An LED industrial lamp

By using electromagnetic wave absorbing materials and loop antennas in LED industrial lamps to detect electromagnetic interference, and combining with the light sensor module to monitor the changes in light intensity in real time, the problem of LED lamp flickering in an electromagnetic environment cannot be detected in time, realizing timely alarm and protection for abnormal flickering, protecting staff's eyesight.

CN119573001BActive Publication Date: 2025-08-01GUANGZHOU STARS ENERGY SAVING TECH CO LTD
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Patent Information

Application Number
CN202411934038.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2025-08-01
Estimated Expiration
2044-12-26

AI Technical Summary

Technical Problem

Existing LED industrial lights cannot be observed in time when they are slightly abnormally flickered, resulting in visual fatigue and vision problems for staff, especially when used in electromagnetic interference environments.

Method used

Electromagnetic wave absorbing materials and loop antennas are used to detect electromagnetic interference, combined with the optical sensor module to monitor the light intensity changes in real time, judge the flicker type through signal analysis and alarm in time, to prevent the impact of electromagnetic interference on LED lamp beads.

Benefits of technology

Effectively detect and reduce the impact of electromagnetic interference on LED lamp beads, improve the sensitivity to capture abnormal flicker, promptly alarm for easy maintenance, and protect staff's eyesight.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an LED industrial lamp, which relates to the technical field of industrial lamps and includes a lamp fixture assembly. The lamp fixture assembly includes a lamp base. For this LED industrial lamp, by using a fixed wire to install a loop antenna on the front of the lamp fixture assembly, when the electromagnetic waves generated during the operation of large equipment in the production workshop pass through the loop antenna, an electromotive force will be induced in the antenna. By detecting parameters such as the magnitude and frequency of this electromotive force, it is possible to determine whether there is electromagnetic interference and the intensity and frequency characteristics of the interference. Therefore, by placing the loop antenna near the front of the LED industrial lamp, the electromagnetic interference situation can be detected. Electromagnetic wave absorbing materials are laid inside both the two outer shells and the two side lamp covers. The electromagnetic wave absorbing material is selected as ferrite absorbing material, which can absorb electromagnetic waves within a certain frequency range and convert electromagnetic energy into other forms of energy such as heat energy, thereby reducing electromagnetic reflection and interference inside the lamp.
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Description

Technical Field

[0001] The present invention relates to the technical field of industrial lamps, and particularly to an LED industrial lamp. Background Art

[0002] In the field of industrial lighting, traditional lighting fixtures such as mercury lamps and sodium lamps have been widely used. However, these traditional fixtures have many problems. With the increasing environmental protection requirements and the urgency of energy-saving needs, traditional lighting lamps are gradually difficult to meet the needs of industrial development. In this case, LED lamps have been widely used.

[0003] In the prior art, as disclosed in Chinese Patent Publication No.: CN106122808B, an LED industrial lamp is disclosed, which includes a lamp body bracket, a lamp body connected to the lamp body bracket. The lamp body bracket includes a bracket tube and an adjustment bracket. A driving power supply device is installed in the bracket tube. The lamp body includes a tubular lamp shade, a radiator. The LED light source board is connected and fixed to the radiator to form a light source structure. The radiator is snap-fitted in the lamp shade, and the driving power supply device is snap-fitted in the bracket tube.

[0004] However, in the prior art, the LED industrial lamp will have abnormal functions after long-term use. The common one is that it will flicker. Especially in a workshop for industrial production where there are large equipment, the large equipment will generate a magnetic field during operation, which will affect the LED industrial lamp. However, slight flickering cannot be observed by the human eye. Although the human eye cannot directly observe the flickering, the workers in the workshop will constantly adjust the pupil size to adapt to the change of light under the slight flickering light for a long time. The muscles of the eyes will be overly tense, which is likely to cause visual fatigue and dryness. Especially for the personnel working in this environment for a long time, it will lead to the aggravation of vision problems.

