Portable eyeglass oxygen inhalation device

By designing a portable glasses-style oxygen inhalation device with ear loops on the temples, an oxygen delivery component on the frame, and an oxygen inhalation tip inserted into the nostril, the discomfort and damage caused to patients by existing oxygen inhalation tubes are solved, improving comfort and safety.

CN224671903UActive Publication Date: 2026-08-25SHENZHEN PEOPLES HOSPITAL
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Patent Information

Application Number
CN202520030161.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-06
Publication Date
2026-08-25
Estimated Expiration
2035-01-06

AI Technical Summary

Technical Problem

Existing oxygen tubing can easily cause discomfort and damage to patients during use, especially for patients who have undergone postauricular surgery, due to pressure on the ear, abrasion of the neck wound, and risk of infection.

Method used

Design a portable glasses-style oxygen inhalation device. The temples of the glasses hang on the patient's ears, the oxygen inhalation component is set on the frame, and the oxygen inhalation nose tip is inserted into the nostril. Oxygen is absorbed by the patient through the oxygen inhalation channel. This avoids the oxygen inhalation tube being coiled behind the ears or pressed against the face or neck. Silicone material is used to increase flexibility and comfort.

Benefits of technology

It reduces pressure on the ears and abrasions to neck wounds, lowers the risk of infection, improves comfort, avoids confusion with other tubes, and solves the discomfort and damage problems of existing oxygen tubing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to a portable glasses type oxygen inhalation device and relates to the technical field of medical apparatuses. The device comprises a frame, two legs, an oxygen passing assembly and an oxygen inhalation nose, the two legs are arranged at the two ends of the frame, the oxygen passing assembly is arranged on the frame, an oxygen passing channel is formed in the oxygen passing assembly, oxygen is introduced into the oxygen passing channel, the oxygen inhalation nose is arranged on the oxygen passing assembly, and the oxygen inhalation nose is communicated with the oxygen passing channel. The two legs are hung on the left and right ears of a patient respectively, oxygen is introduced into the oxygen passing channel, the oxygen is inhaled by the nose of the patient through the oxygen inhalation nose, the oxygen inhalation tube does not press the back of the ear, does not cause confusion with other pipelines (such as a nasogastric tube) of the face, does not cause damage to the neck wound of a patient with a right or left deep vein replacement, and does not cause infection, and the problem that the existing oxygen inhalation tube is easy to cause discomfort and damage to the patient during use is solved.
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Description

Technical Field

[0001] This utility model relates to the field of medical device technology, and in particular to a portable glasses-style oxygen inhalation device. Background Technology

[0002] In order to fix the position of the oxygen inhalation tube when using it, after inserting the nasal tip into the patient's nostril, the two ends of the oxygen inhalation tube need to be wrapped tightly around the patient's face to the patient's ears. Then, the two ends of the oxygen inhalation tube are coiled around the patient's ears in turn, and then extended to the patient's neck.

[0003] For patients, the oxygen tube, being close to the face, can easily be confused with other tubes on the face (such as nasogastric tubes). For patients undergoing surgery behind the ear, the coiled and wrapped shape of the oxygen tube can also cause pressure behind the ear. Finally, for many dialysis patients, the right or left deep jugular vein is often inserted into the neck for replacement, and the oxygen tube extends to the neck, which can easily cause abrasion to the neck wound and increase the risk of infection.

[0004] Regarding the aforementioned technologies, existing oxygen tubing can easily cause discomfort and injury to patients during use. Utility Model Content

[0005] In view of the shortcomings of the prior art, the purpose of this utility model is to provide a portable glasses-type oxygen inhalation device, which aims to solve the problem that existing oxygen inhalation tubes are prone to causing discomfort and damage to patients during use.

[0006] The portable glasses-style oxygen inhalation device provided in this application adopts the following technical solution: A portable glasses-style oxygen inhalation device, comprising:

[0007] Picture frames;

[0008] The frame has two temples, which are located at both ends of the frame.

[0009] An oxygen-permeable assembly is disposed on the lens frame, and an oxygen-permeable channel is formed within the oxygen-permeable assembly, through which oxygen is introduced;

[0010] An oxygen inhalation nasal tip is mounted on the oxygenation assembly. The oxygen inhalation nasal tip is connected to the oxygenation channel and is used to be inserted into the nostril.

