Optoelectronic resonator with quantum versatility

By designing a photoelectric resonator that combines multi-wavelength beams and thermotherapy, the problems of single wavelength and insufficient thermotherapy in existing phototherapy equipment have been solved, achieving effective treatment of deep tissues and optimal heating effect, thus improving the comprehensiveness and efficiency of treatment.

CN119868816BActive Publication Date: 2025-12-19BEIJING HKKY MEDICAL TECH CO LTD
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Patent Information

Application Number
CN202510070224.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-16
Publication Date
2025-12-19
Estimated Expiration
2045-01-16

AI Technical Summary

Technical Problem

Existing phototherapy equipment typically provides only a single wavelength of light, which limits the comprehensiveness of the treatment effect. Furthermore, it lacks or has only a basic thermotherapy function, making it difficult to effectively target the patient's treatment area.

Method used

A quantum multifunctional photoelectric resonator was designed, comprising a red light resonator, an electrothermal plate, and liquid mercury. By combining multi-wavelength light beams with thermotherapy, the liquid mercury's volume expansion properties are utilized to enhance adhesion to the patient's treatment area, and the light absorption rate and heating amount are dynamically adjusted to improve the treatment effect.

Benefits of technology

It achieves comprehensive therapeutic effects with multi-wavelength beams, enhances the ability to treat deep tissues, and ensures optimal heating of the treatment area through dynamic adjustment, thereby improving treatment efficiency and fit.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the field of photoelectric resonators, and discloses a photoelectric resonator with quantum multifunction, which comprises a photoelectric resonator carrier structure.In the application, current is collected by a plurality of light-emitting diodes through a wire and is emitted by ceramic nanometer laser lamps and wavelength double laser lamps in a red light resonator to form light beams with wavelengths of 660 nm, 700 nm and 850 nm respectively, and the red light absorption rate is calculated by an algorithm configured in a central controller when the red light resonator is triggered to work, the heating treatment can be ensured to be carried out in an optimal state by adjusting the heating according to the real-time monitoring of the red light absorption rate, the efficiency of the treatment is improved, when the electric heating sheet is heated, heat is transferred to liquid mercury through conduction, the temperature of the mercury is increased, the liquid mercury between the electric heating sheet and the anti-seepage film is expanded in volume after being heated, the liquid mercury inside the anti-seepage film is more attached to the treatment area of a patient, can be used for heating the treatment area and promoting blood circulation, and on the other hand, the heating area and the attachment degree of the heating area can be increased, so that the human body absorption is further promoted.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of optoelectronic resonators, in particular to an optoelectronic resonator with quantum multifunction. BACKGROUND

[0002] In the medical field, an optoelectronic resonator refers to a device that utilizes the principle of phototherapy. When used in treatment, the optoelectronic resonator typically uses light of a specific wavelength to irradiate the human body. Different wavelengths of light can be absorbed by different molecules in the human body tissue. For example, infrared light can penetrate deep tissue, promoting blood circulation and cell metabolism.

[0003] According to the Chinese authorized patent announcement No. CN107242904A, a light beam homogenization treatment device is disclosed, which comprises a laser adjusting part and a fiber connection part. The laser adjusting part and the fiber connection part are connected to each other. The fiber connection part is connected with a semiconductor laser source to transmit a laser beam. The laser adjusting part adjusts the distribution of the laser beam and the size of the light spot. The present application uses a semiconductor laser source to couple the laser into the optical fiber for transmission. On the one hand, it greatly reduces the weight and volume of the treatment device. On the other hand, it is also convenient for users to use. The laser adjusting part is provided in the hand-held part. Since the laser adjusting part is provided with a light beam homogenization mirror, the output light spot distribution is uniform. In addition, by adjusting the relative distance of the internal optical lens relative to other lenses, different light spot sizes can be achieved. The size and distribution of the light spot can be controlled simultaneously. However, the device still has some deficiencies. The existing phototherapy equipment often only provides a single wavelength of light beam, thereby limiting the comprehensiveness of the treatment effect. Moreover, it is usually not combined with a thermal therapy function, or the thermal therapy function is relatively simple, which may cause the thermal therapy to be unable to fit the patient's treatment area. SUMMARY

[0004] In view of the deficiencies of the prior art, the present application provides an optoelectronic resonator with quantum multifunction, which solves the problem that the existing phototherapy equipment often only provides a single wavelength of light beam, thereby limiting the comprehensiveness of the treatment effect, and usually does not combine with a thermal therapy function, or the thermal therapy function is relatively simple, which may cause the thermal therapy to be unable to fit the patient's treatment area.

