A lamp source management device of a drill

CN224837274UActive Publication Date: 2026-10-09ZHONG SHAN SHI BAO YUE JIA DIAN ZI YOU XIAN GONG SI
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Patent Information

Application Number
CN202521819223.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-25
Publication Date
2026-10-09
Estimated Expiration
2035-08-25

AI Technical Summary

Technical Problem

[0003]为了解决钻孔机在使用过程中因内部灯源的控制管理往往依赖于手动操作而影响设备使用的安全性与维护效率的问题,本申请提供一种钻孔机的灯源管理装置

Benefits of technology

1、本申请通过构建一种与机壳盖设动作联动的开关管理机构,采用具有弹性复位特性的顶靠部件与控制部件协同配合,使得灯源的开启与关闭能够随着机盖的开合状态自动切换。具体而言,当机盖闭合时,顶压作用使弹性顶靠部件进入第一运动位置,驱动控制部件输出灯源开启信号;当机盖打开时,弹性顶靠部件在复位弹性力作用下回弹至第二运动位置,控制部件据此切断灯源供电。该结构省去了人工操作过程,实现了灯源与机壳状态的动态同步,有效避免了因误操作或疏忽造成的灯源长时间开启或未及时点亮的问题,从而提升了照明响应的实时性,优化了能源管理,并增强了钻孔机在复杂工况下的使用便捷性与稳定性;

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Abstract

The application relates to a lamp source management device of a drilling machine, which comprises a lamp source, a switch management mechanism, a control component electrically connected with the lamp source, and an elastic abutting component at one end of the control component. When a machine cover cooperates with a machine shell cover, the other end of the elastic abutting component is pressed by the machine cover to a first movement position. When the machine cover does not cooperate with the machine shell cover, the other end of the elastic abutting component restores to a second movement position from the first movement position. The control component controls the on-off of the lamp source through a change signal between the first movement position and the second movement position. An infrared detection component is used for determining whether to execute a lamp source management abnormality alarm operation by detecting whether a position deviation occurs when the elastic abutting component is in the second movement position. The lamp source state is synchronously linked with the opening and closing action of the machine shell, illumination delay or energy waste caused by untimely manual operation is avoided, and illumination response efficiency and use convenience are improved.
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Description

Technical Field

[0001] This application relates to the technical field of lamp source management for a drilling machine, and more particularly to a lamp source management device for a drilling machine. Background Technology

[0002] Currently, during drilling operations, to ensure the smooth installation, maintenance, and troubleshooting of internal components, a reliable lighting environment is often required inside the machine casing so that operators can clearly identify the internal structure and operating status. However, in practical applications, due to the relatively enclosed structure of drilling machines, frequent changes in the opening and closing of the casing, and the complex operating environment, the control and management of internal lighting sources often rely on manual operation. This can easily lead to untimely lighting response, energy waste from continuous lighting, or a lack of effective light sources during critical operations, affecting the safety and maintenance efficiency of the equipment. Utility Model Content

[0003] To address the issue that the control and management of internal lighting sources in drilling machines often relies on manual operation, which affects the safety and maintenance efficiency of the equipment, this application provides a lighting source management device for drilling machines.

[0004] A lamp source management device for a drilling machine, applied in the drilling machine, the drilling machine including a housing and a cover hinged to the housing for movably cooperating with the housing, the lamp source management device for the drilling machine comprising: A light source is located at the top inside the housing to provide illumination to the inside of the housing; A switch management mechanism is located beside the cover edge of the housing and includes a control component electrically connected to the lamp source. One end of the control component is elastically abutting a component. When the cover is engaged with the housing, the cover presses the other end of the elastically abutting component to a first movement position. When the cover is not engaged with the housing, the other end of the elastically abutting component returns from the first movement position to a second movement position. The control component controls the on / off state of the lamp source through the change signal between the first movement position and the second movement position. An infrared detection component is connected to the switch management component and disposed on one side of the elastic support component. The infrared detection component is used to determine whether to perform a lamp source management abnormality alarm operation by detecting whether the elastic support component has shifted position when it is in the second movement position.