[0011] Optionally, the frame includes a first frame, a second frame, and a frame connector, wherein the two ends of the frame connector are respectively connected to the first frame and the second frame;

[0012] The two temples are respectively mounted on the first frame and the second frame;

[0013] The oxygen supply component includes a first oxygen supply element and a second oxygen supply element. A first oxygen supply channel is formed in the first oxygen supply element, and a second oxygen supply channel is formed in the second oxygen supply element. The first oxygen supply element is disposed on the first lens frame, and the second oxygen supply element is disposed on the second lens frame.

[0014] One end of the oxygen inhalation nasal tip is disposed on the first oxygen supply component and communicates with the first oxygen supply channel, and the other end is disposed on the second oxygen supply component and communicates with the second oxygen supply channel.

[0015] Optionally, the first oxygen supply component includes a first oxygen supply pipe and a first oxygen delivery pipe, the first oxygen delivery pipe is disposed on the first oxygen supply component, and one end of the first oxygen supply pipe is disposed on the first oxygen delivery pipe;

[0016] The first oxygen passage includes a first oxygen supply pipe and a first oxygen delivery pipe. The first oxygen supply pipe is formed inside the first oxygen supply pipe, and the first oxygen delivery pipe is formed inside the first oxygen delivery pipe. The first oxygen supply pipe and the first oxygen delivery pipe are connected. One end of the oxygen inhalation nose is set on the first oxygen delivery pipe and is connected to the first oxygen delivery pipe.

[0017] The second oxygen supply component includes a second oxygen supply pipe and a second oxygen delivery pipe. The second oxygen delivery pipe is disposed on the second oxygen supply component, and one end of the second oxygen supply pipe is disposed on the second oxygen delivery pipe.

[0018] The second oxygen passage includes a second oxygen supply pipe and a second oxygen delivery pipe. The second oxygen supply pipe is formed inside the second oxygen supply pipe, and the second oxygen delivery pipe is formed inside the second oxygen delivery pipe. The second oxygen supply pipe and the second oxygen delivery pipe are connected. The other end of the oxygen inhalation nose is set on the second oxygen delivery pipe and is connected to the second oxygen delivery pipe.

[0019] Optionally, the oxygen inhalation nasal tip includes an oxygen inhalation body, a first nasal tip, and a second nasal tip. The first nasal tip and the second nasal tip are disposed on the oxygen inhalation body. One end of the oxygen inhalation body is connected to the first oxygen delivery tube, and the other end is connected to the second oxygen delivery tube.

[0020] An oxygen absorption channel is formed within the oxygen absorption body, and the oxygen absorption channel is connected to the first oxygen delivery pipe and the second oxygen delivery pipe respectively.

[0021] A first nasal passage is formed within the first nasal tip, and a second nasal passage is formed within the second nasal tip. The first nasal passage and the second nasal passage are respectively connected to the oxygen inhalation channel.

[0022] Optionally, both the first and second frames are arc-shaped.

[0023] The first oxygen delivery tube and the second oxygen delivery tube are arc-shaped.

[0024] The two ends of the first oxygen delivery tube are respectively located at the two ends of the first eyeglass frame, and the two ends of the second oxygen delivery tube are respectively located at the two ends of the second eyeglass frame.

[0025] Optionally, the portable glasses-style oxygen inhalation device includes a light-shielding component, which is detachably mounted on the frame and is used to block light and prevent external light from passing through the frame and shining on the patient's eyes.

[0026] Optionally, the light-blocking component includes a first light-blocking component and a second light-blocking component, the first light-blocking component and the second light-blocking component are bonded together, and the first light-blocking component and the second light-blocking component are respectively disposed on the front and rear sides of the frame.

[0027] Optionally, the frame and the temples are integrally formed.

[0028] Optionally, the frame is a silicone frame.

[0029] Optionally, the temples are made of silicone.

