An explosion-proof lamp control method, device, equipment and storage medium
By acquiring information about the mine environment and the type of area, and combining this with the behavior of personnel, the brightness of the explosion-proof lights is adjusted. This solves the problem that traditional explosion-proof light brightness control mechanisms cannot adapt to the complex environment of mines, and achieves intelligent brightness matching and energy-saving effects.
Patent Information
- Application Number
- CN202410771865.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-15
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2044-06-15
AI Technical Summary
Traditional explosion-proof lamp brightness control mechanisms, which rely on light intensity data, are difficult to adapt to the complex and ever-changing environment inside mines. This results in brightness levels that cannot match lighting requirements, affecting lighting performance and energy consumption.
By acquiring environmental information and area type of the target explosion-proof light in the mine, combined with personnel behavior, the initial brightness is adjusted and coordinated with the brightness of adjacent lights to determine the final brightness, thus achieving intelligent control.
It achieves real-time matching of the brightness of the explosion-proof light, which not only ensures the lighting effect, but also saves energy and makes the brightness control more precise and stable.
Smart Images

Figure CN118488630B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of intelligent lighting control, in particular to a control method, device and equipment of an explosion-proof lamp and a storage medium. BACKGROUND
[0002] As the core equipment of mine lighting, the explosion-proof lamp can operate stably in harsh environments due to its characteristics of explosion-proof, dust-proof and waterproof, ensuring that the explosion-proof lamp can provide sufficient illumination in high-risk places such as mines, thereby protecting the safety and work efficiency of workers and becoming an indispensable important equipment for mine operation.
[0003] At present, in order to ensure the effect and energy saving of the explosion-proof lamp, a feedback adjustment mechanism of an ambient light sensor is usually used to realize the brightness control of the explosion-proof lamp. According to the light intensity data monitored by the ambient light sensor, the brightness of the explosion-proof lamp is adjusted to match the illumination demand inside the mine and to minimize energy consumption. However, due to the complex and changeable environment inside the mine, the traditional feedback adjustment mechanism can not adapt to various emergencies and special needs according to the light intensity data only, which may result in that the brightness of the explosion-proof lamp cannot match the illumination demand inside the mine. SUMMARY
[0004] The present application provides a control method, device and equipment of an explosion-proof lamp and a storage medium, which are used to match the brightness of the explosion-proof lamp with the illumination demand inside the mine.
[0005] In a first aspect, the present application provides a control method of an explosion-proof lamp, which comprises: acquiring environmental information of a target explosion-proof lamp in a mine and a region type of a region to which the target explosion-proof lamp belongs, the mine comprising a plurality of regions, and each region having a plurality of explosion-proof lamps; determining an initial brightness of the target explosion-proof lamp in combination with the environmental information and the region type; acquiring a personnel behavior state in a lighting range of the target explosion-proof lamp, adjusting the initial brightness according to the personnel behavior state to obtain a target brightness of the target explosion-proof lamp; acquiring a brightness of an explosion-proof lamp adjacent to the target explosion-proof lamp, adjusting the target brightness according to the brightness of the adjacent explosion-proof lamp to determine a final brightness of the target explosion-proof lamp; and adjusting the brightness of the target explosion-proof lamp to the final brightness.
[0006] By adopting the technical scheme, the initial brightness of the target explosion-proof lamp is determined by combining the environment information and the region type, so that the initial brightness is set according to different requirements of the environment and the region where the target explosion-proof lamp is located. Then, the personnel behavior state in the lighting range of the target explosion-proof lamp is acquired, and the initial brightness is adjusted according to the behavior state to obtain the target brightness, so that the brightness is adjusted in real time according to the personnel behavior state. Further, the brightness information of the adjacent explosion-proof lamps is acquired, and the target brightness is adjusted according to the brightness of the adjacent lamps to obtain the final brightness, so that the brightness of the adjacent lamps is coordinated, and the brightness transition between the adjacent lamps is natural. In summary, the explosion-proof lamp control method acquires various information of the target lamp and comprehensively judges and processes the information, so that the intelligent control of the lighting brightness is realized, the brightness of the explosion-proof lamp can be matched with the current illumination requirement in real time, the illumination effect is ensured, and power saving and energy saving are realized. The brightness of the explosion-proof lamp is matched with the illumination requirement in the mine.
[0007] Optionally, the initial brightness of the target explosion-proof lamp is determined by combining the environment information and the region type, including: acquiring a region type corresponding to a brightness level of a region to which the target explosion-proof lamp belongs, and determining a first brightness of the target explosion-proof lamp according to the brightness level, wherein different regions correspond to different brightness levels; acquiring an environment brightness of the target explosion-proof lamp in the environment information, and adjusting the first brightness according to the environment brightness to obtain the initial brightness of the target explosion-proof lamp.
[0008] By adopting the technical scheme, the first brightness is determined according to the region type of the region where the target lamp is located. The lamps in different regions have different reference brightnesses. Then, the environment brightness information is acquired, and the first brightness is adjusted based on the first brightness to adapt to the specific environment brightness, to obtain the final initial brightness. This scheme combines the region information and the environment information, and provides an initial brightness determination technical means that considers both the region difference and the specific environment, so that the lamps in different regions have different reference brightnesses, and the reference brightness can be adjusted according to the actual environment brightness. The initial brightness determined in this way meets the basic brightness requirement of different regions and adapts to the brightness of the specific environment, so as to improve the rationality of the initial brightness determination.
[0009] Optionally, the initial brightness of the target explosion-proof lamp is obtained by adjusting the first brightness according to the environment brightness, including: comparing the environment brightness with a preset brightness threshold; when the environment brightness is lower than the preset brightness threshold, the first brightness is increased by a preset brightness increment to obtain the initial brightness of the target explosion-proof lamp; and when the environment brightness is not lower than the preset brightness threshold, the first brightness is decreased by a preset brightness decrement to obtain the initial brightness of the target explosion-proof lamp.
[0010] By adopting the technical scheme, the initial brightness can be adjusted according to the specific environmental brightness, and the initial brightness is matched with the environmental brightness, so that the insufficient light condition caused by the too low environmental brightness is avoided, and the energy waste condition caused by the too high environmental brightness is also avoided. The rationality of the initial brightness is improved, and the subsequent brightness control is more accurate and effective.
[0011] Optionally, the personnel behavior state includes a static state and a motion state, and the adjusting the initial brightness to obtain the target brightness of the target explosion-proof lamp according to the personnel behavior state includes: when the personnel behavior state is the motion state, the initial brightness is increased by a first preset value to obtain the target brightness of the target explosion-proof lamp; when the personnel behavior state is the static state, it is judged whether the current time is a night period; if the current time is the night period, the initial brightness is decreased by a second preset value to obtain the target brightness of the target explosion-proof lamp; and if the current time is not the night period, the initial brightness is taken as the target brightness of the target explosion-proof lamp.
[0012] By adopting the technical scheme, the initial brightness is adjusted according to different personnel behavior states, the static state and the motion state of the personnel are distinguished, and specific brightness adjustment techniques in different states are given, so that the brightness demand in the motion state is met, and the energy saving target in the static state is also achieved. The intelligent level of the brightness control is improved, and the brightness can be accurately matched with the change of the personnel behavior state.
