Intelligent platform lamp

By designing intelligent platform lights and using wireless signals to control the LED driver module, the problem of traditional platform lights requiring manual operation is solved, remote control and brightness adjustment are realized, and energy consumption and maintenance workload are reduced.

CN222839860UActive Publication Date: 2025-05-06NINGBO YIJIANLIAN INTELLIGENT LIGHTING TECH CO LTD
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Patent Information

Application Number
CN202421766464.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-24
Publication Date
2025-05-06
Estimated Expiration
2034-07-24

AI Technical Summary

Technical Problem

Traditional platform lights require manual operation for regulation, resulting in complex operation, high energy consumption and large maintenance workload.

Method used

An intelligent platform light is designed, using wireless signal control LED driving module, and the elastic sheet and elastic switch are driven through sensors and coils to achieve remote operation and brightness adjustment.

Benefits of technology

Wireless remote control and brightness adjustment are realized, reducing the complexity of manual operation and energy consumption, and reducing maintenance workload.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to an intelligent platform lamp, and relates to the technical field of lamps, the intelligent platform lamp comprises a shell used for installing internal parts, a base arranged at one end of the shell, an end cover installed at the end, away from the shell, of the base and a lampshade installed at the end, away from the base, of the shell in a matched mode, and the shell, the base and the end cover jointly define an installation cavity; the mounting cavity is provided with an LED driving module used for emitting light, a signal antenna is arranged on one side of the shell, a sensor connected with the signal antenna is arranged in the shell, the sensor is electrically connected with a coil used for generating magnetic repulsive force, a magnetic elastic piece is arranged in the mounting cavity, the elastic piece is arranged at the end of the coil, and a gap is formed between the elastic piece and the coil. An elastic switch is arranged at the end, away from the coil, of the elastic piece and movably installed on the side, close to the sensor, of the LED driving module. The platform lamp has the advantages that the internal structure of the platform lamp in the prior art is improved, the lamp can be turned on or turned off according to the detection signal, and the brightness of the platform lamp can be adjusted.
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Description

Technical Field

[0001] The present application relates to the field of lighting technology, and in particular to an intelligent platform lamp. Background Art

[0002] Deck lights generally refer to a device that contains LED bulbs to provide lighting functions. Deck lights have gradually become a common lighting device in modern homes and commercial environments. Their appearance design is stylish and beautiful, and they are energy-saving and environmentally friendly. Deck lights provide bright and soft light through LED technology, which can effectively save energy and reduce energy consumption.

[0003] Traditional LED lighting is basically controlled by manual switches, or combined with time control and light control switches to achieve automatic control. Manual switch control requires operators to go to the site regularly to operate on or off, which is a large workload and maintenance, and there are occasional missed opening and closing phenomena; light and time control requires operators to go to the site one by one to change the working time of the lamps, and the consistency of light and time control switch equipment is relatively poor. This type of lighting cannot be dimmed and always maintains full power during the working period, regardless of whether there are people on site, so the energy saving effect is poor and the subsequent maintenance workload is large. Utility Model Content

[0004] In order to improve the current situation in which platform lights in the prior art require manual operation when being adjusted, and to avoid the situation in which the platform lights consume power ineffectively due to the complicated manual operation process, the present application provides a smart platform light.

[0005] The intelligent platform lamp provided in this application adopts the following technical solution:

[0006] A smart platform lamp comprises a shell for installing internal parts, a base arranged at one end of the shell, an end cover installed at the end of the base away from the shell, and a lampshade installed at the end of the shell away from the base, wherein the shell, the base and the end cover together form an installation cavity, the installation cavity is provided with an LED driving module for emitting light, a signal antenna is arranged on one side of the shell, a sensor connected to the signal antenna is arranged in the shell, the sensor is electrically connected to a coil for generating magnetic repulsion, a magnetic elastic sheet is arranged in the installation cavity, the elastic sheet is arranged at the end of the coil and is spaced from the coil, an elastic switch is arranged at the end of the elastic sheet away from the coil, and the elastic switch is movably installed on a side of the LED driving module close to the sensor.

[0007] By adopting the above technical solution, the device terminal sends the instruction to the signal antenna through a wireless signal, and the signal antenna transmits it to the sensor. At this time, the sensor energizes the coil, and the coil generates a magnetic repulsion force, repels the elastic sheet and pushes the elastic sheet to abut against the elastic switch and squeeze it. The elastic switch is squeezed to drive the LED drive module to make the bulb light up, so that the operator can remotely operate and change the lighting time of the bulb, avoiding the problem of manual operation one by one, and reducing the cost of manpower consumption.

