Intelligent adjustment infrared lamp

By combining the vision module and the controller, the infrared lamps are automatically adjusted, solving the problem that existing infrared lamps require manual adjustment and ensuring treatment effectiveness and safety.

CN121944407APending Publication Date: 2026-05-01ZHEJIANG HOSPITAL
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
ZHEJIANG HOSPITAL
Filing Date
2026-03-10
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

Existing infrared lamps require manual adjustment of the irradiation angle and area during use, and cannot automatically adjust according to changes in the patient's position. They also pose problems such as burns and poor treatment effects.

Method used

The system uses a vision module to scan and identify the patient's wound. The controller controls the angle adjustment mechanism and the lamp holder to slide, automatically adjusting the irradiation position, angle, and area. A distance sensor is used to avoid burns.

Benefits of technology

It enables automatic adjustment of the infrared lamp when the patient's position changes, ensuring effective treatment coverage and avoiding problems such as burns and poor treatment results.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121944407A_ABST
    Figure CN121944407A_ABST
Patent Text Reader

Abstract

The invention provides an intelligent adjustment infrared lamp which comprises a supporting bottom plate and a controller, the supporting bottom plate is provided with a height-adjustable angle adjusting mechanism, the top of the angle adjusting mechanism is provided with a conical lampshade, the conical lampshade is internally provided with a lamp holder in a sliding mode, the lamp holder is electrically connected with an infrared lamp, and the infrared lamp is electrically connected with the controller. And the infrared lamp is replaceable. According to the intelligently-adjusted infrared lamp, the wound position of a patient is scanned and recognized for marking and positioning, when the body position of the patient changes due to turning over or moving in the irradiation treatment process, the irradiation position and the irradiation angle can be automatically adjusted, meanwhile, the irradiation area can be automatically adjusted according to the wound surface, and effective irradiation treatment of the wound part is facilitated; the irradiation distance can be automatically adjusted according to the position of a patient in the treatment process, on one hand, scalding caused by the short distance can be avoided, on the other hand, the situation that the effective treatment effect cannot be achieved due to the too long distance can be avoided, and effective use of the infrared lamp is guaranteed.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of infrared lamp technology, specifically to an intelligently adjustable infrared lamp. Background Technology

[0002] Infrared lamps produce a warming effect, which can be used in physical therapy to relieve muscle spasms. When infrared rays irradiate spasmodic muscles, the muscle tissue absorbs the infrared energy, raising the local temperature and reducing muscle viscosity, thereby relieving the spasm. Furthermore, the warming effect of infrared rays can improve local blood circulation. Good blood circulation provides sufficient nutrients (such as oxygen, glucose, and amino acids) for tissue repair, while also removing metabolic waste (such as carbon dioxide and lactic acid) from the wound, promoting wound healing.

[0003] Conventional infrared lamps require medical staff to adjust the irradiation angle according to the patient's wound location. When the patient turns over or moves, causing a change in position, the position of the infrared lamp needs to be readjusted. This makes conventional infrared lamps not intelligent enough in use. In addition, the irradiation area of ​​common infrared lamps is usually fixed, making it inconvenient to adjust the irradiation area according to the patient's wound. Furthermore, there is a risk of burns when the infrared lamp is too close to the patient, while it cannot provide effective treatment when the infrared lamp is too far away from the patient, resulting in shortcomings in its use. Summary of the Invention

[0004] The technical problem this invention aims to solve is to overcome the shortcomings of existing technologies and provide an intelligently adjustable infrared lamp. This lamp scans and identifies the patient's wound location for marking and positioning. During irradiation treatment, when the patient's position changes due to turning or moving, the lamp automatically adjusts the irradiation position and angle. Simultaneously, it automatically adjusts the irradiation area according to the wound surface, facilitating effective irradiation treatment. Furthermore, it automatically adjusts the irradiation distance based on the patient's position during treatment. This avoids burns caused by close proximity and prevents ineffective treatment due to excessive distance, ensuring the effective use of this infrared lamp and effectively solving the problems in the prior art.