[0005] In order to achieve the above object, the present application is implemented by the following technical scheme: A photoelectric resonator with quantum multifunction, comprising a photoelectric resonator carrier structure, the photoelectric resonator carrier structure comprises a magic tape layer, a fiber layer, a buffer layer, a filling layer, a flexible layer and a waterproof layer, the waterproof layer and the magic tape layer are respectively located on the outer side and the inner side of the photoelectric resonator carrier structure, the filling layer is arranged on the inner side of the waterproof layer, a plurality of red light resonators are embedded in the waterproof layer, and the plurality of red light resonators are equally divided at equal intervals, each lower surface of the red light resonator is connected with a light emitting diode, and a plurality of wires are connected in series between the light emitting diodes.

[0006] Preferably, a plurality of shunt lines are connected to the upper surface of the wire, the upper end of each shunt line is connected to the lower surface of an electric heating sheet, the electric heating sheet is embedded in the waterproof layer, a diaphragm is arranged above the waterproof layer opposite to the electric heating sheet, liquid mercury is filled between the diaphragm and the electric heating sheet, it is necessary to point out that the volume expansion coefficient of mercury is 180*10^-6 / K, which means that the volume of mercury will increase by about 0.18% per 1 degree Celsius, so when mercury is heated, its volume will increase, and when it cools down, the volume will decrease accordingly, back to the state before heating, when the electric heating sheet is heated, the heat is transferred to the liquid mercury through conduction, causing the temperature of the mercury to rise, the volume of the liquid mercury between the electric heating sheet and the diaphragm expands after being heated, making the heated liquid mercury in the diaphragm more closely fit the patient's treatment area, which can be used for heating the treatment area and promoting blood circulation on the one hand, and increasing the heating area and the fitting degree of the heating area on the other hand, thereby further promoting the absorption of the human body, the outer side of the diaphragm is covered with a protective film, the outer side of the magic tape layer is covered with a fiber layer, the outer side of the fiber layer is covered with a buffer layer, the outer side of the buffer layer is covered with a filling layer, the red light resonator is composed of a 660nm wavelength ceramic nanometer laser lamp, a 700nm and 850nm wavelength double laser lamp, the 660nm red light can be well absorbed by hemoglobin, thereby increasing blood flow and improving local tissue oxygenation and nutrient supply, the 700nm light beam can penetrate deeper and act on deep tissue, and has a good effect on relieving muscle and joint pain, and the 850nm wavelength has stronger penetration, wherein the 660nm wavelength and 700nm wavelength light beams are visible infrared light, and the 850nm wavelength light beam is invisible infrared light, which can penetrate to deeper muscle and tissue layers, and is more effective for treating deep tissue, and the radiation depth of the red light resonator 2 is 20-30mm.

[0007] Preferably, the photoelectric resonator carrier structure is in the shape of a cross, a plurality of high-frequency resonators are arranged in the middle of the photoelectric resonator carrier structure, each high-frequency resonator is embedded in the photoelectric resonator carrier structure, and a high-frequency passive chip is arranged below each high-frequency resonator.

[0008] Preferably, the back of the photoelectric resonator carrier structure is provided with a circuit interface, and one side of the circuit interface is connected with a connecting line.

[0009] Preferably, the connecting line is connected with a central controller at the end away from the circuit interface, the other side of the central controller is connected with a power line, the end of the power line away from the central controller is connected with an adapter, the output end of the central controller is electrically connected with a photoelectric sensor, and the photoelectric sensor is arranged outside the red light resonator.

[0010] Preferably, the right side and the front side edges of the photoelectric resonator carrier structure are fixedly connected with zipper strips, and the outer surfaces of the zipper strips are provided with zipper teeth.

