Wearable eye atomization device
By designing a wearable eye atomizing device, using a disposable reservoir and heating device, combined with a waste liquid chamber and a circulating fan, the structural complexity and inconvenience of existing devices are solved, achieving efficient and comfortable eye drug delivery.
Patent Information
- Application Number
- CN202422874719.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-25
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2034-11-25
AI Technical Summary
Existing eye nebulizers are complex in structure, require external power supply, are inconvenient to operate, have an excessively large nebulization area, do not concentrate the medication, are difficult to clean the storage and waste liquid recovery devices, are poorly adapted to differences in patient body size, are difficult to disinfect or replace parts, and lack heating function, making them unsuitable for use in cold weather.
A wearable eye atomizing device was designed, which uses a disposable liquid reservoir and heating device, includes a waste liquid chamber and a circulating fan, is fixed with a reinforcing strap, and has a modular control system to ensure sealing and comfort.
It achieves efficient, continuous, and precise drug delivery, avoids drug spillage and contamination, improves patient comfort and safety, and is suitable for different body types and cold weather.
Smart Images

Figure CN223914302U_ABST
Abstract
Description
Technical Field
[0001] In the field of medical device technology, there is a particular connection to a wearable eye atomizing device. Background Technology
[0002] With the widespread use of electronic devices such as computers, mobile phones, and tablets, prolonged eye strain has become an unavoidable bad habit, which can lead to various eye diseases such as dry eyes, eye pain, and decreased vision.
[0003] Eye drops are widely used to treat or relieve the above problems by directly administering medication to the eyes. However, they have drawbacks such as low dosage, short duration of action, and low drug utilization due to drug loss. In addition, many patients, especially children, are afraid of eye drops and may be unable to cooperate with the administration of the medication.
[0004] Nebulization is a highly efficient, continuous, and precise method of direct drug delivery to the eyes. However, current eye nebulizers suffer from several drawbacks, including complex structures requiring external power supplies, controls, and nebulizers, making operation inconvenient; excessively large nebulization areas, resulting in medication not being concentrated in the eyeball and surrounding areas; the need for manual refilling, leading to easy contamination of the medication; the lack of waste liquid recovery devices; difficulty in cleaning the storage and waste liquid recovery devices; poor adaptability to patient body size differences; difficulties in disinfection or component replacement when used by different patients; and the absence of heating functions, making them unsuitable for use in cold weather or preventing the direct use of medications requiring refrigeration. Utility Model Content
[0005] To address the problems existing in the prior art, this application provides a wearable eye atomizing device.
[0006] The specific technical solution of this application is as follows:
[0007] 1. A wearable eye atomizing device, wherein the atomizing device includes an eye mask that is attached to the eye; one or two eye cavities are formed on one side of the eye mask to cover the eye;
[0008] An atomizer is provided near the center of the eye mask, and the atomizer is connected to the eye cavity;
[0009] The atomizer is connected to a reservoir for storing liquid.
[0010] The liquid reservoir is provided with a seal that connects to the atomizer, and the seal is a one-time seal.
[0011] 2. The atomizing device according to item 1, wherein,
[0012] Both the liquid reservoir and the seal are disposable.
[0013] More preferably, the liquid reservoir and the seal are integrally formed.
[0014] 3. The atomizing device according to claim 1, wherein a heating device is provided on the atomizer.
[0015] 4. The atomizing device according to item 3, wherein the heating device is capable of heating the atomized liquid in the atomizer to 30°C~50°C;
[0016] Preferably, a temperature sensor is provided on the goggles, which can feed back the temperature of the atomized liquid to the heating device.
[0017] 5. The atomizing device according to item 1, wherein a waste liquid chamber is provided on the goggles, the waste liquid chamber is formed inside the waste liquid chamber, and a connecting hole for connecting the waste liquid chamber and the eye cavity is provided on the waste liquid chamber or the goggles.
[0018] 6. The atomizing device according to item 5, wherein the waste liquid chamber is located on the side of the goggles closer to the eyes;
[0019] Preferably, the number of waste liquid chambers is the same as the number of eye cavities, and there is a one-to-one correspondence between the waste liquid chambers and the eye cavities;
[0020] More preferably, the waste liquid cavity has a ring-shaped structure along the edge of the eye cavity.
[0021] 7. The atomizing device according to item 5, wherein the waste liquid chamber is made of an elastic material;
[0022] Preferably, the waste liquid cavity has a sheet-like structure, and the waste liquid cavity is a central cavity formed by rolling up the waste liquid cavity;
[0023] More preferably, the waste liquid chamber is formed by the outward curling of the waste liquid chamber body;
[0024] More preferably, one end of the waste liquid chamber is a free end, and the other end of the waste liquid chamber is fixedly connected to the goggles;
[0025] More preferably, the waste liquid chamber and the goggles are integrally formed.