[0005] Therefore, we propose an LED industrial lamp to solve the problems raised above. Summary of the Invention

[0006] The purpose of the present invention is to provide an LED industrial lamp to solve the problem that the current LED industrial lamp cannot be observed in time when there is slight abnormal flickering as mentioned in the above background art.

[0007] To achieve the above object, the present invention provides the following technical solution: An LED industrial lamp, comprising a lamp fixture assembly. The lamp fixture assembly includes a lamp base. The front surface and the rear surface of the lamp base are both fixedly connected with outer shells. Both sides of the lamp base are fixedly connected with side lamp covers. A detection component is fixedly connected between the outer surfaces of the two outer shells. Electromagnetic wave absorbing materials are laid on the inner walls of the two outer shells and the two side lamp covers. Absorbing coatings are applied to the outer surfaces of the two outer shells and the two side lamp covers. The detection component includes four mounting blocks. Every two of the four mounting blocks are grouped into one group. The two groups of mounting blocks are respectively fixedly connected to the outsides of the two outer shells. A fixed wire is fixedly connected to the outer surface of each mounting block. A loop antenna is arranged between the bottoms of the multiple fixed wires, and the loop antenna is used to detect electromagnetic interference around the LED industrial lamp.

[0008] Preferably, a jack is arranged inside one of the side lamp covers, and the jack is used to connect with an electric wire to achieve power-on. A switch is arranged inside the other side lamp cover, and the switch is used to turn on and off the LED industrial lamp.

[0009] Preferably, LED lamp beads are arranged at the bottom of the lamp base, and the LED lamp beads are used to achieve the lighting of the LED industrial lamp. Adjusting components are fixedly connected to both ends of the top of the lamp base close to each other, and the two adjusting components are symmetrically arranged.

[0010] Preferably, both of the two adjusting components include fixing blocks. Rotating holes are formed on the outer surfaces of the two fixing blocks. Screws are rotatably connected to the inner walls of the two rotating holes. Knobs are fixedly connected to one ends of the two screws. Tightening rings are threadedly connected to the other ends of the two screws. Connecting blocks are rotatably connected to the outsides of the other ends of the two screws. Gripping blocks are fixedly connected to one sides of the two connecting blocks.

[0011] Preferably, sliding blocks are fixedly connected to the other sides of the two connecting blocks. Activity areas are formed on the outer surfaces of the two fixing blocks. The two sliding blocks slide on the inner walls of the two activity areas respectively. A mounting rack is fixedly connected between the two sliding blocks relatively, and the mounting rack is used to complete the installation of the LED industrial lamp.

[0012] Preferably, pointers are fixedly connected to one ends of the two connecting blocks. Marking strips are fixedly connected to the outer surfaces of the two fixing blocks close to the bottom. The two pointers respectively match the positions of the two marking strips.

[0013] Preferably, it further includes: An LED industrial lamp system, which includes: a light sensor module, a signal conditioning module, a signal acquisition module, a data analysis and flicker detection module, a flicker type judgment module, a signal sending module, a signal receiving module, a control module and an alarm module.

[0014] Preferably, the optical sensor module is used to continuously monitor the light emission of the LED industrial lamp, convert the light intensity change into an electrical signal, and it is used to capture slight light intensity fluctuations. The signal conditioning module is used to condition the electrical signal output by the optical sensor module, and the signal acquisition module samples the conditioned signal at a fixed time interval.

[0015] Preferably, the data analysis and flicker detection module is used to analyze the collected digital optical signals in real time and judge the flicker phenomenon. The flicker type judgment module is used to judge whether the flicker is caused by normal manual turning on and off of the light or abnormal flicker. The signal sending module is used to send the abnormal signal to the signal receiving module, and the signal receiving module is used to receive the abnormal flicker signal from the signal sending module.

