Garage lamp lighting system based on Internet of Things

By introducing infrared sensors and sound sensors into the IoT garage light system, combined with controller modules and monitoring platforms, intelligent lighting control based on the motion status of vehicles and personnel is realized, solving the problems of insufficient energy waste and intelligent management in the existing system, and improving the intelligence and energy efficiency of lighting.

CN223024629UActive Publication Date: 2025-06-24BEIJING TIANCHUANG XINGZE TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422248591.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-13
Publication Date
2025-06-24
Estimated Expiration
2034-09-13

AI Technical Summary

Technical Problem

The existing IoT garage light system cannot automatically illuminate intelligently based on the vehicle's entry position or the entry or departure of the parking space, resulting in insufficient energy waste and intelligent management.

Method used

Design a garage light lighting system based on the Internet of Things, including lighting module groups, acquisition modules, controller modules and monitoring platforms. The motion status information of vehicles and personnel is collected through infrared sensors and sound sensors, and the controller module is connected to the monitoring platform to realize real-time data acquisition and lighting control.

Benefits of technology

It realizes automatic adjustment of lighting according to the movement status of vehicles and personnel, reduces energy consumption, improves the intelligent level of garage light management, and ensures lighting comfort.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses a garage lamp lighting system based on the Internet of Things, which relates to the technical field of lighting systems of the Internet of Things, and is characterized in that each lighting module group has a unique first number which can be identified by a controller module; the lighting module group is composed of a plurality of lighting module areas, and each lighting module area has a unique second number which can be identified by the controller module; the acquisition module is respectively and adaptively mounted with the lighting module group and the lighting module area; the controller module is respectively in signal connection with the lighting module group and the lighting module area; the controller module is in signal connection with the acquisition module; and the controller module is in data connection with the monitoring platform. According to the utility model, the acquisition module is used for acquiring signals, the monitoring platform is used for controlling the controller module to uniformly lighten the lighting modules in the same area or lighting module areas in the same group with the same codes, and the Internet of Things lighting system of the underground garage is used for carrying out intelligent lighting according to the motion state of vehicles or personnel. And the energy consumption is reduced while the illumination comfort is ensured.
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Description

Technical Field

[0001] The utility model relates to the technical field of Internet of Things lighting systems, and more specifically, to a garage lighting system based on the Internet of Things. Background Art

[0002] In the prior art, garage lighting has developed from fluorescent lamps, LED lamps, induction lamps, and intelligent lighting with traditional circuits to intelligent lighting lamps of the Internet of Things (IOT). The combination of lighting and the Internet has brought infinite beautiful imaginations and innovations, creating a broad prospect for intelligent lighting based on the Internet of Things for garage lighting and solving more existing pain points.

[0003] However, the existing Internet of Things garage lights still have unscientific management. In particular, they cannot be automatically lit according to the position where the vehicle enters or the entry or exit of personnel from the parking space. The intelligent level of garage light management is not high enough, and it is impossible to sense lighting according to the conditions and positions of the flow of people and vehicles. Usually, a large area of lights is lit, wasting energy. It is impossible to light up in advance before people and vehicles arrive and put the lights into sleep mode when people and vehicles leave according to the conditions and positions of the flow of people and vehicles. It is impossible to detect the movement of people and vehicles indoors. When any lamp senses the presence of people and vehicles, other lamps within the same zone group can be set to light up simultaneously, and smooth transitions can be achieved between adjacent groups. The adjacent group mode is set at intersections to wake up the lighting of the next lane in advance.

[0004] Therefore, how to propose a garage lighting system based on the Internet of Things, which can perform intelligent lighting according to the movement states of vehicles or personnel through the Internet of Things lighting system in the underground garage, and reduce energy consumption while ensuring lighting comfort, is an urgent problem to be solved by those skilled in the art. Summary of the Utility Model

[0005] In view of this, the utility model provides a garage lighting system based on the Internet of Things, which can perform intelligent lighting according to the movement states of vehicles or personnel through the Internet of Things lighting system in the underground garage, and reduce energy consumption while ensuring lighting comfort. To achieve the above purpose, the utility model adopts the following technical solutions:

[0006] A garage lighting system based on the Internet of Things includes: a lighting module group, a collection module, a controller module, and a monitoring platform; each lighting module group has a unique first number that can be recognized by the controller module; the lighting module group is composed of multiple lighting module areas, and each lighting module area has a unique second number that can be recognized by the controller module; the collection module is respectively adaptively installed with the lighting module group and the lighting module area; the controller module is respectively signal-connected to the lighting module group and the lighting module area; the controller module is signal-connected to the collection module; the controller module is data-connected to the monitoring platform.

