Corridor illuminating lamp and control system thereof
The corridor lighting with split structure and sensor monitoring solves the problems of delayed maintenance and aging equipment in traditional corridor lighting systems, achieves rapid response and efficient maintenance, and reduces maintenance costs.
Patent Information
- Application Number
- CN202511066355.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-31
- Publication Date
- 2025-09-05
AI Technical Summary
Traditional corridor lighting systems suffer from delayed maintenance, with frequent lamp starts and stops leading to component wear and tear, inability to monitor brightness attenuation, high maintenance costs, long fault response cycles, and inability to replace lamps in a timely manner, resulting in equipment aging and increased energy consumption.
The corridor lighting adopts a split structure, uses magnetic fixation and telescopic tube design, combines sensors to monitor the status of the bulb, and quick-connect components to achieve rapid connection of wires. The control system collects and analyzes data, predicts the life of the bulb and outputs early warnings.
It simplifies the installation and maintenance process of lamps, shortens fault response time, improves maintenance efficiency, reduces maintenance costs, and ensures lighting effects and equipment life.
Smart Images

Figure CN120593232A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of corridor lighting, and in particular to a corridor lighting lamp and a control system thereof. Background Art
[0002] The traditional corridor lighting system operation and maintenance model is lagging behind. Limited by passive maintenance mechanisms, current lighting facilities generally adopt a hybrid "constant on + sensor-triggered" operation mode. Due to the characteristics of corridor working environments, the frequent start-up and shutdown of lamps is particularly problematic in high-frequency usage scenarios. Industry research data shows that traditional operation and maintenance systems still rely on regular manual inspections and planned maintenance. This "after-the-fact" approach results in fault response cycles generally exceeding 24 hours. This is particularly true in older communities and commercial buildings, where lighting outages caused by insufficient inspection frequency are frequent, affecting both traffic safety and increasing maintenance costs.
[0003] Furthermore, current lamps are unable to monitor brightness degradation. When a lamp loses brightness due to long-term use, the system fails to automatically trigger an early warning mechanism, resulting in continued degradation of lighting quality despite continued operation. This "hidden fault" not only reduces visibility but also accelerates equipment aging due to continued inefficient operation, creating a vicious cycle of "decreased quality, increased energy consumption, and shortened lifespan."
[0004] Current corridor lighting typically uses ceiling-mounted downlights, which utilize spring-loaded clips and an integrated design. Installation requires expanding the clips and inserting them into pre-recorded holes in the ceiling. During repairs, the driver, light source module, and heat sink are inseparable. A single component failure requires complete replacement, leading to the premature destruction of numerous repairable parts. Summary of the Invention
[0005] An embodiment of the present invention provides a corridor lighting lamp and its control system, which adopts a split structure to reduce the waste caused by the maintenance of the corridor lighting lamp. At the same time, the status of the lighting lamp can be monitored, and abnormalities can be identified and replaced in time, thereby shortening the fault response time and effectively maintaining the corridor lighting effect.
[0006] A corridor lighting lamp, installed on the ceiling, comprising: The mounting terminal is mounted on the ceiling and has a first magnetic structure at the bottom thereof; A telescopic lamp tube has a connector at the top and a detachable magnetic soft light cover at the bottom. The magnetic soft light cover has a second magnetic attraction mechanism, and the second magnetic attraction mechanism and the first magnetic attraction mechanism are magnetically attracted to each other to fix the telescopic lamp tube to the ceiling. The connector is provided with a quick-connect component for connecting and fixing external wires, and a lamp holder is provided in the telescopic lamp tube, wherein the lamp holder is fixedly arranged at the bottom of the connector, and a light bulb is detachably connected to the lamp holder; The inner wall of the telescopic lamp tube is provided with at least one sensor for obtaining the brightness data of the bulb; A controller is provided in the connector and is in communication connection with the sensor, wherein the controller is in communication connection with the host computer.