[0016] Preferably, the control module is used to control the alarm module to send out an alarm message according to the received abnormal flicker signal, and the alarm module pushes the alarm cylinder to the user's display interface through a network connection.

[0017] Compared with the prior art, the beneficial effects of the present invention are:

[0018] 1. When in use, the loop antenna is installed on the front of the lamp fixture assembly by using a fixed wire. When the electromagnetic wave generated by the operation of large equipment in the production workshop passes through the loop antenna, an electromotive force will be induced in the antenna. By detecting parameters such as the magnitude and frequency of this electromotive force, it is possible to judge whether there is electromagnetic interference and the intensity and frequency characteristics of the interference. Therefore, by placing the loop antenna near the front of the LED industrial lamp, the electromagnetic interference situation can be detected. Electromagnetic wave absorbing materials are laid inside both the two outer shells and the two side lamp covers. The electromagnetic wave absorbing material is selected as ferrite absorbing material, which can absorb electromagnetic waves within a certain frequency range and convert electromagnetic energy into other forms of energy such as heat energy, thereby reducing the electromagnetic reflection and interference inside the lamp. Electromagnetic wave absorbing treatment is also carried out on the outer surfaces of the two outer shells and the two side lamp covers, and an absorbing coating is applied on their surfaces, so that the electromagnetic wave can be absorbed and attenuated before reaching the LED lamp beads, thereby reducing the influence of electromagnetic interference on the LED lamp beads. Therefore, it can effectively prevent the magnetic field generated by large equipment in the workshop from causing abnormal flicker of the LED lamp beads.

[0019] 2. When in use, loosen the fastening ring, hold the gripping block and slide the slider inside the movable area. Then the two fixed blocks will drive the lamp holder to rotate synchronously. During rotation, the angle of rotation of the two fixed blocks can be determined to be the same by the position between the pointer and the marking strip, preventing tilting caused by different angles on both sides. After the angle adjustment, rotate the screw by means of the knob, making the connection between the screw and the fastening ring tight, so that the connecting block is clamped between the fastening ring and the knob, thus achieving positioning and adjusting the position to an angle where it will not be affected by electromagnetic interference.

[0020] 3. When in use, the light sensor module continuously monitors the light emission of the LED industrial lamp, converting the light intensity change into an electrical signal. The light sensor module has high sensitivity and can capture slight light intensity fluctuations, even detecting flickers that are difficult to perceive by the human eye, thereby improving the sensitivity of capturing abnormal flickers. The signal conditioning module further conditions the electrical signal output by the light sensor module to improve the signal quality. The signal acquisition module samples the conditioned signal at fixed time intervals, converting the analog signal into a digital signal for subsequent data analysis and processing. The data analysis and flicker detection module analyzes the collected digital light signals in real time to determine whether there is a flicker phenomenon. If there is a flicker phenomenon, the time interval of each flicker is recorded, and the average flicker frequency is calculated by counting the number of flickers and the total time within a certain period. According to the characteristics of the flicker, the flicker type judgment module determines whether the flicker is caused by normal manual turning on and off of the light or an abnormal flicker. When the flicker type judgment module determines it to be an abnormal flicker, the abnormal signal is sent to the signal receiving module by wireless communication through the signal sending module, and then transmitted to the control module. The control module controls the alarm module to send an alarm message according to the received abnormal flicker signal. The alarm module pushes the information of the abnormal flicker to the display interface of the staff in a network connection manner, enabling the staff to promptly learn about the abnormal flicker situation of the lamp and take corresponding measures for inspection or repair. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 is a first - perspective three - dimensional view of an LED industrial lamp of the present invention;

[0022] Figure 2 is a second - perspective three - dimensional view of an LED industrial lamp of the present invention;

[0023] Figure 3 is a third - perspective three - dimensional view of an LED industrial lamp of the present invention;

[0024] Figure 4 is a bottom - view three - dimensional view of the lamp fixture assembly part of an LED industrial lamp of the present invention;

[0025] Figure 5 The first - perspective three - dimensional view of the adjustment component part of an LED industrial lamp of the present invention;

[0026] Figure 6 The second - perspective three - dimensional view of the adjustment component part of an LED industrial lamp of the present invention;

[0027] Figure 7 The third - perspective three - dimensional view of the adjustment component of an LED industrial lamp of the present invention;

[0028] Figure 8 The system diagram of an LED industrial lamp of the present invention.

