Medical atomizing eyeshade
By introducing alternating hot and cold and vibration massage functions into the atomizing eye mask, the problem of increased intraocular pressure caused by the atomizing eye mask is solved, improving the comfort of use and the efficiency of drug utilization, and reducing facial discomfort.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- THE SECOND AFFILIATED HOSPITAL OF ANHUI UNIVERSITY OF TRADITIONAL CHINESE MEDICINE (ACUPUNCTURE AND MOXIBUSTION HOSPITAL OF ANHUI PROVINCE)
- Filing Date
- 2026-04-14
- Publication Date
- 2026-05-29
AI Technical Summary
Existing atomized eye masks can easily lead to increased intraocular pressure during use, causing symptoms such as headaches and eye pain, and may also lead to glaucoma.
A medical atomizing eye mask has been designed, comprising an eye covering mechanism, a head fixation device, a heat alternation mechanism, and an intraocular pressure relief mechanism. The heat alternation mechanism achieves alternating hot and cold temperatures by heating and stopping the atomized medication to relieve intraocular pressure; the intraocular pressure relief mechanism increases blood flow by vibrating and massaging the eye socket; the sealing strip and drainage hole design reduce medication condensation and leakage; and the massage device provides comfort through the vibration of a flexible support strip.
By alternating between hot and cold and vibrating massage, symptoms of high intraocular pressure can be reduced or relieved, improving user comfort, preventing medication from condensing and dripping, protecting the patient's face, and improving medication utilization efficiency.
Smart Images

Figure CN122097069A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of atomizing eye mask technology, and in particular to a medical atomizing eye mask. Background Technology
[0002] Atomized eye masks are medical devices or daily care tools that combine atomization technology with eye care. They work by converting liquid medications or water into tiny particles that act directly on the eyes and surrounding tissues to achieve therapeutic or soothing effects.
[0003] The steam generated during the atomization process acts on the eyeball wall, obstructing the circulation of aqueous humor and causing increased intraocular pressure. Patients with increased intraocular pressure may experience symptoms such as headache, eye pain, nausea, and vomiting. In the long term, it may also lead to glaucoma.
[0004] To address the aforementioned issues, this application proposes a medical atomizing eye mask that alleviates increased intraocular pressure during eye atomization. Summary of the Invention
[0005] In view of the shortcomings of the prior art described above, the purpose of this invention is to provide a medical atomizing eye mask to solve the problem that increased intraocular pressure is easily generated during atomization treatment of the eyes in the prior art.
[0006] To achieve the above and other related objectives, the present invention provides a medical atomizing eye mask, comprising: An eye covering mechanism for covering a patient's eyes; A head fixation device is disposed on the outer surface of the eye covering mechanism and is used to fix and limit the position of the eye covering mechanism in conjunction with the patient's head. A heat exchange mechanism is disposed on the outer surface of the eye cover mechanism and is connected to the interior of the eye cover mechanism. External medication enters the interior of the eye cover mechanism through the heat exchange mechanism and comes into contact with the patient's eye. The heat exchange mechanism is used to allow the external medication to undergo hot and cold alternation. An intraocular pressure relief mechanism is disposed inside an eye covering mechanism, the intraocular pressure relief mechanism is in contact with the patient's eye socket, and the intraocular pressure relief mechanism can massage the patient's eye socket through vibration.
[0007] Preferably, the heat exchange mechanism includes a temperature control device, and a human-computer interaction device and an atomizing nozzle are respectively provided on the outer surface of the temperature control device. The human-computer interaction device is located on the back of the temperature control device, and the atomizing nozzle is located on the front of the temperature control device. The number of atomizing nozzles is multiple, and the multiple atomizing nozzles extend into the interior of the eye covering mechanism. The temperature control device is equipped with a drug connection pipe at the bottom, which can transmit the drug required for atomization to the atomizing nozzle. The temperature control device is equipped with a temperature control unit inside to change the temperature of the medicine that is transported into the temperature control device from the outside.
[0008] Preferably, the temperature control device has a multi-port pipe inside, which is used to connect the drug connecting pipe and multiple atomizing nozzles; A heater is installed on the multi-port pipe, and the heater is electrically connected to the human-machine interaction device.
[0009] Preferably, the eye covering mechanism includes an eye mask shell, the inside of which is provided with a fumigation chamber with a front opening, the atomizing nozzle is located above the inner wall of the fumigation chamber, and the intraocular pressure relief mechanism is installed in the middle section of the fumigation chamber.