[0008] Optionally, a first connecting groove is provided on a side of the LED driving module close to the end cover, and the elastic switch includes a first conductive spring arranged at the bottom of the first connecting groove, a negative pole arranged at the bottom of the first connecting groove, and a positive pole connected to the end of the first spring, the positive pole slidingly fits in the first connecting groove, and when the first spring is in a normal state, there is a gap between the positive pole and the negative pole, and one end of the positive pole away from the negative pole extends out of the first connecting groove.

[0009] By adopting the above technical solution, when the elastic sheet squeezes the positive electrode column, the positive electrode column slides along the axis in the first connecting groove and abuts against the top of the negative electrode column to form a circuit path, driving the internal circuit of the LED driver module to start working. When the coil is not energized or a reverse current is passed, the positive electrode column will be separated from the negative electrode column under the action of the first spring, thereby realizing the control of the LED driver module through wireless signals. The structure is simple and easy to manufacture, and can avoid accidents such as short circuits in the LED driver module.

[0010] Optionally, a second connecting groove is opened at the bottom of the first connecting groove along the axial direction, the negative pole is slidably arranged in the second connecting groove, a second spring is connected between the bottom of the second connecting groove and the negative pole, the LED driving module is embedded with an adjustable resistor connected in series with the LED lamp, and a contact strip electrically connected to the adjustable resistor is installed on the side wall of the second connecting groove. When the second spring is in a normal state, the contact strip abuts against the negative pole, and the adjustable resistor is in a maximum resistance state.

[0011] By adopting the above technical solution, when the sensor receives a stronger signal, a larger current will be applied to the coil, so that the elastic sheet will continuously squeeze the positive pole toward the lampshade. At this time, the negative pole is squeezed by the positive pole and continuously slides toward the bottom of the second connecting groove. In this process, the contact area between the resistor bar and the side wall of the second connecting groove continues to increase, resulting in a continuous decrease in the resistance of the series circuit in the LED driver module. When the voltage is fixed, the current will continue to increase, thereby achieving the purpose of changing the brightness of the platform lamp.

[0012] Optionally, the first spring and the second spring are both covered with an insulating rubber sleeve for preventing the first spring from abutting against the negative pole.

[0013] By adopting the above technical solution, it is possible to prevent the circuit of the LED driving module from causing the negative pole to abut against the first spring when the positive pole does not contact the negative pole, thereby preventing the sensor from smoothly controlling the LED driving module. At the same time, the second spring is also covered with an insulating rubber sleeve to prevent the second spring from contacting the side wall of the second connecting groove, thereby preventing a short circuit from occurring.

[0014] Optionally, the elastic sheet includes a straight plate portion and a bent portion that are integrally connected, and a distance between the bent portion and the coil along the coil axis direction is greater than a distance between the straight plate portion and the coil along the coil direction.

[0015] By adopting the above technical solution, the elastic sheet can better press the positive electrode column, and at the same time, it can also prevent the elastic sheet from contacting and adhering to the coil.

[0016] Optionally, a plurality of reinforcing ribs are integrally laid out along the circumferential direction on the side of the shell, and the plurality of reinforcing ribs are evenly distributed and commonly connected to a reinforcing ring, and the reinforcing ring is coaxial with the shell.

[0017] By adopting the above technical solution, the structure of the platform lamp can be strengthened, and at the same time, the installation structure of the internal parts can be made more stable, which facilitates the installation and disassembly of the internal parts of the platform lamp.

[0018] Optionally, the sensor adopts a standard communication interface protocol and supports IoT communication technologies such as LORA, ZigBee, 4G, and 5G.

[0019] By adopting the above technical solution, the platform light can be integrated into most control systems in the market, thereby improving the adaptability of the smart platform light and making it have higher market practical value.

[0020] Optionally, a mounting structure for fixing the lampshade is provided between the lampshade and the shell, including a mounting ring integrally arranged at the lower end of the lampshade, a plurality of mounting grooves being evenly arranged along the circumference on one side of the mounting ring close to the top of the lampshade, a mounting hole being provided at the bottom of the mounting groove, and fixing bolts threadedly connected to the shell are passed through the plurality of mounting holes.

[0021] By adopting the above technical solution, the installation and removal of the lampshade can be facilitated, avoiding the difficulty of disassembling the platform lamp when internal parts need to be replaced. At the same time, the lampshade can seal the LED bulb of the platform lamp to prevent water seepage from causing a short circuit in the internal circuit of the platform lamp, thereby causing danger.

