TDP treatment lamp capable of sensing distance
By using laser sensors to detect distances in TDP treatment lamps and using heat insulation plates to isolate heat, the problems of inaccurate distance measurement and heat impact are solved, and safe and effective treatment effects are achieved.
Patent Information
- Application Number
- CN202422051541.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-23
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-08-23
AI Technical Summary
When used, it is difficult to accurately measure the distance from the patient, resulting in too close or too far, resulting in skin burns or poor treatment effect. At the same time, the high temperature of the lamp head affects the performance and measurement accuracy of the laser sensor.
The distance is detected by a laser sensor, and the TDP lamp head and laser sensor are isolated by a heat insulation plate to avoid heat influence, set upper and lower limit thresholds to ensure that the distance is within the appropriate range, and the light shield prevents laser from being triggered by mistake.
Accurate detection of patient distances is achieved to avoid burns and poor treatment effects, while protecting the performance and life of the laser sensor to ensure a safe and reliable treatment process.
Smart Images

Figure CN223170191U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of medical devices, and particularly relates to a TDP treatment lamp capable of sensing distance. Background Art
[0002] The TDP treatment lamp is a far-infrared physiotherapy lamp used to treat arthritis, muscle pain and other pain-related diseases. When using the TDP treatment lamp, it is necessary to control the distance between it and the patient to avoid skin burns or poor treatment effects caused by the distance between the TDP treatment lamp and the patient being too close or too far. The optimal distance between the TDP treatment lamp and the patient is within the range of 30 cm to 50 cm. The existing TDP treatment lamps are not convenient for accurately measuring the distance between the patient and the lamp head during use, and it is easy to have the situation that the TDP treatment lamp is too far or too close to the patient. Moreover, when the TDP treatment lamp is in use, the temperature around the lamp head is relatively high. When there are many patients and the interval time between the closing and opening of the TDP treatment lamp is short, it is also not convenient to manually measure the distance between the lamp head and the next patient during the adjustment process. Content of the Utility Model
[0003] The utility model provides a TDP treatment lamp capable of sensing distance, which has the characteristics of detecting the distance between the TDP lamp head and the patient through a laser sensor to avoid burns or poor treatment effects on the patient caused by the distance between the TDP lamp head and the patient being too close or too far, and isolating between the TDP lamp head and the laser sensor through a heat insulation plate to avoid the situation that the performance, measurement accuracy and service life of the laser sensor are reduced due to the heat emitted by the TDP lamp head.
[0004] The utility model provides the following technical solutions: including a movable support base, a control panel I, an adjustable support arm, a TDP lamp head, a laser sensor and a control panel II, characterized in that: a fixed rod is provided at the rear side of the TDP lamp head, one end of the fixed rod is provided with a connecting rod, the end of the connecting rod far from the fixed rod is provided with a connecting frame, the connecting frame includes a light-shielding plate, a fixing plate and a connecting plate, the fixing plate is parallel to the light-shielding plate and the fixing plate is parallel to the front side of the TDP lamp head, a distance detection component is damped and slid between the light-shielding plate and the fixing plate, the distance detection component includes a heat insulation plate, the laser sensor and the control panel II, a groove is opened on the side of the heat insulation plate far from the fixing plate, the laser sensor is located inside the groove, the control panel II is located on one side of the heat insulation plate, and an adjusting plate is provided on one side of the heat insulation plate.
[0005] Wherein, the fixed rod is parallel to the front side of the TDP lamp head, and the connecting rod is perpendicular to the fixed rod.
[0006] Wherein, both the light shielding plate and the fixing plate are fixedly connected to the connecting plate. Two damping grooves I are formed in the light shielding plate, and two damping grooves II are formed in the fixing plate. Two connecting blocks are respectively arranged on both sides of the heat insulation plate, and several connecting blocks are respectively slidably connected to the damping grooves I and the damping grooves II.
[0007] Wherein, a damping connection seat is arranged on one side of the heat insulation plate, and the adjusting plate is rotatably connected to the damping connection seat.
[0008] Wherein, a through groove is formed in the connecting plate, and the adjusting plate is slidably connected to the through groove.