[0005] By adopting the above technical solution, the on / off state of the light source is controlled by the elastic push-back component linked with the cover, realizing the synchronous linkage control of the light source status and the opening and closing action of the cover, avoiding lighting delay or energy waste caused by untimely manual operation, and improving lighting response efficiency and ease of use.

[0006] Preferably, a main switch is provided between the control component and the light source.

[0007] By adopting the above technical solution, a main switch is set up to establish a main power control path between the control components and the light source. In case of equipment maintenance, fault diagnosis or emergency shutdown, the power can be cut off in a unified manner, which enhances the safety, controllability and maintenance convenience of the electrical system.

[0008] Preferably, the elastic abutment component includes a pivot assembly and a lever. The pivot assembly is connected to the control component and to one end of the lever. The other end of the lever is in contact with the movable top of the cover. The pivot assembly is used to control the lever to reset.

[0009] By adopting the above technical solution, a flexible support component is formed by a rotating shaft assembly and a lever. The rotating shaft structure enables the lever to rotate elastically and automatically reset, improving the structural response stability of the cover opening and closing state transmission and ensuring the reliability of the lamp on / off control.

[0010] Preferably, the lever includes a roller and a rod body connected to the rotating shaft assembly, the rod body having a connecting post extending towards the inner side of the housing, the connecting post being connected to the roller.

[0011] By adopting the above technical solution, the lever is composed of a roller and a rod. The roller can roll in accordance with the direction of the cover's movement, reducing frictional resistance and mechanical wear during the cover's operation, making the push-button action more stable and reliable, and improving structural durability.

[0012] Preferably, the outer diameter of the roller is larger than the outer diameter of the connecting column.

[0013] By adopting the above technical solution, the outer diameter of the roller is larger than the outer diameter of the connecting column, ensuring that the connection between the roller and the lever has sufficient rotational support and boundary protection, preventing the roller from dislodging or jamming due to improper size, and enhancing the overall mechanical fit accuracy.

[0014] Preferably, the lever is provided with a weight-reducing through hole, which extends through the lever along the axial direction of the roller.

[0015] By adopting the above technical solution, the lever is provided with a weight-reducing through hole running along the axial direction, which reduces the mass of the lever body, effectively reduces the driving force required for reset rotation, improves response speed and reset sensitivity, and extends the service life of the device.

[0016] Preferably, the infrared detection component includes an infrared transmitter and an infrared receiver, both electrically connected to the control component. The infrared transmitter is located on the upper side of the control component, and the infrared receiver is located on the lower side of the control component. The infrared transmitter sends an infrared signal to the infrared receiver. When the elastic abutment component shifts from its position to the second movement position, the elastic abutment component blocks part or all of the infrared signal, thereby triggering the control component to perform a lamp source management abnormality alarm operation.

[0017] By adopting the above technical solution, the infrared detection component can detect the reset status of the elastic support component in real time by setting up an infrared transmitter and receiver. When the component is in an abnormal position and blocks the infrared signal, an alarm mechanism can be triggered immediately, thereby improving the ability to identify and alert to abnormal states.

[0018] Preferably, the housing is provided with two spaced-apart triangular support members, the infrared receiver is located in the gap between the two triangular support members, and both triangular support members are connected to the control component.

[0019] By adopting the above technical solution, and by setting two triangular support members on the casing and placing the infrared receiver between them, a stable optical path channel structure is formed, which enhances the positioning accuracy and anti-interference capability of infrared detection, and improves the stability and reliability of the entire anomaly detection system.

[0020] Preferably, the triangular support includes a first connecting plate and a second connecting plate integrally extending from one end of the first connecting plate toward the inside of the housing, the distance from the end of the first connecting plate integrally extending toward the inside of the housing being the width of the control component.

[0021] By adopting the above technical solution, the triangular support is constructed by integrating the first connecting plate and the second connecting plate, ensuring its structural strength and stable compatibility with the control components, and facilitating modular installation and subsequent maintenance.