[0013] Optionally, the method further includes: when the personnel do not exist in the illumination range of the target explosion-proof lamp, adjusting the initial brightness of the target explosion-proof lamp to a corresponding energy-saving brightness according to the area type of the area to which the target explosion-proof lamp belongs.
[0014] By adopting the technical scheme, the personnel state is divided into the static state and the motion state, the initial brightness is increased by the first preset value when the state is the motion state, so that the brightness is improved to meet the activity demand, and when the state is the static state, it is further distinguished whether the state is the night period, if the state is the night period, the initial brightness is decreased by the second preset value, so that the brightness is reduced to achieve the energy saving effect, and if the state is not the night period, the initial brightness is kept unchanged. The initial brightness is adjusted according to different personnel behavior states, the static state and the motion state of the personnel are distinguished, the brightness demand in the motion state is met, and the energy saving target in the static state is also achieved.
[0015] Optionally, the adjusting the target brightness according to the brightness of the adjacent explosion-proof lamp to determine the final brightness of the target explosion-proof lamp comprises: obtaining an average value of the brightness of the adjacent explosion-proof lamp; calculating a difference between the target brightness and the average value of the brightness; if the difference exceeds a preset threshold, adjusting the target brightness so that the difference between the target brightness and the average value of the brightness is within the preset threshold range, and taking the adjusted target brightness as the final brightness of the target explosion-proof lamp; and if the difference does not exceed the preset threshold, taking the target brightness as the final brightness of the target explosion-proof lamp.
[0016] By adopting the above technical solution, the average value of the brightness of the adjacent lamp is obtained, the difference between the target brightness and the average value is calculated, and then the difference is compared with the preset threshold. If the difference exceeds the threshold, the target brightness is adjusted so that the difference between the target brightness and the average value is within the threshold, so as to smooth the brightness transition between the adjacent lamps. By forming a proper brightness difference with the average brightness of the adjacent lamps, the coordinated control of the target lamp and the adjacent lamps in the brightness transition is realized. The existence of a large brightness difference between the target lamp and the adjacent lamps is avoided, the brightness change between the adjacent lamps is more natural and coordinated, and the brightness control effect is improved.
[0017] Optionally, after the brightness of the target explosion-proof lamp is adjusted to the final brightness, the method further comprises: obtaining a real-time brightness of the target explosion-proof lamp; judging whether a brightness difference between the real-time brightness and the final brightness is within a preset error range; if the brightness difference is within the preset error range, maintaining the current brightness of the target explosion-proof lamp unchanged; and if the brightness difference exceeds the preset error range, adjusting the brightness of the target explosion-proof lamp until the brightness difference between the real-time brightness and the final brightness is within the preset error range.
[0018] By adopting the above technical solution, the real-time brightness of the target explosion-proof lamp is obtained, and the difference between the real-time brightness and the final brightness is calculated to judge whether it is within the error range. If it is within the range, the current brightness is maintained; if it exceeds the range, the brightness is continuously adjusted until the difference is within the range. A closed-loop feedback adjustment control process is added, and closed-loop tracking control of the brightness of the target explosion-proof lamp is realized. By continuously detecting the real-time brightness and comparing it with the expected brightness, the brightness of the target explosion-proof lamp can quickly and accurately reach and maintain the final brightness setting value. The accuracy and stability of the brightness control are improved, and the explosion-proof lamp can continuously provide the expected illumination brightness.
[0019] In a second aspect, the present application provides an explosion-proof lamp control device, which comprises an acquisition module, a determination module, a first adjustment module, a second adjustment module and an output module. The acquisition module is configured to acquire environmental information of a target explosion-proof lamp and a region type of a region to which the target explosion-proof lamp belongs. The mine comprises a plurality of regions, and each region comprises a plurality of explosion-proof lamps. The determination module is configured to determine an initial brightness of the target explosion-proof lamp in combination with the environmental information and the region type. The first adjustment module is configured to acquire a personnel behavior state in a lighting range of the target explosion-proof lamp, and adjust the initial brightness to obtain a target brightness of the target explosion-proof lamp according to the personnel behavior state. The second adjustment module is configured to acquire a brightness of an explosion-proof lamp adjacent to the target explosion-proof lamp, and adjust the target brightness to determine a final brightness of the target explosion-proof lamp according to the brightness of the adjacent explosion-proof lamp. The output module is configured to adjust the brightness of the target explosion-proof lamp to the final brightness.
[0020] In a third aspect, the present application provides an electronic device, which adopts the following technical solution: comprising a processor, a memory, a user interface and a network interface. The memory is configured to store instructions. The user interface and the network interface are configured to communicate with other devices. The processor is configured to execute the instructions stored in the memory, so that the electronic device executes the computer program of any of the above explosion-proof lamp control methods.
[0021] In a fourth aspect, the present application provides a computer-readable storage medium, which adopts the following technical solution: storing a computer program capable of being loaded by a processor and executing any of the above explosion-proof lamp control methods.
[0022] In summary, the present application includes at least one of the following beneficial technical effects:
[0023] 1. The explosion-proof lamp control method realizes intelligent control of lighting brightness by acquiring and comprehensively processing multi-aspect information of a target lamp, so that the brightness of the explosion-proof lamp can be matched with the current lighting demand in real time, which not only ensures the lighting effect, but also realizes power saving and energy saving. The brightness of the explosion-proof lamp is matched with the lighting demand inside the mine.
[0024] 2. By continuously detecting the real-time brightness and comparing it with the expected brightness, the brightness of the target explosion-proof lamp can be quickly and accurately reached and maintained at the final brightness setting value. The accuracy and stability of the brightness control are improved, so that the explosion-proof lamp can continuously provide the expected lighting brightness. BRIEF DESCRIPTION OF DRAWINGS
[0025] Figure 1 is a flowchart of an explosion-proof lamp control method provided by an embodiment of the present application;
[0026] Figure 2is a data uplink and downlink transmission schematic diagram provided by an embodiment of the present application;
[0027] Figure 3 is a structure schematic diagram of an explosion-proof lamp control device provided by an embodiment of the present application;
[0028] Figure 4 is a structure schematic diagram of an electronic device provided by an embodiment of the present application.
[0029] Legend: 1000, electronic device; 1001, processor; 1002, communication bus; 1003, user interface; 1004, network interface; 1005, memory. DETAILED DESCRIPTION
[0030] In order to enable persons skilled in the art to better understand the technical solutions in the present specification, the technical solutions in the embodiments of the present specification will be clearly and completely described below in conjunction with the drawings in the embodiments of the present specification. Obviously, the described embodiments are only some of the embodiments of the present application, not all the embodiments.
[0031] In the description of the embodiments of the present application, the words such as "exemplary", "for example", or "for instance" are used to mean example, illustration, or description. Any embodiment or design solution described as "exemplary", "for example", or "for instance" in the embodiments of the present application should not be interpreted as more preferred or more advantageous than other embodiments or design solutions. Rather, the words such as "exemplary", "for example", or "for instance" are intended to present the relevant concept in a specific manner.
[0032] Figure 1 is a flowchart of an explosion-proof lamp control method provided by an embodiment of the present application. It should be understood that, although Figure 1 the steps in the flowchart are displayed in sequence according to the arrows, these steps are not necessarily executed in sequence according to the arrows; unless explicitly stated in the present document, the execution of these steps has no strict sequence limitation, and these steps can be executed in other sequences; and Figure 1 at least part of the steps in the flowchart can include multiple sub-steps or multiple stages, these sub-steps or stages are not necessarily executed at the same time, but can be executed at different times, and the execution sequence of these sub-steps or stages is not necessarily sequential, but can be executed in rotation or alternation with other steps or sub-steps or stages of other steps.