[0030] Compared with the prior art, the embodiments of this utility model have the following advantages:

[0031] Put on the portable glasses-style oxygen inhalation device, with the temples hanging on the patient's left and right ears respectively to support and fix the device. Then, introduce oxygen into the oxygen channel, and the oxygen will be absorbed by the patient's nose through the nasal inhaler.

[0032] Compared to existing oxygen tubes, this new method eliminates the need to coil the tube behind the ear, keep it away from the face, or place it on either side of the neck. Therefore, it avoids the pressure that can be applied behind the ear when coiled, preventing ear damage. It also avoids confusion with other facial tubes (such as nasogastric tubes) when close to the face, and prevents damage and infection to the neck wounds of patients undergoing right or left deep jugular vein replacement when placed on either side of the neck. This method resolves the discomfort and potential harm caused by existing oxygen tubes. Attached Figure Description

[0033] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0034] Figure 1This is a schematic diagram of the overall structure of the portable glasses-type oxygen inhalation device in the embodiments of this application;

[0035] Figure 2 This is a schematic diagram of the portable glasses-type oxygen inhalation device without the light-shielding component in the embodiments of this application;

[0036] Figure 3 This is a schematic diagram of the structure of the oxygen inhalation nose tip of the portable glasses-type oxygen inhalation device in the embodiments of this application;

[0037] Figure 4 This is a schematic diagram of the structure of the light-shielding component of the portable glasses-type oxygen inhalation device in the embodiments of this application;

[0038] Figure 5 This is an exploded view of the light-shielding component of the portable glasses-type oxygen inhalation device in the embodiments of this application.

[0039] Explanation of reference numerals in the attached figures:

[0040] 1. Frame; 11. First frame; 12. Second frame; 13. Frame connector; 2. Temple; 3. Oxygen supply assembly; 31. First oxygen supply component; 311. First oxygen supply tube; 312. First oxygen delivery tube; 32. Second oxygen supply component; 4. Oxygen inhalation nose tip; 41. Oxygen inhalation body; 42. First nose tip; 43. Second nose tip; 5. Light shield; 51. First light shield; 52. Second light shield; 53. Adhesive layer. Detailed Implementation

[0041] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments. 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.

[0042] The present application will be further described in detail below with reference to the accompanying drawings.

[0043] This application discloses a portable glasses-style oxygen inhalation device.

[0044] like Figure 1 and Figure 2 As shown, a portable glasses-style oxygen inhalation device includes a frame 1, temples 2, an oxygen supply component 3, and an oxygen inhalation nose tip 4; two temples 2 are provided, located at both ends of the frame 1; the oxygen supply component 3 is located on the frame 1, and an oxygen supply channel is formed within the oxygen supply component 3, through which oxygen is supplied; the oxygen inhalation nose tip 4 is located on the oxygen supply component 3, and the oxygen inhalation nose tip 4 is connected to the oxygen supply channel and is used to be inserted into the nostrils.

[0045] Put on the portable glasses-style oxygen inhalation device, with the temples 2 hanging on the patient's left and right ears respectively to support and fix the portable glasses-style oxygen inhalation device. Then, oxygen is introduced into the oxygen channel, and the oxygen will be absorbed by the patient's nose through the oxygen inhalation nose tip 4.

[0046] Compared to existing oxygen tubes, this new method eliminates the need to coil the tube behind the ear, keep it away from the face, or place it on either side of the neck. Therefore, it avoids the pressure that can be applied behind the ear when coiled, preventing ear damage. It also avoids confusion with other facial tubes (such as nasogastric tubes) when close to the face, and prevents damage and infection to the neck wounds of patients undergoing right or left deep jugular vein replacement when placed on either side of the neck. This method resolves the discomfort and potential harm caused by existing oxygen tubes.

[0047] like Figure 2 As shown, the eyeglass frame 1 includes a first eyeglass frame 11, a second eyeglass frame 12, and an eyeglass frame connector 13. The two ends of the eyeglass frame connector 13 are respectively connected to the first eyeglass frame 11 and the second eyeglass frame 12. The two temples 2 are respectively disposed on the first eyeglass frame 11 and the second eyeglass frame 12. The oxygen supply assembly 3 includes a first oxygen supply element 31 and a second oxygen supply element 32. A first oxygen supply channel is formed in the first oxygen supply element 31, and a second oxygen supply channel is formed in the second oxygen supply element 32. The first oxygen supply element 31 is disposed on the first eyeglass frame 11, and the second oxygen supply element 32 is disposed on the second eyeglass frame 12. One end of the oxygen inhalation nose tip 4 is disposed on the first oxygen supply element 31 and communicates with the first oxygen supply channel, and the other end is disposed on the second oxygen supply element 32 and communicates with the second oxygen supply channel.

