Full-automatic protection feedback infrared and red light therapeutic instrument

By using the polygonal fixing cover and adjustment device of the fully automatic protective feedback infrared red light therapy instrument, the problems of improper temperature control and uneven irradiation of traditional infrared therapy instruments are solved. It realizes multi-angle and multi-power infrared irradiation and temperature monitoring, thereby improving the treatment effect and limb irradiation coverage.

CN121606833APending Publication Date: 2026-03-06ZHEJIANG YUANXIANG MEDICAL EQUIP CO LTD
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Patent Information

Application Number
CN202610114111.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-28
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

Traditional infrared therapy devices suffer from problems such as improper temperature control leading to burns, difficulty in accurately and evenly distributing irradiation doses, inability to adjust parameters in real time according to the treatment area, and insufficient irradiation range for specific areas, making them particularly unsuitable for irradiating slender limbs as a whole.

Method used

A fully automatic protective feedback infrared red light therapy device was designed. It adopts a polygonal fixing cover and adjustment device. Through the adjustment component and temperature measuring component, it can realize multi-angle and multi-power infrared irradiation. Combined with the design of magnetic suction ring and rotating seat, it can ensure the accuracy of irradiation and temperature monitoring. The fixing device can achieve limb coverage without dead angles through fixing rod and sliding sleeve.

Benefits of technology

It enables diversified adjustment of infrared irradiation, ensuring real-time temperature feedback and targeted irradiation during treatment, thereby improving treatment efficacy, especially the coverage and stability of irradiation for slender limbs.

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Abstract

The invention relates to the technical field of infrared and red light therapeutic instruments, and particularly discloses a full-automatic protection feedback infrared and red light therapeutic instrument which comprises an equipment support, the top of the equipment support is rotationally connected with a fixed bottom frame through a rotating shaft, and the bottom of the fixed bottom frame is fixedly connected with a fixed bottom plate through a support. An adjusting device is fixedly connected to the top of the fixing bottom plate, a main irradiation lamp is fixedly connected to the bottom of the penetrating type electrode, an auxiliary irradiation lamp is fixedly connected to the position, located on one side of the main irradiation lamp, of the bottom of the polygonal fixing cover, and a magnetic attraction ring is fixedly connected to the top of the polygonal fixing cover. The side face of the magnetic attraction ring is fixedly connected with a rotary seat, the center of the top of the polygonal fixing cover is fixedly connected with an adjusting assembly, the bottom of the polygonal fixing cover is fixedly connected with a temperature measuring assembly, and the full-automatic protection feedback infrared and red light therapeutic apparatus achieves the purposes of wrapping irradiation and long-time irradiation.
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Description

Technical Field

[0001] This invention relates to the field of infrared red light therapy technology, specifically a fully automatic protective feedback infrared red light therapy device. Background Technology

[0002] Traditional infrared therapy primarily utilizes its warming effect to promote local blood circulation and relieve pain and muscle spasms. However, improper temperature control can easily lead to burns. Modern research focuses more on the non-thermal effects of specific wavelengths of infrared light (such as red light and near-infrared light), which can directly act on cellular mitochondria, promoting tissue repair and inhibiting inflammation. This does not require high temperatures, avoiding the risk of burns. Prolonged operation of the device or its close proximity to the body can cause a sustained increase in local temperature, easily resulting in low-temperature burns. Operators also need to manually move the device to prevent uneven application and are prone to fatigue. Manual operation makes it difficult to ensure the accuracy and uniformity of the irradiation dose (energy), affecting the treatment effect. Traditional devices typically only have heating or basic irradiation functions and cannot dynamically adjust parameters based on the real-time status of the treatment site (such as temperature and blood oxygenation).

[0003] According to patent number CN120022538A, an intelligent adjustable red light therapy device, through the cooperation between the top processing box and the various components connected to it, can spray the corresponding medicine onto the patient's affected area during red light therapy. By adjusting the temperature of the circulating airflow inside the sealed telescopic sleeve, the temperature of the affected area is kept within a suitable range. In this way, the temperature regulation and red light irradiation help promote the absorption rate of the medicine and the self-recovery rate of the patient's affected area, thereby effectively improving the effect of the red light therapy device. However, this device lacks comprehensive irradiation of the irradiation location, the irradiation range of specific parts is insufficient, and it is not convenient for irradiating slender limbs as a whole. Summary of the Invention

[0004] To solve the above technical problems, the present invention is achieved through the following technical solution: a fully automatic protective feedback infrared red light therapy device, including a device support, a fixed base frame rotatably connected to the top of the device support via a rotating shaft, a fixed base plate fixedly connected to the bottom of the fixed base frame via a bracket, an adjustment device fixedly connected to the top of the fixed base plate, a fixing device fixedly connected to the bottom of the fixed base plate, an irradiation device fixedly connected to the side of the fixed base plate, the fixing device being located at the bottom center of the fixed base plate, and the adjustment device being located at the top center of the fixed base plate;