[0011] Preferably, the right side zipper strip is slidably connected with a zipper head through the zipper teeth, and the front side zipper strip is slidably connected with a zipper tail through the zipper teeth, the center of the cross-shaped photoelectric resonator carrier structure is attached to the treatment area of a patient, and then the cross regions are folded on each other, and magic tape layers are used for stabilization, if the photoelectric resonator is worn on the head, hands or feet, only the zipper needs to be pulled, and the magic tape layers are used for mutual adhesion for fixation, and the position and tightness can be adjusted at will to meet different requirements.

[0012] Preferably, the fiber layer material is cotton fiber, and the buffer layer material is polyethylene, and the polyethylene material has good buffering performance and can reduce the impact of external force on the body.

[0013] Preferably, the filling layer material is polyester fiber, and the flexible layer material is silica gel, the polyester fiber material has strong durability and is not easy to be damaged, and the silica gel material has excellent elasticity and can adapt to changes in different shapes and sizes.

[0014] Preferably, the waterproof layer material is chloroprene rubber, and the chloroprene rubber has good waterproof performance and can protect the photoelectric resonator structure from water damage.

[0015] Beneficial effects

[0016] The photoelectric resonator with quantum multifunction is provided.

[0017] 1. In this invention, after connecting the adapter to the power supply via the red light resonator, the current flows through wires into multiple light-emitting diodes. These diodes then emit light beams of 660nm, 700nm, and 850nm wavelengths via ceramic nano-laser lamps and dual-wavelength laser lamps within the red light resonator. The 660nm red light is well absorbed by hemoglobin, increasing blood flow and improving oxygenation and nutrient supply to local tissues. The 700nm beam penetrates deeper, acting on deeper tissues and providing better relief for muscle and joint pain. The 850nm wavelength has even stronger penetrating power, reaching deeper muscle and tissue layers, making treatment more effective for deeper tissues. Simultaneously with triggering the red light resonator 2, the algorithm configured within the central controller 7 calculates the red light absorption... The absorption rate is dynamically adjusted based on the change in red light absorption rate over time. If the actual absorption rate is less than the absorption rate threshold, the heating element 104 stops heating; if the actual absorption rate is greater than or equal to the absorption rate threshold, the heating element 104 starts heating. By monitoring the red light absorption rate in real time and adjusting the heating accordingly, it is possible to ensure that the heating treatment is performed under optimal conditions, thereby improving the efficiency of the treatment. When the heating element is heated, the heat is transferred to the liquid mercury through conduction, causing the mercury temperature to rise. The liquid mercury between the heating element and the geomembrane expands in volume after being heated, making the heated liquid mercury inside the geomembrane fit more closely to the patient's treatment area. On the one hand, it can be used to heat the treatment area and promote blood circulation; on the other hand, it can increase the heated area and the degree of fit of the heated area, thereby further promoting human absorption.

[0018] 2. In this invention, by using the Velcro layer and zipper strap, the center of the cross-shaped photoelectric resonator carrier structure is attached to the patient's treatment area, and then the cross areas are folded together and secured with the Velcro layer. If you want to wear the photoelectric resonator on your head, hands, or feet, simply zip it up and use the Velcro layer to stick it together for fixation. The position and tightness can be adjusted at will to meet different needs. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the front three-dimensional structure of a photoelectric resonator with quantum multifunctionality proposed in this invention;

[0020] Figure 2 This is a schematic diagram of the rear three-dimensional structure of a photoelectric resonator with quantum multifunctionality proposed in this invention;

[0021] Figure 3 This is a schematic diagram of the back structure of a photoelectric resonator with quantum multifunctionality proposed in this invention;

[0022] Figure 4 This is a top view of a photoelectric resonator with quantum multifunctionality proposed in this invention;

[0023] Figure 5 A cross-sectional structure diagram of part of the photoelectric resonator carrier structure of a photoelectric resonator with quantum multifunction according to the present application is provided;

[0024] Figure 6 A photoelectric resonator with quantum multifunction according to the present application Figure 5 An enlarged view of A;

[0025] Figure 7 A photoelectric resonator with quantum multifunction according to the present application Figure 5 An enlarged view of B.