[0022] Preferably, the control component is provided with a fixing member, which passes through the control component and connects to the housing.

[0023] By adopting the above technical solution, the control component is connected to the housing by setting a fixing part to ensure that it is stable and does not shift during the operation of the equipment, effectively maintaining the geometric accuracy of the elastic push-to-drive and infrared detection, and improving the consistency and reliability of the overall lighting source management function.

[0024] In summary, this application includes at least one of the following beneficial technical effects: 1. This application constructs a switch management mechanism that is linked to the opening and closing of the machine cover. It employs a top-mounted component with elastic reset characteristics in coordination with the control component, enabling the lamp source to automatically switch between on and off states according to the opening and closing of the cover. Specifically, when the cover is closed, the pressure causes the elastic top-mounted component to enter a first position, driving the control component to output a lamp source on signal. When the cover is open, the elastic top-mounted component rebounds to a second position under the action of reset elastic force, and the control component cuts off the lamp source power supply accordingly. This structure eliminates the need for manual operation, achieves dynamic synchronization between the lamp source and the machine cover state, effectively avoids the problem of lamps being on for extended periods or not igniting in time due to misoperation or negligence, thereby improving the real-time performance of lighting response, optimizing energy management, and enhancing the ease of use and stability of the drilling machine under complex working conditions. 2. This application incorporates an infrared detection component to monitor the reset state of the elastic support component in real time. When the component rebounds to the second movement position, a clear optical path should be maintained between the infrared transmitter and receiver. If the system detects that the elastic component is blocking the infrared signal, it can determine that there is abnormal displacement, thereby triggering the abnormal alarm mechanism of the lamp source control. This detection mechanism not only improves the accuracy and response speed of fault detection but also enhances the operational reliability and safety redundancy of the entire lamp source management device, adapting to the needs of high-frequency start-up and shutdown of drilling equipment and harsh operating environments. Attached Figure Description

[0025] Figure 1 This is a structural schematic diagram of the application scenario of a lamp source management device for a drilling machine according to one embodiment of this application. Figure 1 ; Figure 2 This application discloses a lamp source management device for a drilling machine according to one embodiment. Figure 1 Enlarged view of A in the middle; Figure 3 This is a structural schematic diagram of the application scenario of a lamp source management device for a drilling machine according to one embodiment of this application. Figure 2 ; Figure 4 This application discloses a lamp source management device for a drilling machine according to one embodiment. Figure 3 A magnified view of A in the middle.

[0026] Explanation of reference numerals in the attached figures: 1. Light source; 2. Control component; 3. Elastic support component; 31. Rotary shaft assembly; 32. Lever; 321. Roller; 322. Rod body; 323. Connecting column; 33. Weight reduction through hole; 4. Infrared detection component; 41. Infrared transmitter; 42. Infrared receiver; 5. Main switch; 6. Triangular support component; 61. First connecting plate; 62. Second connecting plate; 7. Fixing component; 100. Housing; 200. Cover. Detailed Implementation

[0027] The present application will now be described in further detail with reference to the accompanying drawings.

[0028] In one embodiment, such as Figure 1 and 3 As shown, this application discloses a light source management device for a drilling machine, applied in a drilling machine. The drilling machine includes a housing 100 and a cover 200 hinged to the housing 100 to movably cover and cooperate with the housing 100. The light source management device for the drilling machine includes: Light source 1 is located at the top inside the housing 100 to provide illumination to the inside of the housing 100; A switch management mechanism is located on the edge of the cover of the housing 100 and includes a control component 2 electrically connected to the light source 1. One end of the control component 2 is attached to an elastic abutment component 3. When the cover 200 is fitted with the housing 100, the cover 200 presses the other end of the elastic abutment component 3 to a first movement position. When the cover 200 is not fitted with the housing 100, the other end of the elastic abutment component 3 returns from the first movement position to a second movement position. The control component 2 controls the on / off state of the light source 1 through the change signal between the first and second movement positions. Infrared detection component 4 is connected to switch management component and is located on one side of elastic support component 3. Infrared detection component 4 is used to determine whether to perform lamp source 1 management abnormal alarm operation by detecting whether position displacement occurs when elastic support component 3 is in the second movement position.