[0010] Preferably, a sealing strip is provided around the edge on the front side of the eye mask shell, and pressure relief holes are provided on both sides of the top of the eye mask shell, the pressure relief holes being connected to the interior of the fumigation chamber.
[0011] Preferably, drainage holes are provided on both sides of the bottom of the fumigation chamber, and the drainage holes are located in the low-lying area at the bottom of the fumigation chamber. A condensate drain pipe is provided on the outside of the goggle shell, and the condensate drain pipe is connected to the two drainage holes respectively.
[0012] Preferably, the intraocular pressure relief mechanism includes a flexible support strip, the two ends of which are respectively connected to the two ends of the inner wall of the fumigation chamber. The two sides of the front of the flexible support strip are respectively provided with eye exposure holes, and an orbital support device is installed in each eye exposure hole.
[0013] Preferably, each of the orbital support devices includes a first connecting cylinder and a second connecting cylinder, which are detachably fixed in the eye exposure hole; The edge of the first connecting tube facing the eye socket is provided with a contact pad.
[0014] Preferably, a massage device is provided on the back of the flexible support strip, and the massage device is electrically connected to the human-computer interaction device.
[0015] Preferably, the massage device includes a waterproof housing, and a drive device is installed inside the waterproof housing. The drive device is electrically connected to a human-computer interaction device. An eccentric force generating component is mounted on the output shaft of the drive device, and the drive device can drive the eccentric force generating component to rotate.
[0016] As described above, the medical atomizing eye mask of the present invention has the following beneficial effects: This invention installs a heat-alternating mechanism on the eye covering mechanism. As the nebulized medication enters the eye covering mechanism through the heat-alternating mechanism, the mechanism intermittently heats and stops heating the nebulized medication according to a set setting, thereby causing the medication to alternate between hot and cold. The alternating hot and cold medication promotes eye circulation and reduces or alleviates the symptoms of high intraocular pressure.
[0017] This invention supports the patient's eyes by setting an intraocular pressure relief mechanism inside the eye covering mechanism, and covers part of the patient's face by covering the intraocular pressure relief mechanism, thus avoiding the direct impact of drugs on the patient's face and causing facial discomfort. At the same time, the obstruction of the intraocular pressure relief mechanism can increase the condensation rate of the drug, allowing the diffused drug to drip down with the intraocular pressure relief mechanism to be collected at the bottom of the eye covering mechanism, reducing the condensation of the drug on the patient's face and allowing it to flow down with the patient's face.
[0018] This invention improves the sealing of the contact area between the goggle mask shell and the patient by setting a sealing strip on the front of the goggle mask shell that contacts the patient's face, thus preventing condensation from flowing out from the contact area between the mask and the body. Meanwhile, a drain hole is set at the bottom of the fumigation chamber and connected to the condensate drain pipe. During the atomization process, the condensed medicine will be recovered through the drain hole and the condensate drain pipe or continue to be circulated to the atomization device for atomization.
[0019] This invention provides a massage device on the back of a flexible support strip and electrically connects the massage device to a human-computer interaction device. The massage device can be controlled to vibrate through the human-computer interaction device. The vibrating massage device will cause the flexible support strip to vibrate, thereby providing a vibrating massage to the patient's eyes through the eye socket support device, thus improving the patient's comfort during use.
[0020] Therefore, this invention effectively overcomes the various shortcomings of the prior art and has high industrial application value. Attached Figure Description
[0021] Figure 1 The diagram shown is a schematic representation of the structure of the present invention.
[0022] Figure 2 The diagram shows a rear view of the structure of this invention.
[0023] Figure 3 The image shown is a front view of the structure of this invention.
[0024] Figure 4 The diagram shown is a schematic representation of the internal structure of the eye-covering mechanism of the present invention.
[0025] Figure 5 This invention is shown as Figure 4 A magnified schematic diagram of the structure at point A in the middle.
[0026] Figure 6 The diagram shown is a schematic representation of the internal structure of the temperature control device of the present invention.
[0027] Figure 7 The diagram shown is a structural schematic of the intraocular pressure relief mechanism of the present invention.
[0028] Figure 8 The diagram shown is an assembly schematic of the orbital support device of the present invention.
[0029] Figure 9 The diagram shown is a schematic representation of the internal structure of the massage device of the present invention.
