A solar light harvesting phototherapy system
By using a sunlight collection system, which concentrates sunlight with a convex lens and a quartz receiver, and combined with a sliding rail and a filter, the problems of high energy consumption and incomplete treatment of spectral therapy instruments are solved, achieving a comprehensive and safe phototherapy effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- JINAN GUANGJI MEDICAL EQUIP CO LTD
- Filing Date
- 2022-02-15
- Publication Date
- 2026-08-04
AI Technical Summary
Existing spectral therapy devices require power, have high energy consumption, are not convenient for comprehensive treatment, and may cause overheating.
The system employs a sunlight collection system that uses a convex lens and a quartz receiver to focus sunlight, utilizes quartz optical fiber to transmit the light, and uses a light release component for automatic cooling and filtering. Combined with a sliding rail and a filter, it achieves comprehensive treatment.
It reduces energy consumption, achieves comprehensive treatment, avoids high-temperature damage, and utilizes a wide range of natural light spectrum, making it healthier and safer.
Smart Images

Figure CN114306953B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of spectral therapy technology, specifically a sunlight-collecting phototherapy system. Background Technology
[0002] Spectral therapy devices utilize the 0.4-3.6μm wavelength range to irradiate the surface of the human body or cavity. Through the photothermal combined effect, they can effectively kill diseased cells and tissues, coagulate mucosal tissues, and coagulate and block blood vessels, thereby achieving a cure. In practical applications, commonly used product names include: visible light therapy device, light irradiation therapy device, light radiation therapy device, photon therapy device, red light therapy device, blue light therapy device, etc.
[0003] Existing spectral therapy devices are mostly powered by indoor lights, requiring the use of a light emitter to emit light first, resulting in high energy consumption. At the same time, it is inconvenient to focus the emitted light, which may cause the temperature to become too high. Furthermore, it is not convenient to treat the human body from all angles. Therefore, we propose a sunlight collection phototherapy system. Summary of the Invention
[0004] (a) Technical problems to be solved
[0005] In view of the shortcomings of the prior art, the present invention discloses a sunlight harvesting phototherapy system to solve the problems mentioned in the background art.
[0006] (II) Technical Solution
[0007] To achieve the above objectives, the present invention provides the following technical solution: a sunlight harvesting and phototherapy system, comprising a light harvesting system, a light conduction system, and a light filtering and release system, wherein:
[0008] The light acquisition system includes a base, a protective cover is fixedly connected to the top of the base, a first support plate and a second support plate are fixedly connected to the inner wall of the protective cover, the first support plate and the second support plate are both inclined, and the second support plate is above the first support plate. The second support plate has multiple vertically penetrating slots, and convex lenses are fixedly connected to the inner walls of the multiple slots. Multiple quartz receivers are embedded in the inner wall of the first support plate, and the multiple quartz receivers correspond one-to-one with the multiple convex lenses.
[0009] The optical filtering and release system includes a hospital bed, with slide rails fixedly connected to both sides of the bed. Two annular seats are slidably connected between the two slide rails, and three optical release components are mounted on the inner walls of the two annular seats. The optical release components are connected to multiple quartz receivers via quartz optical fibers.
[0010] Preferably, the protective cover is made of transparent material, and a light sensor is fixedly installed at the geometric center of the upper surface of the second support plate.
[0011] Preferably, the light-emitting component includes a protective shell, which is assembled on the inner wall of the annular seat. A threaded groove is provided at the top of the protective shell, and a first threaded sleeve is threadedly connected to the inner wall of the threaded groove. A light-concentrating cup is also threadedly connected to the outer surface of the first threaded sleeve. The light-concentrating cup is located inside the protective shell. A second threaded sleeve is threadedly connected to the inner wall of the first threaded sleeve, and a light emitter is connected to the bottom of the second threaded sleeve.
[0012] Preferably, a high-temperature resistant light shield is fixedly connected to the bottom of the second threaded sleeve, the light emitter is located inside the high-temperature resistant light shield, and both the high-temperature resistant light shield and the light emitter are located inside the light-concentrating cup.
[0013] Preferably, a cooler is mounted on the inner wall of the protective shell, and the cooler is located at the bottom of the focusing cup.