[0029] In the figure:

[0030] 1. Lamp fixture assembly; 101. Housing; 102. Side lamp shade; 103. LED lamp beads; 104. Jack; 105. Switch; 106. Lamp socket; 2. Detection assembly; 201. Fixed wire; 202. Mounting block; 203. Ring antenna; 3. Adjustment assembly; 301. Fixed block; 302. Marking strip; 303. Pointer; 304. Grabbing block; 305. Slide block; 306. Connecting block; 307. Activity area; 308. Rotating hole; 309. Tightening ring; 310. Screw rod; 311. Knob; 312. Mounting frame; 4. Light sensor module; 5. Signal conditioning module; 6. Signal acquisition module; 7. Data analysis and flicker detection module; 8. Flicker type judgment module; 9. Signal sending module; 10. Signal receiving module; 11. Control module; 12. Alarm module. Detailed implementation manners

[0031] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0032] Embodiment 1: Refer to Figures 1-8As shown in the figure, the present invention provides a technical solution: an LED industrial lamp, including a lamp fixture assembly 1. The lamp fixture assembly 1 includes a lamp base 106. Outer shells 101 are fixedly connected to both the front surface and the rear surface of the lamp base 106. Side lamp covers 102 are fixedly connected to both sides of the lamp base 106. A detection assembly 2 is fixedly connected between the outer surfaces of the two outer shells 101. Electromagnetic wave absorbing materials are laid on the inner walls of the two outer shells 101 and the two side lamp covers 102. Absorbing coatings are coated on the outer surfaces of the two outer shells 101 and the two side lamp covers 102. The detection assembly 2 includes four mounting blocks 202. Every two of the four mounting blocks 202 are grouped into one group. The two groups of mounting blocks 202 are respectively fixedly connected to the outsides of the two outer shells 101. A fixed wire 201 is fixedly connected to the outer surface of each mounting block 202. A loop antenna 203 is arranged between the bottoms of the multiple fixed wires 201, and the loop antenna 203 is used to detect electromagnetic interference around the LED industrial lamp. A jack 104 is arranged inside one of the side lamp covers 102, and the jack 104 is used to be connected to an electric wire to achieve power-on. A switch 105 is arranged inside the other side lamp cover 102, and the switch 105 is used to turn on and off the LED industrial lamp. An LED lamp bead 103 is arranged at the bottom of the lamp base 106, and the LED lamp bead 103 is used to achieve the lighting of the LED industrial lamp. Adjusting assemblies 3 are fixedly connected to both ends of the top of the lamp base 106 near the two ends, and the two adjusting assemblies 3 are symmetrically arranged.