[0007] Optionally, the controller module collects information of the lighting module group, lighting module area, and acquisition module in a polling manner; the controller module is data-connected to the monitoring platform; when the real-time collected information exceeds the information threshold, the monitoring platform finds out the number of the lighting module group or lighting module area corresponding to the acquisition module and starts the lighting.

[0008] Optionally, the acquisition module includes an infrared sensor module and a sound sensor module, and both the infrared sensor module and the sound sensor module are signal-connected to the controller module.

[0009] Optionally, the lighting module group includes multiple lighting module areas, each lighting module area includes multiple lighting modules, each lighting module is adapted to a group of infrared sensor modules and sound sensor modules, the second numbers of the lighting modules in the same area are the same, and the first codes of the lighting module areas in the same group are the same.

[0010] Optionally, it further includes: the lighting module includes a time relay module, one end of the time relay module is signal-connected to the controller module, and the other end is signal-connected to the lighting module.

[0011] Optionally, the controller module includes a single-chip microcomputer module and a LoRa wireless transceiver module, the single-chip microcomputer module is connected to the LoRa wireless transceiver module, and the LoRa wireless transceiver module is data-connected to the monitoring platform.

[0012] Optionally, a star network is formed between the lighting module and the LoRa wireless transceiver module, and a mesh network is formed between the lighting modules.

[0013] Optionally, the single-chip microcomputer module is an MCU microcontroller.

[0014] Optionally, it further includes a mobile terminal, and the mobile terminal is data-connected to the monitoring platform.

[0015] It can be seen from the above technical solutions that, compared with the prior art, the present utility model discloses a garage light lighting system based on the Internet of Things, which has the following beneficial effects:

[0016] The utility model provides a garage lamp lighting system based on the Internet of Things, comprising: a lighting module group, a collection module, a controller module and a monitoring platform; each said lighting module group has a unique first number recognizable by the controller module; the lighting module group consists of a plurality of lighting module areas, and each said lighting module area has a unique second number recognizable by the controller module; the collection module is adaptively installed with the lighting module group and the lighting module area respectively; the controller module is signal-connected with the lighting module group and the lighting module area respectively; the controller module is signal-connected with the collection module; the controller module is data-connected with the monitoring platform. In the utility model, each said lighting module group has a unique first number recognizable by the controller module; the lighting module group consists of a plurality of lighting module areas, and each said lighting module area has a unique second number recognizable by the controller module. The controller module is signal-connected with the lighting module group and the lighting module area respectively; the controller module is signal-connected with the collection module; the controller module is data-connected with the monitoring platform. Signals are collected through the collection module, and the controller module is controlled through the monitoring platform to uniformly light the lighting modules in the same area or the lighting module areas in the same group with the same code. The Internet of Things lighting system in the underground garage performs intelligent lighting according to the movement states of vehicles or personnel, reducing energy consumption while ensuring lighting comfort. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only the embodiments of the present utility model. For those of ordinary skill in the art, other drawings can be obtained according to the provided drawings without creative efforts.

[0018] Figure 1 FIG. is a schematic structural diagram of a garage lamp lighting system based on the Internet of Things provided by the present utility model. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0019] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model with reference to the drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.

[0020] An embodiment of the present utility model discloses a garage lamp lighting system based on the Internet of Things, as Figure 1As shown in the figure, it includes: a lighting module group, a collection module, a controller module, and a monitoring platform; each of the lighting module groups has a unique first number that can be recognized by the controller module; the lighting module group is composed of multiple lighting module areas, and each of the lighting module areas has a unique second number that can be recognized by the controller module; the collection module is adaptively installed with the lighting module group and the lighting module area respectively; the controller module is signal-connected to the lighting module group and the lighting module area respectively; the controller module is signal-connected to the collection module; the controller module is data-connected to the monitoring platform.

[0021] In the specific implementation, the controller module collects the first number of the lighting module group, and the controller module collects the second number of the lighting module area;

[0022] The lighting module areas are divided in sequence. For example, the number of the first lighting module area is a, the number of the nth lighting module area is b, and so on. The lighting modules in the same lighting module area all have the second number of the lighting module area that can be recognized by the controller module, that is, the numbers of the lighting modules in the first lighting module area are all a;

[0023] The lighting module groups are divided in sequence. For example, the number of the first lighting module group is A, the number of the nth lighting module group is B, and so on. The lighting module areas in the same lighting module group all have the first number of the lighting module group that can be recognized by the controller module, that is, the numbers of the lighting module areas in the first lighting module group are all A;

[0024] The controller module is signal-connected to the lighting module group and the lighting module area respectively, that is, it collects the first number of the lighting module group, the first and second numbers of the lighting module area, and the second number of the lighting module. The controller module uploads the labels to the monitoring platform.