[0033] Figure 2is a data uplink and downlink transmission schematic provided by an embodiment of the present application. Each explosion-proof lamp can be regarded as a node, and various sensors are installed on each node to obtain real-time environmental information of the target explosion-proof lamp. These sensors can include but are not limited to brightness sensors, temperature sensors, humidity sensors, and gas detection sensors.
[0034] The node converts the information collected by the sensor into a protocol-specified uplink data frame and then sends it to the gateway. The gateway receives the data, performs protocol conversion through the built-in server, and sends it to the server. After the server receives the information, it generates instruction information conforming to the structure of the downlink data frame, then performs protocol conversion through the built-in server, and then the gateway receives the data and sends it to the node after conversion, so that the node can self-regulate.
[0035] Specifically, data is sent to the gateway through LoRa, and the gateway sends it to the network server through the network. The network server unpacks the received data to determine the source of the data. Then the network server transmits the data to the corresponding application server. For the gateway, the uplink transmission mainly uses Ethernet or optical fiber, and the downlink transmission is LoRa communication. LoRa (Long Range) is a long-range, low-power wireless communication technology based on spread spectrum technology. It is mainly used for connection between Internet of Things (IoT) devices, and is particularly suitable for applications that require long-distance transmission and low power consumption.
[0036] The network server unpacks the received data to determine the source and type of the data. The unpacking process includes parsing the header information of the data packet to identify the specific sensor data and its corresponding node. This ensures that all data can be accurately matched to a specific explosion-proof lamp node and its environmental conditions.
[0037] Then, the network server transmits the unpacked data to the corresponding application server. The application server further processes and analyzes the received sensor data. For example, the application server can determine whether to adjust the brightness of the explosion-proof lamp based on the data from the environmental brightness sensor, thereby achieving intelligent lighting control. At the same time, temperature, humidity, and gas concentration data are also monitored in real time to ensure the safe operation of the mine.
[0038] For the gateway, downlink transmission is through LoRa communication to send control instructions from the application server back to each node. In this way, the explosion-proof lamp node can adjust its working state in real time according to the instructions from the application server. For example, when the application server determines that the environmental brightness in a certain area is insufficient, it will issue an instruction through the gateway to increase the brightness of the explosion-proof lamp in that area; if the dangerous gas concentration is detected to be excessive, it may issue an alarm instruction or take emergency measures.
[0039] Through this data uplink and downlink transmission system, each explosion-proof lamp node can obtain and upload environmental information in real time, while receiving control instructions from the application server, achieving the purpose of dynamically adjusting brightness and ensuring mine safety. The entire system realizes efficient and reliable data transmission through LoRa, Ethernet or optical fiber technology, ensuring the intelligence and safety of the mine lighting system.
[0040] The present application discloses an explosion-proof lamp control method, as shown in the method, S101-S105. Figure 1
[0041] S101, obtaining the environmental information of the target explosion-proof lamp in the mine and the area type of the area where the target explosion-proof lamp belongs, the mine including multiple areas, and multiple explosion-proof lamps existing in each area.
[0042] The environmental information in this embodiment can be understood as the intensity of natural light or existing light source in the current area detected by the brightness sensor. This is a key factor in determining whether the explosion-proof lamp needs to adjust the brightness to achieve appropriate lighting.
[0043] The area type refers to the functional classification of different areas in the mine, and the lighting needs of different areas are different. The mine is usually divided into several main areas, and each area has different requirements for lighting brightness and safety according to its function and operation characteristics. Specifically, it includes:
[0044] Main roadway: This is the main channel of the mine, and personnel and equipment pass through frequently, requiring higher lighting brightness to ensure safe passage and operation. Working face: This is the area where mining operations are carried out, with high and stable lighting needs, and needs to ensure the clear vision of workers. Refuge: This is the area where personnel seek refuge in emergency situations, and usually only basic lighting is needed to save energy. Equipment room: an area for storing and maintaining mine equipment, with moderate lighting needs to ensure visibility for equipment operation and maintenance. Other areas: may include warehouses, rest areas, etc., and the lighting needs of these areas vary depending on their purpose. The type of each area defines its corresponding brightness level in advance, which provides a basis for the system to initially set the brightness of the explosion-proof lamp.
[0045] In one example, by obtaining the environmental information of the target explosion-proof lamp and the area type, preliminary brightness setting is performed based on these information. Not only ensures the scientificity and rationality of lighting, but also provides basic data for subsequent dynamic adjustment of brightness. Specifically, first, determine an initial brightness level according to the area type, and then fine-tune according to the real-time detected environmental information. For example, if the environmental brightness is low, the initial brightness of the explosion-proof lamp will be increased accordingly; on the contrary, if the environmental brightness is high, the brightness of the explosion-proof lamp will be appropriately reduced, thereby achieving energy saving effect.
[0046] S102, determine the initial brightness of the target explosion-proof lamp in combination with the environment information and the region category.
[0047] In one example, an initial brightness level is first determined according to the region category of the region where the target explosion-proof lamp belongs. Each region category is pre-defined with its corresponding brightness requirement. For example, the main roadway needs higher lighting brightness to ensure safe passage, the working face needs stable and high-brightness lighting to support mining operations, and the refuge needs only basic lighting to save energy. Through this pre-defined brightness level, a reasonable initial brightness range can be quickly set for the explosion-proof lamp of each region.
[0048] Next, the pre-set initial brightness is refined in combination with the real-time acquired environment information. For example, if the brightness sensor detects that the current ambient light intensity is high, it means that natural light or existing light sources have already provided sufficient lighting, and the brightness of the explosion-proof lamp can be appropriately reduced to save energy. Conversely, if the ambient light intensity is low, the system will increase the brightness of the explosion-proof lamp to ensure the lighting needs of the working area. In addition, temperature, humidity and gas concentration information will also affect the brightness setting of the explosion-proof lamp. For example, in a high temperature or high humidity environment, the heat output of the explosion-proof lamp may need to be reduced by adjusting the brightness to prolong the service life of the equipment and ensure safety.
[0049] On the basis of the above embodiment, as an optional implementation, in S102, determining the initial brightness of the target explosion-proof lamp in combination with the environment information and the region category specifically includes the following steps:
[0050] S20, acquire the brightness level corresponding to the region category of the region where the target explosion-proof lamp belongs, and determine the first brightness of the target explosion-proof lamp according to the brightness level, wherein different regions correspond to different brightness levels.
[0051] In one example, the region categories in a mine usually include main roadway, working face, refuge, equipment room, etc., and each region has different lighting needs. According to the region category, the corresponding brightness level is found. Each region category is pre-defined with its required brightness level. For example: main roadway: needs higher brightness level to ensure the safety of personnel passage, brightness level is high. Working face: needs stable and high-brightness lighting to support mining operations, brightness level is the highest. Refuge: needs basic lighting to save energy, typical brightness level is medium. Equipment room: needs moderate brightness to facilitate equipment maintenance, typical brightness level is medium-high.