[0026] Legend:

[0027] 1, photoelectric resonator carrier structure; 101, light-emitting diode; 102, wire; 103, shunt wire; 104, electric heating sheet; 105, temperature controller; 106, impermeable membrane; 107, liquid mercury; 108, protective film; 109, magic tape layer; 110, fiber layer; 111, buffer layer; 112, filling layer; 113, flexible layer; 114, waterproof layer; 2, red light resonator; 3, high-frequency resonator; 4, high-frequency passive chip; 5, circuit interface; 6, connecting wire; 7, central controller; 8, power line; 9, adapter; 10, zipper belt; 11, zipper head; 12, zipper tail. DETAILED DESCRIPTION

[0028] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0029] Please refer to Figures 1-7 , the present application provides two technical solutions, specifically including the following embodiments:

[0030] Embodiment one:

[0031] The application discloses a photoelectric resonator with quantum multifunction, which comprises a photoelectric resonator carrier structure 1, the photoelectric resonator carrier structure 1 comprises a magic tape layer 109, a fiber layer 110, a buffer layer 111, a filling layer 112, a flexible layer 113 and a waterproof layer 114, the waterproof layer 114 and the magic tape layer 109 are located at the outer side and the inner side of the photoelectric resonator carrier structure 1 respectively, the filling layer 112 is arranged on the inner side of the waterproof layer 114, and a plurality of red light resonators 2 are embedded in the waterproof layer 114, wherein the red light resonators 2 are composed of ceramic nano laser lamps with a wavelength of 660 nm, two kinds of wavelength double laser lamps with wavelengths of 700 nm and 850 nm, the red light with the wavelength of 660 nm can be well absorbed by hemoglobin, so that the blood flow is increased, the oxygenation and the nutrition supply of local tissues are improved, the light beams with the wavelength of 700 nm can penetrate deeper and act on deep tissues, and the light beams with the wavelength of 850 nm have stronger penetration, wherein the light beams with the wavelengths of 660 nm and 700 nm are visible infrared light, the light beams with the wavelength of 850 nm are invisible infrared light, can penetrate into deeper muscle and tissue layers, and are more effective for the treatment of deep tissues, the radiation depth of the red light resonators 2 is 20-30 mm, and the plurality of red light resonators 2 are equidistantly divided, the lower surfaces of the red light resonators 2 are connected with light emitting diodes 101, wires 102 are connected in series between the light emitting diodes 101, a plurality of shunt wires 103 are connected to the upper surfaces of the wires 102, the upper ends of the shunt wires 103 are connected to the lower surfaces of electric heating sheets 104, the electric heating sheets 104 are embedded in the waterproof layer 114, a diaphragm 106 is arranged above the waterproof layer 114 opposite to the electric heating sheets 104, liquid mercury 107 is filled between the diaphragm 106 and the electric heating sheets 104, an isolation layer is arranged on the outer surfaces of the electric heating sheets 104 to prevent direct contact with the liquid mercury 107, it is to be explained that the volume expansion coefficient of mercury is 180*10^-6 / K, and the volume of mercury will increase by about 0.18% when the temperature increases by 1 DEG C, so that the volume of mercury increases when the mercury is heated, and the volume decreases correspondingly when the mercury cools down to return to the state before heating, the diaphragm 106 is made of silica gel, a protective film 108 is arranged on the outer side of the diaphragm 106, the protective film 108 is made of polyurethane, the polyurethane has excellent elasticity and wear resistance and can provide good physical protection, the diaphragm 106 and the protective film 108 are both elastic, the fiber layer 110 is arranged on the outer side of the magic tape layer 109, the buffer layer 111 is arranged on the outer side of the fiber layer 110, and the filling layer 112 is arranged on the outer side of the buffer layer 111.