[0009] The beneficial effects of the utility model are as follows: When the distance detection component is translated to the front side of the TDP lamp head, the distance between the TDP lamp head and the patient can be detected by the laser sensor, so as to avoid the situation that the patient is burned or the treatment effect is poor due to the distance between the TDP lamp head and the patient being too close or too far. The heat insulation plate can isolate between the TDP lamp head and the laser sensor, avoiding the situation that the performance, measurement accuracy and service life of the laser sensor are reduced due to the heat emitted by the TDP lamp head. When the distance detection component is translated to the inner side of the connecting frame, the light shielding plate can shield the laser sensor, avoiding the problem that the laser sensor emits laser without preparation due to accidental touch and causing adverse effects on the human body.
[0010] Parts not involved in the device are the same as the prior art or can be implemented by using the prior art. Description of the Drawings
[0011] Figure 1 It is a schematic side view structure diagram of the utility model;
[0012] Figure 2 It is a schematic dynamic diagram of the movement of the distance detection component and the adjusting plate in the utility model;
[0013] Figure 3 It is a schematic three-dimensional structure diagram of the connecting frame and the distance detection component in the utility model;
[0014] Figure 4 It is a schematic three-dimensional structure diagram of the connecting frame in the utility model;
[0015] In the figure: 1. Movable support base; 11. Control panel 1; 12. Adjustable support arm; 2. TDP lamp head; 21. Fixed rod; 211. Connecting rod; 3. Connecting frame; 31. Light shield; 311. Damping groove 1; 32. Fixed plate; 321. Damping groove 2; 33. Connecting plate; 331. Through groove; 4. Distance detection component; 41. Heat insulation plate; 411. Groove; 412. Connecting block; 413. Damping connection seat; 414. Adjusting plate; 42. Laser sensor; 43. Control panel 2. Detailed implementation mode
[0016] Please refer to Figures 1-4 , the present utility model provides the following technical solutions: including a movable support base 1, a control panel 11, an adjustable support arm 12, a TDP lamp head 2, a laser sensor 42 and a control panel 2 43, characterized in that: a fixed rod 21 is provided at the rear side of the TDP lamp head 2, a connecting rod 211 is provided at one end of the fixed rod 21, a connecting frame 3 is provided at the end of the connecting rod 211 away from the fixed rod 21, the connecting frame 3 includes a light shield 31, a fixed plate 32 and a connecting plate 33, the fixed plate 32 is parallel to the light shield 31 and is parallel to the front side of the TDP lamp head 2, a distance detection component 4 is slidably damped between the light shield 31 and the fixed plate 32, the distance detection component 4 includes a heat insulation plate 41, a laser sensor 42 and a control panel 2 43, a groove 411 is opened on the side of the heat insulation plate 41 away from the fixed plate 32, the laser sensor 42 is located inside the groove 411, the control panel 2 43 is located on one side of the heat insulation plate 41, and an adjusting plate 414 is provided on one side of the heat insulation plate 41.
[0017] In this implementation: It includes a movable support base 1, a first control panel 11, an adjustable support arm 12, a TDP lamp head 2, a laser sensor 42, and a second control panel 43. The fixed rod 21 is connected to the top of the movable support base 1, and the first control panel 11 is fixedly connected to one side of the movable support base 1. The TDP lamp head 2 is connected to one end of the adjustable support arm 12. The switch of the TDP lamp head 2 and the like can be controlled through the first control panel 11, and the switch of the laser sensor 42 and the upper and lower limit thresholds of the preset distance can be adjusted through the second control panel 43. There is a fixed rod 21 at the rear side of the TDP lamp head 2. The fixed rod 21 is fixedly connected to the TDP lamp head 2 and is far from the adjustable support arm 12. One end of the fixed rod 21 is provided with a connecting rod 211. The connecting rod 211 is fixedly connected to the fixed rod 21. One end of the connecting rod 211 far from the fixed rod 21 is provided with a connecting frame 3. The connecting frame 3 includes a light-shielding plate 31, a fixing plate 32, and a connecting plate 33. The fixing plate 32 is fixedly connected to one end of the connecting rod 211 far from the fixed rod 21 and is perpendicular to the connecting rod 211. The light-shielding plate 31 has a light-shielding effect. Therefore, the laser of the laser sensor 42 can be blocked by the light-shielding plate 31. The fixing plate 32 is parallel to the light-shielding plate 31 and is parallel to the front side of the TDP lamp head 2. A distance detection component 