[0026] 8. The atomizing device according to claim 1, wherein a circulating fan is provided on the goggles, the circulating fan being able to blow the atomized liquid in the atomizer;
[0027] Preferably, the circulating fan is located at the connection between the atomizer and the goggles, or the circulating fan is fixed inside the goggles.
[0028] 9. The atomizing device according to claim 1, wherein a control system containing a battery and a control circuit is connected to the atomizing device, the control system comprising a rigid protective part and a flexible connecting part, the rigid protective part and the flexible connecting part being alternately connected, and the battery and the control circuit of the control system being disposed in the rigid protective part and the flexible connecting part.
[0029] Preferably, the goggles are provided with a connecting strap for fixing the goggles to the eyes, the connecting strap including a hollow receiving portion, and both the rigid protective portion and the flexible connecting portion are disposed in the receiving portion.
[0030] 10. The atomizing device according to item 9, wherein a reinforcing band is provided on the connecting band, one end of the reinforcing band is connected to the goggles or the atomizer, and the other end of the reinforcing band is fixed at a position near the end of the connecting band away from the goggles.
[0031] Beneficial effects
[0032] In this application, the wearable eye nebulizer is operated by atomizing the liquid in the reservoir into the nebulizer and then delivering the medication to the eyes through the connection hole. Finally, the liquid enters the waste liquid chamber through the recycling hole reserved in the eye mask.
[0033] Using disposable liquid storage containers can effectively prevent accidents such as spillage, contamination, or the addition of incorrect or other harmful liquids caused by users adding their own liquids.
[0034] The heating function of the heating device not only prevents the medicine, which is stored under cold conditions or used in cold weather, from coming into direct contact with the eyes and skin, but also has the effect of warming the skin and promoting blood circulation.
[0035] The waste liquid chamber provided in this application can be manually opened from a closed state to facilitate the drainage of waste liquid and cleaning of the chamber. This avoids pollution and other problems caused by long-term waste liquid residue.
[0036] Modularizing components such as circuitry and batteries allows for flexibility in the control circuitry and battery, ensuring the connecting strap remains flexible even after integration, without affecting wearability. A new head strap is added to prevent pressure from the connecting strap alone from securing the goggles, thus improving comfort. Attached Figure Description
[0037] Figure 1 This is a schematic diagram of the overall atomizing device of this application;
[0038] Figure 2 This is a schematic diagram of the atomizing device as described in this application from another perspective;
[0039] Figure 3 This is a cross-sectional view of the waste liquid chamber in this application;
[0040] Figure 4 This is a normal diagram of the waste liquid chamber in this application;
[0041] Figure 5 This is an unfolded diagram of the waste liquid chamber of this application;
[0042] Figure 6 This is a structural diagram of the control system of this application;
[0043] Figure 7 This is a structural diagram of the reinforcement strip in this application.
[0044] In the diagram, 1 is the goggles; 11 is the eye cavity; 2 is the nebulizer; 3 is the reservoir; 5 is the waste liquid chamber; 51 is the waste liquid chamber; 52 is the connecting hole; 7 is the control system; 71 is the rigid body protection part; 72 is the flexible connection part; 8 is the connecting strip; and 81 is the reinforcing strip. Detailed Implementation
[0045] The present application will now be described in detail. While specific embodiments of the present application are shown, it should be understood that the present application can be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided to enable a more thorough understanding of the present application and to fully convey the scope of the present application to those skilled in the art.
[0046] It should be noted that certain terms are used in the specification and claims to refer to specific components. Those skilled in the art will understand that different terms may be used to refer to the same component. This specification and claims do not distinguish components based on differences in terminology, but rather on differences in function. The terms "comprising" or "including" used throughout the specification and claims are open-ended and should be interpreted as "comprising but not limited to." The following descriptions in the specification are preferred embodiments for carrying out this application; however, these descriptions are for the purpose of understanding the general principles of the specification and are not intended to limit the scope of this application. The scope of protection of this application shall be determined by the appended claims.
[0047] refer to Figure 1 and Figure 2 This application provides a wearable eye atomizing device, the atomizing device including an eye mask 1 that is attached to the eye; one or two eye cavities 11 are formed on one side of the eye mask 1 to cover the eye;
[0048] An atomizer 2 is provided near the center of the eye mask 1, and the atomizer 2 is connected to the eye cavity 11;
[0049] The atomizer 2 is connected to a liquid reservoir 3 for storing liquid.
[0050] refer to Figure 1 and Figure 2 The liquid reservoir 3 is provided with a seal that is connected to the atomizer 2, and the seal is a one-time seal;
[0051] The eye mask 1 is used to fit against the eyes and cover and seal the eyes.