[0029] In this embodiment, the light source 1 management device is installed inside the housing 100 of the drilling machine, and is used to provide intelligent lighting support for the structural areas inside the housing 100. The light source 1 is installed at the top of the housing 100, in a downward position, and can cover the entire internal operating space. To make the turning on and off of the light source 1 independent of manual operation, the device is equipped with a structural response mechanism, namely a switch management mechanism located at the edge of the housing 100. This mechanism integrates a control component 2 and a flexible abutment component 3 that forms a mechanical linkage with it. The flexible abutment component 3 is physically connected to the control component 2 at one end, so that external mechanical actions can be transmitted to the control component 2 to achieve state switching.

[0030] When the cover 200 completes the closing action by rotating, its downward pressing action directly contacts the other end of the elastic abutment component 3, forcing the elastic structure to compress and deform inward toward the casing 100, and simultaneously driving it to the downward pressing limit position. During this process, the control component 2 receives displacement feedback from the elastic component, and then generates an energizing command to illuminate the lamp source 1. Conversely, during the opening of the cover 200, due to the release of the clamping force, the elastic component automatically returns to its initial extended state under the action of a preset elastic element (such as a torsion spring or compression spring). The control component 2 recognizes this displacement retraction and immediately disconnects the power to extinguish the lamp source 1, thereby achieving synchronous matching between the lighting state and the opening and closing action of the cover 200.

[0031] To further enhance the stability of the structure's operation and the accuracy of the alarm response, an infrared detection component 4 is also installed beside the elastic support component 3. This detection structure consists of an infrared transmitter and a receiver, forming a fixed optical path. The optical path is designed to pass precisely through the area where the elastic component is in its reset state. When the elastic support component 3 fails to return to its correct position due to abnormal return or mechanical jamming, its position will block part or all of the infrared optical path, causing the receiver to be unable to receive the signal completely. Based on this, the control component 2 determines that the elastic structure is in an abnormal state and executes an abnormality feedback action. This structure forms a complete closed-loop control chain of electronic triggering, structural linkage, state recognition, and intelligent alarm, ensuring that the control of the light source 1 has environmental adaptability, further improving the visibility of operation, safety controllability, and management intelligence of the equipment.

[0032] Furthermore, such as Figure 2 and 4 As shown, a main switch 5 is provided between the control component 2 and the light source 1.

[0033] In this embodiment, the main switch 5 is installed on the power distribution module inside the housing 100, and is electrically connected to the output terminal of the control component 2 and the input terminal of the lamp source 1. It is used to uniformly control the on / off state of the lamp source 1 circuit during power outages or maintenance operations. Operators can directly control the on / off state of the lamp source 1 circuit by toggling the main switch 5, ensuring that the lamp source 1 is in a safe power-off state when equipment malfunctions, requires shutdown for repair, or undergoes overall maintenance, thus preventing malfunctions caused by accidental activation or circuit abnormalities. As a forced control method independent of the logic judgment of the control component 2, the main switch 5 helps improve the operational safety and emergency response capabilities of the entire lamp source 1 control system.

[0034] Furthermore, such as Figure 2 and 4As shown, the elastic support component 3 includes a rotating shaft assembly 31 and a lever 32. The rotating shaft assembly 31 is connected to the control component 2 and to one end of the lever 32. The other end of the lever 32 is in a movable pressing fit with the cover 200. The rotating shaft assembly 31 is used to control the lever 32 to reset.