[0014] Preferably, the outer surface of the protective shell has two arc-shaped grooves that are connected internally and externally. Arc-shaped strips are interference-fitted to the inner walls of the two arc-shaped grooves. A metal retaining ring is fixedly connected to the inner surface of the arc-shaped strips, and a filter is fixedly connected to the inner wall of the metal retaining ring. The two filters are located below the cooler.
[0015] Preferably, a picking strip is fixedly connected to the outer surface of the arc-shaped strip, and the picking strip extends outward.
[0016] This invention discloses a sunlight harvesting phototherapy system, which has the following beneficial effects:
[0017] 1. This solar phototherapy system uses multiple convex lenses on a first support plate and multiple quartz receivers embedded in a second support plate. After external light passes through the protective cover, it is focused by the multiple convex lenses and then received by the multiple corresponding quartz receivers, which greatly reduces energy consumption. The quartz receivers then transmit the received light through quartz optical fibers to the light release component for release. At the same time, the light release component can automatically cool and filter the light to avoid harming the patient. Furthermore, when the patient lies on the bed, the two ring seats can slide freely through the slide rails on both sides of the bed, thus enabling comprehensive treatment for the patient.
[0018] 2. This solar phototherapy system utilizes a cooler to effectively dissipate heat from the focused light. Two filters filter the light directly irradiating the patient. A convenient pull strip allows the curved strip, metal retaining ring, and filters to be easily pulled out through the curved groove. The two curved strips fit tightly against the inner walls of the two grooves to prevent light leakage. Four small legs are fixedly connected around the cooler, with their other ends fixed to the inner wall of the protective shell. The maximum diameter of the focus cup and the cooler is the same, but smaller than the maximum diameter of the protective shell; the difference in diameter equals the length of the small legs, serving a heat dissipation function.
[0019] 3. This sunlight-collecting phototherapy system utilizes natural sunlight, which has a wide spectral range and is healthier and safer. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the structure of the present invention;
[0021] Figure 2 This is a partial cross-sectional view of the present invention;
[0022] Figure 3 This is a schematic diagram of the structure of the light-emitting component of the present invention;
[0023] Figure 4 This is a cross-sectional view of the light-emitting component of the present invention;
[0024] Figure 5 This is a schematic diagram of the structure of a portion of the light-emitting component of the present invention.
[0025] In the diagram: 1. Base; 101. Protective cover; 102. First support plate; 103. Second support plate; 104. Convex lens; 105. Quartz receiver; 106. Light sensor; 2. Bed; 201. Slide rail; 202. Ring seat; 3. Light release assembly; 301. Protective shell; 302. Concentrating cup; 303. First threaded sleeve; 304. Second threaded sleeve; 305. Light releaser; 306. High-temperature resistant light shield; 307. Cooler; 308. Arc groove; 309. Arc strip; 310. Metal fixing ring; 311. Filter; 312. Removal strip. Detailed Implementation
[0026] This invention discloses a sunlight harvesting phototherapy system.
[0027] Please refer to the appendix. Figure 1-2The system includes: a base 1, a protective cover 101 fixedly connected to the top of the base 1, a first support plate 102 and a second support plate 103 fixedly connected to the inner wall of the protective cover 101, the first support plate 102 and the second support plate 103 are both inclined, and the second support plate 103 is above the first support plate 102. The second support plate 103 has multiple slots that pass through vertically, and a convex lens 104 is fixedly connected to the inner wall of each of the multiple slots. A multiple quartz receivers 105 are embedded in the inner wall of the first support plate 102, and the multiple quartz receivers 105 correspond one-to-one with the multiple convex lenses 104.
[0028] The hospital bed 2 has slide rails 201 fixedly connected to both sides. Two annular seats 202 are slidably connected between the two slide rails 201. Three light release components 3 are installed on the inner walls of the two annular seats 202. The light release components 3 are connected to multiple quartz receivers 105 through quartz optical fibers.
