stored in the power supply compartment. The sensing device is equipped with multiple modes and mode identifiers, so that even in low-light environments, the desired mode can be selected and adjusted based on touch.

[0010] Furthermore, the sensing device is equipped with a control module. The control module controls the working state of the lamp according to the sliding position of the mode conversion slider: when the mode conversion slider is slid to the off mode identifier position, no light source turn-on signal is transmitted to the lamp; when the mode conversion slider is slid to the smart sensing mode identifier position, when the sensing device detects the arrival of someone, the control module transmits the light source turn-on signal to the main lamp and the auxiliary lamp in the lamp for 30 seconds, during which the light source brightness gradually decreases, until after 30 seconds the control module transmits the light source turn-off signal to the main lamp and the auxiliary lamp; when the mode conversion slider is slid to the low brightness constant light mode identifier position, the control module transmits the low brightness light source signal to the lamp.

[0011] Furthermore, a first rotating joint perpendicular to the horizontal plane is provided at the top of the main lamp; a second rotating joint parallel to the horizontal plane is provided on the solar panel near the lamp; a first connecting member is provided between the first rotating joint and the second rotating joint; the first rotating joint and the end of the first connecting member are connected by screws; a first insert-type socket is provided at the other end of the first connecting member; the second rotating joint is engaged with the first insert-type socket of the first connecting member; a sealing ring is provided between the first rotating joint and the screw; the screw is sequentially connected to the sealing ring, the first rotating joint, and the first connecting member.

[0012] In the above technical solution, a rotating joint is set between the lamp and the solar panel, so that the solar panel can be exposed to sunlight during the day to store electricity even in complex installation environments. In addition, a sealing ring is set between the first rotating joint and the screw, so that the screw will not lock the solar panel and prevent it from rotating due to being tightened too much.

[0013] Furthermore, a third rotating joint parallel to the horizontal plane is provided at the bottom of the lamp, and a mounting ring is provided on the back of the sensing device; a second connecting member is provided between the third rotating joint and the sensing device.

[0014] Furthermore, the second connector includes a second insert-type retainer, a sealing gasket, a connecting knob, and a connecting seat; the second insert-type retainer is matched and connected to the third lower mounting joint; sealing gaskets are provided at both ends of the mounting ring axis, and the connecting knob passes through the mounting ring along the axis and connects it to the connecting seat.

[0015] In the above technical solution, the sealing gasket increases the feel when the sensing device rotates, and the connection knob provides the tightness or looseness of the sensing device during rotation.

[0016] Furthermore, the combination of the connecting knob, the mounting ring, and the connecting seat forms a fourth rotary joint, and the axial direction of the fourth rotary joint is perpendicular to the axial direction of the third rotary joint.

[0017] In the above technical solution, the axes of the fourth rotary joint and the third rotary joint are perpendicular, enabling the sensing device to have multi-angle adjustment capabilities.

[0018] Furthermore, a mounting base is provided on the side of the solar panel away from the light fixture, and the mounting base is connected to an external device.

[0019] Furthermore, the main light is provided with a fifth rotating joint perpendicular to the horizontal plane, the auxiliary light is provided with a sixth rotating joint parallel to the horizontal plane, and a third connecting member is provided between the fifth rotating joint and the sixth rotating joint.

[0020] In the above technical solution, the auxiliary lamp can be adjusted at multiple angles through the cooperation between the fifth and sixth rotary joints.

[0021] Furthermore, the power supply compartment is provided with a power supply compartment cover that completely covers the compartment opening, and the power supply compartment cover is connected to the power supply compartment by screws; a sealing gasket is provided between the power supply compartment and the power supply compartment cover, and the sealing gasket is affixed to the top end face of the power supply compartment.

[0022] In the above technical solution, the power compartment cover and sealing gasket serve to prevent water and dust.