[0007] Furthermore, the telescopic lamp tube includes a telescopic tube a, at the bottom of which a telescopic tube b is nested, wherein the top of the outer wall of the telescopic tube b and the bottom of the inner wall of the telescopic tube a are respectively provided with limiting rings that can interfere with each other, for limiting the range of movement of the telescopic tube b to prevent it from falling out from the bottom of the telescopic tube a.
[0008] Furthermore, a plurality of damping strips are provided on the outside of the telescopic cylinder a along its circumference, and the damping strips are in contact with the inner wall of the telescopic cylinder b.
[0009] Furthermore, the magnetic soft light cover includes a cover shell, wherein the cover shell is threadedly connected to the bottom of the telescopic cylinder b, and a circle of magnetic ring is provided on the outer wall of the cover shell, which constitutes a second magnetic attraction mechanism.
[0010] Furthermore, the mounting terminal includes a T-shaped threaded sleeve, which is arranged in a hole opened in the ceiling. The T-shaped threaded sleeve is threadedly connected with an adjusting nut and a magnetic threaded ring, wherein the magnetic threaded ring constitutes a first magnetic attraction mechanism, which is magnetically attracted to the magnetic ring.
[0011] Furthermore, the top of the connector is provided with a wiring hole, which is communicated with a cavity provided inside the connector, and the quick-connect component is provided in the cavity.
[0012] Furthermore, the quick-connect component includes a movable handle, which is restricted by the shape of the cavity and moves back and forth along the length direction of the cross-sectional shape of the cavity. It also includes two spring terminals arranged in the cavity, which can lock or release the wires after being squeezed by the movable handle. The spring terminals are electrically connected to the power terminal of the lamp holder.
[0013] Furthermore, the spring terminal includes a wire clamping box fixedly arranged in the cavity, a clamping block is provided inside the wire clamping box, a guide column is provided on the side of the clamping block away from the connecting handle, a spring is provided on the guide column, a connecting handle is provided on the side of the clamping block away from the spring, the connecting handle is connected to the movable handle, and corresponding plug-in wire holes are provided on the wire clamping box and the clamping block. By pressing the movable handle, the spring can be squeezed and compressed to align the two plug-in wire holes. When no pressing force is applied, the two plug-in wire holes are in a misaligned state.
[0014] Furthermore, an insulating layer is provided on the surface of the wire clamping box away from the plug-in wire hole area, and the connecting handle and the movable handle are made of insulating material.
[0015] An embodiment of the present invention provides a corridor lighting control system, comprising: A data acquisition unit is configured to acquire sensor signals uploaded by the controller; a state analysis unit configured to analyze the signal from the sensor and identify the state of the light bulb; a prediction unit configured to predict the remaining life of the light bulb according to the state of the light bulb; The management unit is configured to output warning information according to the status of the light bulb; and to manage the light bulb throughout its life cycle according to the status of the light bulb.
[0016] The beneficial effects of the above technical solutions provided by the embodiments of the present invention include at least: 1. When performing lighting maintenance, the corridor lamps can be directly removed from the ceiling due to the use of a magnetic fixing structure. Compared with the spring clips used in the existing technology, it is easier to remove the lamps and will not damage the holes on the edge of the ceiling.
[0017] 2. The installed sensors can be used to monitor the working status of the corridor lighting fixtures, including light attenuation monitoring and working status monitoring. When abnormalities are detected in the corridor lighting fixtures, abnormal situations can be identified in time. Compared with the manual inspection method, not only is the fault response time shorter, but the detection of corridor lighting fixtures is more comprehensive, which can effectively maintain the corridor lighting effect.
[0018] 3. The telescopic lamp tube structure is adopted, which can adapt to bulbs of various sizes, making it easier for maintenance personnel to repair damaged corridor lighting fixtures.
[0019] 4. The use of quick-connect components can achieve rapid disassembly and assembly of wire connectors, reducing the difficulty of connecting wire connectors for maintenance personnel and improving maintenance speed.
[0020] Other features and advantages of the present invention will be described in the following description, and in part will become apparent from the description, or will be understood by practicing the present invention. The purposes and other advantages of the present invention can be realized and obtained by the structures particularly pointed out in the written description, claims, and drawings.