[0005] The irradiation device includes a polygonal fixed cover. A through-type electrode is fixedly connected to the top of the polygonal fixed cover, and a main irradiation lamp is fixedly connected to the bottom of the through-type electrode. A secondary irradiation lamp is fixedly connected to the bottom of the polygonal fixed cover at a position next to the main irradiation lamp. A magnetic ring is fixedly connected to the top of the polygonal fixed cover, and a rotating base is fixedly connected to the side of the magnetic ring. An adjustment component is fixedly connected to the center of the top of the polygonal fixed cover, and a temperature measuring component is fixedly connected to the bottom of the polygonal fixed cover. The side of the rotating base is fixedly connected to the side of a fixed base plate. The equipment bracket and fixed base support the equipment. When the adjustment device is activated, the drive shaft of the adjustment device rotates, causing the adjustment component to move. The movement of the adjustment component causes the polygonal fixed cover to move along the side of the fixed base plate. During the movement of the polygonal fixed cover, the rotating base ensures that the polygonal fixed cover... The fixed cover rotates along the side of the fixed base plate, causing the polygonal fixed cover to present different angles. The drive of the adjustment device drives multiple sets of adjustment components to move synchronously, thereby causing multiple sets of polygonal fixed covers to change the irradiation angle synchronously, thus achieving different irradiation ranges. The main irradiation lamp and the auxiliary irradiation lamp are activated, and the main irradiation lamp and the auxiliary irradiation lamp irradiate with infrared rays of different powers. The movement of the polygonal fixed cover causes the main irradiation lamp and the auxiliary irradiation lamp to irradiate the irradiation position. The through-type electrode sets up to supply power to the main irradiation lamp and the auxiliary irradiation lamp. The temperature measuring component synchronously receives the infrared rays from the main irradiation lamp and the auxiliary irradiation lamp, thereby monitoring the irradiation power of the main irradiation lamp and the auxiliary irradiation lamp in real time, and thus detecting the temperature of the irradiated object surface, which facilitates real-time temperature detection. The converging design of the polygonal fixed cover facilitates the synchronous focused irradiation of multiple sets of main irradiation lamps and auxiliary irradiation lamps, which facilitates targeted irradiation.

[0006] Preferably, the rotary seat includes a rotating bracket, a magnetic suction plate is fixedly connected to the bottom of the rotating bracket, a fixed shaft is fixedly connected to the side of the rotating bracket, a torsion spring is sleeved and fixedly connected to the side of the fixed shaft, a fixed seat is sleeved and rotatably connected to the side of the fixed shaft, the side of the fixed seat is fixedly connected to the side of the fixed base plate, the end of the torsion spring away from the fixed shaft is fixedly connected to the side of the fixed seat, and the bottom of the magnetic suction plate is in contact with the side of the magnetic ring.

[0007] Preferably, the adjustment assembly includes a rotating seat, a brake bar rotatably connected to the top of the rotating seat via a rotating shaft, a reset spring fixedly connected to the side of the brake bar, a brake ring rotatably connected to the top of the rotating seat at a position on one side of the rotating seat, a sliding groove adapted to the brake bar being formed on the inner wall side of the brake ring, a connecting rod rotatably connected to the top of the rotating seat via a rotating shaft, a connecting seat rotatably connected to the end of the connecting rod away from the rotating seat via a rotating shaft, a side of the connecting seat being fixedly connected to the side of the adjustment device, and a side of the brake ring being fixedly connected to the top of the polygonal fixing cover.

[0008] Preferably, the temperature measuring component includes a fixed base, a secondary screw fixedly connected to the bottom of the fixed base, a sliding sleeve threadedly connected to the side of the secondary screw, a first spring slidably connected to the side of the sliding sleeve, a fixed frame fixedly connected to the bottom of the sliding sleeve, a temperature measuring tube fixedly connected to the bottom of the inner wall of the fixed frame, the top of the fixed frame contacting the bottom of the first spring, and the top of the fixed base fixedly connected to the top of the inner wall of the polygonal fixed cover. When irradiating at different power levels, the polygonal fixed cover is rotated to adjust the distance between the main and secondary irradiation lamps of different power levels and the irradiated object. Different distances are used to irradiate different areas with different power. During adjustment, first, the side of the magnetic ring is detached from the side of the magnetic plate and rotated. The rotation of the polygonal fixing cover causes the brake ring to rotate. The rotating brake ring presses against the side of the brake strip, causing the brake strip to rotate along the top of the rotating seat. The rotation of the brake strip deforms the reset spring, causing the spring force to rotate the brake strip back, locking the reset spring into the inner groove of the brake ring. The reset spring keeps the rotating seat and brake ring in a fixed position after adjustment, facilitating the fixing of the irradiation angle. The rotating design of the connecting rod and connecting seat facilitates the connecting rod driving the rotating seat during adjustment. The device moves synchronously under its drive. After the polygonal fixed cover has rotated, and the polygonal fixed cover has driven the magnetic ring to rotate, the side of the magnetic ring is re-attached to the side of the magnetic plate, thus fixing the position of the polygonal fixed cover. After the polygonal fixed cover is fixed, the position of the magnetic ring is fixed by a combination of a rotating seat and a connecting rod. The magnetic ring drives the magnetic plate to move, the magnetic plate drives the rotating bracket to move, the rotating bracket drives the fixed shaft to rotate, and the rotation of the fixed shaft drives the torsion spring to rotate. The elastic force of the torsion spring facilitates the rotation of the magnetic plate, and the magnetic plate drives the magnetic ring to rotate, thus facilitating the stability of the polygonal fixed cover through the setting of the torsion spring. The position is adjusted to allow the polygonal fixing cover to be fixed in place after adjustment, facilitating synchronous irradiation at different positions and power levels with the main and auxiliary irradiation lamps. After adjusting the relative angle between the polygonal fixing cover and the fixing base plate, the fixing frame is rotated. The rotation of the fixing frame causes the sliding sleeve to rotate, which in turn rotates along the side of the auxiliary screw. This movement of the fixing frame changes the relative position of the temperature measuring tube and the fixing base, thereby increasing the distance between the temperature measuring tube and the fixing base plate. This allows for the reception of infrared rays and synchronous heating of the irradiated object, facilitating the detection of the object's temperature.