[0033] In this embodiment, during use, the loop antenna 203 is installed on the front of the lamp assembly 1 by using the fixing wire 201. There is a certain distance between the height of the loop antenna 203 and the LED lamp beads 103, and it will not affect the light emitted by the LED lamp beads 103. The loop antenna 203 is a common existing structure for detecting electromagnetic interference. It consists of a loop coil. When the electromagnetic wave generated during the operation of large equipment in the production workshop passes through the loop antenna 203, an electromotive force will be induced in the antenna. By detecting parameters such as the magnitude and frequency of this electromotive force, it is possible to determine whether there is electromagnetic interference and the intensity and frequency characteristics of the interference. Therefore, placing the loop antenna 203 near the front of the LED industrial lamp can detect the electromagnetic interference situation. When electromagnetic interference is detected in this direction, it is necessary to adjust the light-emitting direction of the LED lamp beads 103. Among them, the fixing wire 201 is rigid and will move the loop antenna 203 along with the rotation of the lamp assembly 1. In addition, the LED industrial lamp can be powered on through the jack 104, and the powered-on LED industrial lamp is turned on and off through the switch 105. Electromagnetic wave absorbing materials are laid inside both the two outer shells 101 and the two side lamp covers 102. The electromagnetic wave absorbing material is selected as ferrite absorbing material, which can absorb electromagnetic waves within a certain frequency range and convert electromagnetic energy into other forms of energy such as heat energy, thereby reducing electromagnetic reflection and interference inside the lamp. Electromagnetic wave absorbing treatment is also carried out on the outer surfaces of the two outer shells 101 and the two side lamp covers 102, and an absorbing coating is applied on their surfaces. In this way, the electromagnetic wave can be absorbed and attenuated before reaching the LED lamp beads 103, thereby reducing the influence of electromagnetic interference on the LED lamp beads 103. Therefore, it can effectively prevent the magnetic field generated by large workshop equipment from causing abnormal flickering of the LED lamp beads 103.

[0034] Embodiment Two: Figures 1-8 As shown in the figure, both of the two adjusting components 3 include fixing blocks 301. Rotation holes 308 are formed on the outer surfaces of the two fixing blocks 301. Screw rods 310 are rotatably connected to the inner walls of the two rotation holes 308. Knobs 311 are fixedly connected to one ends of the two screw rods 310. Tightening rings 309 are threadedly connected to the other ends of the two screw rods 310. Connecting blocks 306 are rotatably connected to the outer parts of the other ends of the two screw rods 310. Gripping blocks 304 are fixedly connected to one sides of the two connecting blocks 306. Sliders 305 are fixedly connected to the other sides of the two connecting blocks 306. Activity areas 307 are formed on the outer surfaces of the two fixing blocks 301. The two sliders 305 slide on the inner walls of the two activity areas 307 respectively. An installation frame 312 is fixedly connected between the two sliders 305 relatively, and the installation frame 312 is used to complete the installation of the LED industrial lamp. Pointer rods 303 are fixedly connected to one ends of the two connecting blocks 306. Marking strips 302 are fixedly connected to the outer surfaces of the two fixing blocks 301 near the bottom. The positions of the two pointer rods 303 match those of the two marking strips 302 respectively.

[0035] In this embodiment, during use, the lamp assembly 1 is installed on the roof of the production workshop through the mounting frame 312. When the loop antenna 203 detects electromagnetic interference, the angle of the entire lamp assembly 1 needs to be adjusted. During adjustment, loosen the fastening ring 309, hold the grasping block 304, and slide the slider 305 inside the movable area 307. Then, the two fixing blocks 301 will drive the lamp base 106 to rotate synchronously. During rotation, the angle of rotation of the two fixing blocks 301 can be determined to be the same by the position between the pointer 303 and the marking strip 302, without causing tilting due to different angles on both sides. After the angle adjustment, drive the screw 310 to rotate by means of the knob 311, so that the connection between the screw 310 and the fastening ring 309 is tightened, thereby clamping the connecting block 306 between the fastening ring 309 and the knob 311, and then positioning is performed to adjust the position to an angle where it will not be affected by electromagnetic interference.

[0036] Embodiment Three: Figures 1-8 As shown, it further includes: an LED industrial lamp system, which includes: a light sensor module 4, a signal conditioning module 5, a signal acquisition module 6, a data analysis and flicker detection module 7, a flicker type determination module 8, a signal transmission module 9, a signal reception module 10, a control module 11, and an alarm module 12. The light sensor module 4 is used to continuously monitor the light emission of the LED industrial lamp, convert the light intensity change into an electrical signal, and it is used to capture slight light intensity fluctuations. The signal conditioning module 5 is used to condition the electrical signal output by the light sensor module 4. The signal acquisition module 6 samples the conditioned signal at fixed time intervals. The data analysis and flicker detection module 7 is used to analyze the collected digital light signals in real time and judge the flicker phenomenon. The flicker type determination module 8 is used to determine whether the flicker is caused by normal manual turning on and off of the light or abnormal flicker. The signal transmission module 9 is used to send the abnormal signal to the signal reception module 10. The signal reception module 10 is used to receive the abnormal flicker signal from the signal transmission module 9. The control module 11 is used to control the alarm module 12 to send an alarm message according to the received abnormal flicker signal. The alarm module 12 pushes the alarm cylinder to the user's display interface through a network connection.