[0035] In this embodiment, the rotating shaft assembly 31 is mounted on the side wall structure of the control component 2 via a bearing bracket. Its output shaft is fixedly connected to one end of the lever 32, which extends horizontally along the opening and closing direction of the cover 200. Its other end is located below the cover 200, allowing it to be pressed downwards by the cover 200 when it is closed. When the lever 32 rotates under pressure, it drives the rotating shaft assembly 31 to deflect. The rotating shaft assembly 31 contains a torsion spring structure, which provides a reverse reset force after the cover 200 is opened, causing the lever 32 to automatically return to its initial angle position. The rotating shaft assembly 31 transmits the mechanical movement of the lever 32 to the control component 2 in real time, enabling the control component 2 to generate a control signal based on the position of the lever 32, thereby controlling the on / off state of the light source 1. This structure not only ensures the stable movement of the lever 32 during the opening and closing of the cover 200 but also provides reliable reset capability through the rotating shaft assembly 31, preventing the accuracy of lighting control from being affected by mechanical stagnation or position drift.

[0036] Furthermore, such as Figure 2 As shown, the lever 32 includes a roller 321 and a rod 322 connected to the rotating shaft assembly 31. The rod 322 extends towards the inner side of the housing 100 and has a connecting post 323 connected to the roller 321.

[0037] In this embodiment, the lever 32 includes a roller 321 and a rod 322 connected to the rotating shaft assembly 31. The rod 322 extends horizontally away from the rotating shaft, and its end extends further toward the inner side of the housing 100 to form a connecting post 323. The connecting post 323 is installed at the central shaft hole of the roller 321, and the roller 321 is sleeved on the outside of the connecting post 323 and can rotate freely around the connecting post 323. During the closing process of the cover 200, the bottom edge of the cover 200 contacts the outside of the roller 321 and generates sliding pressure, pushing the roller 321 to rotate accordingly. At the same time, it drives the entire lever 32 to rotate around the rotating shaft assembly 31, so that the control component 2 responds to the angle change of the lever 32 and outputs a corresponding control signal. When the cover 200 is opened, the roller 321 and the lever 32 rotate back to the original angle position under the action of the reset spring force of the rotating shaft assembly 31. This structure, by setting a roller 321 at the end of the lever 32, can effectively reduce the frictional resistance during the pressing process of the cover 200, avoid scratches or jamming, and improve the smoothness of operation and the durability of the structure.

[0038] Furthermore, such as Figure 2As shown, the outer diameter of roller 321 is larger than the outer diameter of connecting column 323.

[0039] In this embodiment, the roller 321 is sleeved on the outside of the connecting column 323. The outer diameter of the roller 321 is larger than that of the connecting column 323, so that the roller 321 forms a significant radial protrusion when rotating around the connecting column 323. This ensures that it can preferentially contact the edge of the cover 200 during the pressing process, thereby avoiding the cover 200 directly acting on the connecting column 323 or the lever 32 body, which would cause wear or jamming. This size design allows the roller 321 to have good rolling conditions during the pressing action, reducing the friction and mechanical resistance of the contact surface, further improving the flexibility of the lever 32's rotation and the stability of its action response, while effectively extending the structural life and operational reliability of the mechanism under high-frequency use.

[0040] Furthermore, such as Figure 2 As shown, the lever 32 is provided with a weight reduction through hole 33, which passes through the lever 32 along the axial direction of the roller 321.

[0041] In this embodiment, the weight-reducing through-hole 33 is provided along the axial direction of the roller 321, that is, the axis of the through-hole is consistent with the rotation axis of the roller 321. This weight-reducing through-hole 33 passes through the middle region of the lever 32 and can be formed by molding or machining. While ensuring the structural strength of the lever 32, it significantly reduces the overall mass of the lever 32, thereby reducing the inertial force that the rotating shaft assembly 31 needs to overcome when the lever 32 resets, and improving the sensitivity and rebound speed of the lever 32's response. At the same time, the through-hole also helps to reduce stress concentration on rotating components during continuous operation, improving the operational stability and durability of the device in high-frequency opening and closing environments.

[0042] Furthermore, such as Figure 2 and 4 As shown, the infrared detection component 4 includes an infrared transmitter 41 and an infrared receiver 42, both electrically connected to the control component 2. The infrared transmitter 41 is located on the upper side of the control component 2, and the infrared receiver 42 is located on the lower side of the control component 2. The infrared transmitter 41 sends an infrared signal to the infrared receiver 42. When the elastic abutment component is reset to the second movement position and shifts, the elastic abutment component blocks part or all of the infrared signal, thereby triggering the control component 2 to perform an alarm operation for abnormal management of the light source 1.