[0052] After obtaining the brightness level of the area where the target explosion-proof lamp belongs, the brightness level is converted into a specific brightness value, which is the first brightness of the target explosion-proof lamp. For example, the brightness level of the main roadway is high, and the specific brightness value corresponding to the high brightness level preset by the system may be 500 lumens; the brightness level of the working face is the highest, and the corresponding brightness value may be 800 lumens.
[0053] Specifically, the first brightness of the target explosion-proof lamp can be determined by searching the preset brightness level-brightness value table and according to the type of the area where the target explosion-proof lamp is located. For example, if the target explosion-proof lamp is located in the main roadway and its brightness level is high, the system will set its first brightness to 500 lumens.
[0054] S21, obtaining the environmental brightness of the target explosion-proof lamp in the environmental information, and adjusting the first brightness according to the environmental brightness to obtain the initial brightness of the target explosion-proof lamp.
[0055] In one example, the environmental brightness is compared with the first brightness of the target explosion-proof lamp. The first brightness is a basic brightness value determined according to the brightness level of the area where the target explosion-proof lamp belongs, while the environmental brightness reflects the actual lighting conditions of the current area. By comparing the two brightness values, the system can determine whether the first brightness needs to be adjusted. If the environmental brightness is high, the first brightness is appropriately reduced to avoid excessive illumination and waste of electrical energy. Conversely, if the environmental brightness is low, the first brightness is increased to ensure sufficient illumination.
[0056] On the basis of the above embodiment, adjusting the first brightness according to the environmental brightness to obtain the initial brightness of the target explosion-proof lamp specifically includes the following steps:
[0057] S201, comparing the environmental brightness with the preset brightness threshold.
[0058] S202, when the environmental brightness is lower than the preset brightness threshold, the first brightness is increased by a preset brightness increment to obtain the initial brightness of the target explosion-proof lamp.
[0059] The preset brightness threshold refers to a minimum light intensity value preset by the system, which is used to ensure the basic lighting needs of the working area. This threshold is usually determined based on safety standards and work requirements to ensure that the working area can maintain sufficient brightness even in the most unfavorable environmental lighting conditions, thereby ensuring the safety and work efficiency of personnel.
[0060] In one example, the obtained environmental brightness is compared with the preset brightness threshold. Assuming that the preset brightness threshold is 200 lumens. When the environmental brightness detected by the environmental light sensor is lower than this threshold, for example, the detection value is 150 lumens, the brightness adjustment mechanism is triggered. In order to make up for the insufficient environmental illumination, the first brightness of the target explosion-proof lamp is increased accordingly.
[0061] The first brightness is adjusted by the preset brightness increment. The brightness increment is a fixed value set according to the mine environment and lighting needs, ensuring that in the case of low ambient light, the desired lighting effect is achieved by increasing the brightness of the explosion-proof lamp. Assuming the preset brightness increment is 100 lumens. Specifically, the first brightness is increased by this preset brightness increment. For example, the first brightness of the target explosion-proof lamp is set to 300 lumens, and at this time, because the ambient brightness of 150 lumens is lower than the preset threshold of 200 lumens, the first brightness is increased by 100 lumens, resulting in an initial brightness of the target explosion-proof lamp of 400 lumens.
[0062] S203, when the ambient brightness is not lower than the preset brightness threshold, the first brightness is adjusted by a preset brightness decrement to obtain the initial brightness of the target explosion-proof lamp.
[0063] In one example, in order to avoid unnecessary power consumption when the ambient light is sufficient, the first brightness of the target explosion-proof lamp is appropriately reduced. The first brightness is adjusted by the preset brightness decrement. The brightness decrement is a fixed value set according to the mine environment and lighting needs, ensuring that in the case of sufficient ambient light, the energy-saving effect is achieved by reducing the brightness of the explosion-proof lamp. Assuming the preset brightness decrement is 50 lumens. Specifically, the first brightness is adjusted by this preset brightness decrement. For example, the first brightness of the target explosion-proof lamp is set to 300 lumens, and at this time, because the ambient brightness of 250 lumens is not lower than the preset threshold of 200 lumens, the first brightness is reduced by 50 lumens, resulting in an initial brightness of the target explosion-proof lamp of 250 lumens.
[0064] S103, obtaining the personnel behavior state in the lighting range of the target explosion-proof lamp, adjusting the initial brightness according to the personnel behavior state to obtain the target brightness of the target explosion-proof lamp.
[0065] In one example, through sensors and monitoring devices, the personnel behavior state in the lighting range of the target explosion-proof lamp can be monitored in real time. These sensors can include infrared sensors, motion detection sensors, and video monitoring systems, etc. Through these devices, information about personnel location, motion trajectory, and activity frequency, etc. is obtained.
[0066] After obtaining the personnel behavior state, these data are analyzed. For example, if it is detected that there are frequent activities of personnel in a certain area, it is judged that higher brightness is needed in that area to ensure the safety of personnel operation and clear vision. On the contrary, if no personnel activity is detected in a certain area for a long time, the brightness of the explosion-proof lamp in that area can be appropriately reduced to save energy.
[0067] Specifically, the sensor data is compared with the initial brightness setting. Assuming that in a certain area, the initial brightness setting is medium brightness, but through the sensor detection, it is found that there are many personnel frequently moving in the area, then the initial brightness is adjusted, and finally the target brightness of the explosion-proof lamp in the area is obtained. If another area detects no personnel, the brightness of the area is adjusted to the lowest safe brightness to save power.
[0068] On the basis of the above embodiment, as an optional implementation, in S103, the personnel behavior state includes a stationary state and a motion state, and the initial brightness is adjusted according to the personnel behavior state to obtain the target brightness of the target explosion-proof lamp, which specifically includes the following steps:
[0069] S30, when the personnel behavior state is the motion state, the initial brightness is increased by a first preset value to obtain the target brightness of the target explosion-proof lamp.
[0070] In one example, the personnel behavior monitoring sensor installed in the mine detects the behavior state of the personnel in the area in real time. The personnel behavior monitoring sensor can capture the motion information of the personnel and transmit these data to the control center of the system. The system analyzes these data to determine whether the behavior state of the personnel in the current area is the stationary state or the motion state.
[0071] Assuming that the system detects that the personnel behavior state is the motion state. In this case, the personnel in the area may be performing work operations or moving, and therefore a higher lighting intensity is required to provide a clear vision and higher safety. In order to meet this requirement, the initial brightness of the target explosion-proof lamp is increased by a preset brightness value.
[0072] The initial brightness is the brightness value obtained after the environmental brightness adjustment in the previous step. The first preset value is a fixed incremental value set according to the lighting requirements and safety standards to ensure that the lighting intensity can be significantly improved in the personnel motion state. For example, assuming that the initial brightness is 300 lumens, and the first preset value is 100 lumens. Specifically, when the personnel behavior state is detected as the motion state, the initial brightness of 300 lumens is increased by 100 lumens, and the target brightness of the target explosion-proof lamp is 400 lumens.
[0073] S31, when the personnel behavior state is the stationary state, it is determined whether the current time is a night period.
[0074] S32, if the current time is the night period, the initial brightness is decreased by a second preset value to obtain the target brightness of the target explosion-proof lamp.