[0021] The technical solution of the present invention is further described in detail below through the accompanying drawings and embodiments. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings: Figure 1 This is a schematic diagram of the structure of the corridor lighting disclosed in an embodiment of the present invention installed on the corridor ceiling; Figure 2 A schematic diagram of the structure of the corridor lighting disclosed in an embodiment of the present invention; Figure 3 A schematic diagram of the structure of the corridor lighting disclosed in an embodiment of the present invention (without the mounting terminals); Figure 4 for Figure 2 A schematic diagram of a partial front view cross-sectional structure; Figure 5 for Figure 2 A schematic diagram of a top-view cross-sectional structure; Figure 6 for Figure 5 Schematic diagram of the enlarged structure at A in the middle; Figure 7 The present invention discloses a communication block diagram of a corridor lighting control system.
[0023] Reference numerals: 1. Ceiling; 2. Telescopic lamp tube; 21. Telescopic tube a; 22. Telescopic tube b; 23. Damping strip; 3. Magnetic soft light cover; 31. Cover; 32. Magnetic ring; 4. Connector; 41. Wiring hole; 42. Cavity; 5. Quick-connect component; 51. Movable handle; 52. Spring terminal; 521. Connecting handle; 522. Wire box; 523. Card block; 524. Plug-in wiring hole; 525. Spring; 526. Guide column; 6. Lamp holder; 7. Bulb; 8. Sensor; 9. Controller; 10. Host computer; 11. Mounting terminal; 111. T-shaped threaded sleeve; 112. Adjusting nut; 113. Magnetic threaded ring; 12. Wires; 13. Data acquisition unit; 14. Status analysis unit; 15. Prediction unit; 16. Management unit. DETAILED DESCRIPTION
[0024] Exemplary embodiments of the present disclosure will be described in more detail below with reference to the accompanying drawings. Although exemplary embodiments of the present disclosure are shown in the accompanying drawings, it should be understood that the present disclosure can be implemented in various forms and should not be limited by the embodiments set forth herein. Rather, these embodiments are provided to enable a more thorough understanding of the present disclosure and to fully convey the scope of the present disclosure to those skilled in the art.
[0025] Generally speaking, the ceiling 1 in the corridor is a gypsum board used for suspended ceilings. In the prior art, when installing downlights for corridor lighting, a hole is opened in the gypsum board, and then the spring 525 buckle is broken open and inserted into the hole in the gypsum board. During this process, the spring 525 buckle will rub against the edge of the hole in the gypsum board, causing certain damage to the gypsum board. At the same time, when operating, both hands are required to operate at the same time, which results in a long time being required during the replacement and maintenance process.
[0026] Figure 1A schematic structural diagram of a corridor lighting lamp disclosed in an embodiment of the present invention is shown, in which the lamp is installed on a corridor ceiling 1 . It can be seen that the corridor lighting lamp proposed in the present invention is connected to the ceiling 1 by using a mounting terminal 11 .
[0027] like Figure 1 、 2 4, you can see the structure of the mounting terminal 11, which includes a T-shaped threaded sleeve 111, which is set in the hole opened in the ceiling 1. Specifically, during the installation process, the T-shaped threaded sleeve 111 is inserted into the hole opened in the ceiling 1 from top to bottom. At the same time, in order to adapt to different thicknesses of gypsum boards, the T-shaped threaded sleeve 111 is threadedly connected with an adjusting nut 112. The function of the adjusting nut 112 is as follows: Figure 1 As shown, the depth of the bottom of the T-shaped threaded sleeve 111 passing through the hole can be adjusted to adapt it to gypsum boards of various thicknesses, and the part passing through the hole is threadedly connected to a magnetic threaded ring 113.
[0028] After using the installation terminal 11, in addition to the need to drill a hole in the gypsum board in the early stage as in the prior art, during the installation process, it can be fixed directly by magnetic force, which not only reduces the installation steps but also simplifies the disassembly steps, effectively improving the work efficiency of maintenance personnel.