[0048] Specifically, the frame connector 13 connects between the first frame 11 and the second frame 12, and the two temples 2 are respectively located at the end of the first frame 11 away from the second frame 12 and the end of the second frame 12 away from the first frame 11. The two temples 2 are used to hang on the patient's left and right ears, respectively.

[0049] When the two temples 2 are placed on the patient's left and right ears respectively, the first frame 11 and the second frame 12 will be positioned directly in front of the patient's left and right eyes.

[0050] The frame 1 and temple 2 are molded as one piece, and both the frame 1 and temple 2 are made of silicone. The frame 1 is a silicone frame 1, and the temple 2 is a silicone temple 2. This increases the flexibility and elasticity of the portable eye-type oxygen inhalation device, making it less prone to breakage, improving its service life and comfort, and making it convenient for patients to lie on their left or right side.

[0051] Furthermore, nose pads are provided at the end of the first frame 11 near the second frame 12 and at the end of the second frame 12 near the first frame 11. The two nose pads are used to support the patient's nose to reasonably distribute the weight of the frame 1, so that the frame 1 can be stably placed on the bridge of the nose, preventing the frame 1 from easily slipping off, ensuring the patient's daily activities after wearing it, and improving the comfort of use.

[0052] The first oxygen supply component 31 and the second oxygen supply component 32 are respectively installed on the first mirror frame 11 and the second mirror frame 12. Oxygen components such as the central oxygen port of the ward, the emergency oxygen cylinder or the oxygen machine are respectively connected to the first oxygen supply component 31 and the second oxygen supply component 32.

[0053] The oxygen inhalation nasal tip 4 is positioned between the first oxygen supply element 31 and the second oxygen supply element 32. The oxygen supply elements on the first oxygen supply element 31 and the second oxygen supply element 32 can enter the oxygen inhalation nasal tip 4 through the first oxygen supply channel and the second oxygen supply channel, respectively, and be inhaled into the nose.

[0054] like Figure 2 As shown, the first oxygen supply component 31 includes a first oxygen supply pipe 311 and a first oxygen delivery pipe 312. The first oxygen delivery pipe 312 is disposed on the first oxygen supply component 31, and one end of the first oxygen supply pipe 311 is disposed on the first oxygen delivery pipe 312.

[0055] The first oxygenation channel includes a first oxygenation pipe and a first oxygen delivery pipe. A first oxygenation pipe is formed inside the first oxygenation pipe 311, and a first oxygen delivery pipe is formed inside the first oxygen delivery pipe 312. The first oxygenation pipe and the first oxygen delivery pipe are connected. One end of the oxygen inhalation nose 4 is set on the first oxygen delivery pipe 312 and is connected to the first oxygen delivery pipe.

[0056] The second oxygen supply component 32 includes a second oxygen supply pipe and a second oxygen delivery pipe. The second oxygen delivery pipe is disposed on the second oxygen supply component 32, and one end of the second oxygen supply pipe is disposed on the second oxygen delivery pipe.

[0057] The second oxygen passage includes a second oxygen supply pipe and a second oxygen delivery pipe. A second oxygen supply pipe is formed inside the second oxygen supply pipe, and a second oxygen delivery pipe is formed inside the second oxygen delivery pipe. The second oxygen supply pipe and the second oxygen delivery pipe are connected. The other end of the oxygen inhalation nose 4 is set on the second oxygen delivery pipe and is connected to the second oxygen delivery pipe.

[0058] Specifically, the first frame 11 and the second frame 12 are both arc-shaped; the first oxygen tube 312 and the second oxygen tube are arc-shaped; the two ends of the first oxygen tube 312 are respectively located at the two ends of the first frame 11, and the two ends of the second oxygen tube are respectively located at the two ends of the second frame 12.