[0005] To achieve the above objectives, the present invention provides the following technical solution: an intelligently adjustable infrared lamp, comprising a supporting base plate and a controller. The supporting base plate is provided with a height-adjustable angle adjustment mechanism. A conical lamp cover is installed on the top of the angle adjustment mechanism. A lamp holder is slidably installed inside the conical lamp cover. An infrared lamp is electrically connected to the lamp holder, and the infrared lamp is replaceable. A protective box is installed on the back of the conical lamp cover, and a driving component for moving the lamp holder is provided inside the protective box. A positioning seat is installed at the front of the conical lamp cover, and a detection component is installed inside the positioning seat. The infrared lamp, the control switch corresponding to the infrared lamp in the controller, and an external power supply are connected in series to form the working circuit of the infrared lamp.

[0006] As a preferred embodiment of the present invention, a threaded cylinder communicating with its inner cavity is rotatably mounted on the back of the conical lampshade, a positioning screw is fixed on the side of the lamp holder, the positioning screw is threadedly connected to the threaded cylinder, and the driving assembly is used to drive the threaded cylinder to rotate.

[0007] As a preferred embodiment of the present invention, a first gear is fixedly fitted on the outer side of the threaded cylinder and located inside the protective box. An electric motor is installed inside the protective box. A second gear is installed on the output shaft of the electric motor, and the second gear meshes with the first gear. The electric motor, the control switch corresponding to the electric motor in the controller, and the external power supply are connected in series to form the working circuit of the electric motor. A positioning tube is fixed on the side of the lamp holder, and the positioning tube is slidably connected to the back of the conical lamp cover.

[0008] As a preferred embodiment of the present invention, a movable plate is fixed to the end of the positioning screw away from the lamp holder. The movable plate is located inside the protective box and is in sealed contact with the inner side of the protective box. The end of the positioning tube away from the lamp holder is fixed to the side of the movable plate and communicates with the rear part of the inner cavity of the protective box. A communication port is opened on the side of the positioning tube and the communication port is located inside the conical lampshade.

[0009] As a preferred embodiment of the present invention, an electric telescopic rod is provided between the supporting base plate and the angle adjustment mechanism. The fixed end of the electric telescopic rod is fixed to the upper side of the supporting base plate, and the angle adjustment mechanism is installed at the telescopic end of the electric telescopic rod. The electric telescopic rod, the control switch corresponding to the electric telescopic rod in the controller, and the external power supply are connected in series to form the working circuit of the electric telescopic rod.

[0010] As a preferred embodiment of the present invention, the angle adjustment mechanism includes a first mounting base installed on the telescopic end of the electric telescopic pole, a first connecting plate rotatably mounted inside the first mounting base, and a first motor assembly for driving the first connecting plate to rotate mounted on the side of the first mounting base. The first motor assembly, the control switch corresponding to the first motor assembly in the controller, and the external power supply are connected in series to form the working circuit of the first motor assembly.

[0011] As a preferred embodiment of the present invention, a second mounting base is installed at the end of the first connecting plate away from the first mounting base, a second connecting plate is rotatably installed inside the second mounting base, a second motor assembly for driving the second connecting plate to rotate is installed on the side of the second mounting base, the conical lampshade is fixed at the end of the second connecting plate away from the second mounting base, and the second motor assembly, the control switch corresponding to the second motor assembly in the controller, and the external power supply are connected in series to form the working circuit of the second motor assembly.

[0012] As a preferred embodiment of the present invention, the detection component includes a vision module, and the detection end of the vision module is located directly in front of the conical lampshade. The vision module, the control switch corresponding to the vision module in the controller, and the external power supply are connected in series to form the working circuit of the vision module.

[0013] As a preferred embodiment of the present invention, a distance sensor is installed on the side of the vision module, and the detection end of the distance sensor is located in front of the conical lampshade. The distance sensor, the control switch corresponding to the distance sensor in the controller, and the external power supply are connected in series to form the working circuit of the distance sensor.