[0025] Further, the information threshold includes a sound threshold and a preset distance, and the sound threshold and the preset distance are set according to the traveling speed of the vehicle or the person.

[0026] Further, the lighting module is a GSXD18HW001B self-assembled network infrared induction T8 PC lamp tube, with an optional light source color temperature of 6000K, no dark areas, no stroboscopic, soft and comfortable light; high energy-saving rate; high energy efficiency; a service life of up to 50,000 hours.

[0027] Further, the controller module collects the information of the lighting module group, the lighting module area, and the collection module by means of polling; the controller module is data-connected to the monitoring platform; when the real-time collected information exceeds the information threshold, the monitoring platform finds out the number of the lighting module group or the lighting module area corresponding to the collection module and starts the lighting.

[0028] In a specific embodiment, each lighting module is numbered. The single-chip microcomputer module collects infrared and sound information in the garage in a polling manner to determine whether there are pedestrians or vehicles in motion in the garage. When it is determined through the infrared sensor module that the distance information between people and vehicles in the garage exceeds a certain range, the number information of the corresponding lighting module is transmitted to the monitoring platform through the LoRa wireless transceiver module, and the mobile terminal confirms the lighting situation through the monitoring platform; when it is determined through the sound sensor module that the distance information between people and vehicles in the garage exceeds a certain range, the number information of the corresponding lighting module is transmitted to the monitoring platform through the LoRa wireless transceiver module, and the mobile terminal confirms the lighting situation through the monitoring platform.

[0029] Furthermore, it also includes a manual switch. When the manual switch is operated, the single-chip microcomputer module sequentially sends the switch information to the mobile terminal through the LoRa wireless transceiver module and the monitoring platform.

[0030] Furthermore, the acquisition module includes an infrared sensor module and a sound sensor module, and both the infrared sensor module and the sound sensor module are signal-connected to the controller module.

[0031] Furthermore, the lighting module group includes multiple lighting module areas, each lighting module area includes multiple lighting modules, each lighting module is adapted to a group of infrared sensor modules and sound sensor modules, the second numbers of the lighting modules in the same area are the same, and the first codes of the lighting module areas in the same group are the same. The number of individually numbered lights in the same area group is not less than 65,535, and the number of area groups is not less than 65,535.

[0032] Furthermore, it also includes: the lighting module further includes a time relay module, one end of the time relay module is signal-connected to the controller module, and the other end is signal-connected to the lighting module. Specifically, the lighting module group includes a LoRa wireless transceiver module, a controller, and a time relay module connected in sequence. The time relay module is connected to the lighting module group. When a certain lighting module is turned on, the monitoring platform transmits the switch information of the lighting module to the LoRa wireless transceiver module of the adjacent group through the LoRa wireless transceiver module, and powers on the time relay module of the adjacent group. The lighting module connected to the time relay module is turned on within a preset time. If the environmental information acquisition device adapted to the lighting module of the adjacent group does not detect that the environmental information exceeds the threshold within the preset time, the lighting module of the adjacent group is turned off, and it is started sequentially until the vehicle finds a parking space. The preset time is set according to the traveling speed of the vehicle or the person.

[0033] Further, the controller module includes a single-chip microcomputer module and a LoRa wireless transceiver module. The single-chip microcomputer module is connected to the LoRa wireless transceiver module, and the LoRa wireless transceiver module is data-connected to the monitoring platform.

[0034] Further, a star network is formed between the lighting module and the LoRa wireless transceiver module, and a mesh network is formed between the lighting modules. Wireless ad-hoc networking is used for communication between lighting modules. The single-hop communication distance is >50 meters, and communication can be carried out in more than 3 hops.

[0035] The utility model judges whether there are pedestrians or vehicles in motion in the garage through the infrared sensor module and the sound sensor module, and transmits the lighting situation and the accurate lighting position to the monitoring platform in a timely manner through wireless transmission. This device can transmit through LoRa wirelessly, with low cost, simple structure, low energy consumption, long transmission distance, and high stability.

[0036] Further, the single-chip microcomputer module is an MCU microcontroller.

[0037] Further, it also includes a mobile terminal, and the mobile terminal is data-connected to the monitoring platform.