[0009] Preferably, the fixing device includes a connecting plate, a sliding tube fixedly connected to the bottom of the connecting plate, a brake plate rotatably connected to the inner wall side of the sliding tube via a rotating shaft, a brake spring fixedly connected to the side of the brake plate, a rotating plate sleeved and slidably connected to the side of the sliding tube, a fixing rod rotatably connected to the bottom of the rotating plate, anti-slip textures on the side of the fixing rod, and a fixed connection between the top of the connecting plate and the bottom of the fixing base plate.

[0010] Preferably, the rotating plate includes a sliding sleeve with a polygonal sliding hole at its top and a braking groove on its side. The sliding sleeve is fitted onto the side of the sliding tube through the polygonal sliding hole and slidably connected to the side of the sliding tube. The braking plate extends into the side of the braking groove and slidably connects to the inner wall of the braking groove. The bottom of the sliding sleeve is fixedly connected to the top of the fixing rod. When irradiating a local area, large-area irradiation often cannot achieve good results, and traditional methods are mostly single-sided irradiation. By fixing the arm or other parts to the side of the fixing rod, it is convenient for the limb to be irradiated in mid-air. After the limb is fixed by the fixing rod, multiple polygonal fixing covers provide wrapping irradiation of the limb. The design increases the friction during fixation, thus facilitating... The mechanism for fixing the limb and rotating the sliding sleeve allows multiple polygonal fixing covers to provide circumferential irradiation and heating along the periphery of the limb, ensuring thorough irradiation and enhancing the irradiation effect. The brake groove facilitates locking with the brake plate, and the brake spring rotates the brake plate along the inner wall of the sliding tube. When replacing the sliding sleeve, pressing the brake plate causes it to slide along the inner wall of the brake groove, disengaging the sliding sleeve from the side of the sliding tube. This facilitates the replacement of the sliding sleeve, allowing for the replacement of different fixing rods and limbs in different locations, thus enabling irradiation of different areas. The polygonal sliding hole design allows for easy fitting onto the side of the sliding tube, preventing the sliding sleeve from sliding.

[0011] Preferably, the adjusting device includes a motor, a main screw fixedly connected to the drive shaft of the motor, an adjusting sleeve threadedly connected to the side of the main screw, a second spring fixedly connected to the bottom of the adjusting sleeve, a stop ring fixedly connected to the top of the main screw, the top of the stop ring fixedly connected to the top of the inner wall of the fixed base, the bottom of the motor fixedly connected to the top of the fixed base plate, and the side of the adjusting sleeve fixedly connected to the side of the fixed seat. When the motor is started, the drive shaft of the motor rotates, driving the main screw, which in turn drives the adjusting sleeve to rotate. The adjusting sleeve rotates through multiple sets of connecting seats. When the action is performed, it remains stationary. The connecting seat restricts the adjusting sleeve, causing the adjusting sleeve to slide along the side of the main screw when the main screw rotates. The movement of the adjusting sleeve causes multiple sets of connecting seats to move synchronously. The movement of the connecting seats causes the connecting rod to move, the movement of the connecting rod causes the rotating seat to move, and the movement of the rotating seat causes the polygonal fixed cover to move, thereby causing multiple sets of polygonal fixed covers to move synchronously. This allows for synchronous irradiation of multiple sets of polygonal fixed covers. The second spring facilitates the adjusting sleeve to remain in a fixed position after adjustment along the main screw, thus facilitating fixed irradiation.

[0012] This invention provides a fully automatic protective feedback infrared red light therapy device. It has the following beneficial effects:

[0013] 1. This fully automatic protective feedback infrared red light therapy device is equipped with a device bracket and a fixed base for support. After the adjustment device is activated, its drive shaft rotates, driving the connected adjustment components to perform a pulling action. The pulling of the adjustment components further drives the polygonal fixed cover to move along the side of the fixed base plate. During this movement, relying on the setting of the rotary seat, the polygonal fixed cover can simultaneously rotate along the side of the fixed base plate, thus flexibly presenting various tilt angles. The adjustment device can simultaneously drive multiple sets of adjustment components, thereby driving multiple sets of polygonal fixed covers to uniformly change the irradiation angle, thereby achieving diversified adjustment of the irradiation range. When the main irradiation lamp and the auxiliary irradiation lamp are activated, they can emit infrared light of different powers respectively. The position movement of the polygonal fixed cover will synchronously guide the main and auxiliary irradiation lamps to accurately irradiate the target area. The device provides stable power to all irradiation lamps through a through-hole electrode. At the same time, the temperature measuring component will synchronously receive the infrared signal from the irradiation lamp, monitor its irradiation power in real time, and detect the temperature change of the irradiated object surface accordingly, realizing real-time temperature feedback during the treatment process. The polygonal fixed cover adopts a convergent structural design, which helps to simultaneously focus the light from multiple main and auxiliary illumination lamps, thereby achieving high-intensity targeted illumination of specific areas.