[0014] Compared with the prior art, the beneficial effects of the present invention are: 1. The intelligently adjustable infrared lamp of this invention uses a vision module to scan the patient's wound. The scan information is fed back to the controller. The controller processes the information and controls the angle adjustment mechanism to make the conical lamp cover face the patient's wound. Then, the controller adjusts the lamp holder to slide inside the conical lamp cover according to the wound surface, thereby adjusting the irradiation area of ​​the infrared lamp so that the infrared lamp effectively covers the patient's wound for treatment.

[0015] 2. In the example of the intelligent adjustable infrared lamp of the present invention, when the angle adjustment mechanism is in use, the controller controls the first motor group to work, and the first motor group drives the first connecting plate to rotate left and right to adjust the angle of the infrared lamp. At the same time, the controller can control the second motor group to work, and the second motor group drives the second connecting plate to rotate back and forth to adjust the angle of the infrared lamp, which facilitates the use of the infrared lamp.

[0016] 3. The intelligently adjustable infrared lamp of this invention controls the electric motor to drive the second gear to rotate. The second gear drives the first gear to rotate the threaded cylinder. Under the action of the thread, the positioning screw drives the lamp holder to move. When the lamp holder moves into the conical lamp cover, the infrared lamp is restricted by the conical lamp cover, thereby reducing the irradiation area. When the lamp holder moves out of the conical lamp cover, the restriction of the infrared lamp by the conical lamp cover gradually decreases, the irradiation area increases, and it is convenient to cover a large area of ​​the wound. It can be flexibly adjusted according to the needs during use.

[0017] 4. In the example of the present invention, the intelligent adjustable infrared lamp uses a distance sensor to detect the distance between the conical lampshade and the patient. After the detection data is fed back to the controller, the controller controls the angle adjustment mechanism to adjust the distance, so as to avoid the infrared lamp inside the conical lampshade being too close to the patient and causing burns, and at the same time prevent the infrared lamp inside the conical lampshade from being too far away from the patient and failing to achieve an effective treatment effect. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the structure of the present invention; Figure 2 for Figure 1 Enlarged structural diagram at point A; Figure 3 This is a cross-sectional structural diagram of the present invention; Figure 4 for Figure 3 Enlarged structural diagram at point B; Figure 5 This is a cross-sectional view of the protective box in this invention.

[0019] In the diagram: 1 Electric telescopic rod, 2 Angle adjustment mechanism, 21 First mounting base, 22 First connecting plate, 23 First motor assembly, 24 Second mounting base, 25 Second connecting plate, 26 Second motor assembly, 3 Conical lampshade, 31 Lamp holder, 32 Infrared lamp, 33 Positioning screw, 4 Protective box, 41 Threaded cylinder, 42 First gear, 43 Second gear, 44 Electric motor, 45 Moving plate, 46 Positioning tube, 5 Positioning seat, 51 Vision module, 52 Distance sensor, 6 Controller. Detailed Implementation

[0020] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0021] Please see Figure 1-5This invention provides a technical solution: an intelligently adjustable infrared lamp, including a supporting base plate and a controller 6. The supporting base plate is equipped with a height-adjustable angle adjustment mechanism 2. A conical lampshade 3 is mounted on the top of the angle adjustment mechanism 2. A lamp holder 31 is slidably installed inside the conical lampshade 3. An infrared lamp 32 is electrically connected to the lamp holder 31, and the infrared lamp 32 is replaceable. During use, the position of the conical lampshade 3 is adjusted by the angle adjustment mechanism 2, thereby adjusting the illumination position and angle of the infrared lamp 32. Adjusting the position of the lamp holder 31 adjusts the position of the infrared lamp 32, thus achieving adjustment of the illumination area to meet different usage needs. The conical lampshade 3 is conical in shape, facilitating the adjustment of the illumination area by moving the infrared lamp 32 within it.