[0029] Figure 3 The figure shows a structural schematic diagram of the corridor lighting lamp disclosed in an embodiment of the present invention without the mounting terminal 11. It can be seen that the corridor lighting lamp is mainly a fixed structure formed by magnetically connecting the magnetic soft light cover 3 with the mounting terminal 11. The magnetic soft light cover 3 includes a cover shell 31, wherein the cover shell 31 is threadedly connected to the bottom of the telescopic cylinder b22, and the outer wall of the cover shell 31 is provided with a circle of magnetic ring 32, which constitutes a second magnetic attraction mechanism.
[0030] The magnetic threaded ring 113 forms a first magnetic attraction mechanism, and the magnetic threaded ring 113 and the magnetic ring 32 form a second magnetic attraction mechanism to attract each other magnetically.
[0031] Furthermore, since the magnetic soft light cover 3 and the telescopic lamp tube 2 are connected by threads, when replacing the light bulb 7, it is only necessary to unscrew the magnetic soft light cover 3 to replace the light bulb 7 inside, which is convenient for maintenance.
[0032] On the other hand, Figure 4 As shown, the telescopic lamp tube 2 includes a telescopic tube a21, and a telescopic tube b22 is nested at the bottom thereof, wherein the top of the outer wall of the telescopic tube b22 and the bottom of the inner wall of the telescopic tube a21 are respectively provided with limiting rings that can interfere with each other, for limiting the range of movement of the telescopic tube b22 to prevent it from falling out from the bottom of the telescopic tube a21, and the outside of the telescopic tube a21 is provided with a plurality of damping strips 23 along its circumference, and the damping strips 23 are connected in an interfering manner with the inner wall of the telescopic tube b22.
[0033] The damping strip 23 is made of rubber and is used to increase the damping between the telescopic tube b22 and the telescopic tube a21. The effect achieved is that after pulling the telescopic tube a21 or the telescopic tube b22 to change the length of the telescopic lamp tube 2, the length can be maintained by itself until the next adjustment.
[0034] The effect that can be achieved in this way is that light bulbs 7 of various specifications can be used without changing the structure of the magnetic soft light cover 3, which makes it easier for maintenance personnel to maintain damaged corridor lighting fixtures.
[0035] Figure 5 The top-down cross-sectional structure of the corridor lighting is shown. It can be seen that there is a wiring hole 41 at the top of the connector 4, which is connected to the cavity 42 set inside the connector 4, and the quick-connect component 5 is set in the cavity 42, wherein the quick-connect component 5 includes a movable handle 51, which is restricted by the shape of the cavity 42 and reciprocates along the length direction of the cross-sectional shape of the cavity 42. It also includes two spring terminals 52 set in the cavity 42, which can lock or release the wire 12 after being squeezed by the movable handle. The spring terminals 52 are electrically connected to the power terminal of the lamp holder 6, and an insulating layer is provided on the surface of the wire box 522 away from the plug-in hole 524. The connecting handle 521 and the movable handle 51 are made of insulating material, and the insulating layer and insulating material are both made of rubber including natural rubber, styrene-butadiene rubber, polybutadiene rubber, ethylene-propylene rubber, butyl rubber, etc.
[0036] The spring terminal 52 includes a wire clamping box 522 fixedly arranged in the cavity 42, a clamping block 523 is provided inside the wire clamping box 522, a guide column 526 is provided on the side of the clamping block 523 away from the connecting handle 521, a spring 525 is provided on the guide column 526, a connecting handle 521 is provided on the side of the clamping block 523 away from the spring 525, the connecting handle 521 is connected to the movable handle 51, and corresponding plug-in wire holes 524 are provided on the wire clamping box 522 and the clamping block 523. By pressing the movable handle 51, the spring 525 can be squeezed and compressed to align the two plug-in wire holes 524. When no pressing force is applied, the two plug-in wire holes 524 are in a misaligned state.