[0052] One side of the blindfold 1 is convex, forming a cavity inside the convex blindfold 1, which is the eye cavity 11. When the blindfold 1 is worn, the human eye is covered by the blindfold 1 and the eye is located in the eye cavity 11.
[0053] refer to Figure 1 and Figure 2 The eye cavity 11 can be provided as a single unit, covering only one eye, suitable for individuals with specific needs. Alternatively, two eye cavities 11 can be provided, covering both eyes simultaneously. In this application, two eye cavities 11 are provided.
[0054] refer to Figure 1 and Figure 2 The nebulizer 2 is connected to the reservoir 3, which can store liquid or medicine. The nebulizer 2 can spray the liquid in the reservoir 3 into the eye cavity 11 in a mist. The liquid then diffuses in the eye cavity 11 and continues to act on the eye under the restriction of the eye cavity 11.
[0055] The atomizer 2 is connected to two eye cavities 11 respectively, and the atomizer 2 continuously delivers the atomized liquid into the eye cavities 11.
[0056] refer to Figure 1 and Figure 2 In this application, the atomizer 2 is positioned in the middle of the two eye cavities 11, so that the atomizer 2 can be connected to both eye cavities 11 simultaneously using only one atomizer 2 outlet through a three-way structure. This allows the atomized liquid to be delivered to both eye cavities 11 at the same time.
[0057] In this application, two eye cavities 11 correspond to the two eyes of the human body, with one eye cavity 11 covering one eye. This allows the atomized liquid in the eye cavity 11 to more fully act on the corresponding eye. Compared to one eye cavity 11 covering both eyes simultaneously, it would also cover the bridge of the nose between the two eyes, causing the atomized liquid to continuously act on the bridge of the nose, thus reducing the effectiveness of the atomized liquid. Furthermore, when the atomized liquid diffuses in the eye cavity 11, it is necessary to maintain a seal between the eye cavity 11 and the eye. The structure that simultaneously covers both eyes and the bridge of the nose requires a significantly higher level of sealing. Therefore, this application uses two eye cavities 11 to cover the eyes separately, ensuring a seal with lower technical difficulty. At the same time, the atomizer 2 is positioned between the two eye cavities 11, allowing the atomizer 2 to simultaneously deliver atomized liquid to the eye cavity 11. This reduces liquid loss when it acts on the eyes, increases the utilization rate of the liquid acting on the eyes, and improves the overall efficiency of the eye atomizing device.
[0058] refer to Figure 1 and Figure 2 Since the liquid in the reservoir 3 will be lost during use, this application sets the seal between the reservoir 3 and the atomizer 2 to be disposable. The seal is used to block the reservoir 3, ensuring that the liquid in the reservoir 3 is sealed inside, reducing the possibility of external contamination and preventing liquid residue from easily forming at the connection between the seal and the reservoir 3 during repeated use, thus reducing the possibility of contamination. Furthermore, the disposable seal allows for destructive puncture connection when connecting the reservoir 3 and the atomizer 2, making installation and connection between the reservoir 3 and the atomizer 2 more convenient. More importantly, the seal remains closed to the reservoir 3 until the connection is complete, allowing the reservoir 3 to be installed upside down on the atomizer 2. Furthermore, the sealing function can reduce or prevent the possibility of liquid leakage when it occurs in the reservoir 3, thus making the reservoir 3 more versatile.
[0059] refer to Figure 1 and Figure 2 In one specific embodiment, both the liquid reservoir 3 and the seal are disposable.
[0060] Both the reservoir 3 and the seal are not reused. This further reduces the possibility of contamination or adulteration of the liquid in the reservoir 3.
[0061] refer to Figure 1 and Figure 2 More preferably, the liquid reservoir 3 is integrally formed with the seal.
[0062] The reservoir 3 and the seal are sealed together, and the one-piece molded seal and reservoir 3 have stronger connection strength and sealing performance. This improves the connection strength of the seal and also reduces the possibility of separation between the seal and the reservoir 3 when the reservoir 3 is connected to the atomizer 2.
[0063] refer to Figure 1 and Figure 2 A heating device (not shown in the figure) is provided on the atomizer 2.
[0064] The heating device is used to heat the atomizer 2 or the atomized liquid sprayed by the atomizer 2. This ensures that the atomized liquid sprayed into the eye cavity 11 is heated, improving the comfort of the liquid when it acts on the eyes.
[0065] The heating device can heat the atomized liquid in the atomizer 2 to 30°C~50°C;
[0066] Specifically, the temperatures of the atomized liquid are: 30℃, 31℃, 32℃, 33℃, 34℃, 35℃, 36℃, 37℃, 38℃, 39℃, 40℃, 41℃, 42℃, 43℃, 44℃, 45℃, 46℃, 47℃, 48℃, 49℃, and 50℃.