[0022] A protective box 4 is installed on the back of the conical lampshade 3, and a drive component for moving the lamp holder 31 is installed inside the protective box 4. A positioning seat 5 is installed on the front of the conical lampshade 3, and a detection component is installed inside the positioning seat 5. The infrared lamp 32, the control switch corresponding to the infrared lamp 32 in the controller 6, and the external power supply are connected in series to form the working circuit of the infrared lamp 32. The detection component is used to identify and mark the location and area of ​​the patient's wound, so that the controller 6 can control the infrared lamp to work.

[0023] The detection component includes a vision module 51, and the detection end of the vision module 51 is located directly in front of the conical lampshade 3. The vision module 51, the control switch corresponding to the vision module 51 in the controller 6, and the external power supply are connected in series to form the working circuit of the vision module 51. The vision module 51 is preferably a camera component. When in use, the vision module 51 scans the patient's wound. The scanning information is fed back to the controller 6. The controller 6 processes the information and controls the angle adjustment mechanism 2 to work so that the conical lampshade 3 faces the patient's wound. Then, the controller 6 adjusts the lamp holder 31 to slide inside the conical lampshade 3 according to the wound surface to adjust the irradiation area of ​​the infrared lamp 32 so that the infrared lamp 32 effectively covers the patient's wound for treatment.

[0024] A distance sensor 52 is mounted on the side of the vision module 51, and the detection end of the distance sensor 52 is located in front of the conical lampshade 3. The distance sensor 52, the control switch corresponding to the distance sensor 52 in the controller 6, and the external power supply are connected in series to form the working circuit of the distance sensor 52. The distance sensor 52 is used to detect the distance between the conical lampshade 3 and the patient. After the detection data is fed back to the controller 6, the controller 6 controls the angle adjustment mechanism 2 to adjust the distance to avoid the infrared lamp 32 inside the conical lampshade 3 from being too close to the patient and causing burns, and at the same time to prevent the infrared lamp 32 inside the conical lampshade 3 from being too far away from the patient and failing to achieve an effective treatment effect.

[0025] A threaded cylinder 41, communicating with its inner cavity, is rotatably mounted on the back of the conical lampshade 3. A positioning screw 33 is fixed on the side of the lamp holder 31, and the positioning screw 33 is threadedly connected to the threaded cylinder 41. A drive assembly is used to drive the threaded cylinder 41 to rotate. By driving the threaded cylinder 41 to rotate through the drive assembly, the positioning screw 33 drives the lamp holder 31 to move under the action of the thread. When the lamp holder 31 moves into the conical lampshade 3, the infrared lamp 32 is restricted by the conical lampshade 3, thereby reducing the irradiation area and concentrating the energy at the irradiation point. At this time, care should be taken to adjust the distance between the conical lampshade 3 and the patient to avoid burns. When the lamp holder 31 moves outward from the conical lampshade 3, the restriction of the infrared lamp 32 by the conical lampshade 3 gradually decreases, the irradiation area increases, and it is convenient to cover a large area of ​​the wound surface. It can be flexibly adjusted according to the needs during use, and the setting of electronic components such as the vision module 51 and the controller 6 makes the use of this infrared lamp more intelligent.

[0026] A first gear 42 is fixedly fitted on the outside of the threaded cylinder 41 and located inside the protective box 4. An electric motor 44 is installed inside the protective box 4. A second gear 43 is installed on the output shaft of the electric motor 44, and the second gear 43 meshes with the first gear 42. The electric motor 44, the control switch corresponding to the electric motor 44 in the controller 6, and the external power supply are connected in series to form the working circuit of the electric motor 44. When the controller 6 causes the position of the lamp holder 31 to need to be adjusted according to the detection data of the vision module 51, the controller 6 controls the electric motor 44 to work. The electric motor 44 drives the second gear 43 to rotate, and the second gear 43 drives the first gear 42 to rotate the threaded cylinder 41. This facilitates the adjustment of the illumination area of ​​the infrared lamp 32 by moving the lamp holder 31 through the positioning screw 33. A positioning tube 46 is fixed on the side of the lamp holder 31. The positioning tube 46 is slidably connected to the back of the conical lamp cover 3. When the positioning screw 33 moves the lamp holder 31, the positioning tube 46 plays a limiting and guiding role to ensure the effective adjustment of the position of the lamp holder 31.