[0043] In this embodiment, the infrared detection component 4 includes an infrared transmitter 41 and an infrared receiver 42, which are respectively installed on the upper and lower sides of the control component 2 and electrically connected to the signal input and signal output terminals of the control component 2 via wires, forming an infrared signal channel running vertically through the control component 2. The infrared transmitter 41 continuously emits infrared signals to the infrared receiver 42, forming an optical path for monitoring the position status of the elastic backing component. When the cover 200 is open, the elastic backing component is elastically reset to the second movement position by the rotating shaft assembly 31, with its end precisely in the avoidance area of ​​the infrared optical path, allowing the infrared receiver 42 to normally receive all the signals emitted by the transmitter. When the elastic backing component fails to return to its original position accurately due to jamming, offset, or restriction, its end will partially or completely enter the infrared optical path channel and cause infrared signal blockage. After detecting the signal abnormality, the control component 2 immediately identifies it as a position abnormality and triggers the alarm response mechanism of the lamp source 1 control accordingly, thereby improving the abnormality detection capability and system reliability in the entire lamp source 1 management process.

[0044] Furthermore, such as Figure 4 As shown, the housing 100 is provided with two spaced triangular support members 6, and the infrared receiver 42 is located in the gap between the two triangular support members 6. Both triangular support members 6 are connected to the control component 2.

[0045] In this embodiment, the housing 100 is provided with two triangular support members 6 spaced apart from each other. Both triangular support members 6 are integrally molded and are fixedly connected to the two side walls of the control component 2 by fastening components to form a stable mounting bracket structure within the housing 100. The infrared receiver 42 is installed in the gap area between the two triangular support members 6, located exactly at the lower receiving position of the infrared transmitter 41's transmitting light path. The triangular support members 6 not only provide a reliable positioning reference and lateral limiting support for the infrared receiver 42, but also prevent the receiver from shifting due to vibration, impact, or other factors during long-term use, ensuring that the infrared light path remains stably aligned under normal conditions. This improves the receiving accuracy of the infrared signal and the reliability of anomaly identification, enhancing the structural stability and signal identification capability of the lamp source 1 management device under harsh working conditions.

[0046] Furthermore, such as Figure 4 As shown, the triangular support 6 includes a first connecting plate 61 and a second connecting plate 62 that extends integrally from one end of the first connecting plate 61 toward the inside of the housing 100. The distance control component 2 extends integrally from one end of the first connecting plate 61 toward the inside of the housing 100.

[0047] In this embodiment, the triangular support 6 is composed of a first connecting plate 61 and a second connecting plate 62. The first connecting plate 61 is vertically arranged along the inner wall of the housing 100 to fix the entire support structure to the housing 100. The second connecting plate 62 extends horizontally from the end of the first connecting plate 61 away from the infrared receiver 42 and extends towards the interior of the housing 100, forming a stable angle structure between the two. The extension distance of the second connecting plate 62 matches the width of the control component 2, thereby forming a positioning gap between the two symmetrically arranged triangular support members 6 that just accommodates the control component 2. This structure ensures that the control component 2 can be stably embedded between the two support members during assembly, avoiding lateral swaying or displacement. On the other hand, it also provides a stable lateral support foundation for fixing the infrared detection device, improving the accuracy and reliability of the overall device in terms of structural installation and spatial coordination.

[0048] Furthermore, such as Figure 4 As shown, the control component is provided with a fixing member 7, which passes through the control component and is connected to the housing 100.

[0049] In this embodiment, the outer wall of the housing of the control component is provided with mounting holes, and a fastener 7 for fixed connection is provided in the mounting holes. The fastener 7 is preferably a screw, stud, or locating pin, etc., with one end passing through the housing of the control component and the other end screwed or inserted into the pre-set mounting hole in the housing 100, forming a tight connection between the control component and the housing 100. This fixing method can effectively prevent the control component from shifting or loosening due to vibration or frequent opening and closing during equipment operation, ensuring that the control component is always in an accurate working position. It is also beneficial to maintain the relative fit accuracy between the elastic support component 3, the lever 32, the rotating shaft assembly 31, and the infrared detection component 4, thereby improving the structural stability and control response consistency of the lamp source 1 management system.