[0059] The first oxygen delivery tube is located below the first eyeglass frame 11. The first oxygen delivery tube and the first eyeglass frame 11 together form a complete left eyeglass frame 1. The middle of the left eyeglass frame 1 is a first clearance hole formed by the first eyeglass frame 11 and the first oxygen delivery tube, which facilitates the passage of the patient's left eye line of sight.

[0060] The second oxygen delivery tube is located below the second frame 12. The second oxygen delivery tube and the second frame 12 together form a complete right eyeglass frame 1. The middle of the right eyeglass frame 1 is a second clearance hole formed by the second frame 12 and the second oxygen delivery tube, which facilitates the passage of the patient's right eye line of sight.

[0061] One end of the first oxygen supply pipe is located at the end of the first oxygen supply pipe 312 that is furthest from the second oxygen supply pipe.

[0062] One end of the second oxygen supply pipe is located at the end of the second oxygen supply pipe that is furthest from the first oxygen supply pipe 312.

[0063] The oxygen supply unit includes a first oxygen supply unit and a second oxygen supply unit. The first oxygen supply unit is connected to the other end of the first oxygen supply pipe, and the second oxygen supply unit is connected to the other end of the second oxygen supply pipe.

[0064] The oxygen inhalation nasal tip 4 is positioned between the first oxygen delivery tube 312 and the second oxygen delivery tube. When the portable eye-type oxygen inhalation device is worn, the oxygen inhalation nasal tip 4 can be inserted into the patient's nostrils.

[0065] Oxygen from the first oxygen device can enter the oxygen inhalation nasal tip 4 sequentially through the first oxygen supply pipe and the first oxygen delivery pipe. Oxygen from the second oxygen device can enter the oxygen inhalation nasal tip 4 sequentially through the second oxygen supply pipe and the second oxygen delivery pipe. Then, the oxygen from the first oxygen device and the oxygen from the second oxygen device converge in the oxygen inhalation nasal tip 4 and are inhaled by the patient's nostrils.

[0066] like Figure 2 and Figure 3 As shown, the oxygen inhalation nose tip 4 includes an oxygen inhalation body 41, a first nose tip 42, and a second nose tip 43. The first nose tip 42 and the second nose tip 43 are disposed on the oxygen inhalation body 41. One end of the oxygen inhalation body 41 is connected to a first oxygen delivery tube 312, and the other end is connected to a second oxygen delivery tube. An oxygen inhalation channel is formed inside the oxygen inhalation body 41, and the oxygen inhalation channel is connected to the first oxygen delivery tube and the second oxygen delivery tube respectively. A first nose tip 42 channel is formed inside the first nose tip 42, and a second nose tip 43 channel is formed inside the second nose tip 43. The first nose tip 42 channel and the second nose tip 43 channel are connected to the oxygen inhalation channel respectively.

[0067] Specifically, the oxygen inhalation body 41, the first nose tip 42, and the second nose tip 43 are all rod-shaped. The first nose tip 42 and the second nose tip 43 are spaced apart and vertically arranged on the oxygen inhalation body 41, and both the first nose tip 42 and the second nose tip 43 are located on the same side of the oxygen inhalation body 41. One end of the oxygen inhalation body 41 is attached to the first oxygen delivery tube 312, and the other end is attached to the second oxygen delivery tube. The oxygen inhalation channel is connected to the first oxygen delivery tube and the second oxygen delivery tube, respectively. The first nose tip 42 is inserted into the patient's left nostril, and the second nose tip 43 is inserted into the patient's right nostril.

[0068] Oxygen from the first oxygen device can enter the oxygen inhalation channel sequentially through the first oxygen supply pipe and the first oxygen delivery pipe. Oxygen from the second oxygen device can enter the oxygen inhalation channel sequentially through the second oxygen supply pipe and the second oxygen delivery pipe. Then, the oxygen from the first oxygen device and the oxygen from the second oxygen device converge in the oxygen inhalation channel and are inhaled by the patient into the left and right nostrils through the first nasal tip 42 channel and the second nasal tip 43 channel, respectively, completing the oxygen inhalation process.