[0067] The heating device heats the atomized liquid to between 30 and 50°C, which is close to the temperature of the human body surface, thereby reducing the irritation of the atomized liquid to the human skin and improving the comfort when the atomized liquid acts on the eyes.
[0068] refer to Figure 1 and Figure 2 Preferably, a temperature sensor (not shown in the figure) is provided on the goggles 1, and the temperature sensor can feed back the temperature of the atomized liquid to the heating device.
[0069] A temperature sensor is mounted on the goggles 1 and is positioned inside the eye cavity 11. The temperature sensor detects the temperature inside the eye cavity 11 or the temperature of the atomized liquid inside the eye cavity 11. The temperature sensor is connected to a heating device; when the temperature sensor detects that the temperature of the atomized liquid in the eye cavity 11 is too high, it sends a signal to the heating device. The heating device then reduces its heating power or stops heating. Simultaneously, the atomizer 2 continuously sprays atomized liquid into the eye cavity 11 to neutralize and cool the hot liquid. This maintains the atomized liquid in the eye cavity 11 at a suitable temperature, reducing eye irritation and improving comfort.
[0070] refer to Figure 1 and Figure 2A waste liquid cavity 5 is provided on the goggles 1, and a waste liquid cavity 51 is formed inside the waste liquid cavity 5. A connecting hole 52 connecting the waste liquid cavity 51 and the eye cavity 11 is provided on the waste liquid cavity 5 or the goggles 1.
[0071] The atomizer 2 continuously sprays the atomized liquid into the eye cavity 11. After the atomized liquid acts on the eye, it condenses into droplets and flows down along the eye or inside the eye cavity 11, reducing the amount of atomized liquid in the eye cavity 11 so that the atomized liquid in the atomizer 2 can be sprayed into the eye cavity 11.
[0072] refer to Figure 1 and Figure 2 When the atomized liquid condenses on the inner wall of the eye cavity 11 and on the eye, it forms waste liquid, which flows to the bottom of the eye cavity 11 under gravity. The connection hole 52 between the waste liquid chamber 51 and the eye cavity 11 is located at the bottom of the eye cavity 11, and the waste liquid enters the waste liquid chamber 51 through the connection hole 52 and is collected. This reduces the retention of waste liquid in the eye cavity 11, thereby avoiding prolonged contact between the waste liquid and the human eye or face. At the same time, collecting the waste liquid in the waste liquid chamber 51 reduces the liquid residue in the eye cavity 11, making it easier to remove the goggles 1 from the eyes. This also prevents the liquid in the eye cavity 11 from leaking onto the body or clothing when the goggles 1 are removed.
[0073] refer to Figure 1 and Figure 2 The waste liquid chamber 5 is located on the side of the goggles 1 closest to the eyes;
[0074] The goggles 1 fit snugly against the human eye. Due to the presence of atomized liquid in the eye cavity 11, a seal must be maintained between the goggles 1 and the human eye to reduce leakage of the atomized liquid. The atomized liquid condenses into droplets upon contact with the human eye. To ensure that these droplets can smoothly enter the waste liquid chamber 51, the waste liquid chamber 5 is positioned close to the human body, allowing droplets to flow directly into the waste liquid chamber 51 through the connection hole 52 when they fall. This reduces the accumulation and residue of liquid at the contact point between the human eye and the goggles 1, thereby reducing prolonged contact between the condensed droplets and the body, and ultimately improving comfort.
[0075] refer to Figure 1 and Figure 2 Preferably, the number of waste liquid cavities 5 is the same as the number of eye cavities 11, and the waste liquid cavities 5 correspond one-to-one with the eye cavities 11;
[0076] In one specific embodiment, only one eye cavity 11 is provided, and one eye cavity 11 completely covers both eyes of the human body. At this time, only one waste liquid cavity 5 is also provided, and it is located at the circumferential edge of the eye cavity 11, so that the condensed droplets in the eye cavity 11 can fall into the waste liquid cavity 51 of the waste liquid cavity 5.
[0077] In another specific embodiment, two eye cavities 11 are provided, and the two eye cavities 11 cover the two eyes of the human body respectively. At this time, two waste liquid cavities 5 are also provided, and the two waste liquid cavities 5 correspond one-to-one with the circumferential edge of the eye cavity 11 of the goggle 1.
[0078] refer to Figure 1 and Figure 2 In this application, the eye cavity 11 of the goggles 1 is provided in two ways corresponding to the human eye, and the waste liquid cavity 5 and the waste liquid cavity 51 are also provided in two ways corresponding to the eye cavity 11.