[0037] During the installation process, the movable handle 51 is pressed, and the movable handle 51 squeezes the connecting handle 521. The connecting handle 521 drives the clamping block 523 to move along the length direction of the wire box 522 through the guide column 526 to compress the spring 525. At this time, the wire box 522 and the plug-in holes 524 on the clamping block 523 are aligned. After the connector of the wire 12 is inserted into the wiring hole 41, the connector of the wire 12 is inserted into the two plug-in holes 524. The movable handle 51 is released, and the spring 525 is released and the clamping block 523 is squeezed in the opposite direction through the guide column 526, so that the two plug-in holes 524 are misaligned with each other to clamp the connector of the wire 12, thereby realizing the connection and fixation of the wire 12. Since the spring terminal 52 is electrically connected to the power terminal of the lamp holder 6, after the power is turned on, the external power supply is connected to the lamp holder 6 through the spring terminal 52, thereby realizing power supply to the bulb 7.
[0038] During the disassembly process, after disconnecting the power supply, press the movable handle 51, the movable handle 51 squeezes the connecting handle 521, and the connecting handle 521 drives the clamping block 523 to move along the length direction of the wire box 522 through the guide column 526 to compress the spring 525, and the plug-in wire hole 524 on the wire box 522 and the clamping block 523 is aligned. At this time, the connector of the wire 12 can be taken out from the plug-in wire hole 524 and the wiring hole 41.
[0039] The use of the quick-connect component 5 can realize the rapid disassembly and assembly of the wire 12 connector, reduce the difficulty of the maintenance personnel in connecting the wire 12 connector and achieve the effect of improving the maintenance speed.
[0040] like Figures 5-7 As shown, the inner wall of the telescopic lamp tube 2 has at least one sensor 8 for obtaining the brightness data of the bulb 7; a controller 9 is provided in the connector 4, which is communicated with the sensor 8, wherein the controller 9 is communicated with the host computer 10. Specifically, the sensor 8 includes a photoresistor, a photodiode, a phototransistor, an ambient light sensor 8, etc., which is installed on the telescopic tube a21 in the area close to the bulb 7.
[0041] During the operation of the light bulb 7 , the controller 9 collects data captured by the sensor 8 and uploads the collected data to the host computer 10 for analysis.
[0042] It should be noted that the corridor lighting proposed in the present invention also includes a sound sensing element, which is communicated with the controller 9. According to the set sound threshold, when the sound value detected by the sound sensing element is greater than the sound threshold, the controller 9 controls the light bulb 7 to turn on. After the turning-on time reaches the set time, if the sound with a sound value greater than the sound threshold is no longer detected, the controller 9 controls the light bulb 7 to turn off.
[0043] like Figure 7 As shown, a corridor lighting control system is provided on a host computer 10, including: The data acquisition unit 13 is configured to obtain the sensor 8 signal uploaded by the controller 9 .
[0044] The state analysis unit 14 is configured to analyze the signal from the sensor 8 and identify the state of the light bulb 7 .
[0045] The status of the light bulb 7 includes whether it is damaged and the brightness status of the light bulb 7.
[0046] The prediction unit 15 is configured to predict the remaining life of the light bulb 7 according to its status.
[0047] After training the pre-stored model based on the historical data of bulb 7, the remaining life of bulb 7 is predicted based on the working time and working frequency of bulb 7 and the brightness attenuation parameter, where the remaining life is the estimated time when its brightness reaches the set replacement threshold or its damage.
[0048] The management unit 16 is configured to output warning information according to the status of the light bulb 7; and to manage the light bulb 7 throughout its life cycle according to the status of the light bulb 7.
[0049] When an abnormality occurs in bulb 7 (damage, brightness attenuation reaches the replacement threshold), an early warning message is output to prompt the maintenance personnel. At the same time, all corridor lighting lamps are managed, including recording the manufacturer of bulb 7 and the corresponding parameters of bulb 7, and identifying the usage of bulbs 7 with different parameters from different manufacturers, identifying corridor lighting lamps with heavy workload in corridor areas (frequent switching or long continuous lighting time), and based on the usage results of bulbs 7 with different parameters from different manufacturers, the corridor lighting lamps in areas with heavy workload are replaced with the bulb 7 with the highest evaluation, and areas with light workload use random bulb 7 brands and parameters.