[0037] In this embodiment, during use, the system module is disposed inside the lamp holder 106. During the use of the LED industrial lamp, the light sensor module 4 continuously monitors the light emission of the LED industrial lamp, converts the light intensity change into an electrical signal. The light sensor module 4 has high sensitivity and can capture slight light intensity fluctuations, and can even detect the flicker that is difficult to be noticed by the human eye, thereby improving the sensitivity of capturing abnormal flicker. The signal conditioning module 5 further conditions the electrical signal output by the light sensor module 4, including amplifying, filtering, analog-to-digital conversion, etc. of the signal. The amplifying circuit is used to enhance the weak electrical signal output by the light sensor to make it reach the amplitude range required by the subsequent processing circuit. The filtering circuit removes the noise and interference components in the signal and improves the signal quality. At the same time, the signal acquisition module 6 samples the conditioned signal at a fixed time interval, converts the analog signal into a digital signal for subsequent data analysis and processing. The signal acquisition module 6 also acquires the signal directly output by the light sensor module 4. Then, the data analysis and flicker detection module 7 analyzes the acquired digital light signal in real time to determine whether there is a flicker phenomenon. If there is a flicker phenomenon, the time interval of each flicker is recorded, and the average flicker frequency is calculated by counting the number of flickers and the total time within a certain period. According to the characteristics of the flicker, the flicker type judgment module 8 judges whether the flicker is caused by normal manual turning on and off of the lamp or abnormal flicker. When the flicker type judgment module 8 determines it as abnormal flicker, the abnormal signal is sent to the signal receiving module 10 in a wireless communication manner through the signal sending module 9. After receiving the abnormal flicker signal, the signal receiving module 10 transmits it to the control module 11. The control module 11 controls the alarm module 12 to send an alarm message according to the received abnormal flicker signal, and the alarm module 12 pushes the information of the abnormal flicker to the display interface of the staff in a network connection manner, so that the staff can timely know the abnormal flicker situation of the lamp and take corresponding measures for inspection or repair.