[0079] As those skilled in the art will know, the number of waste liquid cavities 5 and waste liquid cavities 51 can also be different. That is, when the goggles 1 has only one eye cavity 11, two waste liquid cavities 5 can still be provided; or the goggles 1 has two eye cavities 11, and two waste liquid cavities 5 are provided corresponding to the eye. These are just different arrangements of the eye cavity 11 in this application, and all are within the scope of protection of this application.
[0080] refer to Figure 1 and Figure 3 More preferably, the waste liquid cavity 5 is formed in a ring shape along the edge of the eye cavity 11.
[0081] The waste liquid chamber 5 is located on the side of the goggles 1 closest to the human body, and wraps around the eyes in a ring shape.
[0082] On the one hand, the annular waste liquid chamber 5 can seal the space between the eye and the eye cavity 11, reducing the leakage of mist-like liquid in the eye cavity 11. On the other hand, due to its hollow structure, the waste liquid chamber 5 also has a certain degree of elasticity, increasing the contact area between the waste liquid chamber 5 and the human eye, and improving the wearing comfort of the goggle 1.
[0083] refer to Figure 1 and Figure 3 The waste liquid cavity 5 is made of an elastic material;
[0084] Since the waste liquid chamber 5 comes into contact with the skin around the eyes, the elastic material of the waste liquid chamber 5 can further increase the contact area between the waste liquid chamber 5 and the human body, thereby further increasing the wearing comfort of the goggles 1.
[0085] refer to Figure 1 and Figure 3Preferably, the waste liquid cavity 5 has a sheet-like structure, and the waste liquid cavity 51 is a central cavity formed by the curling of the waste liquid cavity 5.
[0086] The sheet-like waste liquid cavity 5 is rolled up, and the two ends of the waste liquid cavity 5 in the rolling direction are connected and abutted, so that the center of the waste liquid cavity 5 presents a hollow structure.
[0087] refer to Figure 4 and Figure 5 The waste liquid cavity 5, with its elastic structure, is capable of elastic deformation and bending. During its preparation, the waste liquid cavity 5 is rolled up and then shaped. Therefore, under normal conditions, the waste liquid cavity 5 is in a rolled-up shape.
[0088] refer to Figure 4 and Figure 5 During the shaping process of the waste liquid cavity 5, two preset elastic forces are pre-set at the two ends of the waste liquid cavity 5 that are connected to each other, so that the two ends of the waste liquid cavity 5 tend to squeeze together, thereby achieving a sealing effect between the two ends of the waste liquid cavity 5. This reduces the possibility of liquid leakage from the waste liquid cavity 51.
[0089] refer to Figure 4 and Figure 5 To improve the sealing performance of the waste liquid chamber 51, when pre-treating both ends of the waste liquid chamber 5, the sealing performance of the waste liquid chamber 5 can be increased by extending the overlap between the two ends or by increasing the interaction force between the two ends. Other treatment methods, such as adding sealing devices to the waste liquid chamber 5, will not be elaborated here.
[0090] refer to Figure 4 and Figure 5 The waste liquid chamber 5 is a ring-shaped sheet structure. After the waste liquid chamber 5 is bent, it forms a ring structure with a circular cross-section, and the waste liquid chamber 5 is hollow to form a waste liquid chamber 51.
[0091] refer to Figure 4 and Figure 5 Since the waste liquid chamber 51 is formed by bending an elastic sheet-like structure, the waste liquid chamber 5 can be flipped outward again into a sheet-like structure under the action of external force.
[0092] refer to Figure 4 and Figure 5 When in use, the condensed droplets in the waste liquid chamber 5 enter the waste liquid chamber 51 along the connection hole 52 to form waste liquid, which is then collected. After the waste liquid is collected, it needs to be discharged from the waste liquid chamber 5 for subsequent use. At this time, the waste liquid chamber 5 can be unfolded from its rolled-up shape into a sheet shape to clean the waste liquid in the waste liquid chamber 51.
[0093] refer to Figure 4 and Figure 5 When the waste liquid chamber 5 is unfolded into a sheet shape, not only can the waste liquid be discharged from the waste liquid chamber 51, but the inner wall of the waste liquid chamber 51 can also be cleaned, thereby reducing the residue of liquid inside the waste liquid chamber 51. Furthermore, due to the surface tension of the liquid, the liquid film formed inside the waste liquid chamber 5 can also be cleaned. This further ensures the cleaning efficiency inside the waste liquid chamber 51. Moreover, it reduces the likelihood of reactions or interactions between different waste liquids due to residue in the waste liquid chamber 51 during repeated use. This reduces the impact of waste liquid on the eye atomizing device, improving the safety and stability of the eye atomizing device during repeated use.