[0075] In one example, the current time information can be acquired in real time by a time management module in the system. The time management module can accurately determine whether the current time period is a night time period. The night time period is usually pre-set according to the operation schedule of the mine and the natural day and night alternation rule. For example, the night time period can be defined as 8 pm to 6 am.
[0076] Suppose the current time is 9 pm, the system determines that it is in the night time period. In the night time period, since the natural light is insufficient, and the activity intensity of the mine operation is usually low, it is necessary to adjust the light appropriately to avoid excessive illumination and unnecessary power consumption.
[0077] In order to save energy in the night time period, the system needs to reduce the initial brightness of the target explosion-proof lamp. The initial brightness is the brightness value obtained after the environmental brightness and personnel behavior state adjustment in the previous step. The second preset value is a fixed reduction value set according to the energy saving demand and the lighting standard, to ensure that the explosion-proof lamp can still provide sufficient basic illumination in the night time period but not waste power. For example, suppose the initial brightness is 400 lumens, and the second preset value is 100 lumens. Specifically, when the system determines that the current time is in the night time period, the initial brightness is reduced by the second preset value. The system will reduce the initial brightness of 400 lumens by 100 lumens, and obtain the target brightness of the target explosion-proof lamp as 300 lumens.
[0078] S33, if the current time is not in the night time period, the initial brightness is taken as the target brightness of the target explosion-proof lamp.
[0079] It should be noted that when there is no personnel in the illumination range of the target explosion-proof lamp, the initial brightness of the target explosion-proof lamp is adjusted to the corresponding energy-saving brightness according to the area type of the area to which the target explosion-proof lamp belongs.
[0080] Specifically, if it is detected that there is no personnel in the illumination range of the target explosion-proof lamp. In this case, in order to avoid unnecessary power consumption, the initial brightness of the target explosion-proof lamp is adjusted to the energy-saving brightness. The energy-saving brightness is a fixed brightness value pre-set according to the area type of the area to which the target explosion-proof lamp belongs, to ensure that in the no-person state, sufficient basic illumination can still be provided to deal with unexpected situations, while maximizing energy saving.
[0081] The energy-saving brightness of different areas can be different. For example, the energy-saving brightness of a passageway area can be set to 100 lumens, and the energy-saving brightness of a working area can be set to 150 lumens to ensure that sufficient light is still provided in an emergency. Specifically, first, the category of the area to which the target explosion-proof lamp belongs is determined. For example, assume that the target explosion-proof lamp is located in a passageway area. According to the energy-saving brightness standard of the passageway area, the initial brightness of the target explosion-proof lamp is adjusted to 100 lumens. This energy-saving brightness value is the minimum brightness requirement for the passageway area in an unattended state to ensure safety.
[0082] In S104, the brightness of the explosion-proof lamp adjacent to the target explosion-proof lamp is obtained, the target brightness is adjusted according to the brightness of the adjacent explosion-proof lamp, and the final brightness of the target explosion-proof lamp is determined.
[0083] In an example, the brightness information of the explosion-proof lamp adjacent to the target explosion-proof lamp is obtained through the interconnection and intercommunication of the explosion-proof lamp nodes in the system. Each explosion-proof lamp node records and feeds back its current brightness value in real time. These data are transmitted to the gateway through the LoRa network, and then transmitted to the network server after being aggregated by the gateway. The network server processes these brightness data and transmits the brightness information of the adjacent explosion-proof lamp to the control module of the target explosion-proof lamp.
[0084] Then, the target brightness of the target explosion-proof lamp is compared with the brightness of the adjacent explosion-proof lamp. If it is found that the brightness of the adjacent explosion-proof lamp is higher than the target brightness of the target explosion-proof lamp, the system automatically adjusts the brightness of the target explosion-proof lamp to reduce the brightness difference and avoid uneven light and dark. For example, if the target brightness of the target explosion-proof lamp is set to 300 lumens and the brightness of the adjacent explosion-proof lamp is 400 lumens, the brightness of the target explosion-proof lamp is appropriately increased, which can be adjusted to 350 lumens to achieve a more uniform lighting effect.
[0085] On the basis of the above embodiment, as an optional implementation, in S104, the target brightness is adjusted according to the brightness of the adjacent explosion-proof lamp, and the final brightness of the target explosion-proof lamp specifically includes the following steps:
[0086] In S40, the average value of the brightness of the adjacent explosion-proof lamp is obtained.
[0087] In an example, the current brightness of each explosion-proof lamp can be monitored in real time through the brightness sensor installed in the mine. The brightness sensor can accurately capture the actual luminous intensity of each explosion-proof lamp and transmit these data to the control center of the system. The system collects the brightness data of the target explosion-proof lamp and its adjacent explosion-proof lamps.
[0088] The definition of the target explosion-proof lamp and the adjacent explosion-proof lamps is based on their physical location and lighting coverage. For example, assuming there are four adjacent explosion-proof lamps around the target explosion-proof lamp, the brightness data of these four adjacent explosion-proof lamps is obtained.
[0089] Specifically, first, the brightness values of the adjacent explosion-proof lamps of the target explosion-proof lamp are obtained. For example, assuming the brightness of the four adjacent explosion-proof lamps is 250 lumens, 260 lumens, 255 lumens, and 245 lumens, respectively. These four brightness values are added up and the average value is calculated.
[0090] By calculating the brightness average value of the adjacent explosion-proof lamps, a comprehensive evaluation of the light intensity around the target explosion-proof lamp is obtained. This brightness average value can be used as a reference for adjusting the brightness of the target explosion-proof lamp to ensure uniform light intensity throughout the area and avoid overly bright or dark areas, thereby improving the safety and comfort of the working environment.
[0091] S41, the difference between the target brightness and the brightness average value is calculated.
[0092] S42, if the difference exceeds the preset threshold, the target brightness is adjusted so that the difference between the target brightness and the brightness average value is within the preset threshold range, and the adjusted target brightness is used as the final brightness of the target explosion-proof lamp.
[0093] In one example, the brightness average value of the adjacent explosion-proof lamps obtained in the previous step S40 is compared with the current brightness of the target explosion-proof lamp. Assuming the brightness average value of the adjacent explosion-proof lamps is 252.5 lumens and the current brightness of the target explosion-proof lamp is 300 lumens.
[0094] A preset threshold is set to determine whether the brightness difference is within an acceptable range. Assuming the preset threshold is 20 lumens. This means that if the difference between the brightness of the target explosion-proof lamp and the brightness average value of the adjacent explosion-proof lamps exceeds 20 lumens, adjustment is needed. Specifically, first, calculate the difference between the current brightness of the target explosion-proof lamp and the brightness average value: 47.5 lumens, which exceeds the preset threshold of 20 lumens, and adjust the brightness of the target explosion-proof lamp. The goal of the adjustment is to make the difference between the brightness of the target explosion-proof lamp and the brightness average value within the preset threshold range.
[0095] The adjustment method can be to reduce the brightness of the target explosion-proof lamp to a value closer to the brightness average value. For example, adjust the brightness of the target explosion-proof lamp to the brightness average value plus or minus a value within the preset threshold range. To simplify the calculation, the brightness of the target explosion-proof lamp can be directly adjusted to the brightness average value plus half of the preset threshold. Through this adjustment, the difference between the brightness of the target explosion-proof lamp and the brightness average value of the adjacent explosion-proof lamps becomes 10 lumens (262.5 lumens - 252.5 lumens), which is within the preset threshold range.