4 is slidably damped between the light-shielding plate 31 and the fixing plate 32. Since both the light-shielding plate 31 and the fixing plate 32 are parallel to the front side of the TDP lamp head 2, the distance detection component 4 is also parallel to the front side of the TDP lamp head 2. The distance detection component 4 includes a heat-insulating plate 41, a laser sensor 42, and a second control panel 43. The thickness of the heat-insulating plate 41 matches the size of the gap between the light-shielding plate 31 and the fixing plate 32. When the distance detection component 4 slides to the front side of the TDP lamp head 2, the heat-insulating plate 41 will block the front side of the TDP lamp head 2. A groove 411 is opened on the side of the heat-insulating plate 41 far from the fixing plate 32. The laser sensor 42 is located inside the groove 411. Since the TDP lamp head 2 often needs to continuously treat different patients during use, and the distance between the TDP lamp head 2 and the patient needs to be measured before each patient's treatment. However, since the TDP lamp head 2 generates heat during use and the cooling speed after the TDP lamp head 2 is turned off is slow, if the laser sensor 42 is directly moved to the front side of the TDP lamp head 2, it is easy to cause the situation that the laser sensor 42 is affected by heat. And the heat-insulating effect of the heat-insulating plate 41 can avoid the situation that the performance, measurement accuracy, and service life of the laser sensor 42 are decreased due to the heat emitted by the TDP lamp head 2. The laser sensor 42 measures the distance of an object by emitting a laser beam and receiving the reflected light. During use, when the laser sensor 42 is located on the front side of the TDP lamp head 2, by setting the upper and lower limit thresholds of the distance measured by the laser sensor 42, a prompt sound is emitted when the distance between the TDP lamp head 2 and the treatment site of the patient is too far or too close.When treating with the TDP lamp head 2, it is necessary to keep the distance between the TDP lamp head 2 and the patient's treatment site within the range of 30 cm to 50 cm. When setting the upper and lower limit thresholds of the laser sensor 42, the thickness of the distance detection component 4 needs to be subtracted from the values of 30 cm and 50 cm, so as to reduce the influence of the thickness of the distance detection component 4 on the distance between the TDP lamp head 2 and the patient. The control panel two 43 is located on one side of the heat insulation plate 41. An adjusting plate 414 is provided on one side of the heat insulation plate 41. Through the adjusting plate 414, it is convenient to adjust the position of the distance detection component 4, so that the distance detection component 4 can be translated to the front side of the TDP lamp head 2 or to the inside of the connecting frame 3. When the distance detection component 4 is translated to the front side of the TDP lamp head 2, the distance between the TDP lamp head 2 and the patient can be detected by the laser sensor 42, avoiding the situation that the patient is burned or the treatment effect is poor due to the too close or too far distance between the TDP lamp head 2 and the patient. And through the heat insulation plate 41, the TDP lamp head 2 and the laser sensor 42 can be isolated, avoiding the situation that the performance, measurement accuracy and service life of the laser sensor 42 are reduced due to the heat emitted by the TDP lamp head 2. When the distance detection component 4 is translated to the inside of the connecting frame 3, the laser sensor 42 can be blocked by the light shielding plate 31, avoiding the problem that the laser sensor 42 emits laser without preparation due to accidental touch and causing adverse effects on the human body.,
[0018] The fixed rod 21 is parallel to the front side of the TDP lamp head 2, and the connecting rod 211 is perpendicular to the fixed rod 21; the connecting rod 211 is located on one side of the TDP lamp head 2 and does not contact the TDP lamp head 2. Since the fixing plate 32 is perpendicular to the connecting rod 211, the fixing plate 32 is parallel to the front side of the TDP lamp head 2.
[0019] Both the light shielding plate 31 and the fixing plate 32 are fixedly connected to the connecting plate 33. Two damping grooves one 311 are opened on the light shielding plate 31, and two damping grooves two 321 are opened on the fixing plate 32. Two connecting blocks 412 are respectively provided on both sides of the heat insulation plate 41. A plurality of connecting blocks 412 are respectively slidably connected to the damping groove one 311 and the damping groove two 321; through the connection of the connecting blocks 412 with the damping groove one 311 and the damping groove two 321, the distance detection component 4 can be translated on the front side of the connecting frame 3 and the TDP lamp head 2.