[0030] Component designation explanation: 1. Eye cover mechanism; 11. Eye mask shell; 12. Fumigation chamber; 13. Sealing strip; 14. Pressure relief hole; 15. Drain hole; 2. Head fixation device; 3. Heat exchange mechanism; 31. Temperature control device; 32. Human-machine interface device; 33. Drug connection tube; 34. Atomizing nozzle; 35. Multi-port pipe; 36. Heater; 4. Intraocular pressure relief mechanism; 41. Flexible support strip; 42. Eye exposure hole; 43. Orbital support device; 431. First connecting cylinder; 432. Second connecting cylinder; 433. Contact pad; 44. Massage device; 441. Waterproof shell; 442. Drive device; 443. Eccentric force generating component; 5. Condensate drain pipe. Detailed Implementation
[0031] The following specific embodiments illustrate the implementation of the present invention. Those skilled in the art can easily understand other advantages and effects of the present invention from the content disclosed in this specification.
[0032] Please see Figures 1 to 9 It should be understood that the structures, proportions, sizes, etc., illustrated in the accompanying drawings are merely for illustrative purposes to aid those skilled in the art and to facilitate understanding and reading. They are not intended to limit the scope of the invention and therefore have no substantial technical significance. Any modifications to the structure, changes in proportions, or adjustments to size, without affecting the effectiveness and purpose of the invention, should still fall within the scope of the technical content disclosed in this invention. Furthermore, the terms such as "upper," "lower," "left," "right," "middle," and "one" used in this specification are merely for clarity and not intended to limit the scope of the invention. Changes or adjustments to their relative relationships, without substantially altering the technical content, should also be considered within the scope of the invention's implementation.
[0033] like Figure 1-2As shown, this invention provides a medical atomizing eye mask, including an eye covering mechanism 1, a head fixation device 2, a heat exchange mechanism 3, and an intraocular pressure relief mechanism 4. The eye covering mechanism 1 is used to cover the patient's eyes, allowing the atomized medication to remain in contact with the patient's eyes for an extended period, thus enhancing the therapeutic effect. The head fixation device 2 is disposed on the outer surface of the eye covering mechanism 1 and is used to fix and limit the position of the eye covering mechanism 1 in conjunction with the patient's head. The head fixation device 2 has elasticity or adjustable length to accommodate patients with different head circumferences.
[0034] A heat exchange mechanism 3 is disposed on the outer surface of the eye covering mechanism 1 and is connected to the interior of the eye covering mechanism 1. External medication enters the interior of the eye covering mechanism 1 through the heat exchange mechanism 3 and comes into contact with the patient's eyes for nebulization treatment. After being connected to a power source, the heat exchange mechanism 3 is used to heat or deheat the external medication, creating an alternating hot and cold environment. This change in medication temperature alters blood circulation around the eye. For example, when the medication temperature increases, it promotes blood circulation around the eye and the eyeball; when the medication temperature decreases, the skin around the eye and the eyeball cool down, thereby reducing congestion. Simultaneously, this technical solution alleviates intraocular high pressure, protecting the patient.
[0035] The intraocular pressure relief mechanism 4 is located inside the eye-covering mechanism 1, and it rests against the patient's eye socket. The intraocular pressure relief mechanism 4 massages the patient's eye socket through vibration, increasing blood flow to the eye socket and eye muscles. It assists the heat exchange mechanism 3 in relieving high intraocular pressure and improving patient comfort.
[0036] like Figure 2 and Figure 3As shown, in some embodiments, the heat exchange mechanism 3 of the present invention includes a temperature regulating device 31, on the outer surface of which a human-machine interface device 32 and an atomizing nozzle 34 are respectively disposed. The human-machine interface device 32 is located on the back of the temperature regulating device 31. The atomizing nozzle 34 is a nozzle with atomizing holes. The atomizing nozzle 34 is located on the front of the temperature regulating device 31, and there are multiple atomizing nozzles 34, all of which extend into the interior of the eye covering mechanism 1. A drug connecting tube 33 is disposed at the bottom of the temperature regulating device 31, which can transmit the drug required for atomization to the atomizing nozzle 34. A temperature control device is disposed inside the temperature regulating device 31 to change the temperature of the drug transmitted into the temperature regulating device 31 from the outside. When the patient atomizes the eye, the medicine enters the interior of the temperature regulating device 31 through the drug connecting tube 33, and then the temperature control device heats or deheats the medicine, thereby causing a temperature change in the medicine. Different temperatures of medication are atomized and sprayed through atomizing nozzle 34, filling the interior of the eye covering mechanism 1. The temperature-changing medication creates alternating hot and cold temperatures on the patient's face, promoting eye circulation and reducing congestion. The temperature control device is powered by an external power source or an internal battery and is controlled via a human-machine interface 32. The maximum heating temperature of the medication by the temperature control device does not exceed 40 degrees Celsius to protect the user. The heating time for a single application of the medication does not exceed 10 minutes to avoid low-temperature burns. The time interval between two heating applications is at least 15 minutes to allow the medication to cool sufficiently, enhancing the effect of the alternating hot and cold temperature cycle.