[0014] 2. This fully automatic protective feedback infrared red light therapy instrument is equipped with a device bracket and a fixed base for support. When the adjustment device is activated, the distance between the main and auxiliary irradiation lamps of different power and the irradiated object changes as the polygonal fixed cover rotates, thereby adjusting the irradiation intensity and area. Specifically, during adjustment, the magnetic ring and magnetic plate are first separated and rotated. The rotation of the polygonal fixed cover drives the brake ring to rotate, which in turn squeezes the side of the brake strip, forcing the brake strip to rotate along the top of the rotating seat. This action causes the reset spring to deform, and its rebound force drives the brake strip back to its original position, allowing the reset spring to engage in the groove on the inner wall of the brake ring. The reset spring ensures that the rotating seat and brake ring remain stable after adjustment, thus fixing the irradiation angle. The rotational design between the connecting rod and the connecting seat allows the connecting rod to drive the rotating seat to move synchronously under the drive of the adjustment device. After the polygonal fixed cover rotates to its position, the magnetic ring is re-attached to the magnetic plate to lock its position. Furthermore, the magnetic ring can be further fixed by the linkage mechanism formed by the rotating seat and the connecting rod. When the magnetic ring moves the magnetic plate, the magnetic plate drives the rotating bracket, causing the fixed shaft to rotate and compress the torsion spring. The spring force of the torsion spring helps the magnetic plate return to its original position, thus stabilizing the position of the polygonal fixing cover and ensuring it remains fixed after adjustment. This allows for synchronous irradiation at different positions and power levels by the main and auxiliary irradiation lamps. After adjusting the relative angle between the polygonal fixing cover and the fixed base plate, the fixing frame can also be rotated. The rotation of the fixing frame causes the sliding sleeve to rotate, resulting in axial sliding along the side of the auxiliary screw via threaded transmission. The movement of the fixing frame changes the relative position between the temperature measuring tube and the fixed base, thereby adjusting the distance between the temperature measuring tube and the fixed base plate to better receive infrared signals and achieve synchronous heating and temperature monitoring of the irradiated object.

[0015] 3. This fully automatic protective feedback infrared red light therapy device is equipped with a fixing rod. Traditional large-area or single-sided irradiation sometimes has limited effectiveness. By fixing the arm or other body parts to the side of the fixing rod, the limb can be irradiated in a suspended state. After the limb is fixed by the fixing rod, multiple sets of polygonal fixing covers can provide wrap-around, circumferential irradiation and heating, achieving comprehensive coverage and significantly improving the treatment effect. The surface of the fixing rod is designed to increase friction to enhance fixation stability. The fixing rod and the sliding sleeve are rotatably connected, facilitating circumferential heating of the limb by multiple sets of polygonal fixing covers. The brake groove design can cooperate with the brake plate for locking, and the elasticity of the brake spring allows the brake plate to rotate along the inner wall of the sliding tube. When it is necessary to replace the sliding sleeve, pressing the brake plate and sliding it along the inner wall of the brake groove separates the sliding sleeve from the sliding tube, facilitating the replacement of fixing rods of different specifications to meet the treatment needs of different limb parts. The polygonal sliding hole design can be fitted onto the side of the sliding tube to effectively prevent the sliding sleeve from accidentally sliding during use.

[0016] 4. This fully automatic protective feedback infrared red light therapy instrument is equipped with a main screw. When the motor is started, its drive shaft rotates the main screw. The rotation of the main screw drives the adjusting sleeve, which remains stationary due to the linkage of multiple sets of connecting seats. Therefore, the restriction of the adjusting sleeve by the connecting seats causes the adjusting sleeve to slide axially along its side when the main screw rotates. The movement of the adjusting sleeve synchronously drives the movement of multiple sets of connecting seats, which in turn drive the rotating seat to move via connecting rods, ultimately driving all polygonal fixed covers to move synchronously, achieving linkage adjustment of multiple irradiation units. The second spring ensures that the adjusting sleeve remains stably positioned after being adjusted to its position along the main screw, thus facilitating continuous fixed irradiation. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the fully automatic protection feedback infrared red light therapy device of the present invention;

[0018] Figure 2 This is a schematic diagram of the irradiation device of the present invention;

[0019] Figure 3 This is a schematic diagram of the rotary seat structure of the present invention;

[0020] Figure 4 This is a schematic diagram of the adjusted component structure for the present invention;

[0021] Figure 5 This is a schematic diagram of the temperature measuring component structure of the present invention;

[0022] Figure 6 This is a schematic diagram of the fixing device structure of the present invention;

[0023] Figure 7 This is a schematic diagram of the rotating plate structure of the present invention;

[0024] Figure 8 This is a schematic diagram of the adjustment device structure of the present invention.