[0029] Multiple convex lenses 104 on the first support plate 102 and multiple quartz receivers 105 embedded on the second support plate 103 allow external light to pass through the protective cover 101 and be focused by the multiple convex lenses 104 before being received by the multiple corresponding quartz receivers 105, greatly reducing energy consumption. The quartz receivers 105 then transmit the received light through quartz optical fibers to the light release component 3 for release. At the same time, the light release component 3 can automatically cool and filter the light to avoid harming the patient. The patient lies on the bed 2, and the two annular seats 202 can slide freely through the slide rails 201 on both sides of the bed 2, thus enabling comprehensive treatment of the patient. The cooler 307 effectively dissipates the light focused by the light-concentrating cup 302, and the two filters 311 can filter the light that directly shines on the patient.
[0030] Please refer to the appendix. Figure 2 The protective cover 101 is made of transparent material, and a light sensor 106 is fixedly installed at the geometric center of the upper surface of the second support plate 103. Through the light sensor 106, and in conjunction with the external drive mechanism and solar panel to provide energy, the entire protective cover 101 and its internal structure can adjust the angle of light collection according to the angle of sunlight, so as to collect sunlight to the maximum extent.
[0031] Please refer to the appendix. Figure 3-4The light-emitting component 3 includes a protective shell 301, which is mounted on the inner wall of the annular seat 202. A threaded groove is provided at the top of the protective shell 301, and a first threaded sleeve 303 is threadedly connected to the inner wall of the threaded groove. A light-concentrating cup 302 is also threadedly connected to the outer surface of the first threaded sleeve 303. The light-concentrating cup 302 is located inside the protective shell 301. A second threaded sleeve 304 is threadedly connected to the inner wall of the first threaded sleeve 303, and a light emitter 305 is connected to the bottom of the second threaded sleeve 304.
[0032] Please refer to the appendix. Figure 4 The bottom of the second threaded sleeve 304 is fixedly connected to a high-temperature resistant light shield 306, and the light emitter 305 is located inside the high-temperature resistant light shield 306. Both the high-temperature resistant light shield 306 and the light emitter 305 are located inside the light-concentrating cup 302.
[0033] Please refer to the appendix. Figure 5 A cooler 307 is mounted on the inner wall of the protective shell 301, and the cooler 307 is located at the bottom of the light-concentrating cup 302. Four small support legs are fixedly connected around the cooler 307, and the other end of the small support legs is fixedly connected to the inner wall of the protective shell 301. The maximum diameter of the light-concentrating cup 302 and the cooler 307 is the same, but both are smaller than the maximum diameter of the protective shell 301. The difference between their diameters is equal to the length of the small support legs. The purpose of this is to dissipate heat.
[0034] Please refer to the appendix. Figure 3-5 The outer surface of the protective shell 301 has two arc-shaped grooves 308 that are connected internally and externally. Arc-shaped strips 309 are interference-fitted to the inner walls of the two arc-shaped grooves 308. A metal retaining ring 310 is fixedly connected to the inner surface of the arc-shaped strip 309, and a filter 311 is fixedly connected to the inner wall of the metal retaining ring 310. The two filters 311 are located below the cooler 307. The two arc-shaped strips 309 are tightly fitted to the inner walls of the two arc-shaped grooves 308 to prevent light leakage.
[0035] Please refer to the appendix. Figure 5 A pick-up bar 312 is fixedly connected to the outer ring surface of the arc-shaped bar 309, and the pick-up bar 312 extends outward. Through the pick-up bar 312, the arc-shaped bar 309, the metal fixing ring 310 and the filter 311 can be easily pulled outward through the arc-shaped groove 308.
[0036] Working principle: During use, multiple convex lenses 104 on the first support plate 102 and multiple quartz receivers 105 embedded on the second support plate 103 allow external light to pass through the protective cover 101 and be focused by the multiple convex lenses 104 before being received by the multiple corresponding quartz receivers 105, which greatly reduces energy consumption.
[0037] Then, the quartz receiver 105 transmits the received light through the quartz optical fiber to the light emitter 305 for release. The light emitted by the light emitter 305 first passes through the condenser cup 302 for focusing, and then the focused light passes through the cooler 307 and two filters 311, thereby achieving automatic cooling and filtering of the light to avoid harming the patient.
[0038] When the patient is lying on the hospital bed 2 for treatment, the two ring seats 202 can slide freely through the slide rails 201 on both sides of the hospital bed 2, so that the patient can receive comprehensive treatment or rehabilitation.