[0050] It should be understood that the specific order or hierarchy of steps in the disclosed processes is an example of an exemplary method. Based on design preferences, it should be understood that the specific order or hierarchy of steps in the process can be rearranged without departing from the scope of the present disclosure. The accompanying method claims present elements of the various steps in an exemplary order and are not intended to be limited to the specific order or hierarchy described.
[0051] In the foregoing detailed description, various features are grouped together in a single embodiment to simplify the disclosure. This method of disclosure should not be interpreted as reflecting an intention that embodiments of the claimed subject matter require more features than are expressly recited in each claim. On the contrary, as reflected in the appended claims, the invention comprises less than all the features of any individual disclosed embodiment. The appended claims are therefore hereby expressly incorporated into the detailed description, with each claim standing on its own as a separate preferred embodiment of the invention.
[0052] Those skilled in the art will also appreciate that the various illustrative logic blocks, modules, circuits, and algorithmic steps described in conjunction with the embodiments herein may be implemented as electronic hardware, computer software, or a combination thereof. In order to clearly illustrate the interchangeability between hardware and software, the various illustrative components, blocks, modules, circuits, and steps described above are generally described around their functions. Whether such functions are implemented as hardware or software depends on the specific application and the design constraints imposed on the entire system. A skilled person may implement the described functions in an adaptable manner for each specific application, but such implementation decisions should not be interpreted as departing from the scope of protection of this disclosure.
[0053] The steps of the methods or algorithms described in conjunction with the embodiments herein may be directly embodied as hardware, software modules executed by a processor, or a combination thereof. The software module may be located in a RAM memory, flash memory, ROM memory, EPROM memory, EEPROM memory, register, hard disk, removable disk, CD-ROM, or any other form of storage medium well known in the art. An exemplary storage medium is connected to the processor so that the processor can read information from the storage medium and write information to the storage medium. Of course, the storage medium may also be an integral part of the processor. The processor and storage medium may be located in an ASIC. The ASIC may be located in a user terminal. Of course, the processor and storage medium may also be present in a user terminal as discrete components.
[0054] For software implementation, the techniques described in this application can be implemented using modules (e.g., procedures, functions, etc.) that perform the functions described in this application. These software codes can be stored in a memory unit and executed by a processor. The memory unit can be implemented within the processor or external to the processor. In the latter case, it is communicatively coupled to the processor via various means, which are well known in the art.
[0055] The foregoing description includes examples of one or more embodiments. Of course, it is not possible to describe all possible combinations of components or methods for the purposes of describing the above embodiments, but one of ordinary skill in the art will recognize that the various embodiments may be further combined and arranged. Therefore, the embodiments described herein are intended to encompass all such changes, modifications and variations that fall within the scope of the appended claims. Furthermore, to the extent the term "comprising" is used in the specification or claims, the term is intended to be encompassed in a manner similar to the term "including," as explained in terms of "including," used as a transitional word in the claims. Furthermore, any use of the term "or" in the specification of the claims is intended to mean a "non-exclusive or."
Claims
1. A corridor lighting lamp, installed on the ceiling (1), characterized in that, include: A mounting terminal (11) mounted on the ceiling (1) has a first magnetic attraction structure at its bottom; A telescopic lamp tube (2) has a connector (4) at its top and a magnetic soft light cover (3) detachably connected to its bottom, wherein the magnetic soft light cover (3) has a second magnetic attraction mechanism, and the second magnetic attraction mechanism and the first magnetic attraction mechanism are magnetically attracted to each other; A quick-connect component (5) for connecting to an electric wire (12) is provided on the connector (4), and a lamp holder (6) is provided at the bottom of the connector (4), and a light bulb (7) is detachably connected to the lamp holder (6); The inner wall of the telescopic lamp tube (2) is provided with at least one sensor (8) for acquiring brightness data of the light bulb (7); A controller (9) is provided in the connector (4) and is communicatively connected to the sensor (8), wherein the controller (9) is communicatively connected to the host computer (10).