[0023] (III) Beneficial Effects

[0024] Compared with the prior art, the technical solution of this utility model has the following advantages:

[0025] (I) The solar-powered sensor lamp of this utility model significantly improves the overall performance of the solar sensor lamp through the coordinated design of multi-degree-of-freedom rotating joints and intelligent mode switching.

[0026] (ii) The solar panel and the sensing device can be precisely adjusted at multiple angles through vertical and horizontal rotating joints;

[0027] (III) The three modes of the sensing device cover the needs of all scenarios and are more energy-efficient than traditional lamps; the anti-slip protrusions of the mode slider realize blind operation and accidental touch protection. Attached Figure Description

[0028] Figure 1 This is a schematic diagram of the structure of an embodiment of the present utility model;

[0029] Figure 2 This is a schematic diagram of the connection structure between the solar panel and the lamp in an embodiment of this utility model;

[0030] Figure 3 This is a schematic diagram of the connection structure between the sensing device and the lamp in an embodiment of this utility model;

[0031] Figure 4 This is a bottom view of the sensing device according to an embodiment of the present invention;

[0032] Figure 5 This is a schematic diagram of the connection structure between the auxiliary lamp and the main lamp in an embodiment of this utility model;

[0033] The components are: 1-lamp, 2-solar panel, 3-sensor, 4-first rotating joint, 5-second rotating joint, 6-first connector, 7-third rotating joint, 8-fourth rotating joint, 9-second connector, 10-mounting base, 11-main lamp, 12-auxiliary lamp, 13-fifth rotating joint, 14-sixth rotating joint, 15-third connector, 16-power supply compartment, 17-power supply compartment cover, 18-mode conversion slider, 19-anti-slip protrusion, 21-sealing ring, 61-first insert-type card slot, 20-mode identifier, 31-mounting ring, 91-second insert-type card slot, 92-sealing gasket, 93-connection knob, 94-connecting base, 22-sealing gasket. Detailed Implementation

[0034] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate this utility model, but are not intended to limit its scope.

[0035] Example

[0036] like Figure 1-2 The illustrated solar-powered sensor light includes a lamp 1, a solar panel 2 mounted on the top of the lamp 1, a mounting base 10 mounted on the side of the solar panel 2 away from the lamp 1, the mounting base 10 being connected to an external device, a sensor 3 mounted on the bottom of the lamp 1, a groove on the bottom of the sensor 3, a slidable mode switching slider 18 mounted in the groove, and anti-slip protrusions 19 on the surface of the mode switching slider 18; mode identifiers 20 are arranged at intervals on the outside of the groove. The mode identifiers 20 include an off mode identifier, an intelligent sensing mode identifier, and a low brightness constant light mode identifier, arranged sequentially at intervals along the length of the bottom of the sensor 3; the translation range of the mode switching slider 18 is set from the off mode identifier to the low brightness constant light mode identifier.

[0037] The top of the lamp 1 is provided with a first rotating joint 4 perpendicular to the horizontal plane; the solar panel 2 is provided with a second rotating joint 5 parallel to the horizontal plane near the lamp 1, and a first connecting member 6 is provided between the first rotating joint 4 and the second rotating joint 5; the first rotating joint 4 and the first connecting member 6 are connected at their ends by screws, and the other end of the first connecting member 6 is provided with a first insert type bracket 61, and the second rotating joint 5 is connected to the first insert type bracket 61 of the first connecting member 6; a sealing ring 21 is provided between the first rotating joint 4 and the screw, and the screw is connected to the sealing ring 21, the first rotating joint 4, and the first connecting member 6 in sequence.

[0038] The solar panel 2 is used to provide power to the sensor light. A first rotating joint 4 and a second rotating joint 5 are set between the lamp 1 and the solar panel 2 so that the solar panel 2 can work in complex installation environments. A sealing ring 21 is set between the first rotating joint 4 and the screw so that the solar panel 2 will not be locked and unable to rotate due to the screw being tightened too much.