[0039] The pick-up bar 312 facilitates the removal of the arc-shaped strip 309, the metal retaining ring 310, and the filter 311 through the arc-shaped groove 308. The two arc-shaped strips 309 are tightly fitted to the inner walls of the two arc-shaped grooves 308 to prevent light leakage. The pick-up bar 312 facilitates the removal of the arc-shaped strip 309, the metal retaining ring 310, and the filter 311 through the arc-shaped groove 308. The cooler 307 is fixedly connected to four small legs around its perimeter. The other end of the small legs is fixedly connected to the inner wall of the protective shell 301. The maximum diameter of the light-concentrating cup 302 and the cooler 307 is the same, but both are smaller than the maximum diameter of the protective shell 301. The difference in their diameters is equal to the length of the small legs. This is done to dissipate heat.
[0040] By selecting the appropriate filter, the spectral range of 560-1400 nanometers can be precisely filtered out.
[0041] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.
Claims
1. A solar light harvesting phototherapy system, comprising a light harvesting system, a light transmission system, and a light filtering and release system, characterized in that: The light acquisition system includes a base (1), a protective cover (101) is fixedly connected to the top of the base (1), a first support plate (102) and a second support plate (103) are fixedly connected to the inner wall of the protective cover (101), the first support plate (102) and the second support plate (103) are both inclined, and the second support plate (103) is above the first support plate (102), the second support plate (103) has multiple slots that pass through vertically, and a convex lens (104) is fixedly connected to the inner wall of the multiple slots. A multiple quartz receivers (105) are embedded in the inner wall of the first support plate (102), and the multiple quartz receivers (105) correspond one-to-one with the multiple convex lenses (104); The optical filtering and release system includes a hospital bed (2), with slide rails (201) fixedly connected to both sides of the hospital bed (2). Two annular seats (202) are slidably connected between the two slide rails (201), and three optical release components (3) are mounted on the inner walls of the two annular seats (202). The optical release components (3) are connected to multiple quartz receivers (105) through quartz optical fibers. The light-emitting component (3) includes a protective shell (301), which is mounted on the inner wall of the annular seat (202). A threaded groove is provided at the top of the protective shell (301), and a first threaded sleeve (303) is threadedly connected to the inner wall of the threaded groove. A light-concentrating cup (302) is also threadedly connected to the outer surface of the first threaded sleeve (303). The light-concentrating cup (302) is located inside the protective shell (301). A second threaded sleeve (304) is threadedly connected to the inner wall of the first threaded sleeve (303), and a light emitter (305) is connected to the bottom of the second threaded sleeve (304). A cooler (307) is mounted on the inner wall of the protective shell (301), and the cooler (307) is located at the bottom of the light-concentrating cup (302). Four small support legs are fixedly connected around the cooler (307), and the other end of the small support legs is fixedly connected to the inner wall of the protective shell (301). The maximum diameter of the light-concentrating cup (302) and the cooler (307) is the same, but both are smaller than the maximum diameter of the protective shell (301). The difference between their diameters is equal to the length of the small support legs.
2. The sunlight harvesting phototherapy system according to claim 1, characterized in that: The protective cover (101) is made of transparent material, and a light sensor (106) is fixedly installed at the geometric center of the upper surface of the second support plate (103).
3. The sunlight harvesting phototherapy system according to claim 1, characterized in that: The bottom of the second threaded sleeve (304) is fixedly connected to a high-temperature resistant light shield (306), the light emitter (305) is located inside the high-temperature resistant light shield (306), and both the high-temperature resistant light shield (306) and the light emitter (305) are located inside the light-concentrating cup (302).
4. The sunlight harvesting phototherapy system according to claim 1, characterized in that: The outer surface of the protective shell (301) has two arc-shaped grooves (308) that are connected to each other. Arc-shaped strips (309) are interference-fitted to the inner walls of the two arc-shaped grooves (308). A metal retaining ring (310) is fixedly connected to the inner surface of the arc-shaped strip (309), and a filter (311) is fixedly connected to the inner wall of the metal retaining ring (310). The two filters (311) are located below the cooler (307).
5. A sunlight harvesting phototherapy system according to claim 4, characterized in that: The outer surface of the arc-shaped strip (309) is fixedly connected to a pick-up bar (312), and the pick-up bar (312) extends outward.