[0038] Usage method and working principle of this device: When in use, the loop antenna 203 is installed on the front of the lamp assembly 1 by using the fixing wire 201. There is a certain distance between the height of the loop antenna 203 and the LED lamp beads 103, and it will not affect the light emitted by the LED lamp beads 103. The loop antenna 203 is a common existing structure for detecting electromagnetic interference. It consists of a loop coil. When the electromagnetic wave generated during the operation of large equipment in the production workshop passes through the loop antenna 203, an electromotive force will be induced in the antenna. By detecting parameters such as the magnitude and frequency of this electromotive force, it is possible to determine whether there is electromagnetic interference and the intensity and frequency characteristics of the interference. When electromagnetic interference is detected in this direction, it is necessary to adjust the light-emitting direction of the LED lamp beads 103. Among them, the fixing wire 201 is rigid and will drive the loop antenna 203 to move along with the rotation of the lamp assembly 1. In addition, the LED industrial lamp can be powered on through the jack 104, and the powered-on LED industrial lamp is turned on and off through the switch 105. Electromagnetic wave absorbing materials are laid inside both the two outer shells 101 and the two side lamp covers 102. The electromagnetic wave absorbing material is selected as ferrite absorbing material, which can absorb electromagnetic waves within a certain frequency range and convert electromagnetic energy into other forms of energy such as heat energy, thereby reducing electromagnetic reflection and interference inside the lamp. The outer surfaces of the two outer shells 101 and the two side lamp covers 102 are also subjected to electromagnetic wave absorption treatment, and an absorbing coating is applied on their surfaces, so that the electromagnetic wave can be absorbed and attenuated before reaching the LED lamp beads 103. When in use, the lamp assembly 1 is installed on the roof of the production workshop through the mounting bracket 312. When the loop antenna 203 detects electromagnetic interference, it is necessary to adjust the overall angle of the lamp assembly 1. When adjusting, loosen the fastening ring 309, hold the grasping block 304 and make the slider 305 slide inside the movable area 307. Then the two fixing blocks 301 will drive the lamp holder 106 to rotate synchronously. When rotating, through the position between the pointer 303 and the marking strip 302, it can be determined that the angles of the two fixing blocks 301 during rotation are the same, and the situation of tilting caused by different angles on both sides will not occur. After the angle adjustment, drive the screw 310 to rotate by means of the knob 311, so that the connection between the screw 310 and the fastening ring 309 is tightened, and thus the connecting block 306 is clamped between the fastening ring 309 and the knob 311, and then positioning is carried out, and the position is adjusted to an angle that will not be affected by electromagnetic interference. When in use, the system module is arranged inside the lamp holder 106. During the use of the LED industrial lamp, the light-emitting situation of the LED industrial lamp is continuously monitored through the light sensor module 4, and the light intensity change is converted into an electrical signal. The light sensor module 4 has high sensitivity and can capture slight light intensity fluctuations. The signal conditioning module 5 further conditions the electrical signal output by the light sensor module 4, including amplifying, filtering, analog-to-digital conversion, etc. of the signal. The amplifying circuit is used to enhance the weak electrical signal output by the light sensor.To make it reach the amplitude range required by the subsequent processing circuit, the filtering circuit removes the noise and interference components in the signal to improve the signal quality. Meanwhile, the signal acquisition module 6 samples the conditioned signal at a fixed time interval to convert the analog signal into a digital signal for subsequent data analysis and processing. The signal acquisition module 6 also acquires the signal directly output by the optical sensor module 4. Then, the data analysis and flicker detection module 7 analyzes the acquired digital optical signal in real time to determine whether there is a flicker phenomenon. If there is a flicker phenomenon, the time interval of each flicker is recorded, and the average flicker frequency is calculated by counting the number of flickers and the total time within a certain period. According to the characteristics of the flicker, the flicker type judgment module 8 determines whether the flicker is caused by normal manual turning on and off of the light or abnormal flicker. When the flicker type judgment module 8 determines it as abnormal flicker, the abnormal signal is sent to the signal receiving module 10 in a wireless communication manner through the signal sending module 9. After receiving the abnormal flicker signal, the signal receiving module 10 transmits it to the control module 11. The control module 11 controls the alarm module 12 to send out an alarm message according to the received abnormal flicker signal.,

[0039] The wiring diagram of the loop antenna 203 in the present invention belongs to the common general knowledge in the art, and its working principle is already a known technology. Its model is selected according to actual use, so the control method and wiring layout of the loop antenna 203 will not be explained in detail anymore.

[0040] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. An LED industrial lamp, comprising a lamp fixture assembly (1), the lamp fixture assembly (1) includes a lamp base (106), the front surface and the rear surface of the lamp base (106) are fixedly connected with outer shells (101), both sides of the lamp base (106) are fixedly connected with side lamp covers (102), and a detection assembly (2) is fixedly connected between the outer surfaces of the two outer shells (101), characterized in that: The inner walls of the two outer shells (101) and the two side lamp covers (102) are both coated with electromagnetic wave absorbing materials, and the outer surfaces of the two outer shells (101) and the two side lamp covers (102) are both coated with wave absorbing coatings. The detection component (2) includes four mounting blocks (202). Every two of the four mounting blocks (202) are grouped into one group. The two groups of mounting blocks (202) are respectively fixedly connected to the outsides of the two outer shells (101). A fixed wire (201) is fixedly connected to the outer surface of each mounting block (202). An annular antenna (203) is arranged between the bottoms of the multiple fixed wires (201), and the annular antenna (203) is used to detect electromagnetic interference around the LED industrial lamp.