[0027] A movable plate 45 is fixed to the end of the positioning screw 33 away from the lamp holder 31. The movable plate 45 is located inside the protective box 4 and is in sealed contact with the inner side of the protective box 4. The end of the positioning tube 46 away from the lamp holder 31 is fixed to the side of the movable plate 45 and communicates with the rear of the inner cavity of the protective box 4. A communication port is opened on the side of the positioning tube 46 and is located inside the conical lamp cover 3. During the movement of the positioning screw 33, the movable plate 45 is driven to move inside the protective box 4. When the positioning screw 33 drives the lamp holder 31 to move outward of the conical lamp cover 3, the movable plate 45 draws air from the outside through the communication port on the side of the positioning tube 46. When the positioning screw 33 drives the lamp holder 31 to move inward of the conical lamp cover 3, the movable plate 45 blows air outward through the communication port on the side of the positioning tube 46 to promote air flow inside the conical lamp cover 3 and assist in the heat dissipation of this infrared lamp.

[0028] An electric telescopic rod 1 is provided between the support base plate and the angle adjustment mechanism 2. The fixed end of the electric telescopic rod 1 is fixed to the upper side of the support base plate. The angle adjustment mechanism 2 is installed on the telescopic end of the electric telescopic rod 1. The electric telescopic rod 1, the control switch corresponding to the electric telescopic rod 1 in the controller 6, and the external power supply are connected in series to form the working circuit of the electric telescopic rod 1. The controller 6 controls the electric telescopic rod 1 to work and extend to adjust the height position of the conical lamp cover 3, which facilitates the adjustment of the position of the infrared lamp 32 and the use of the infrared lamp 32.

[0029] The angle adjustment mechanism 2 includes a first mounting base 21 installed at the telescopic end of the electric telescopic rod 1. A first connecting plate 22 is rotatably mounted inside the first mounting base 21. A first motor assembly 23 that drives the first connecting plate 22 to rotate is mounted on the side of the first mounting base 21. The first motor assembly 23, the control switch corresponding to the first motor assembly 23 in the controller 6, and the external power supply are connected in series to form the working circuit of the first motor assembly 23. The controller 6 controls the first motor assembly 23 to work. The first motor assembly 23 drives the first connecting plate 22 to rotate left and right to adjust the angle of the infrared lamp 32, which facilitates the use of the infrared lamp 32.

[0030] A second mounting base 24 is mounted on the end of the first connecting plate 22 away from the first mounting base 21. A second connecting plate 25 is rotatably mounted inside the second mounting base 24. A second motor assembly 26 that drives the second connecting plate 25 to rotate is mounted on the side of the second mounting base 24. A conical lampshade 3 is fixed to the end of the second connecting plate 25 away from the second mounting base 24. The second motor assembly 26, the control switch corresponding to the second motor assembly 26 in the controller 6, and the external power supply are connected in series to form the working circuit of the second motor assembly 26. The controller 6 controls the second motor assembly 26 to work. The second motor assembly 26 drives the second connecting plate 25 to rotate back and forth to adjust the angle of the infrared lamp 32, which facilitates the use of the infrared lamp 32.

[0031] The electric telescopic pole 1, the first motor group 23, the second motor group 26, the infrared lamp 32, the electric motor 44, the vision module 51, the distance sensor 52, and the controller 6 used in this invention are all commonly used electronic components in the prior art. Their working methods and circuit structures are all known technologies. The operation of the electronic components in this invention is controlled by the controller 6. This method is a common technical means used by technicians and will not be described in detail here.