[0069] It should be noted that all components of the oxygenation assembly 3 and the oxygen inhalation nasal tip 4 are made of soft medical tubing, which is low in cost and easily deformable, making it convenient to insert the oxygen inhalation nasal tip 4 into the left and right nostrils.

[0070] like Figure 1 , Figure 4 and Figure 5 As shown, the portable glasses-type oxygen inhalation device includes a light shield 5, which is detachably mounted on the frame 1. The light shield 5 is used to block light and prevent external light from passing through the frame 1 and shining on the patient's eyes.

[0071] Specifically, there are two light-blocking components 5, which are used to block the patient's left and right eyes respectively. Let's take the light-blocking component 5 that blocks the left eye as an example for explanation:

[0072] The light-blocking component 5 includes a first light-blocking component 51 and a second light-blocking component 52, which are bonded together. The first light-blocking component 51 and the second light-blocking component 52 are respectively disposed on the front and rear sides of the frame 1.

[0073] The first light-blocking component 51 and the second light-blocking component 52 are made of cotton. The first light-blocking component 51 is set on the outer surface of the left eyeglass frame 1, and the second light-blocking component is set on the inner surface of the left eyeglass frame 1. Both the first light-blocking component 51 and the second light-blocking component 52 are slightly larger than the left eyeglass frame 1. After the first light-blocking component 51 and the second light-blocking component 52 are set on the left eyeglass frame 1, they can completely block the first clearance hole, thereby preventing external light from entering the patient's left eye through the first clearance hole.

[0074] To improve the light-blocking performance of the light-blocking component 5, the side of the second light-blocking component 52 closest to the patient's left eye is set to black.

[0075] An annular adhesive layer 53 for bonding is provided on the outer edge of the side of the first light-shielding member 51 near the second light-shielding member 52 and the outer edge of the side of the second light-shielding member 52 near the first light-shielding member 51.

[0076] Sometimes there are treatments in the same ward at night, and the ward corridor is also lit, which greatly affects sleep. The light-blocking component 5 is designed to help patients sleep at night. The bonding between the first light-blocking component 51 and the second light-blocking component 52 makes it easy to remove and assemble the light-blocking component 5 at any time.

[0077] In summary, a portable glasses-style oxygen inhalation device includes a frame 1, temples 2, an oxygen supply component 3, and an oxygen inhalation nose tip 4; two temples 2 are provided, located at both ends of the frame 1; the oxygen supply component 3 is located on the frame 1, and an oxygen supply channel is formed within the oxygen supply component 3, through which oxygen is supplied; the oxygen inhalation nose tip 4 is located on the oxygen supply component 3, and the oxygen inhalation nose tip 4 is connected to the oxygen supply channel and is used for insertion into the nostrils.

[0078] Put on the portable glasses-style oxygen inhalation device, with the temples 2 hanging on the patient's left and right ears respectively to support and fix the portable glasses-style oxygen inhalation device. Then, oxygen is introduced into the oxygen channel, and the oxygen will be absorbed by the patient's nose through the oxygen inhalation nose tip 4.

[0079] Compared to existing oxygen tubes, the second temple can be hung directly on the ear without being coiled around it, reducing pressure on the back of the ear and minimizing skin damage, making it suitable for patients undergoing surgery behind the ear.

[0080] Meanwhile, the shape of this application is similar to that of glasses. When worn, the oxygenation component 3 will not be in close contact with the patient's facial skin, making it less likely to be confused with other tubes (such as nasogastric tubes), and improving overall comfort.

[0081] Finally, the oxygenation component 3 of this patent application will not be tightly attached to the patient's neck when worn. For a large number of dialysis patients, the right or left deep jugular vein is often inserted into the neck for replacement. Wearing this patent application can reduce the wear and tear on the wound and reduce the risk of infection, thus solving the problem that existing oxygen tubes are prone to causing discomfort and damage to patients when used.

[0082] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other.

[0083] It should be noted that this utility model uses a portable glasses-type oxygen inhalation device as an example to introduce the specific structure and working principle of this utility model, but the application of this utility model is not limited to a portable glasses-type oxygen inhalation device, and can also be applied to the production and use of other similar workpieces.