[0022] In summary, the present application includes at least one of the following beneficial technical effects:

[0023] 1. This application designs a new control structure inside the platform lamp, which has a higher degree of automation than the traditional platform lamp, realizes background control and is also convenient for networking, avoiding the complicated steps that require operators to operate in person;

[0024] 2. This application can make the platform lights change brightness, be more sensitive to environmental changes, and help reduce energy consumption. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 It is an overall schematic diagram of an intelligent platform lamp of the present application.

[0026] Figure 2 yes Figure 1 Cross-sectional view at AA in the middle.

[0027] Figure 3 It is an overall schematic diagram of a lampshade of an intelligent platform lamp of the present application.

[0028] Figure 4 yes Figure 3 Magnified view at B.

[0029] Figure 5 It is a schematic diagram of the overall structure of an elastic sheet of an intelligent platform lamp in the present application.

[0030] Figure 6 yes Figure 2 Magnified view at A in the middle.

[0031] Figure 7 This is a structural explosion view of an LED driving module of an intelligent platform lamp in the present application.

[0032] Explanation of the accompanying drawings: 1. Shell; 11. Base; 12. Lampshade; 13. Installation cavity; 2. LED drive module; 21. First connecting groove; 22. Second connecting groove; 3. Signal antenna; 4. Sensor; 5. Reinforcement rib; 51. Reinforcement ring; 6. Installation structure; 61. Installation ring; 611. Installation groove; 612. Installation hole; 7. Coil; 8. Elastic sheet; 81. Straight plate portion; 82. Bending portion; 9. Elastic switch; 91. Positive pole; 92. First spring; 93. Negative pole; 94. Second spring; 95. Contact strip. DETAILED DESCRIPTION

[0033] The following is combined with Figure 1-7 This application is described in further detail.

[0034] The embodiment of the present application discloses a smart platform lamp.

[0035] Reference Figure 1 and Figure 2 , a smart platform lamp, including a shell 1 for installing internal parts, a base 11 detachably installed at one end of the shell 1, and a lampshade 12 installed at the end of the shell 1 away from the base 11. The shell 1, the base 11 and the lampshade 12 together form an installation cavity 13, and an LED driving module 2 for driving the LED lamp to emit light is arranged in the installation cavity 13. A signal antenna 3 is installed through the side of the shell 1, one end of the signal antenna 3 extends into the interior of the shell 1 and is connected to a sensor 4, and the sensor 4 is fixedly arranged in the installation cavity 13, so that the wireless signal can be directly electrically connected to the sensor 4, and the brightness of the platform lamp is controlled by the sensor 4.

[0036] A plurality of reinforcing ribs 5 are integrally laid along the circumferential direction on the side of the shell 1. The plurality of reinforcing ribs 5 are evenly distributed and are connected together with a reinforcing ring 51. The reinforcing ring 51 is coaxial with the shell 1 and is used to strengthen the structure of the platform lamp shell 1. At the same time, it can also make the installation structure 6 of the parts on the platform lamp more stable.

[0037] Specifically, the sensor 4 adopts a standard communication interface protocol and supports Internet of Things communication technologies such as LORA, ZigBee, 4G, and 5G, so that the platform lamp can have higher system adaptability and improve the market practical value of the platform lamp.

[0038] Reference Figure 1 , Figure 3 and Figure 4 Specifically, a mounting structure 6 for fixing the lampshade 12 is provided between the housing 1 and the lampshade 12. The mounting structure 6 includes a mounting ring 61 integrally provided at the lower end of the lampshade 12, a plurality of mounting grooves 611 are uniformly provided on the mounting ring 61 along the circumferential direction, a mounting hole 612 is provided through the bottom of the mounting groove 611 on the mounting ring 61, and a fixing bolt for fixing the lampshade 12 on the housing 1 is connected to the inner thread of the mounting hole 612. In the present application, the mounting ring 61 can also seal the inside of the lampshade 12 to prevent water from entering the inside of the lampshade 12 and causing a short circuit.

[0039] Reference Figure 2 Furthermore, the sensor 4 is connected to a coil 7 that can generate magnetic repulsion. An elastic sheet 8 is installed on the side wall of the housing 1 inside the installation cavity 13, and the end of the elastic sheet 8 is located at one end of the coil 7, and there is a gap between the end of the coil 7. An elastic switch 9 is provided on the side of the elastic sheet 8 away from the coil 7, and the elastic switch 9 is installed on the side of the LED driver module 2 close to the coil 7.