[0032] The controller 6 is a PLC controller, and preferably, the controller 6 is equipped with a display screen and operation buttons. The display screen is used to display the power or working status of some electronic components in this invention, and the buttons facilitate personnel intervention to operate the infrared lamp. The controller 6 is also equipped with a remote control module, which is connected to external devices. The terminal devices include, but are not limited to, computers, smartphones, or smart tablets. The controller 6 uploads the working information of the electronic components in this invention to the terminal devices in real time through the remote control module, so that medical staff or caregivers can view or operate the lamp on the terminal devices.

[0033] When using: The visual module 51 scans the patient's wound site, and the scan information is fed back to the controller 6. The controller 6 processes the information and controls the angle adjustment mechanism 2 to work so that the conical lamp cover 3 faces the patient's wound site. Then, the controller 6 adjusts the lamp holder 31 to slide inside the conical lamp cover 3 according to the wound surface, thereby adjusting the irradiation area of ​​the infrared lamp 32 so that the infrared lamp 32 can effectively cover the patient's wound site for treatment. When the angle adjustment mechanism 2 is in use, the first motor group 23 is controlled by the controller 6 to work, and the first motor group 23 drives the first connecting plate 22 to rotate left and right to adjust the angle of the infrared lamp 32. At the same time, the second motor group 26 is controlled by the controller 6 to work, and the second motor group 26 drives the second connecting plate 25 to rotate back and forth to adjust the angle of the infrared lamp 32, which facilitates the use of the infrared lamp 32. When adjusting the irradiation area of ​​the infrared lamp 32, the controller 6 controls the electric motor 44 to drive the second gear 43 to rotate. The second gear 43 drives the first gear 42 to rotate the threaded cylinder 41. Under the action of the thread, the positioning screw 33 drives the lamp holder 31 to move. When the lamp holder 31 moves into the conical lamp cover 3, the infrared lamp 32 is restricted by the conical lamp cover 3, thereby reducing the irradiation area and concentrating the energy at the irradiation point. At this time, it is necessary to pay attention to adjusting the distance between the conical lamp cover 3 and the patient to avoid burns. When the lamp holder 31 moves outward from the conical lamp cover 3, the restriction of the conical lamp cover 3 on the infrared lamp 32 gradually decreases, the irradiation area increases, and it is convenient to cover the wound surface over a large area. It can be flexibly adjusted according to the needs during use. The setting of electronic components such as the vision module 51 and the controller 6 makes the use of this infrared lamp more intelligent. During use, the distance sensor 52 is used to detect the distance between the cone-shaped lampshade 3 and the patient. After the detection data is fed back to the controller 6, the controller 6 controls the angle adjustment mechanism 2 to adjust the distance to avoid the infrared lamp 32 inside the cone-shaped lampshade 3 being too close to the patient and causing burns, while also preventing the infrared lamp 32 inside the cone-shaped lampshade 3 from being too far away from the patient and failing to achieve an effective treatment effect.

[0034] This intelligently adjustable infrared lamp scans and identifies the patient's wound location for positioning. During treatment, it automatically adjusts the irradiation position and angle when the patient changes position due to turning over or moving. It also automatically adjusts the irradiation area according to the wound surface, facilitating effective irradiation treatment. Furthermore, it automatically adjusts the irradiation distance based on the patient's position during treatment. This avoids burns caused by close proximity and prevents ineffective treatment due to excessive distance, ensuring the effective use of this infrared lamp.

[0035] All parts not disclosed in this invention are prior art, and their specific structures, materials, and working principles will not be described in detail. Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An intelligently adjustable infrared lamp, comprising a supporting base plate and a controller (6), characterized in that: The support base plate is provided with a height-adjustable angle adjustment mechanism (2), the top of the angle adjustment mechanism (2) is equipped with a conical lamp cover (3), a lamp holder (31) is slidably installed in the conical lamp cover (3), an infrared lamp (32) is electrically connected to the lamp holder (31), and the infrared lamp (32) is replaceable. A protective box (4) is installed on the back of the conical lamp cover (3), and a driving component for moving the lamp holder (31) is provided in the protective box (4). A positioning seat (5) is installed at the front of the conical lamp cover (3), and a detection component is installed in the positioning seat (5). The infrared lamp (32), the control switch corresponding to the infrared lamp (32) in the controller (6) and the external power supply are connected in series to form the working circuit of the infrared lamp (32).