[0025] In the diagram: 1. Equipment bracket; 2. Fixed base frame; 3. Fixed base plate; 4. Adjustment device; 5. Fixing device; 6. Irradiation device; 601. Polygonal fixing cover; 602. Through-type electrode; 603. Main irradiation lamp; 604. Auxiliary irradiation lamp; 605. Magnetic ring; 607. Rotary seat; 608. Adjustment assembly; 609. Temperature measuring assembly; 6071. Rotating bracket; 6072. Magnetic plate; 6073. Fixed shaft; 6074. Torsion spring; 6075. Fixed seat; 6081. Rotating seat; 6082. Brake bar; 6083. Reset spring; 6084. Brake ring; 6085, Connecting rod; 6086, Connecting seat; 6091, Fixed base; 6092, Secondary screw; 6093, Sliding sleeve; 6094, First spring; 6095, Fixed frame; 6096, Temperature measuring tube; 501, Connecting plate; 502, Sliding tube; 503, Brake plate; 504, Brake spring; 505, Rotating plate; 506, Fixed rod; 507, Anti-slip texture; 5051, Sliding sleeve; 5052, Polygonal sliding hole; 5053, Brake groove; 401, Motor; 402, Main screw; 403, Adjusting sleeve; 404, Second spring; 405, Stop ring. Detailed Implementation

[0026] 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.

[0027] For the first embodiment, please refer to... Figures 1-2 The present invention provides a technical solution: a fully automatic protective feedback infrared red light therapy device, including a device support 1, a fixed base frame 2 rotatably connected to the top of the device support 1 via a rotating shaft, a fixed base plate 3 fixedly connected to the bottom of the fixed base frame 2 via a bracket, an adjustment device 4 fixedly connected to the top of the fixed base plate 3, a fixing device 5 fixedly connected to the bottom of the fixed base plate 3, and an irradiation device 6 fixedly connected to the side of the fixed base plate 3. The fixing device 5 is located at the bottom center of the fixed base plate 3, and the adjustment device 4 is located at the top center of the fixed base plate 3.

[0028] The irradiation device 6 includes a polygonal fixed cover 601. A through electrode 602 is fixedly connected to the top of the polygonal fixed cover 601. A main irradiation lamp 603 is fixedly connected to the bottom of the through electrode 602. An auxiliary irradiation lamp 604 is fixedly connected to the bottom of the polygonal fixed cover 601 at a position next to the main irradiation lamp 603. A magnetic ring 605 is fixedly connected to the top of the polygonal fixed cover 601. A rotary seat 607 is fixedly connected to the side of the magnetic ring 605. An adjustment component 608 is fixedly connected to the center of the top of the polygonal fixed cover 601. A temperature measuring component 609 is fixedly connected to the bottom of the polygonal fixed cover 601. The side of the rotary seat 607 is fixedly connected to the side of the fixed base plate 3.

[0029] The equipment bracket 1 and the fixed base frame 2 support the equipment. The adjustment device 4 is activated, and its drive shaft rotates, causing the adjustment assembly 608 to move. This movement of the adjustment assembly 608 moves the polygonal fixed cover 601 along the side of the fixed base plate 3. During this movement, the rotary seat 607 causes the polygonal fixed cover 601 to rotate along the side of the fixed base plate 3, resulting in different angles for the polygonal fixed cover 601. The drive of the adjustment device 4 drives multiple sets of adjustment assemblies 608 to move synchronously, thereby causing multiple sets of polygonal fixed covers 601 to simultaneously change their illumination angles, achieving different illumination ranges. The main illumination lamp 603 and the auxiliary illumination lamp 604 are then activated. Spotlight 603 and auxiliary irradiation lamp 604 irradiate with infrared rays of different power. The movement of polygonal fixing cover 601 drives the main irradiation lamp 603 and auxiliary irradiation lamp 604 to irradiate the irradiated position. The through electrode 602 provides power to the main irradiation lamp 603 and auxiliary irradiation lamp 604. Temperature measuring component 609 synchronously receives infrared rays from the main irradiation lamp 603 and auxiliary irradiation lamp 604, thereby monitoring the irradiation power of the main irradiation lamp 603 and auxiliary irradiation lamp 604 in real time, and thus detecting the temperature of the irradiated object surface, which facilitates real-time temperature detection. The converging design of polygonal fixing cover 601 facilitates synchronous focused irradiation by multiple sets of main irradiation lamps 603 and auxiliary irradiation lamps 604, which facilitates targeted irradiation.

[0030] For the second embodiment, please refer to... Figures 1-5Based on the first embodiment, the present invention provides a technical solution: the rotary seat 607 includes a rotating bracket 6071, a magnetic suction plate 6072 is fixedly connected to the bottom of the rotating bracket 6071, a fixed shaft 6073 is fixedly connected to the side of the rotating bracket 6071, a torsion spring 6074 is sleeved and fixedly connected to the side of the fixed shaft 6073, a fixed seat 6075 is sleeved and rotatably connected to the side of the fixed shaft 6073, the side of the fixed seat 6075 is fixedly connected to the side of the fixed base plate 3, one end of the torsion spring 6074 away from the fixed shaft 6073 is fixedly connected to the side of the fixed seat 6075, and the bottom of the magnetic suction plate 6072 is in contact with the side of the magnetic ring 605.