[0020] One side of the heat insulation plate 41 is provided with a damping connection seat 413, and the adjusting plate 414 is rotatably connected to the damping connection seat 413; when the distance detection assembly 4 is translated to the inner side of the connecting frame 3, the adjusting plate 414 will be located on the side of the connecting plate 33 away from the distance detection assembly 4. By rotating the adjusting plate 414 to make it perpendicular to the heat insulation plate 41, the distance detection assembly 4 can be limited by the adjusting plate 414. When the adjusting plate 414 rotates to be parallel to the light shielding plate 31, the distance detection assembly 4 can be pushed and pulled by the adjusting plate 414 to make it slide.
[0021] A through groove 331 is formed in the connecting plate 33, and the adjusting plate 414 is slidably connected to the through groove 331; the through groove 331 can prevent the connecting plate 33 from interfering with the movement of the adjusting plate 414.
[0022] The working principle and usage process of the present utility model: When in use, first, the distance detection assembly 4 needs to be pushed by the adjusting plate 414 to move it to the front side of the TDP lamp head 2. When the laser sensor 42 is located on the front side of the TDP lamp head 2, by setting the upper and lower limit thresholds of the distance measured by the laser sensor 42, the laser sensor 42 can emit a prompt sound when the distance between the TDP lamp head 2 and the treatment site of the patient is too far or too close. When treating with the TDP lamp head 2, the distance between the TDP lamp head 2 and the treatment site of the patient needs to be within the range of 30 cm to 50 cm. When setting the upper and lower limit thresholds of the laser sensor 42, the thickness of the distance detection assembly 4 needs to be subtracted from the values of 30 cm and 50 cm, so as to reduce the influence of the thickness of the distance detection assembly 4 on the distance between the TDP lamp head 2 and the patient. Then, the laser sensor 42 can measure whether the distance between the TDP lamp head 2 and the patient is too far or too close. At the same time, the heat insulation plate 41 can isolate between the TDP lamp head 2 and the laser sensor 42, avoiding the situation that the heat emitted by the TDP lamp head 2 causes the performance, measurement accuracy, and service life of the laser sensor 42 to decline. When the distance detection assembly 4 is translated to the inner side of the connecting frame 3, the light shielding plate 31 can shield the laser sensor 42, avoiding the problem that the laser sensor 42 emits laser without preparation due to accidental touch and causing adverse effects on the human body.
Claims
1. A TDP therapeutic lamp capable of sensing distance, comprising a movable support base (1), a control panel I (11), an adjustable support arm (12), a TDP lamp head (2), a laser sensor (42) and a control panel II (43), characterized in that: A fixing rod (21) is provided at the rear side of the TDP lamp head (2). One end of the fixing rod (21) is provided with a connecting rod (211). A connecting frame (3) is provided at the end of the connecting rod (211) away from the fixing rod (21). The connecting frame (3) includes a light-shielding plate (31), a fixing plate (32) and a connecting plate (33). The fixing plate (32) is parallel to the light-shielding plate (31), and the fixing plate (32) is parallel to the front side of the TDP lamp head (2). A distance detection component (4) is slidably damped between the light-shielding plate (31) and the fixing plate (32). The distance detection component (4) includes a heat-insulating plate (41), a laser sensor (42) and a control panel II (43). A groove (411) is formed on the side of the heat-insulating plate (41) away from the fixing plate (32). The laser sensor (42) is located inside the groove (411). The control panel II (43) is located on one side of the heat-insulating plate (41). An adjusting plate (414) is provided on one side of the heat-insulating plate (41).
2. The TDP therapeutic lamp capable of sensing distance according to claim 1, characterized in that: The fixing rod (21) is parallel to the front side of the TDP lamp head (2), and the connecting rod (211) is perpendicular to the fixing rod (21).
3. The TDP therapeutic lamp capable of sensing distance according to claim 2, characterized in that: Both the light-shielding plate (31) and the fixing plate (32) are fixedly connected to the connecting plate (33). Two damping grooves I (311) are formed on the light-shielding plate (31). Two damping grooves II (321) are formed on the fixing plate (32). Two connecting blocks (412) are respectively provided on both sides of the heat-insulating plate (41). The plurality of connecting blocks (412) are respectively slidably connected to the damping groove I (311) and the damping groove II (321).
4. A TDP therapeutic lamp capable of sensing distance according to claim 3, characterized in that: A damping connecting seat (413) is provided on one side of the heat-insulating plate (41). The adjusting plate (414) is rotatably connected to the damping connecting seat (413).
5. The TDP therapeutic lamp capable of sensing distance according to claim 4, wherein: A through groove (331) is formed on the connecting plate (33). The adjusting plate (414) is slidably connected to the through groove (331).