[0094] refer to Figure 4 and Figure 5 More preferably, one end of the waste liquid chamber 5 is a free end, and the other end of the waste liquid chamber 5 is fixedly connected to the goggles 1;
[0095] One end of the sheet-shaped waste liquid chamber 5 is fixedly connected to the goggles 1 as a fixed end, and the other end of the waste liquid chamber 5 extends away from the goggles 1 as a free end. The free end bends toward the fixed end and fits with the fixed end, thereby forming a waste liquid chamber 51 inside the free end and the fixed end of the waste gas chamber.
[0096] refer to Figure 4 and Figure 5 In another specific embodiment, the two ends of the waste liquid cavity 5 are free ends, and the waste liquid cavity 5 is fixedly connected to the goggles 1 near the center.
[0097] More preferably, the waste liquid chamber 51 is formed by the outward curling of the waste liquid chamber body 5;
[0098] refer to Figure 4 and Figure 5 In one specific embodiment, the free end of the waste liquid chamber 5 is rolled outwards towards the annular side to form a waste liquid chamber 51. The free end of the waste liquid chamber 5 is then fitted and sealed between the outer side and the fixed end. The inner side of the waste liquid chamber 5, located inside the eye cavity 11, has a smooth structure where the fixed end is fixedly connected to the eye mask 1, facilitating the flow of condensed droplets into the waste liquid chamber 51 and reducing the amount of droplets remaining in the eye cavity 11.
[0099] In another specific embodiment, the free end of the waste liquid cavity 5 is curled inward to form a waste liquid cavity 51.
[0100] More preferably, the waste liquid chamber 5 and the goggles 1 are integrally formed.
[0101] refer to Figure 4 and Figure 5In one specific embodiment, the waste liquid chamber 5 and the goggles 1 are integrally formed and fixedly connected, which increases the connection strength between the waste liquid chamber 5 and the goggles 1, and also increases the sealing performance of the connection between the waste liquid chamber 5 and the goggles 1. This improves the connection stability and operational stability between the waste liquid chamber 5 and the goggles 1.
[0102] refer to Figure 1 and Figure 2 A circulating fan (not shown in the figure) is provided on the goggles 1, which can blow the atomized liquid in the atomizer 2;
[0103] refer to Figure 1 and Figure 2 The circulating fan is used to deliver the atomized liquid into the eye cavity 11. This allows the atomized liquid sprayed by the atomizer 2 to enter the eye cavity 11 more smoothly, while increasing the amount of atomized liquid in the eye cavity 11, so that the atomized liquid can act on the eye to a greater extent and improve the effect of the atomized liquid on the eye. The circulating fan can also accelerate the flow rate of the atomized liquid and increase the circulation of gas in the eye cavity 11.
[0104] Preferably, the circulating fan is located at the connection between the atomizer 2 and the goggles 1, or the circulating fan is fixed inside the goggles 1;
[0105] refer to Figure 1 and Figure 2 There is one circulating fan and two eye cavities 11. Therefore, the circulating fan is located at the connection between the atomizer 2 and the eye mask 1, and at the same time, the atomizer 2 is connected to both eye cavities 11. So when the circulating fan rotates, the atomized liquid generated by the atomizer 2 can be directly delivered to the two eye cavities 11 through the communication hole between the atomizer 2 and the two eye cavities 11.
[0106] refer to Figure 1 and Figure 6 The atomizing device is connected to a control system 7 containing a battery and a control circuit. The control system 7 includes a rigid protective part 71 and a flexible connecting part 72, which are alternately connected. The battery and control circuit of the control system 7 are disposed in the rigid protective part 71 and the flexible connecting part 72.
[0107] refer to Figure 1 and Figure 6 The control system 7 is used to control the atomizer 2 and the circulating fan. The control system 7 is also connected to the temperature sensor and the heating device to process the detection signal of the temperature sensor to control the atomizer 2 and / or the heating device.
[0108] refer to Figure 1 and Figure 6The rigid protection section includes a rigid housing; the control circuitry and battery are both housed inside the rigid housing. The rigid housing protects the internal control circuitry or battery, reducing damage to them from impacts or collisions.
[0109] refer to Figure 1 and Figure 6 The flexible connection part 72 is a bendable structure. The flexible connection part 72 includes a flexible wire, which consists of a flexible outer shell made of a flexible material such as fabric, nylon, or rubber, and an internal flexible metal wire. The flexible wire is disposed between two adjacent rigid shells and is used to connect the control circuitry and battery inside the rigid shells.
[0110] refer to Figure 1 and Figure 6 The rigid protective part and the flexible connecting part 72 are alternately arranged, so that the overall structure of the control system 7 can be bent in the flexible connecting part 72, thereby reducing the gap between the control system 7 and the human body, and thus allowing the control system 7 to fit more closely to the human body; increasing the overall wearing comfort of the eye atomizing device.