[0040] Specifically, the elastic sheet 8 is magnetic, and when the coil 7 is energized by the current from the sensor 4, a magnetic repulsion force is generated, thereby pushing the elastic sheet 8 to abut against the elastic switch 9 and pressing the elastic switch 9. When the elastic switch 9 is pressed, the LED driving module 2 is energized, so that the platform light starts to emit light.

[0041] Reference Figure 2 and Figure 5 Furthermore, the elastic sheet 8 includes a straight plate portion 81 and a bent portion 82 connected in one piece, wherein the bent portion 82 is a trapezoidal structure along the cross section. The distance between the bent portion 82 and the coil 7 along the axis direction of the coil 7 is greater than the distance between the straight plate portion 81 and the coil 7 along the axis direction of the coil 7, that is, the bent portion 82 is bent in a direction away from the coil 7, so that the elastic sheet 8 can more conveniently press the positive pole 91, and at the same time, the elastic sheet 8 and the coil 7 can be prevented from being magnetically adsorbed together.

[0042] Reference Figure 2 , Figure 6 and Figure 7 A first connection slot 21 is provided on one side of the LED driving module 2 close to the end cover, and an elastic switch 9 is arranged in the first connection slot 21. The elastic switch 9 specifically includes a first spring 92 fixedly connected to the bottom of the first connection slot 21 at one end, a positive pole 91 connected to the end of the first spring 92, and a negative pole 93 arranged at the bottom of the first connection slot 21 along the axis direction of the first spring 92. When the first spring 92 is in a normal state, there is a gap between the positive pole 91 and the negative pole 93, and the top end of the positive pole 91 extends out of the first connection slot 21, so that the positive pole 91 can smoothly abut against the negative pole 93 when pressed.

[0043] Reference Figure 2 , Figure 6 and Figure 7 Furthermore, a second connecting groove 22 is provided at the bottom of the first connecting groove 21 along the axial direction, and the first connecting groove 21 and the second connecting groove 22 together form a stepped groove, and the first spring 92 is fixed on the step. A second spring 94 is fixedly installed at the bottom of the second connecting groove 22, and the end of the second spring 94 is fixedly connected to the end of the negative pole 93 away from the positive pole 91. The negative pole 93 is slidably fitted inside the second connecting groove 22, and a conductive contact strip 95 is embedded on the arc-shaped side wall of the negative pole 93. An adjustable resistor with an adjustable resistance value is embedded in the LED driving module 2, and the adjustable resistor is electrically connected to the contact strip 95, so that when the negative pole 93 slides, the resistance value of the adjustable resistor can be changed through the area where the contact strip 95 abuts against the side wall of the second connecting groove 22.

[0044] When the second spring 94 is in a normal state, the end of the negative pole 93 close to the spring is close to the notch of the second connection slot 22. At this time, the adjustable resistor is at the maximum resistance, that is, the flat lamp is at the lowest brightness. When the negative pole 93 is pressed by the positive pole 91 and slides inside the second connection slot 22, the adjustable resistor gradually decreases, and at this time, the brightness of the flat lamp gradually increases.

[0045] It should be noted that in order to ensure that the positive electrode column 91 can always abut against the negative electrode column 93 during the process of the bending portion 82 pressing the positive electrode column 91, the length of the negative electrode column 93 along the axial direction is designed to be greater than the depth of the second connecting groove 22 in the present application.

[0046] Since the adjustable resistor is an electronic component and is embedded in the internal circuit of the LED driving module 2, the adjustable resistor is no longer marked in the drawings of the specification of this application.

[0047] Reference Figure 1 and Figure 2 Furthermore, both the first spring 92 and the second spring 94 are conductive, and both are covered with insulating rubber sleeves on the outside to avoid conduction and short circuit.

[0048] The implementation principle of a smart platform lamp in the embodiment of the present application is:

[0049] The operator uses the backstage terminal device to send a command signal by wireless transmission, and the signal antenna 3 on the platform lamp housing 1 receives it and transmits it to the sensor 4. Then the sensor 4 energizes the coil 7 according to the received signal, and the coil 7 generates a magnetic repulsion force and pushes the elastic sheet 8 to bend elastically. The bent portion 82 of the elastic sheet 8 abuts against the positive pole 91 under the action of the magnetic repulsion force, and pushes the positive pole 91 to contact the negative pole 93. At this time, the platform lamp is energized and emits light.