[0031] The adjustment assembly 608 includes a rotating seat 6081. A brake strip 6082 is rotatably connected to the top of the rotating seat 6081 via a rotating shaft. A reset spring 6083 is fixedly connected to the side of the brake strip 6082. A brake ring 6084 is rotatably connected to the top of the rotating seat 6081 at a position on one side of the rotating seat 6081. A groove adapted to the brake strip 6082 is opened on the inner wall side of the brake ring 6084. A connecting rod 6085 is rotatably connected to the top of the rotating seat 6081 via a rotating shaft. A connecting seat 6086 is rotatably connected to the end of the connecting rod 6085 away from the rotating seat 6081 via a rotating shaft. The side of the connecting seat 6086 is fixedly connected to the side of the adjustment device 4. The side of the brake ring 6084 is fixedly connected to the top of the polygonal fixing cover 601.

[0032] The temperature measuring component 609 includes a fixed base 6091, a secondary screw 6092 fixedly connected to the bottom of the fixed base 6091, a sliding sleeve 6093 threadedly connected to the side of the secondary screw 6092, a first spring 6094 slidably connected to the side of the sliding sleeve 6093, a fixed frame 6095 fixedly connected to the bottom of the sliding sleeve 6093, a temperature measuring tube 6096 fixedly connected to the bottom of the inner wall of the fixed frame 6095, the top of the fixed frame 6095 contacting the bottom of the first spring 6094, and the top of the fixed base 6091 fixedly connected to the top of the inner wall of the polygonal fixed cover 601.

[0033] When irradiating with different power, a rotating polygonal fixing cover 601 is used. After the polygonal fixing cover 601 rotates, the main irradiation lamp 603 and the auxiliary irradiation lamp 604 of different power are at different distances from the irradiated object, so as to achieve different power irradiation for different areas. When adjusting, firstly, the side of the magnetic suction ring 605 is disengaged from the side of the magnetic suction plate 6072 and rotated. The rotation of the polygonal fixing cover 601 drives the brake ring 6084 to rotate. The rotation of the brake ring 6084 compresses the side of the brake strip 6082, thereby causing the brake strip 6082 to rotate along the top of the rotating seat 6081. The rotation of the brake strip 6082 deforms the reset spring 6083, thereby causing the reset spring 6083 to... The elastic force of 083 drives the brake bar 6082 to rotate, causing the reset spring 6083 to engage in the inner groove of the brake ring 6084. The reset spring 6083 keeps the rotating seat 6081 and the brake ring 6084 in a fixed position after adjustment, thus facilitating the fixing of the irradiation angle. The rotation design of the connecting rod 6085 and the connecting seat 6086 facilitates the synchronous movement of the rotating seat 6081 driven by the connecting rod 6085 under the action of the adjusting device 4. After the polygonal fixing cover 601 has rotated, and after the polygonal fixing cover 601 has driven the magnetic ring 605 to rotate, the side of the magnetic ring 605 is re-attached to the side of the magnetic plate 6072, thereby fixing the position of the polygonal fixing cover 601. After 01 is fixed, the magnetic ring 605 is fixed in position by a combination of rotating seat 6081 and connecting rod 6085. The magnetic ring 605 drives the magnetic plate 6072 to move, the magnetic plate 6072 drives the rotating bracket 6071 to move, the rotating bracket 6071 drives the fixed shaft 6073 to rotate, the rotation of the fixed shaft 6073 drives the torsion spring 6074 to rotate, the elastic force of the torsion spring 6074 facilitates the rotation of the magnetic plate 6072, the magnetic plate 6072 drives the magnetic ring 605 to rotate, thus facilitating the stabilization of the polygonal fixing cover 601 through the setting of the torsion spring 6074, thus facilitating the fixing of the polygonal fixing cover 601 in position after adjustment, thereby facilitating the coordination with the main illumination lamp 60. 3 and the auxiliary irradiation lamp 604 provide synchronous irradiation at different positions and with different power. After adjusting the relative angle between the polygonal fixed cover 601 and the fixed base plate 3, the fixed frame 6095 is rotated. The rotation of the fixed frame 6095 drives the sliding screw sleeve 6093 to rotate. The sliding screw sleeve 6093 rotates along the side of the auxiliary screw 6092, thereby driving the sliding screw sleeve 6093 to slide along the side of the auxiliary screw 6092 through the thread. The movement of the fixed frame 6095 changes the relative position of the temperature measuring tube 6096 and the fixed base 6091, thereby increasing the distance between the temperature measuring tube 6096 and the fixed base plate 3, so as to receive infrared rays and synchronously heat the irradiated object, thus facilitating the detection of the temperature of the irradiated object.

[0034] Third embodiment, please refer to Figures 1-7Based on the second embodiment, the present invention provides a technical solution: the fixing device 5 includes a connecting plate 501, a sliding tube 502 is fixedly connected to the bottom of the connecting plate 501, a brake plate 503 is rotatably connected to the inner wall side of the sliding tube 502 via a rotating shaft, a brake spring 504 is fixedly connected to the side of the brake plate 503, a rotating plate 505 is sleeved and slidably connected to the side of the sliding tube 502, a fixing rod 506 is rotatably connected to the bottom of the rotating plate 505, anti-slip texture 507 is provided on the side of the fixing rod 506, and the top of the connecting plate 501 is fixedly connected to the bottom of the fixing base plate 3.