[0111] refer to Figure 1 and Figure 6 By alternating between rigid shells and flexible strips, multiple rigid shells can be manufactured to achieve a smaller size. Furthermore, the battery and control circuitry can be separated into smaller modules, which are then individually installed within the rigid shells. This allows the control system 7 to bend to a certain extent to conform to the human body and improve wearing comfort, while also protecting the control system 7 and reducing the possibility of collisions or damage.
[0112] refer to Figure 1 and Figure 6 Preferably, the goggles 1 are provided with a connecting strap 8 for fixing the goggles 1 to the eyes. The connecting strap 8 includes a hollow receiving portion, and the rigid protective portion 71 and the flexible connecting portion 72 are both disposed in the receiving portion.
[0113] The two ends of the connecting strap 8 are respectively connected to the goggles 1. When wearing the goggles, place the goggles 1 at the eyes and place the connecting strap 8 behind the head, so that the goggles 1 and the connecting strap 8 are looped around the head.
[0114] refer to Figure 1 and Figure 6The control system 7 is mounted on the connecting strap 8. The alternating structure of the rigid protective part and the flexible connecting part 72 allows the control system 7 to bend with the connecting strap 8, enabling a closer fit between the connecting strap 8 and the control system 7 to the head. This allows the connecting strap 8 to both secure the goggles 1 to the eyes and accommodate the control system 7, maximizing the space on the connecting strap 8 and reducing the overall structural volume of the eye fogging device. This increases the overall wearing comfort of the eye fogging device and improves its overall aesthetics.
[0115] refer to Figure 1 and Figure 7 The connecting strap 8 is provided with a reinforcing strap 81. One end of the reinforcing strap 81 is connected to the eye mask 1 or the atomizer 2, and the other end of the reinforcing strap 81 is fixed at a position near the end of the connecting strap 8 away from the eye mask 1.
[0116] refer to Figure 1 and Figure 7 When wearing the eye atomizing device, the reinforcing strap 81 is located at the top of the head. The reinforcing strap 81 fits snugly against the upper part of the head, thus directly offsetting the weight of the goggles 1 with the tension provided by the reinforcing strap 81. Compared to simply using the connecting strap 8 to tighten the goggles 1 around the head and offset the weight by increasing the vertical friction between the goggles 1 and the body, the reinforcing strap 81 directly applies the vertical force to the top of the head. Therefore, using the reinforcing strap 81 significantly reduces the tightness of the connecting strap 8 and the goggles 1 on the head, greatly increasing the wearing comfort of the goggles 1.
[0117] refer to Figure 1 The goggles 1 are connected to the waste liquid chamber 51. When in use, the user uses the connecting strap 8 to put the goggles 1 over their eyes, ensuring the waste liquid chamber 51 or the goggles 1 is in close contact with and sealed to the face. The atomizer 2 atomizes the liquid in the reservoir 3. The atomized liquid is heated by a heating device to maintain a temperature of 30°C to 50°C. It is then discharged into the eye cavity 11, where it acts on the user's eyes. After being used in the eye cavity 11, the liquid condenses into droplets at the lower part of the eye cavity 11. These droplets then enter the waste liquid chamber 51 through the connecting hole 52 and are collected. The atomizer 2 continuously atomizes the liquid in the reservoir 3 and discharges it into the eye cavity 11. Meanwhile, in order to ensure that the atomized liquid can be continuously supplied to the eye cavity 11, the circulating fan will be activated when the content of atomized liquid in the eye cavity 11 is low, blowing the atomized liquid generated by the atomizer 2 into the eye cavity 11.
[0118] Figure 2This is a front view of the eye atomizing device of this application. The atomizer 2 is fixedly installed in the center of the eye mask 1, so that the left and right sides of the eye mask 1 are symmetrical, which makes it easier for the user to maintain balance when wearing the eye mask 1.
[0119] Figure 3 The diagram shows the cross-sectional structure of the waste liquid cavity 5. The waste liquid cavity 5 is a sheet-like structure. It is rolled outward to form a hollow waste liquid cavity 51 near the center. Since the waste liquid cavity 5 is made of an elastic material, the free end of the waste liquid cavity 5 has a certain elasticity, which creates a certain compressive force between the waste liquid cavities 5. The waste liquid cavity 51 can thus be sealed to prevent leakage of waste liquid.
[0120] Figure 4 This is a structural diagram of the sealed waste liquid chamber 5. Figure 5 This is a structural diagram of the waste liquid chamber 5 in its unfolded state. After the eye atomizing device is used, waste liquid will remain in the waste liquid chamber 5. At this time, the waste liquid chamber 5 can be unfolded from its rolled-up state to discharge the waste liquid in the waste liquid chamber 5. At the same time, the inside of the waste liquid chamber 51 can be cleaned to reduce the amount of waste liquid remaining inside the waste liquid chamber 51.