2. The LED industrial lamp according to claim 1, wherein: A jack (104) is arranged inside one of the side lamp covers (102), and the jack (104) is used to be connected to an electric wire to achieve power-on. A switch (105) is arranged inside the other side lamp cover (102), and the switch (105) is used to turn on and off the LED industrial lamp.

3. The LED industrial lamp according to claim 2, wherein: An LED lamp bead (103) is arranged at the bottom of the lamp socket (106), and the LED lamp bead (103) is used to achieve the illumination of the LED industrial lamp. Adjusting components (3) are fixedly connected to both ends of the top of the lamp socket (106) close to the two ends. The two adjusting components (3) are symmetrically arranged.

4. The LED industrial lamp according to claim 3, characterized in that: Each of the two adjusting components (3) includes a fixed block (301). A rotating hole (308) is formed in the outer surface of each of the two fixed blocks (301). A screw rod (310) is rotatably connected to the inner wall of each of the two rotating holes (308). A knob (311) is fixedly connected to one end of each of the two screw rods (310). A fastening ring (309) is threadedly connected to the other end of each of the two screw rods (310). A connecting block (306) is rotatably connected to the outside of the other end of each of the two screw rods (310). A gripping block (304) is fixedly connected to one side of each of the two connecting blocks (306).

5. The LED industrial lamp according to claim 4, wherein: A sliding block (305) is fixedly connected to the other side of each of the two connecting blocks (306). An activity area (307) is formed in the outer surface of each of the two fixed blocks (301). The two sliding blocks (305) slide in the inner walls of the two activity areas (307) respectively. An installation frame (312) is fixedly connected between the two sliding blocks (305) relatively, and the installation frame (312) is used to complete the installation of the LED industrial lamp.

6. The LED industrial lamp according to claim 5, characterized in that: A pointer (303) is fixedly connected to one end of each of the two connecting blocks (306). A marking strip (302) is fixedly connected to the outer surface of each of the two fixed blocks (301) close to the bottom. The two pointers (303) respectively match the positions of the two marking strips (302).

7. The LED industrial lamp according to claim 6, wherein: Further included: An LED industrial lamp system, which includes: a light sensor module (4), a signal conditioning module (5), a signal acquisition module (6), a data analysis and flicker detection module (7), a flicker type judgment module (8), a signal sending module (9), a signal receiving module (10), a control module (11), and an alarm module (12).

8. The LED industrial lamp according to claim 7, wherein: The light sensor module (4) is used to continuously monitor the light emission of the LED industrial lamp, convert the light intensity change into an electrical signal, and it is used to capture slight light intensity fluctuations. The signal conditioning module (5) is used to condition the electrical signal output by the light sensor module (4). The signal acquisition module (6) samples the conditioned signal at fixed time intervals.

9. The LED industrial lamp according to claim 8, wherein: The data analysis and flicker detection module (7) is used to analyze the collected digital light signals in real time and judge the flicker phenomenon. The flicker type judgment module (8) is used to judge whether the flicker is caused by normal manual turning on and off of the light or abnormal flicker. The signal sending module (9) is used to send the abnormal signal to the signal receiving module (10), and the signal receiving module (10) is used to receive the abnormal flicker signal from the signal sending module (9).

10. The LED industrial lamp according to claim 9, wherein: The control module (11) is used to control the alarm module (12) to send out an alarm message according to the received abnormal flicker signal, and the alarm module (12) pushes the alarm to the user's display interface through a network connection.

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