[0035] The rotating plate 505 includes a sliding sleeve 5051. The top of the sliding sleeve 5051 is provided with a polygonal sliding hole 5052, and the side of the sliding sleeve 5051 is provided with a braking groove 5053. The sliding sleeve 5051 is sleeved on the side of the sliding tube 502 through the polygonal sliding hole 5052 and is slidably connected to the side of the sliding tube 502. The braking plate 503 extends into the side of the braking groove 5053 and is slidably connected to the inner wall of the braking groove 5053. The bottom of the sliding sleeve 5051 is fixedly connected to the top of the fixing rod 506.

[0036] When irradiating a localized area, large-area irradiation often fails to achieve optimal results, and traditional methods mostly involve single-sided irradiation. By fixing the arm or other body parts to the side of the fixing rod 506, it facilitates suspended irradiation of the limb. With the limb secured by the fixing rod 506, multiple polygonal fixing covers 601 provide wrapping irradiation. The design of 607 increases friction during fixation, thus facilitating secure immobilization. The rotation of the fixing rod 506 and sliding sleeve 5051 allows the multiple polygonal fixing covers 601 to provide circumferential irradiation and heating along the periphery of the limb, ensuring irradiation without blind spots and enhancing the irradiation effect. The braking groove 5053 facilitates the use of the braking plate 503. The device is positioned and the brake plate 503 rotates along the inner wall of the sliding tube 502 by the elastic force of the brake spring 504. When the sliding sleeve 5051 is replaced, the brake plate 503 slides along the inner wall of the brake groove 5053 by pressing the brake plate 503, thereby causing the sliding sleeve 5051 to disengage from the side of the sliding tube 502, which facilitates the replacement of the sliding sleeve 5051, and facilitates the replacement of different fixing rods 506, which facilitates the replacement of limbs in different positions, and thus allows for irradiation of different positions. The polygonal sliding hole 5052 is designed to be fitted onto the side of the sliding tube 502, thereby preventing the sliding sleeve 5051 from sliding.

[0037] For the fourth embodiment, please refer to [link / reference]. Figures 1-8Based on the third embodiment, the present invention provides a technical solution: the adjustment device 4 includes a motor 401, the drive shaft of the motor 401 is fixedly connected to a main screw 402, an adjustment sleeve 403 is sleeved and threadedly connected to the side of the main screw 402, a second spring 404 is fixedly connected to the bottom of the adjustment sleeve 403, a stop ring 405 is fixedly connected to the top of the main screw 402, the top of the stop ring 405 is fixedly connected to the top of the inner wall of the fixed base 2, the bottom of the motor 401 is fixedly connected to the top of the fixed base plate 3, and the side of the adjustment sleeve 403 is fixedly connected to the side of the fixed seat 6075.

[0038] The motor 401 is started, and the drive shaft of the motor 401 rotates, driving the main screw 402. The rotation of the main screw 402 drives the adjusting sleeve 403 to rotate. The adjusting sleeve 403 remains stationary under the linkage of multiple sets of connecting seats 6086. The restriction of the adjusting sleeve 403 by the connecting seats 6086 causes the adjusting sleeve 403 to slide along the side of the main screw 402 when the main screw 402 rotates. The movement of the adjusting sleeve 403 drives the multiple sets of connecting seats 6086 to move synchronously. The movement of the connecting seats 6086 drives the connecting rod 6085 to move. The movement of the connecting rod 6085 drives the rotating seat 6081 to move. The movement of the rotating seat 6081 drives the polygonal fixing cover 601 to move, thereby driving the multiple sets of polygonal fixing covers 601 to move synchronously, thus synchronously changing the multiple sets of polygonal fixing covers 601 for synchronous irradiation. The setting of the second spring 404 makes it easy for the adjusting sleeve 403 to remain in a fixed position after adjustment along the main screw 402, thus facilitating fixed irradiation.

[0039] Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. All other embodiments obtained by those skilled in the art and related fields based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention, unless otherwise specified or limited, shall be implemented according to conventional means in the art.

Claims

1. A fully automatic protective feedback infrared red light therapy device, characterized in that: The device support (1) is provided with a fixed chassis (2) rotatably connected at the top thereof, a fixed bottom plate (3) fixedly connected at the bottom of the fixed chassis (2), an adjusting device (4) fixedly connected at the top of the fixed bottom plate (3), a fixing device (5) fixedly connected at the bottom of the fixed bottom plate (3), an irradiation device (6) fixedly connected at the side of the fixed bottom plate (3), the fixing device (5) being arranged at the center of the bottom of the fixed bottom plate (3), and the adjusting device (4) being arranged at the center of the top of the fixed bottom plate (3); The irradiation device (6) comprises a polygonal fixed cover (601), a through electrode (602) penetrating and fixedly connected at the top of the polygonal fixed cover (601), a main irradiation lamp (603) fixedly connected at the bottom of the through electrode (602), a vice irradiation lamp (604) fixedly connected at the bottom of the polygonal fixed cover (601) on the side of the main irradiation lamp (603), a magnetic attraction ring (605) fixedly connected at the top of the polygonal fixed cover (601), a rotary seat (607) fixedly connected at the side of the magnetic attraction ring (605), an adjusting assembly (608) fixedly connected at the center of the top of the polygonal fixed cover (601), a temperature measuring assembly (609) fixedly connected at the bottom of the polygonal fixed cover (601), and the side of the rotary seat (607) being fixedly connected with the side of the fixed bottom plate (3).