[0038] In the specific implementation, a garage light lighting system based on the Internet of Things has the following working principle:

[0039] The monitoring platform divides, groups, and codes according to the garage structure. The controller module is respectively signal-connected to the lighting module group and the lighting module area, that is, it collects the first number of the lighting module group, the first number and the second number of the lighting module area, and the second number of the lighting module. The controller module uploads the numbers to the monitoring platform, and the acquisition module is arranged according to the division and grouping of the monitoring platform;

[0040] The acquisition module is adaptively installed with the lighting module group and the lighting module area respectively; the acquisition module is a sound or infrared sensor, and the sound or infrared sensor corresponds to the lighting module, forming a corresponding relationship with the lighting modules in each area; the lighting module corresponds to the division and grouping code, forming a corresponding relationship with each area; the sound or infrared sensor corresponds to the division and grouping code, forming a corresponding relationship with the lighting modules in each area;

[0041] The controller module collects information of the lighting module group, the lighting module area, and the acquisition module in a polling manner; the controller module is data-connected to the monitoring platform; when the real-time collected information exceeds the information threshold, the monitoring platform finds out the numbers of the lighting module group, the lighting module area, or the lighting module corresponding to the acquisition module, and starts lighting;

[0042] The monitoring platform locates the area corresponding to the acquisition module and the corresponding lighting module, and activates the lighting module corresponding to this area for precise lighting. For example, if the second code of the lighting module corresponding to the acquisition module is queried, the lighting modules in the same lighting module area are all turned on. According to the first code of the lighting module area corresponding to the lighting module, the first code of the lighting module group is determined, and the lighting module areas in the same lighting module group are all turned on;

[0043] The adjacent lighting module groups are turned on according to the first code of the lighting module group. That is, when a certain lighting module group lights up, the monitoring platform transmits the switch information of the lighting module group to the LoRa wireless transceiver module of the adjacent group through the LoRa wireless transceiver module, and powers on the time relay module of the adjacent lighting module group. The lighting module group connected to the time relay module is turned on within a preset time. If the environmental information acquisition device adapted to the lighting module of the adjacent group does not detect that the environmental information exceeds the threshold within the preset time, the lighting module of the adjacent group is turned off, and it is started in sequence until the vehicle finds a parking space. The preset time is set according to the traveling speed of the vehicle or the person.

[0044] In this specification, each embodiment is described in a progressive manner. The key point of each embodiment is to illustrate the differences from other embodiments. The same or similar parts among the embodiments can be referred to each other. For the device disclosed in the embodiment, since it corresponds to the method disclosed in the embodiment, the description is relatively simple, and the relevant parts can be referred to the description of the method part.

[0045] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be obvious to those skilled in the art. The general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention will not be limited to the embodiments shown herein, but will be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A garage lighting system based on the Internet of Things, characterized in that: include: Lighting module group, acquisition module, controller module and monitoring platform; Each of the lighting module groups has a first number that is uniquely identifiable by a controller module; The lighting module group is composed of multiple lighting module areas, each of which has a unique second number that can be identified by the controller module; the acquisition module is respectively adapted and installed with the lighting module group and the lighting module area; the controller module is respectively signal-connected with the lighting module group and the lighting module area; the controller module is signal-connected with the acquisition module; and the controller module is data-connected with the monitoring platform.

2. According to the IoT-based garage lighting system of claim 1, it is characterized in that: The controller module collects information of the lighting module group, lighting module area and collection module by polling; The controller module is data-connected to the monitoring platform; when the real-time collected information exceeds the information threshold, the monitoring platform finds out the number of the lighting module group or lighting module area corresponding to the collection module, and starts lighting.

3. The garage light lighting system based on the Internet of Things according to claim 1 is characterized in that: The acquisition module includes an infrared sensor module and a sound sensor module, and both the infrared sensor module and the sound sensor module are connected to the controller module by signal.

4. The garage light lighting system based on the Internet of Things according to claim 3 is characterized in that: The lighting module group includes a plurality of lighting module zones, each of the lighting module zones includes a plurality of lighting modules, each of the lighting modules is adapted to a group of infrared sensor modules and sound sensor modules, the lighting modules in the same zone have the same second number, and the lighting module zones in the same group have the same first code.

5. The garage light lighting system based on the Internet of Things according to claim 4 is characterized in that: It also includes a time relay module, one end of which is connected to the controller module by signal, and the other end of which is connected to the lighting module by signal.

6. The garage light lighting system based on the Internet of Things according to claim 1, characterized in that: The controller module includes a single-chip microcomputer module and a LoRa wireless transceiver module. The single-chip microcomputer module is connected to the LoRa wireless transceiver module, and the LoRa wireless transceiver module is data-connected to the monitoring platform.

7. The garage light lighting system based on the Internet of Things according to claim 6, characterized in that: A star network is formed between the lighting module and the LoRa wireless transceiver module, and a mesh network is formed between the lighting modules.

8. The garage light lighting system based on the Internet of Things according to claim 6, characterized in that: The single chip computer module is an MCU microcontroller.

9. The garage light lighting system based on the Internet of Things according to claim 1, characterized in that: It also includes a mobile terminal, which is data-connected to the monitoring platform.