[0084] It should be understood that this invention is not limited to the precise structure described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The scope of this invention is limited only by the appended claims.

[0085] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A portable glasses-style oxygen inhalation device, characterized in that, include: Picture frames; It includes a first frame, a second frame, and a frame connector, wherein the two ends of the frame connector are respectively connected to the first frame and the second frame; The glasses have two temples, which are disposed on the first frame and the second frame. An oxygenation assembly, comprising a first oxygenation component and a second oxygenation component, wherein a first oxygenation channel is formed in the first oxygenation component and a second oxygenation channel is formed in the second oxygenation component, the first oxygenation component is disposed on the first lens frame and the second oxygenation component is disposed on the second lens frame; The first oxygen supply component includes a first oxygen supply tube and a first oxygen delivery tube. The first oxygen delivery tube is located below the first eyeglass frame and is disposed on the first oxygen supply component. One end of the first oxygen supply tube is disposed on the first oxygen delivery tube. The first oxygen passage includes a first oxygen pipe and a first oxygen delivery pipe. The first oxygen pipe is formed inside the first oxygen pipe, and the first oxygen delivery pipe is formed inside the first oxygen delivery pipe. The first oxygen pipe and the first oxygen delivery pipe are connected. The first frame and the first oxygen delivery pipe together form a first clearance hole. The second oxygen supply component includes a second oxygen supply pipe and a second oxygen delivery pipe. The second oxygen delivery pipe is located below the second eyeglass frame and is disposed on the second oxygen supply component. One end of the second oxygen supply pipe is disposed on the second oxygen delivery pipe. The second oxygen passage includes a second oxygen pipe and a second oxygen delivery pipe. The second oxygen pipe is formed inside the second oxygen pipe, and the second oxygen delivery pipe is formed inside the second oxygen delivery pipe. The second oxygen pipe and the second oxygen delivery pipe are connected. The second frame and the second oxygen delivery pipe together enclose and form a second clearance hole. An oxygen inhalation nasal tip, one end of which is disposed on the first oxygen supply element and communicates with the first oxygen supply channel, and the other end of which is disposed on the second oxygen supply element and communicates with the second oxygen supply channel.

2. The portable glasses-type oxygen inhalation device according to claim 1, characterized in that, The oxygen inhalation nasal tip includes an oxygen inhalation body, a first nasal tip, and a second nasal tip. The first nasal tip and the second nasal tip are disposed on the oxygen inhalation body. One end of the oxygen inhalation body is connected to the first oxygen delivery tube, and the other end is connected to the second oxygen delivery tube. An oxygen absorption channel is formed within the oxygen absorption body, and the oxygen absorption channel is connected to the first oxygen delivery pipe and the second oxygen delivery pipe respectively; A first nasal passage is formed within the first nasal tip, and a second nasal passage is formed within the second nasal tip. The first nasal passage and the second nasal passage are respectively connected to the oxygen inhalation channel.

3. The portable glasses-type oxygen inhalation device according to claim 1, characterized in that, Both the first and second frames are arc-shaped. The first oxygen delivery tube and the second oxygen delivery tube are arc-shaped; The two ends of the first oxygen delivery tube are respectively located at the two ends of the first eyeglass frame, and the two ends of the second oxygen delivery tube are respectively located at the two ends of the second eyeglass frame.

4. The portable glasses-type oxygen inhalation device according to claim 1, characterized in that, The portable glasses-style oxygen inhalation device includes a light-blocking component, which is detachably mounted on the frame. The light-blocking component is used to block light and prevent external light from passing through the frame and shining into the patient's eyes.

5. The portable glasses-type oxygen inhalation device according to claim 4, characterized in that, The light-blocking component includes a first light-blocking component and a second light-blocking component, which are bonded together. The first light-blocking component and the second light-blocking component are respectively disposed on the front and rear sides of the frame.

6. The portable glasses-type oxygen inhalation device according to claim 1, characterized in that, The frame and temples are integrally formed.

7. The portable glasses-type oxygen inhalation device according to claim 1, characterized in that, The frame is a silicone frame.

8. The portable glasses-type oxygen inhalation device according to claim 1, characterized in that, The temples are made of silicone.