2. The full-automatic protective feedback infrared red light therapeutic instrument according to claim 1, characterized in that: The rotary seat (607) comprises a rotating support (6071), a magnetic attraction plate (6072) fixedly connected at the bottom of the rotating support (6071), a fixed shaft (6073) fixedly connected at the side of the rotating support (6071), a torsion spring (6074) sleeved and fixedly connected at the side of the fixed shaft (6073), a fixed seat (6075) sleeved and rotatably connected at the side of the fixed shaft (6073), the side of the fixed seat (6075) being fixedly connected with the side of the fixed bottom plate (3), one end of the torsion spring (6074) away from the fixed shaft (6073) being fixedly connected with the side of the fixed seat (6075), and the bottom of the magnetic attraction plate (6072) being in contact with the side of the magnetic attraction ring (605).

3. The full-automatic protective feedback infrared red light therapeutic instrument according to claim 1, characterized in that: The adjusting assembly (608) comprises a rotating seat (6081), the top of the rotating seat (6081) is rotationally connected with a brake strip (6082) through a rotating shaft, the side of the brake strip (6082) is fixedly connected with a reset spring piece (6083), the top of the rotating seat (6081) is rotationally connected with a brake ring (6084) at a position on one side of the rotating seat (6081), the inner wall side of the brake ring (6084) is provided with a sliding groove matched with the brake strip (6082), the top of the rotating seat (6081) is rotationally connected with a connecting rod (6085) through a rotating shaft, the end, away from the rotating seat (6081), of the connecting rod (6085) is rotationally connected with a connecting seat (6086) through a rotating shaft, the side of the connecting seat (6086) is fixedly connected with the side of the adjusting device (4), and the side of the brake ring (6084) is fixedly connected with the top of the polygonal fixing cover (601).

4. The full-automatic protective feedback infrared red light therapeutic instrument according to claim 1, characterized in that: The temperature measuring assembly (609) comprises a fixed base (6091), the bottom of the fixed base (6091) is fixedly connected with a secondary screw rod (6092), the side of the secondary screw rod (6092) is sleeved and threadedly connected with a sliding screw sleeve (6093), the side of the sliding screw sleeve (6093) is sleeved and slidingly connected with a first spring (6094), the bottom of the sliding screw sleeve (6093) is fixedly connected with a fixed frame (6095), the inner wall bottom of the fixed frame (6095) is fixedly connected with a temperature measuring pipe (6096), the top of the fixed frame (6095) is in contact with the bottom of the first spring (6094), and the top of the fixed base (6091) is fixedly connected with the inner wall top of the polygonal fixing cover (601).

5. The full-automatic protective feedback infrared red light therapeutic instrument according to claim 1, characterized in that: The fixing device (5) comprises a connecting plate (501), the bottom of the connecting plate (501) is fixedly connected with a sliding pipe (502), the inner wall side of the sliding pipe (502) is rotationally connected with a brake plate (503) through a rotating shaft, the side of the brake plate (503) is fixedly connected with a brake spring piece (504), the side of the sliding pipe (502) is sleeved and slidingly connected with a rotating plate (505), the bottom of the rotating plate (505) is rotationally connected with a fixed rod (506), the side of the fixed rod (506) is provided with anti-skid lines (507), and the top of the connecting plate (501) is fixedly connected with the bottom of the fixed bottom plate (3).

6. The full-automatic protective feedback infrared red light therapeutic instrument according to claim 5, characterized in that: The rotating plate (505) comprises a sliding sleeve (5051), the top of the sliding sleeve (5051) is provided with a polygonal sliding hole (5052), and the side of the sliding sleeve (5051) is provided with a brake groove (5053).

7. The fully automatic protective feedback infrared red light therapeutic apparatus according to claim 6, characterized in that: The sliding sleeve (5051) is sleeved on the side of the sliding pipe (502) through the polygonal sliding hole (5052) and is slidingly connected with the side of the sliding pipe (502), the brake plate (503) extends into the side of the brake groove (5053) and is slidingly connected with the inner wall of the brake groove (5053), and the bottom of the sliding sleeve (5051) is fixedly connected with the top of the fixed rod (506).

8. The full-automatic protective feedback infrared red light therapeutic instrument according to claim 2, characterized in that: The adjusting device (4) comprises a motor (401), a driving shaft of the motor (401) is fixedly connected with a main screw rod (402), a side surface of the main screw rod (402) is sleeved and threadedly connected with an adjusting screw sleeve (403), a bottom of the adjusting screw sleeve (403) is fixedly connected with a second spring (404), and a top of the main screw rod (402) is fixedly connected with a stop ring (405).

9. The fully automatic protective feedback infrared red light therapeutic apparatus according to claim 8, characterized in that: A top of the stop ring (405) is fixedly connected with an inner wall top of the fixed bottom frame (2), a bottom of the motor (401) is fixedly connected with a top of the fixed bottom plate (3), and a side surface of the adjusting screw sleeve (403) is fixedly connected with a side surface of the fixed seat (6075).

Citation Information

Patent Citations

  • Intelligent adjustable red light therapeutic instrument

    CN120022538A