2. A corridor lighting lamp as claimed in claim 1, characterized in that: The telescopic lamp tube (2) comprises a telescopic tube a (21), a telescopic tube b (22) being nested at the bottom thereof, wherein the top of the outer wall of the telescopic tube b (22) and the bottom of the inner wall of the telescopic tube a (21) are respectively provided with mutually abutting limiting rings for limiting the range of movement of the telescopic tube b (22) to prevent it from falling out of the bottom of the telescopic tube a (21).
3. A corridor lighting lamp as claimed in claim 2, characterized in that: A plurality of damping strips (23) are provided on the outside of the telescopic cylinder a (21) along its circumference, and the damping strips (23) are in contact with the inner wall of the telescopic cylinder b (22).
4. A corridor lighting lamp as claimed in claim 2, characterized in that: The magnetic soft light cover (3) comprises a cover shell (31), wherein the cover shell (31) is threadedly connected to the bottom of the telescopic cylinder b (22), and the outer wall of the cover shell (31) is provided with a circle of magnetic ring (32), and the magnetic ring (32) constitutes a second magnetic attraction mechanism.
5. A corridor lighting lamp as claimed in claim 4, characterized in that: The mounting terminal (11) includes a T-shaped threaded sleeve (111), which is arranged in a hole opened in the ceiling (1), and the T-shaped threaded sleeve (111) is threadedly connected to an adjusting nut (112) and a magnetic threaded ring (113), wherein the magnetic threaded ring (113) constitutes a first magnetic attraction mechanism, which is magnetically attracted to the magnetic ring (32).
6. The corridor lighting lamp according to claim 1, characterized in that: The top of the connector (4) is provided with a wiring hole (41), which is communicated with a cavity (42) provided inside the connector (4), and the quick-connect component (5) is provided in the cavity (42).
7. A corridor lighting lamp as claimed in claim 6, characterized in that: The quick-connect component (5) includes a movable handle (51), which is restricted by the shape of the cavity (42) and reciprocates along the length direction of the cross-sectional shape of the cavity (42), and also includes two spring terminals (52) arranged in the cavity (42), which can lock the wire (12) or release the wire (12) after being squeezed by the movable handle, and the spring terminals (52) are electrically connected to the power terminal of the lamp holder (6).
8. The corridor lighting lamp according to claim 7, characterized in that: The spring terminal (52) includes a wire box (522) fixedly arranged in a cavity (42), a clamping block (523) is provided inside the wire box (522), a guide column (526) is provided on the side of the clamping block (523) away from the connecting handle (521), a spring (525) is provided on the guide column (526), a connecting handle (521) is provided on the side of the clamping block (523) away from the spring (525), the connecting handle (521) is connected to the movable handle (51), and corresponding plug-in wire holes (524) are provided on the wire box (522) and the clamping block (523), and the spring (525) can be compressed by pressing the movable handle (51) to align the two plug-in wire holes (524). When no pressing force is applied, the two plug-in wire holes (524) are in a dislocated state.
9. The corridor lighting lamp according to claim 8, characterized in that: An insulating layer is provided on the surface of the wire clamping box (522) in an area away from the plug-in wire hole (524), and the connecting handle (521) and the movable handle (51) are made of insulating material.
10. A corridor lighting control system, provided on a host computer (10), characterized in that: include: A data acquisition unit (13) is configured to acquire a sensor (8) signal uploaded by a controller (9); A state analysis unit (14) is configured to analyze the signal of the sensor (8) and identify the state of the light bulb (7); A prediction unit (15) configured to predict the remaining life of the light bulb (7) based on its status; The management unit (16) is configured to output warning information according to the status of the light bulb (7); and to manage the light bulb (7) throughout its entire life cycle according to the status of the light bulb (7).