[0039] like Figure 3-4 As shown, the lamp 1 has a third rotating joint 7 parallel to the horizontal plane at its bottom, and the sensor 3 has a mounting ring 31 on its back. A second connector 9 is provided between the third rotating joint 7 and the sensor 3. The second connector 9 includes a second insert-type card holder 91, a sealing gasket 92, a connecting knob 93, and a connecting seat 94. The second insert-type card holder 91 is matched and connected to the third lower mounting joint 7. Sealing gaskets 92 are provided at both ends of the axis of the mounting ring 31. The connecting knob 93 passes through the mounting ring 31 along the axis and connects it to the connecting seat 94. The combination of the connecting knob 93, the mounting ring 31, and the connecting seat 94 forms a fourth rotating joint 8. The axis of the fourth rotating joint 8 is perpendicular to the axis of the third rotating joint 7. A mode conversion slider 18 is provided at the bottom of the sensor 3. The surface of the mode conversion slider 18 is provided with anti-slip protrusions 19 and mode identifiers 20, so that the desired mode can be selected and adjusted by touch even in a low-brightness environment.

[0040] like Figure 5 As shown, the lamp 1 also includes a main lamp 11 and an auxiliary lamp 12; the auxiliary lamp 12 is arranged on the left and right sides of the main lamp 11, the main lamp 11 is provided with a fifth rotating joint 13 perpendicular to the horizontal plane, the auxiliary lamp 12 is provided with a sixth rotating joint 14 parallel to the horizontal plane, and a third connecting member 15 is provided between the fifth rotating joint 13 and the sixth rotating joint 14.

[0041] like Figure 5 As shown, the lamp 1 also includes a power supply compartment 16. The main lamp 11 is located on the front of the lamp 1, and the power supply compartment 16 is located on the back of the lamp 1. The power supply compartment 16 is provided with a power supply compartment cover 17 that completely covers the compartment opening. The power supply compartment cover 17 is connected to the power supply compartment 16 by screws. A sealing gasket 22 is provided between the power supply compartment 16 and the power supply compartment cover 17 to serve as a waterproof and dustproof function.

[0042] In actual operation, the solar panel 2 of the solar-powered sensor lamp of this application stores electricity in the power supply compartment 16 during the day. At night, the sensor 3 and the lamp 1 use the power in the power supply compartment to work. The sensor 3 switches the working state according to the bottom mode conversion slider 18. When the mode conversion slider 18 is slid to the off mode identifier position, the control module in the sensor 3 does not transmit the light source turn-on signal to the lamp 1, so that the lamp 1 enters the normally closed state.

[0043] When the mode switching slider 18 is slid to the intelligent sensing mode identifier position: when the sensing device 3 detects the arrival of someone, the control module transmits the light source turn-on signal to the main light 11 and the auxiliary light 12 in the lamp 1 for 30 seconds. During this period, the light source brightness gradually decreases until the control module transmits the light source turn-off signal to the main light 11 and the auxiliary light 12 after 30 seconds.

[0044] When the mode switching slider 18 is slid to the low brightness constant light mode identifier position: the control module transmits a low brightness light source signal to the lamp 1. At this time, the main lamp 11 and the auxiliary lamp 12 turn on the light source to provide low brightness lighting.

[0045] In summary, the above embodiments are not limiting embodiments of this utility model. Any modifications or equivalent variations made by those skilled in the art based on the substantive content of this utility model are within the technical scope of this utility model.