[0096] S43, if the difference does not exceed the preset threshold, the target brightness is taken as the final brightness of the target explosion-proof lamp.
[0097] S105, adjusting the brightness of the target explosion-proof lamp to the final brightness.
[0098] In one example, the final brightness instruction is sent to the target explosion-proof lamp node through the LoRa network. The low power consumption and long distance transmission characteristics of the LoRa network ensure that the instruction can be reliably communicated to the target explosion-proof lamp, and stable communication can be maintained even in complex mine environments.
[0099] After the target explosion-proof lamp node receives the instruction, it adjusts the brightness of the light through its internal control module. The control module adjusts the output power of the LED driving circuit according to the received final brightness instruction, thereby accurately controlling the brightness of the light. For example, if the final brightness is set to 350 lumens, the control module will adjust the current and voltage parameters to make the LED lamp group emit light of the corresponding brightness.
[0100] After adjusting the brightness of the target explosion-proof lamp to the final brightness, it further includes: obtaining the real-time brightness of the target explosion-proof lamp; judging whether the brightness difference between the real-time brightness and the final brightness is within a preset error range; if the brightness difference is within the preset error range, maintaining the current brightness of the target explosion-proof lamp unchanged; if the brightness difference exceeds the preset error range, adjusting the brightness of the target explosion-proof lamp until the brightness difference between the real-time brightness and the final brightness is within the preset error range.
[0101] In one example, the actual brightness data of the target explosion-proof lamp is obtained in real time through the brightness sensor installed on the lamp. Assuming that the final brightness has been adjusted to a certain set value, the real-time brightness of the target explosion-proof lamp is read periodically or continuously. For example, the currently obtained real-time brightness is a certain value. A preset error range is set to judge whether the difference between the real-time brightness and the final brightness is within an acceptable range. Assuming that the error range is a certain range of lumens. This means that if the difference between the real-time brightness and the final brightness is within this range, the brightness setting is considered appropriate.
[0102] Specifically, the difference between the real-time brightness of the target explosion-proof lamp and the final brightness is calculated. If the calculated brightness difference is within the preset error range, the current brightness of the target explosion-proof lamp is maintained unchanged. This indicates that the actual brightness of the target explosion-proof lamp has approached the expected value and can provide the expected lighting effect, thereby avoiding the increase of energy consumption and equipment wear caused by frequent adjustment.
[0103] If the difference between the real-time brightness and the final brightness exceeds the preset error range, further adjustment of the brightness of the target explosion-proof lamp is needed. For example, the next acquired real-time brightness may exceed the preset error range. At this time, the system will automatically adjust the brightness of the target explosion-proof lamp by gradually adjusting the brightness value until the difference between the real-time brightness and the final brightness is within the preset error range.
[0104] Based on the above method, the application further discloses an explosion-proof lamp control device, as shown in Figure 3 Figure 3 is a structural schematic diagram of a refrigeration cabinet energy consumption adjusting device provided by an embodiment of the application.
[0105] An explosion-proof lamp control device comprises an acquisition module, a determination module, a first adjusting module, a second adjusting module and an output module. The first acquisition module is configured to acquire environmental information of a target explosion-proof lamp in a mine and a region type of a region to which the target explosion-proof lamp belongs. The mine comprises a plurality of regions, and each region comprises a plurality of explosion-proof lamps. The determination module is configured to determine an initial brightness of the target explosion-proof lamp in combination with the environmental information and the region type. The first adjusting module is configured to acquire a personnel behavior state in a lighting range of the target explosion-proof lamp, and adjust the initial brightness according to the personnel behavior state to obtain a target brightness of the target explosion-proof lamp. The second adjusting module is configured to acquire brightness of an explosion-proof lamp adjacent to the target explosion-proof lamp, and adjust the target brightness according to the brightness of the adjacent explosion-proof lamp to determine a final brightness of the target explosion-proof lamp. The output module is configured to adjust the brightness of the target explosion-proof lamp to the final brightness.
[0106] In one example, the determination module is further configured to acquire a brightness level corresponding to the region type of the region to which the target explosion-proof lamp belongs, and determine a first brightness of the target explosion-proof lamp according to the brightness level, wherein different regions correspond to different brightness levels. The determination module is further configured to acquire an environmental brightness of the target explosion-proof lamp in the environmental information, and adjust the first brightness according to the environmental brightness to obtain the initial brightness of the target explosion-proof lamp.
[0107] In one example, the determination module is further configured to compare the environmental brightness with a preset brightness threshold. When the environmental brightness is lower than the preset brightness threshold, the first brightness is increased by a preset brightness increment to obtain the initial brightness of the target explosion-proof lamp. When the environmental brightness is not lower than the preset brightness threshold, the first brightness is decreased by a preset brightness decrement to obtain the initial brightness of the target explosion-proof lamp.
[0108] In one example, the first adjusting module is further configured to increase the initial brightness by a first preset value to obtain the target brightness of the target explosion-proof lamp when the personnel behavior state is the moving state; when the personnel behavior state is the static state, determine whether the current time is a night period; if the current time is the night period, decrease the initial brightness by a second preset value to obtain the target brightness of the target explosion-proof lamp; if the current time is not the night period, take the initial brightness as the target brightness of the target explosion-proof lamp.
[0109] In one example, the apparatus is further configured to, when there is no personnel in the illumination range of the target explosion-proof lamp, adjust the initial brightness of the target explosion-proof lamp to a corresponding energy-saving brightness according to the area type of the area to which the target explosion-proof lamp belongs.
[0110] In one example, the second adjusting module is further configured to obtain an average value of brightness of adjacent explosion-proof lamps; calculate a difference between the target brightness and the average value of brightness; if the difference exceeds a preset threshold, adjust the target brightness so that the difference between the target brightness and the average value of brightness is within the preset threshold range, and take the adjusted target brightness as the final brightness of the target explosion-proof lamp; if the difference does not exceed the preset threshold, take the target brightness as the final brightness of the target explosion-proof lamp.
[0111] In one example, the apparatus is further configured to obtain a real-time brightness of the target explosion-proof lamp; determine whether a brightness difference between the real-time brightness and the final brightness is within a preset error range; if the brightness difference is within the preset error range, maintain the current brightness of the target explosion-proof lamp unchanged; if the brightness difference exceeds the preset error range, adjust the brightness of the target explosion-proof lamp until the brightness difference between the real-time brightness and the final brightness is within the preset error range.
[0112] It should be noted that: the apparatus provided in the above examples is only exemplified by the division of the above functional modules in realizing its functions, and in actual application, the above functions can be completed by different functional modules according to needs, that is, the internal structure of the device is divided into different functional modules to complete all or part of the above described functions. In addition, the apparatus and method embodiments provided in the above examples belong to the same concept, and the specific implementation process is detailed in the method embodiments, which will not be described here.
[0113] Please refer to Figure 4 , the embodiment of the present application provides a structural schematic diagram of an electronic device. As shown in Figure 4 , the electronic device 1000 can include at least one processor 1001, at least one network interface 1004, a user interface 1003, a memory 1005, and at least one communication bus 1002.
[0114] The communication bus 1002 is used to realize the connection and communication between the components.
[0115] The user interface 1003 can include a display screen and a camera. Optionally, the user interface 1003 can further include a standard wired interface and a wireless interface.