[0032] In operation, after the adapter 9 is connected with the power supply, the current is led to the plurality of light emitting diodes 101 through the wire 102, and then is emitted by the ceramic nanometer laser lamp and the wavelength dual laser lamp in the red light resonator 2 as 660nm, 700nm and 850nm wavelength light beams, respectively. The 660nm red light can be well absorbed by hemoglobin, thereby increasing blood flow, improving oxygenation and nutrition supply of local tissues. The 700nm light beam can penetrate deeper and act on deep tissues, thereby having a good relieving effect on muscle and joint pain. The 850nm wavelength has stronger penetration and can penetrate to deeper muscle and tissue layers, thereby being more effective for treatment of deep tissues. In addition, the red light absorption rate is calculated by the algorithm configured in the central controller 7 when the red light resonator 2 is triggered to work. According to the change amount of the red light absorption rate with time, the absorption rate threshold is dynamically adjusted. If the actual absorption rate is less than the absorption rate threshold, the heating sheet 104 stops heating. If the actual absorption rate is greater than or equal to the absorption rate threshold, the heating sheet 104 starts heating. When the heating sheet 104 heats, the heat is transferred to the liquid mercury 107 by conduction, so that the temperature of the liquid mercury 107 is increased. The liquid mercury 107 between the heating sheet 104 and the impermeable film 106 is expanded in volume after being heated, so that the heated liquid mercury 107 in the impermeable film 106 is more closely attached to the treatment area of the patient. On the one hand, the heated liquid mercury 107 can be used for heating the treatment area to promote blood circulation. On the other hand, the heated area can be increased in heating area and close degree, thereby further promoting the absorption of the human body.

[0033] In an embodiment of the present application, the heating sheet 104 starts heating, including: constructing a heat conduction differential equation of the liquid mercury 107 when the heat is transferred to the liquid mercury 107 by conduction by using the following formula:

[0034]

[0035] wherein, represents the heat conduction differential equation, x represents the x direction of the liquid mercury 107, y represents the y direction of the liquid mercury 107, z represents the z direction of the liquid mercury 107, T represents the temperature field, k x represents the heat conduction coefficient in the x direction, k y represents the heat conduction coefficient in the y direction, k z represents the heat conduction coefficient in the z direction, and Q represents the internal heat source power.

[0036] The temperature nephogram of the liquid mercury 107 is obtained by performing finite element analysis on the heat conduction differential equation. The temperature value of the liquid mercury 107 is inquired in the temperature nephogram. The heating current of the heating sheet 104 is inquired. The current-temperature relationship between the heating current and the temperature value is constructed by using the following formula:

[0037]

[0038] wherein, represents a current-temperature relationship, y represents a heating current, β0, β1, β2,..., β n represents a regression coefficient, and ε represents a residual error, x i represents a temperature value at an i-th coordinate point of the liquid mercury 107, and n represents a number of coordinate points of the liquid mercury 107;

[0039] Based on the temperature value and the volume expansion coefficient of the mercury, the expansion volume of the liquid mercury 107 after being heated is calculated by using the following formula:

[0040]

[0041] wherein, V x represents an expansion volume, x i represents a temperature value at an i-th coordinate point of the liquid mercury 107, γ represents a volume expansion coefficient of the mercury, n represents a number of coordinate points of the liquid mercury 107, and V0 represents an initial volume at the i-th coordinate point;

[0042] According to the expansion volume, the extrusion force of the liquid mercury 107 on the treatment area is calculated by using the following formula:

[0043]

[0044] wherein, F represents an extrusion force, S represents an area of the treatment area, m represents a quantity of substance of the liquid mercury, r represents an ideal liquid constant, x i represents a temperature value at an i-th coordinate point of the liquid mercury 107, and n represents a number of coordinate points of the liquid mercury 107;

[0045] According to the current-temperature relationship, a current-force relationship between the extrusion force and the heating current is constructed by using the following formula:

[0046] F1≤F(x i (y))≤F2

[0047] wherein, F1≤F(x i (y))≤F2 represents a current-force relationship, F represents an extrusion force, F1 represents an extrusion force threshold value for guaranteeing adhesion between the heating liquid mercury 107 inside the anti-seepage film 106 and the treatment area of the patient, and F2 represents a maximum extrusion force that can be accepted by the treatment area of the patient, x i represents a temperature value at an i-th coordinate point of the liquid mercury 107, y represents a heating current, x i (y) represents an inverse function of the current-temperature relationship;

[0048] The size of the heating current is controlled through the current-force relationship.

[0049] Optionally, the process of controlling the size of the heating current through the current-force relationship refers to: on the basis of guaranteeing that F is not less than F1 and not greater than F2, determining a value of F, which is determined by x i The calculation is obtained, and therefore, the determined value F can be used to calculate the determined value x i And in the inverse function of the current-temperature relationship, the determined value y can be determined based on the determined value x i , so as to control the size of y.