[0050] Depending on the strength of the received signal, the magnetic repulsion force emitted by the coil 7 will also change, so that the pressing force applied by the bent portion 82 of the elastic sheet 8 to the positive pole 91 will also change. The bent portion 82 will drive the positive pole 91 to press the negative pole 93, causing it to slide in the second connecting groove 22, thereby changing the resistance of the light-emitting circuit inside the LED driving module 2. As the resistance changes, the current on the LED lamp changes, thereby changing the brightness.

[0051] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereto. Therefore, any equivalent changes made according to the structure, shape, and principle of the present application should be included in the protection scope of the present application.

Claims

1. An intelligent platform lamp, comprising a shell (1) for mounting internal parts, a base (11) arranged at one end of the shell (1), an end cover mounted on an end of the base (11) away from the shell (1), and a lampshade (12) mounted on an end of the shell (1) away from the base (11), wherein the shell (1), the base (11) and the end cover together enclose an installation cavity (13), and an LED driving module (2) for emitting light is arranged in the installation cavity (13), characterized in that: A signal antenna (3) is arranged on one side of the shell (1); a sensor (4) connected to the signal antenna (3) is arranged inside the shell (1); the sensor (4) is electrically connected to a coil (7) for generating magnetic repulsion; a magnetic elastic sheet (8) is arranged in the installation cavity (13); the elastic sheet (8) is arranged at the end of the coil (7) and is spaced apart from the coil (7); an elastic switch (9) is arranged at one end of the elastic sheet (8) away from the coil (7); the elastic switch (9) is movably mounted on a side of the LED driving module (2) close to the sensor (4).

2. The intelligent platform lamp according to claim 1, characterized in that: The LED driving module (2) is provided with a first connecting groove (21) on one side close to the end cover, and the elastic switch (9) comprises a first conductive spring (92) arranged at the bottom of the first connecting groove (21), a negative pole (93) arranged at the bottom of the first connecting groove (21), and a positive pole (91) connected to the end of the first spring (92), wherein the positive pole (91) is slidably fitted in the first connecting groove (21), and when the first spring (92) is in a normal state, there is a gap between the positive pole (91) and the negative pole (93), and one end of the positive pole (91) away from the negative pole (93) protrudes out of the first connecting groove (21).

3. The intelligent platform lamp according to claim 2, characterized in that: A second connecting groove (22) is provided at the bottom of the first connecting groove (21) along the axial direction, the negative pole (93) is slidably arranged in the second connecting groove (22), a second spring (94) is connected between the bottom of the second connecting groove (22) and the negative pole (93), an adjustable resistor connected in series with the LED lamp is embedded in the LED driving module (2), a contact strip (95) electrically connected to the adjustable resistor is installed on the side wall of the second connecting groove (22), when the second spring (94) is in a normal state, the contact strip (95) abuts against the negative pole (93), and the adjustable resistor is in a maximum resistance state.

4. The intelligent platform lamp according to claim 3, characterized in that: The outsides of the first spring (92) and the second spring (94) are both covered with an insulating rubber sleeve for preventing the first spring (92) from abutting against the negative pole (93).

5. The intelligent platform lamp according to claim 1, characterized in that: The elastic sheet (8) comprises a straight plate portion (81) and a bent portion (82) which are integrally connected, and the distance between the bent portion (82) and the coil (7) along the axial direction of the coil (7) is greater than the distance between the straight plate portion (81) and the coil (7) along the direction of the coil (7).

6. The intelligent platform lamp according to claim 1, characterized in that: A plurality of reinforcing ribs (5) are integrally laid along the circumferential direction on the side of the shell (1); the plurality of reinforcing ribs (5) are evenly distributed and are commonly connected to a reinforcing ring (51); the reinforcing ring (51) is coaxial with the shell (1).

7. The intelligent platform lamp according to claim 1, characterized in that: The sensor (4) adopts a standard communication interface protocol and supports LORA, ZigBee, 4G, and 5G Internet of Things communication technologies.

8. The intelligent platform lamp according to claim 1, characterized in that: A mounting structure (6) for fixing the lampshade (12) is provided between the lampshade (12) and the shell (1), comprising a mounting ring (61) integrally arranged at the lower end of the lampshade (12), a side of the mounting ring (61) close to the top of the lampshade (12) being uniformly provided with a plurality of mounting grooves (611) along the circumferential direction, the mounting ring (61) being provided with mounting holes (612) at the bottom of the mounting grooves (611), and fixing bolts threadedly connected to the shell (1) are passed through the plurality of mounting holes (612).