[0121] Figure 6 The control system 7, designed as a segmented module, alternates between a rigid protective section 71 and a flexible connecting section 72. The rigid protective section 71 is a rigid structure used to protect the internal battery or control circuitry, while the flexible connecting section 72 is a flexible structure used for connection. Dividing the control system 7 into multiple segments allows it to be installed onto the connecting strap 8, while the connecting strap 8 retains a degree of flexibility to fit snugly against the user's skin, thus improving user comfort.
[0122] Figure 7 A reinforcing band 81 was added to the eye atomizing device. The reinforcing band 81 can be worn on the top of the user's head, so that the overall weight of the eye atomizing device can be distributed by the reinforcing band 81, reducing the force on the connecting band 8, thereby reducing the elastic force applied by the connecting band 8 when fixing the eye atomizing device, and thus improving the user's wearing comfort.
[0123] This specific embodiment is merely an explanation of this application and is not intended to limit it. After reading this specification, those skilled in the art can make modifications to this embodiment without contributing any inventive step, but such modifications are protected by patent law as long as they fall within the scope of the claims of this application.
Claims
1. A wearable eye atomizing device, characterized in that, The atomizing device includes an eye mask that is placed against the eyes; one or two eye cavities are formed on one side of the eye mask to cover the eyes; An atomizer is provided near the center of the eye mask, and the atomizer is connected to the eye cavity; The atomizer is connected to a reservoir for storing liquid. The liquid reservoir is provided with a seal that connects to the atomizer, and the seal is a one-time seal.
2. The atomizing device according to claim 1, characterized in that, Both the liquid reservoir and the seal are disposable.
3. The atomizing device according to claim 2, characterized in that, The liquid reservoir and the seal are integrally formed.
4. The atomizing device according to claim 1, characterized in that, A heating device is provided on the atomizer.
5. The atomizing device according to claim 4, characterized in that, The heating device can heat the atomized liquid in the atomizer to 30°C~50°C.
6. The atomizing device according to claim 4, characterized in that, A temperature sensor is installed on the goggles, which can feed back the temperature of the atomized liquid to the heating device.
7. The atomizing device according to claim 1, characterized in that, The goggles are provided with a waste liquid cavity, and a waste liquid chamber is formed inside the waste liquid cavity. A connecting hole is provided on the waste liquid cavity or the goggles to connect the waste liquid cavity and the eye cavity.
8. The atomizing device according to claim 7, characterized in that, The waste liquid chamber is located on the side of the goggles closest to the eyes.
9. The atomizing device according to claim 8, characterized in that, The number of waste liquid cavities is the same as the number of eye cavities, and there is a one-to-one correspondence between the waste liquid cavities and the eye cavities.
10. The atomizing device according to claim 9, characterized in that, The waste liquid chamber forms a ring-shaped structure along the edge of the eye cavity.
11. The atomizing device according to claim 7, characterized in that, The waste liquid chamber is made of an elastic material.
12. The atomizing device according to claim 11, characterized in that, The waste liquid cavity has a sheet-like structure, and the waste liquid cavity is a central cavity formed by the curling of the waste liquid cavity.
13. The atomizing device according to claim 12, characterized in that, The waste liquid chamber is formed by the outward curling of the waste liquid chamber body.
14. The atomizing device according to claim 13, characterized in that, One end of the waste liquid chamber is a free end, and the other end of the waste liquid chamber is fixedly connected to the goggles.
15. The atomizing device according to claim 14, characterized in that, The waste liquid chamber and the goggles are integrally formed.
16. The atomizing device according to claim 1, characterized in that, A circulating fan is provided on the goggles, which can blow the atomized liquid in the atomizer.
17. The atomizing device according to claim 16, characterized in that, The circulating fan is located at the connection between the atomizer and the goggles, or the circulating fan is fixed inside the goggles.
18. The atomizing device according to claim 1, characterized in that, The atomizing device is connected to a control system containing a battery and a control circuit. The control system includes a rigid protective part and a flexible connecting part, which are alternately connected. The battery and control circuit of the control system are disposed in the rigid protective part and the flexible connecting part.
19. The atomizing device according to claim 18, characterized in that, The goggles are provided with a connecting strap for fixing the goggles to the eyes. The connecting strap includes a hollow receiving part, and both the rigid protective part and the flexible connecting part are disposed in the receiving part.
20. The atomizing device according to claim 19, characterized in that, The connecting strap is provided with a reinforcing strap. One end of the reinforcing strap is connected to the goggles or atomizer, and the other end of the reinforcing strap is fixed at a position near the end of the connecting strap away from the goggles.