[0050] Further, optionally, the process of obtaining the temperature cloud map of the liquid mercury 107 by finite element analysis on the heat conduction differential equation refers to: first, the heat conduction differential equation is obtained, the weak form equivalent integral equation corresponding to the heat conduction differential equation is obtained by using the variational method, the functional integral equation corresponding to the weak form equivalent integral equation is obtained by transformation, the functional integral equation is discretized, and finally the minimum value of the discretized functional integral equation is obtained to obtain the finite element equation. Finally, the temperature distribution cloud map corresponding to the finite element equation is determined by using the finite element analysis software.

[0051] Embodiment two:

[0052] On the basis of embodiment one, the optoelectronic resonator carrier structure 1 is in the shape of a cross, and a plurality of high-frequency resonators 3 are arranged in the middle of the optoelectronic resonator carrier structure 1. Each high-frequency resonator 3 is embedded in the inside of the optoelectronic resonator carrier structure 1, and a high-frequency passive chip 4 is arranged below each high-frequency resonator 3. The high-frequency resonator 3 emits ultrahigh-frequency electromagnetic waves, with a radiation radius of 70 centimeters 60 nuclei, a radiation radius of 100 centimeters 50 nuclei, and a radiation radius of 150 centimeters 30 nuclei. An electrical interface 5 is arranged on the back of the optoelectronic resonator carrier structure 1. A connecting line 6 is connected to one side of the electrical interface 5. A central controller 7 is connected to the end of the connecting line 6 away from the electrical interface 5. A power line 8 is connected to the other side of the central controller 7. An adapter 9 is connected to the end of the power line 8 away from the central controller 7. The output end of the central controller 7 is electrically connected to an optoelectronic sensor. The optoelectronic sensor is arranged outside the red light resonator 2. The optoelectronic sensor is used to measure the incident red light intensity and the transmitted red light intensity, and calculate the red light absorption rate through the algorithm configured in the central controller. The calculation method of the red light absorption rate is as follows: Where, I in represents the incident red light intensity, I out represents the transmitted red light intensity, and A represents the actual absorption rate. When the actual absorption rate A reaches or exceeds this threshold value, the heating sheet will be turned on to heat. Then, the data at different time points are weighted to calculate the change amount of the absorption rate over time, and the calculation method is as follows: Where, A t represents the actual absorption rate at time t, and A t-1The actual absorption rate at t-1 time is represented, and the absorption rate change amount is represented, and the absorption rate threshold is dynamically adjusted according to the change amount of the red light absorption rate with time, the basic threshold is set, and the specific formula of the dynamically adjusted absorption rate threshold is: theta (t) = theta 0 + k * alpha (t), wherein theta 0 is the basic threshold, and k is the adjustment coefficient, then, if the actual absorption rate is less than the absorption rate threshold, the heating sheet stops heating, and if the actual absorption rate is greater than or equal to the absorption rate threshold, the heating sheet starts heating, by monitoring the red light absorption rate in real time and adjusting the heating accordingly, the heating treatment can be carried out in the best state, thereby improving the efficiency of the treatment.

[0053] The right side and the front side edge of the optoelectronic resonator carrier structure 1 are fixedly connected with zipper strips 10, the outer surface of the zipper strips 10 is provided with teeth, the right side zipper strip 10 is slidably connected with a zipper head 11 through the teeth, and the front side zipper strip 10 is slidably connected with a zipper tail 12 through the teeth, the cross-shaped optoelectronic resonator carrier structure 1 is attached to the treatment area of the patient, and then the cross-shaped area is folded on each other, and is stabilized by using a magic tape layer 109, if it is desired to wear the optoelectronic resonator on the head, hand or foot, only the zipper needs to be pulled up, and the magic tape layer 109 is used to be adhered to each other to be fixed, the position and tightness can be adjusted at will, different requirements are met, the fiber layer 110 is made of cotton fiber, the buffer layer 111 is made of polyethylene, the polyethylene material has good buffering performance, can reduce the impact of external force on the body, the filling layer 112 is made of polyester fiber, the polyester fiber has strong durability and is not easy to be damaged, the flexible layer 113 is made of silica gel, the silica gel material has excellent elasticity and can adapt to the changes of different shapes and sizes, the waterproof layer 114 is made of chloroprene rubber, the chloroprene rubber has good waterproof performance and can protect the optoelectronic resonator structure from water damage, and the temperature controller 105 is arranged between each shunt line 103 and the corresponding electric heating sheet 104, and the temperature controller 105 controls the heating temperature of the electric heating sheet 104 to be 45 degrees Celsius.