[0116] The network interface 1004 can include a standard wired interface and a wireless interface (e.g., a WI-FI interface). Optionally, the network interface 1004 can further include a WI-FI interface.
[0117] The processor 1001 can include one or more processing cores. The processor 1001 connects various parts of the server through various interfaces and lines, executes various functions of the server and processes data by running or executing instructions, programs, code sets or instruction sets stored in the memory 1005 and calling data stored in the memory 1005. Optionally, the processor 1001 can be implemented in at least one of a digital signal processing (DSP), a field-programmable gate array (FPGA), and a programmable logic array (PLA). The processor 1001 can be integrated with a combination of one or more of a central processing unit (CPU), a graphics processing unit (GPU), and a modem. The CPU is mainly used to process an operating system, a user interface, and an application program. The GPU is used to render and draw the content to be displayed on the display screen. The modem is used to process wireless communication. It can be understood that the above-mentioned modem can also not be integrated into the processor 1001, but can be implemented by a separate chip.
[0118] The memory 1005 can include a Random Access Memory (RAM) and can also include a Read-Only Memory (ROM). Optionally, the memory 1005 includes a non-transitory computer-readable storage medium. The memory 1005 can be used to store instructions, programs, codes, code sets, or instruction sets. The memory 1005 can include a program storage area and a data storage area, where the program storage area can store instructions for implementing an operating system, instructions for at least one function (such as a touch function, a sound playing function, an image playing function, etc.), instructions for implementing the various method embodiments described above, etc.; the data storage area can store data involved in the various method embodiments described above, etc. The memory 1005 can also optionally be at least one storage device located away from the aforementioned processor 1001. As shown in Figure 4 The memory 1005, as a computer storage medium, can include an operating system, a network communication module, a user interface module, and an application program of the explosion-proof lamp control method.
[0119] In the electronic device 1000 shown in Figure 4 In the electronic device 1000 shown in, the user interface 1003 is mainly used to provide an interface for user input and obtain data input by the user; and the processor 1001 can be used to call the application program of the explosion-proof lamp control method stored in the memory 1005, and when executed by one or more processors, make the electronic device execute the method described in one or more of the above embodiments.
[0120] An electronic device readable storage medium stores instructions. When executed by one or more processors, the electronic device performs the method described in one or more of the above embodiments.
[0121] It should be noted that, for the above-mentioned method embodiments, in order to simply describe, they are all expressed as a series of action combinations, but those skilled in the art should know that the application is not limited by the described action sequence, because according to the application, certain steps can be performed in other order or simultaneously. Secondly, those skilled in the art should know that the embodiments described in the specification all belong to preferred embodiments, and the actions and modules involved are not necessarily necessary for the application.
[0122] In the above embodiments, the description of each embodiment has its own emphasis, and the parts not described in detail in a certain embodiment can be referred to the relevant description of other embodiments.
[0123] In several embodiments provided in the present application, it should be understood that the disclosed apparatus can be implemented in other manners. For example, the division of the apparatus embodiments described above is merely a logical division, and there can be other division manners in actual implementation. For example, a plurality of units or components can be combined or integrated into another system, or some features can be ignored or not executed. In addition, the displayed or discussed mutual couplings or direct couplings or communication connections between different units, can be indirect couplings or communication connections through some interfaces, devices or units, and can be in electrical, mechanical or other forms.
[0124] The units described as separate components may or may not be physically separate, and the components shown as units may or may not be physical units, i.e., they can be located in one place or distributed on a plurality of network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the embodiment.
[0125] In addition, the functional units in each embodiment of the present application can be integrated in one processing unit, or each unit can be physically present separately, or two or more units can be integrated in one unit. The integrated unit can be realized in the form of hardware or in the form of a software functional unit.
[0126] The integrated unit, if realized in the form of a software functional unit and sold or used as an independent product, can be stored in a computer readable memory. Based on this understanding, the technical solutions of the present application essentially or the part of the prior art that contributes to the technical solutions or the whole or part of the technical solutions can be embodied in the form of a software product, which is stored in a memory and includes a plurality of instructions for causing a computer device (which can be a personal computer, a server or a network device, etc.) to execute all or part of the steps of the method described in each embodiment of the present application. The aforementioned memory includes: U disk, mobile hard disk, magnetic disk or optical disk and various program code storage media.
[0127] The above is only exemplary embodiments of the present disclosure, which cannot limit the scope of the present disclosure. That is, any equivalent changes and modifications made in accordance with the teachings of the present disclosure are still within the scope of the present disclosure. Other embodiments of the present disclosure will be readily apparent to those skilled in the art upon considering the specification and practicing the present disclosure. The present application is intended to cover any variations, uses or adaptive changes of the present disclosure that follow the general principles of the present disclosure and include common knowledge or conventional techniques in the art not described in the present disclosure. The specification and examples are only considered as exemplary, and the scope and spirit of the present disclosure are defined by the claims.
Claims
1. A method of controlling an explosion-proof lamp, characterized by, The method comprises: acquiring environment information of a target explosion-proof lamp in a mine and a region type of a region to which the target explosion-proof lamp belongs, the mine comprising a plurality of regions, and each region comprising a plurality of explosion-proof lamps; determining an initial brightness of the target explosion-proof lamp in combination with the environment information and the region type; the determining of the initial brightness of the target explosion-proof lamp in combination with the environment information and the region type comprises: acquiring a brightness level corresponding to the region type of the region to which the target explosion-proof lamp belongs, and determining a first brightness of the target explosion-proof lamp according to the brightness level, wherein different regions correspond to different brightness levels; acquiring an environment brightness of the target explosion-proof lamp in the environment information, and adjusting the first brightness according to the environment brightness to obtain the initial brightness of the target explosion-proof lamp; the adjusting of the first brightness according to the environment brightness to obtain the initial brightness of the target explosion-proof lamp comprises: comparing the environment brightness with a preset brightness threshold; when the environment brightness is lower than the preset brightness threshold, the first brightness is increased by a preset brightness increment to obtain the initial brightness of the target explosion-proof lamp; and when the environment brightness is not lower than the preset brightness threshold, the first brightness is decreased by a preset brightness decrement to obtain the initial brightness of the target explosion-proof lamp; acquiring a personnel behavior state in a lighting range of the target explosion-proof lamp, and adjusting the initial brightness according to the personnel behavior state to obtain a target brightness of the target explosion-proof lamp; acquiring a brightness of an explosion-proof lamp adjacent to the target explosion-proof lamp, and adjusting the target brightness according to the brightness of the adjacent explosion-proof lamp to determine a final brightness of the target explosion-proof lamp, comprising: acquiring brightness information of the explosion-proof lamp adjacent to the target explosion-proof lamp, wherein the definition of the target explosion-proof lamp and the adjacent explosion-proof lamp is based on their physical positions and lighting coverage ranges, each explosion-proof lamp records and feeds back its current brightness value in real time, the brightness value is transmitted to a gateway through a LoRa network, and then the gateway aggregates the brightness value and transmits it to a network server, the network server processes the brightness data, and the brightness information of the adjacent explosion-proof lamp is transmitted to a control module of the target explosion-proof lamp; the target brightness of the target explosion-proof lamp is compared with the brightness of the adjacent explosion-proof lamp, and if the brightness of the adjacent explosion-proof lamp is higher than the target brightness of the target explosion-proof lamp, the brightness of the target explosion-proof lamp is adjusted to reduce the brightness difference; adjusting the brightness of the target explosion-proof lamp to the final brightness, wherein each explosion-proof lamp can be regarded as a node, each node is provided with a sensor, the sensor acquires environment information of a position where the target explosion-proof lamp is located in real time, the sensor includes but is not limited to a brightness sensor, a temperature sensor, a humidity sensor and a gas detection sensor; the node converts information collected by the sensor into an uplink data frame specified by a protocol, and then sends the uplink data frame to a gateway; the gateway receives the data, converts the data through a built-in server, and sends the data to a server; after the server receives the information, the server generates instruction information conforming to the structure of a downlink data frame, converts the instruction information through the built-in server, and then the gateway receives the data and converts the data before sending the data to the node, so that the node is self-adjusted.