2. The intelligently adjustable infrared lamp according to claim 1, characterized in that: The conical lampshade (3) has a threaded cylinder (41) rotatably mounted on its back, which communicates with its inner cavity. The lamp holder (31) has a positioning screw (33) fixed on its side. The positioning screw (33) is threadedly connected to the threaded cylinder (41). The drive assembly is used to drive the threaded cylinder (41) to rotate.

3. The intelligently adjustable infrared lamp according to claim 2, characterized in that: The threaded cylinder (41) is fitted with a first gear (42) located inside the protective box (4). An electric motor (44) is installed inside the protective box (4). A second gear (43) is installed on the output shaft of the electric motor (44), and the second gear (43) meshes with the first gear (42). The electric motor (44), the control switch corresponding to the electric motor (44) in the controller (6), and the external power supply are connected in series to form the working circuit of the electric motor (44). A positioning tube (46) is fixed on the side of the lamp holder (31), and the positioning tube (46) is slidably connected to the back of the conical lamp cover (3).

4. The intelligently adjustable infrared lamp according to claim 3, characterized in that: The positioning screw (33) is fixed with a movable plate (45) at one end away from the lamp holder (31). The movable plate (45) is located inside the protective box (4) and is in sealed contact with the inner side of the protective box (4). The positioning tube (46) is fixed to the side of the movable plate (45) at one end away from the lamp holder (31) and communicates with the rear of the inner cavity of the protective box (4). The positioning tube (46) has a communication port on its side, and the communication port is located inside the conical lamp cover (3).

5. The intelligently adjustable infrared lamp according to claim 1, characterized in that: An electric telescopic rod (1) is provided between the support base plate and the angle adjustment mechanism (2). The fixed end of the electric telescopic rod (1) is fixed on the upper side of the support base plate. The angle adjustment mechanism (2) is installed on the telescopic end of the electric telescopic rod (1). The electric telescopic rod (1), the control switch in the controller (6) corresponding to the electric telescopic rod (1), and the external power supply are connected in series to form the working circuit of the electric telescopic rod (1).

6. The intelligently adjustable infrared lamp according to claim 5, characterized in that: The angle adjustment mechanism (2) includes a first mounting base (21) installed at the telescopic end of the electric telescopic rod (1). A first connecting plate (22) is rotatably installed inside the first mounting base (21). A first motor group (23) that drives the first connecting plate (22) to rotate is installed on the side of the first mounting base (21). The first motor group (23), the control switch corresponding to the first motor group (23) in the controller (6), and the external power supply are connected in series to form the working circuit of the first motor group (23).

7. The intelligently adjustable infrared lamp according to claim 6, characterized in that: A second mounting base (24) is installed at the end of the first connecting plate (22) away from the first mounting base (21). A second connecting plate (25) is rotatably installed inside the second mounting base (24). A second motor group (26) for driving the second connecting plate (25) to rotate is installed on the side of the second mounting base (24). The conical lampshade (3) is fixed at the end of the second connecting plate (25) away from the second mounting base (24). The second motor group (26), the control switch in the controller (6) corresponding to the second motor group (26), and the external power supply are connected in series to form the working circuit of the second motor group (26).

8. The intelligently adjustable infrared lamp according to claim 1, characterized in that: The detection component includes a vision module (51), and the detection end of the vision module (51) is located in front of the cone lampshade (3). The vision module (51), the control switch in the controller (6) corresponding to the vision module (51) and the external power supply are connected in series to form the working circuit of the vision module (51).

9. The intelligently adjustable infrared lamp according to claim 8, characterized in that: The visual module (51) has a distance sensor (52) mounted on its side, and the detection end of the distance sensor (52) is located in front of the cone-shaped lampshade (3). The distance sensor (52), the control switch in the controller (6) corresponding to the distance sensor (52) and the external power supply are connected in series to form the working circuit of the distance sensor (52).