Claims

1. A solar-powered induction lamp, characterized in that, The lamp (1) provides a light source, and a solar panel (2) is provided on the top of the lamp (1) and a sensing device (3) is provided on the bottom of the lamp (1). The lamp (1) includes a main lamp (11), an auxiliary lamp (12), and a power supply compartment (16); the main lamp (11) is located on the front of the lamp (1), the power supply compartment (16) is located on the back of the lamp (1), and the auxiliary lamp (12) is located on the left and right sides of the main lamp (11). The bottom of the sensing device (3) is provided with a groove, and a slidable mode switching slider (18) is provided in the groove. The surface of the mode switching slider (18) is provided with anti-slip protrusions (19). Mode identifiers (20) are provided at certain intervals on the outside of the groove. The mode identifiers (20) include a closed mode identifier, a smart sensing mode identifier, and a low brightness always-on mode identifier, which are arranged at intervals along the length of the bottom of the sensing device (3). The translation range of the mode switching slider (18) is set from the closed mode identifier to the low brightness always-on mode identifier.

2. A solar-powered induction lamp as described in claim 1, characterized in that, The control module includes a sensor (3) connected to the control module, which controls the working state of the lamp (1) according to the sliding position of the mode switching slider (18). When the mode switching slider (18) is slid to the off mode identifier position, the sensing device is in the off state and the control module does not transmit the light source turn-on signal to the lamp (1); When the mode switching slider (18) is slid to the intelligent sensing mode identifier position, the sensing device is in working state; When the mode switching slider (18) is slid to the low brightness constant light mode identifier position, the control module transmits a low brightness light source signal to the lamp (1).

3. A solar-powered induction lamp as described in claim 1, characterized in that, The main lamp (11) has a first rotating joint (4) perpendicular to the horizontal plane at its top; the solar panel (2) has a second rotating joint (5) parallel to the horizontal plane near the lamp, and a first connecting piece (6) is provided between the first rotating joint (4) and the second rotating joint (5). The first rotary joint (4) is connected to the end of the first connector (6) by screws. The other end of the first connector (6) is provided with a first insert type socket (61). The second rotary joint (5) is connected to the first insert type socket (61) of the first connector (6). A sealing ring (21) is provided between the first rotary joint (4) and the screw. The screw is connected to the sealing ring (21), the first rotary joint (4), and the first connector (6) in sequence.

4. A solar-powered sensor lamp as described in claim 1, wherein the lamp (1) has a third rotating joint (7) parallel to the horizontal plane at its bottom, and the sensing device (3) has a mounting ring (31) on its back; and a second connecting member (9) is provided between the third rotating joint (7) and the sensing device (3).

5. A solar-powered induction lamp as described in claim 4, wherein the second connector (9) includes a second insert-type card holder (91), a sealing gasket (92), a connecting knob (93), and a connecting seat (94); the second insert-type card holder (91) is matched and connected to the third lower mounting joint (7); both ends of the axis of the mounting ring (31) are provided with sealing gaskets (92), and the connecting knob (93) passes through the mounting ring (31) along the axis and connects it to the connecting seat (94).

6. A solar-powered induction lamp as described in claim 5, wherein the combination of the connecting knob (93), the mounting ring (31), and the connecting seat (94) forms a fourth rotating joint (8), and the axial direction of the fourth rotating joint (8) is perpendicular to the axial direction of the third rotating joint (7).

7. A solar-powered induction lamp as described in claim 1, characterized in that, The solar panel (2) is provided with a mounting base (10) on the side away from the lamp (1), and the mounting base (10) is connected to an external device.

8. A solar-powered induction lamp as described in claim 1, characterized in that, The main lamp (11) is provided with a fifth rotating joint (13) perpendicular to the horizontal plane, and the auxiliary lamp (12) is provided with a sixth rotating joint (14) parallel to the horizontal plane. A third connecting member (15) is provided between the fifth rotating joint (13) and the sixth rotating joint (14).

9. A solar-powered induction lamp as described in claim 8, characterized in that, The power storage compartment (16) is provided with a power storage cover (17) that completely covers the opening of the compartment, and the power storage cover (17) is connected to the power storage compartment (16) by screws; a sealing gasket (22) is provided between the power storage compartment (16) and the power storage cover (17), and the sealing gasket (22) is pasted on the top end face of the power storage compartment (16).