[0054] The above only describes the preferred embodiments of the present application and is not intended to limit the present application, and any modifications, equivalent replacements and improvements made within the spirit and principles of the application shall be included in the protection scope of the present application.

Claims

1. An opto-electronic resonator with quantum versatility, comprising an opto-electronic resonator carrier structure (1), characterized by: The photoelectric resonator carrier structure (1) includes a magic tape layer (109), a fiber layer (110), a buffer layer (111), a filling layer (112), a flexible layer (113) and a waterproof layer (114), the waterproof layer (114) and the magic tape layer (109) are located at the outer side and the inner side of the photoelectric resonator carrier structure (1) respectively, the filling layer (112) is arranged on the inner side of the waterproof layer (114), a plurality of red light resonators (2) are embedded in the waterproof layer (114), and the plurality of red light resonators (2) are equidistantly divided, each red light resonator (2) is connected with a light emitting diode (101) on the lower surface, and a plurality of wires (102) are connected in series between the light emitting diodes (101). The upper surface of the wire (102) is connected with a plurality of shunt lines (103), the upper end of each shunt line (103) is connected to the lower surface of an electric heating sheet (104), the electric heating sheet (104) is embedded in the waterproof layer (114), the electric heating sheet (104) is provided with a barrier membrane (106) above the waterproof layer (114), the barrier membrane (106) and the electric heating sheet (104) are filled with liquid mercury (107), the outer side of the barrier membrane (106) is covered with a protective film (108), the outer side of the magic tape layer (109) is covered with the fiber layer (110), the outer side of the fiber layer (110) is covered with the buffer layer (111), the outer side of the buffer layer (111) is covered with the filling layer (112), and the red light resonator (2) is composed of a 660nm wavelength ceramic nanometer laser lamp, a 700nm and 850nm wavelength double laser lamp.

2. The optoelectronic resonator with quantum versatility of claim 1, wherein: The photoelectric resonator carrier structure (1) is in a cross shape, a plurality of high-frequency resonators (3) are arranged in the middle of the photoelectric resonator carrier structure (1), each high-frequency resonator (3) is embedded in the photoelectric resonator carrier structure (1), and each high-frequency resonator (3) is provided with a high-frequency passive chip (4) below.

3. The optoelectronic resonator with quantum versatility of claim 1, wherein: The back of the photoelectric resonator carrier structure (1) is provided with a circuit interface (5), and one side of the circuit interface (5) is connected with a connecting line (6).

4. The optoelectronic resonator with quantum versatility of claim 3, wherein: The end of the connecting line (6) away from the circuit interface (5) is connected with a central controller (7), the other side of the central controller (7) is connected with a power line (8), the end of the power line (8) away from the central controller (7) is connected with an adapter (9), and the output end of the central controller (7) is electrically connected with a photoelectric sensor, and the photoelectric sensor is arranged on the outer side of the red light resonator (2).

5. The optoelectronic resonator with quantum versatility of claim 1, wherein: The right side and the front side edge of the photoelectric resonator carrier structure (1) are fixedly connected with a zipper tape (10), and the zipper tape (10) is provided with a zipper on the outer surface.

6. The optoelectronic resonator with quantum versatility of claim 5, wherein: The zipper head (11) is slidably connected to the zipper tape (10) on the right side through the zipper, and the zipper tail (12) is slidably connected to the zipper tape (10) on the front side through the zipper.

7. The optoelectronic resonator with quantum versatility of claim 1, wherein: The fiber layer (110) is made of cotton fiber, and the buffer layer (111) is made of polyethylene.

8. The optoelectronic resonator with quantum versatility of claim 1, wherein: The filling layer (112) is made of polyester fiber, and the flexible layer (113) is made of silica gel.

9. The optoelectronic resonator with quantum versatility of claim 1, wherein: The waterproof layer (114) is made of chloroprene rubber.

Citation Information

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