[0050] The above-described embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application, and should all be included within the protection scope of this application.

Claims

1. A lamp source management device for a drilling machine, characterized in that, An application in a drilling machine, the drilling machine including a housing (100) and a cover (200) hinged to the housing (100) for movably fitting with the housing (100), the lamp source management device for the drilling machine including: A light source (1) is located at the top inside the housing (100) to provide illumination to the inside of the housing (100); A switch management mechanism is provided on the side of the cover edge of the housing (100) and includes a control component (2) electrically connected to the lamp source (1). One end of the control component (2) is elastically abutting a component (3). When the cover (200) is fitted with the housing (100), the cover (200) presses the other end of the elastically abutting component (3) to a first movement position. When the cover (200) is not fitted with the housing (100), the other end of the elastically abutting component (3) returns from the first movement position to a second movement position. The control component (2) controls the on / off state of the lamp source (1) through the change signal between the first movement position and the second movement position. An infrared detection component (4) is connected to the switch management component and is disposed on one side of the elastic support component (3). The infrared detection component (4) is used to determine whether to perform the lamp source (1) management abnormal alarm operation by detecting whether the elastic support component (3) has shifted position when it is in the second movement position.

2. The lamp source management device for a drilling machine according to claim 1, characterized in that, A main switch (5) is provided between the control component (2) and the light source (1).

3. The lamp source management device for a drilling machine according to claim 1, characterized in that, The elastic abutment component (3) includes a pivot assembly (31) and a lever (32). The pivot assembly (31) is connected to the control component (2) and to one end of the lever (32). The other end of the lever (32) is in contact with the cover (200) for movable pressing. The pivot assembly (31) is used to control the lever (32) to reset.

4. The lamp source management device for a drilling machine according to claim 3, characterized in that, The lever (32) includes a roller (321) and a rod (322) connected to the rotating shaft assembly (31). The rod (322) extends toward the inside of the housing (100) with a connecting post (323), which is connected to the roller (321).

5. The lamp source management device for a drilling machine according to claim 4, characterized in that, The outer diameter of the roller (321) is larger than the outer diameter of the connecting column (323).

6. The lamp source management device for a drilling machine according to claim 4, characterized in that, The lever (32) is provided with a weight-reducing through hole (33), which passes through the lever (32) along the axial direction of the roller (321).

7. The lamp source management device for a drilling machine according to claim 1, characterized in that, The infrared detection component (4) includes an infrared transmitter (41) and an infrared receiver (42) both electrically connected to the control component (2). The infrared transmitter (41) is located on the upper side of the control component (2), and the infrared receiver (42) is located on the lower side of the control component (2). The infrared transmitter (41) sends an infrared signal to the infrared receiver (42). When the elastic abutment component (3) is reset to the position of the second movement position and shifts, the elastic abutment component (3) blocks part or all of the infrared signal, thereby triggering the control component (2) to perform an abnormal alarm operation for the management of the light source (1).

8. The lamp source management device for a drilling machine according to claim 7, characterized in that, The housing (100) is provided with two spaced triangular support members (6), and the infrared receiver (42) is located in the gap between the two triangular support members (6). Both triangular support members (6) are connected to the control component (2).

9. A lamp source management device for a drilling machine according to claim 8, characterized in that, The triangular support member (6) includes a first connecting plate (61) and a second connecting plate (62) extending integrally from one end of the first connecting plate (61) toward the inside of the housing (100), the distance from the control component (2) being the width of the first connecting plate (61) extending integrally into the inside of the housing (100).

10. A lamp source management device for a drilling machine according to claim 1, characterized in that, The control component (2) is provided with a fixing member (7), which passes through the control component and is connected to the housing (100).