2. The control method of an explosion-proof lamp according to claim 1, characterized by, The personnel behavior state includes a static state and a motion state, and the initial brightness is adjusted according to the personnel behavior state to obtain a target brightness of the target explosion-proof lamp, including: When the personnel behavior state is the motion state, the initial brightness is increased by a first preset value to obtain the target brightness of the target explosion-proof lamp; When the personnel behavior state is the static state, it is determined whether the current time is a night period; If the current time is the night period, the initial brightness is decreased by a second preset value to obtain the target brightness of the target explosion-proof lamp; If the current time is not the night period, the initial brightness is taken as the target brightness of the target explosion-proof lamp.
3. The control method of an explosion-proof lamp according to claim 1, wherein The method further includes: When the personnel does not exist in the illumination range of the target explosion-proof lamp, the initial brightness of the target explosion-proof lamp is adjusted to a corresponding energy-saving brightness according to the region type of the region to which the target explosion-proof lamp belongs.
4. The control method of an explosion-proof lamp according to claim 1, characterized by, The target brightness is adjusted according to the brightness of the adjacent explosion-proof lamp to determine the final brightness of the target explosion-proof lamp, including: An average value of the brightness of the adjacent explosion-proof lamp is obtained; A difference between the target brightness and the average value of the brightness is calculated; If the difference exceeds a preset threshold, the target brightness is adjusted so that the difference between the target brightness and the average value of the brightness is within the preset threshold range, and the adjusted target brightness is taken as the final brightness of the target explosion-proof lamp; If the difference does not exceed the preset threshold, the target brightness is taken as the final brightness of the target explosion-proof lamp.
5. The control method of an explosion-proof lamp according to claim 1, wherein After the brightness of the target explosion-proof lamp is adjusted to the final brightness, the method further includes: An real-time brightness of the target explosion-proof lamp is obtained; It is determined whether a brightness difference between the real-time brightness and the final brightness is within a preset error range; If the brightness difference is within the preset error range, the current brightness of the target explosion-proof lamp is maintained unchanged; If the brightness difference exceeds the preset error range, the brightness of the target explosion-proof lamp is adjusted until the brightness difference between the real-time brightness and the final brightness is within the preset error range.
6. An explosion-proof lamp control device characterized by comprising: The device includes an acquisition module, a determination module, a first adjustment module, a second adjustment module, and an output module, wherein: The acquisition module is configured to acquire environment information of a target explosion-proof lamp in a mine and a region type of a region to which the target explosion-proof lamp belongs, the mine includes a plurality of regions, and each region includes a plurality of explosion-proof lamps. The determination module is configured to determine the initial brightness of the target explosion-proof lamp in combination with the environment information and the region category; the determination of the initial brightness of the target explosion-proof lamp in combination with the environment information and the region category comprises: obtaining a brightness level corresponding to the region category of the region to which the target explosion-proof lamp belongs, and determining a first brightness of the target explosion-proof lamp according to the brightness level, wherein different regions correspond to different brightness levels; obtaining an environment brightness of the target explosion-proof lamp in the environment information, and adjusting the first brightness according to the environment brightness to obtain the initial brightness of the target explosion-proof lamp; the adjustment of the first brightness according to the environment brightness to obtain the initial brightness of the target explosion-proof lamp comprises: comparing the environment brightness with a preset brightness threshold; when the environment brightness is lower than the preset brightness threshold, the first brightness is increased by a preset brightness increment to obtain the initial brightness of the target explosion-proof lamp; when the environment brightness is not lower than the preset brightness threshold, the first brightness is decreased by a preset brightness decrement to obtain the initial brightness of the target explosion-proof lamp; The first adjustment module is configured to obtain a personnel behavior state in a lighting range of the target explosion-proof lamp, and adjust the initial brightness according to the personnel behavior state to obtain a target brightness of the target explosion-proof lamp; The second adjustment module is configured to obtain a brightness of an explosion-proof lamp adjacent to the target explosion-proof lamp, and adjust the target brightness according to the brightness of the adjacent explosion-proof lamp to determine a final brightness of the target explosion-proof lamp, which comprises: obtaining brightness information of the explosion-proof lamp adjacent to the target explosion-proof lamp, wherein the definition of the target explosion-proof lamp and the adjacent explosion-proof lamp is based on their physical positions and lighting coverage ranges, each explosion-proof lamp records and feeds back its current brightness value in real time, which is transmitted to a gateway through a LoRa network, and then transmitted to a network server after being summarized by the gateway, the network server processes these brightness data and transmits the brightness information of the adjacent explosion-proof lamp to the control module of the target explosion-proof lamp; the target brightness of the target explosion-proof lamp is compared with the brightness of the adjacent explosion-proof lamp, and if the brightness of the adjacent explosion-proof lamp is higher than the target brightness of the target explosion-proof lamp, the brightness of the target explosion-proof lamp is adjusted to reduce the brightness difference; The output module is configured to adjust the brightness of the target explosion-proof lamp to the final brightness, wherein each explosion-proof lamp can be regarded as a node, each node is provided with a sensor to obtain environment information of a position where the target explosion-proof lamp is located in real time, the sensor comprises but is not limited to a brightness sensor, a temperature sensor, a humidity sensor and a gas detection sensor; the node converts the information collected by the sensor into an uplink data frame specified by a protocol, and then sends the uplink data frame to a gateway, the gateway receives the data, performs protocol conversion through a built-in server, and sends the data to a server; after the server receives the information, the server generates instruction information conforming to the structure of a downlink data frame, then performs protocol conversion through the built-in server, and then the gateway receives the data and sends the data to the node after conversion, so that the node is self-adjusted.
7. An electronic device, comprising: An electronic device comprising a processor, a memory for storing instructions, a user interface and a network interface for communicating with other devices, the processor being configured to execute the instructions stored in the memory to cause the electronic device to perform the method of any one of claims 1-5.
8. A computer-readable storage medium, characterized in that, A computer program stored in a memory and loadable into the working memory of a digital computer, comprising software code portions arranged to make the computer execute the method of any one of claims 1-5 when said product is run on the computer.
Citation Information
Patent Citations
Lamp control system based on mode of starting light regionally
CN106061019A
Anti-explosion intelligent sensor
CN107906483A
Intelligent ceiling lamp control method and device, computer equipment and readable storage medium
CN115604891A
Intelligence explosion -proof lamp system based on NB -iot network
CN207884956U
Cited By
Control method of anti-explosion hand lamp
CN121940920A