[0037] like Figure 6 As shown, in some embodiments, the temperature regulating device 31 of the present invention has a multi-channel pipe 35 inside, which connects the drug connecting pipe 33 and multiple atomizing nozzles 34. This allows the single-entry drug solution to be divided into multiple channels entering the multiple atomizing nozzles 34, improving the uniformity of drug atomization. A heater 36 is installed on the multi-channel pipe 35, and the heater 36 is electrically connected to the human-machine interface device 32. When the heater 36 is working, it heats the multi-channel pipe 35 at a low temperature, thereby gradually increasing the temperature of the drug solution flowing in the multi-channel pipe 35. When the heater 36 stops working, the temperature on the multi-channel pipe 35 gradually decreases to room temperature. The temperature regulating device 31 has a circuit board inside, and the human-machine interface device 32 controls the heater 36 and the intraocular pressure relief mechanism 4 through the circuit board.
[0038] like Figures 1-4As shown, in some embodiments, the eye covering mechanism 1 of the present invention includes an eye mask shell 11, which is made of a hard material to maintain its die-cast shape. The eye mask shell 11 has an internal fumigation chamber 12 with a front opening. The opening of the fumigation chamber 12 allows the user's face and eyes to enter the fumigation chamber 12, thereby contacting the atomized medication within it. An atomizing nozzle 34 is located above the inner wall of the fumigation chamber 12, and an intraocular pressure relief mechanism 4 is installed in the middle section of the fumigation chamber 12. This creates a height difference between the user's eyes and the nozzle of the atomizing nozzle 34, preventing the medication from being sprayed directly into the patient's eyes and protecting them. Simultaneously, the intraocular pressure relief mechanism 4 also reduces the amount of atomized medication directly sprayed onto the user's face.
[0039] like Figure 4 and Figure 5 As shown, in some embodiments, a sealing strip 13 is circumferentially arranged along the edge of the front side of the goggle shell 11 of the present invention. The outer surface of the sealing strip 13 is a skin, and the inside is filled with a soft sponge or soft silicone. When the sealing strip 13 comes into contact with the face, it can deform according to the contour of the face, thereby improving the sealing between the opening of the goggle shell 11 and the face. This prevents the atomized drug from condensing into liquid and flowing out from the contact point between the goggle shell 11 and the face. The atomized drug continuously enters the fumigation chamber 12, and the pressure in the fumigation chamber 12 gradually increases as more drug enters. To protect the patient's eyes, pressure relief holes 14 are provided on both sides of the top of the goggle shell 11. The pressure relief holes 14 are connected to the interior of the fumigation chamber 12, and some drug will be discharged from the pressure relief holes 14 to maintain the pressure balance inside and outside the fumigation chamber 12.
[0040] like Figure 4 As shown, in some embodiments, drainage holes 15 are provided on both sides of the bottom of the fumigation chamber 12 of the present invention for draining liquid medicine accumulated in the fumigation chamber 12. The drainage holes 15 are located in the low-lying area at the bottom of the fumigation chamber 12. The liquefied medicine will flow downward along the edge of the fumigation chamber 12 and eventually accumulate in the low-lying area and be discharged through the drainage holes 15. A condensate drain pipe 5 is provided on the outside of the goggle cover 11. The condensate drain pipe 5 is connected to the two drainage holes 15 respectively, for guiding the discharged medicine to the recovery device for centralized recovery or recycling to the nebulizer for reuse.
[0041] like Figure 4 and Figure 7In some embodiments, the intraocular pressure relief mechanism 4 of the present invention includes a flexible support strip 41, which is a flexible strip-shaped support. Both ends of the flexible support strip 41 are connected to the two ends of the inner wall of the fumigation chamber 12, allowing the flexible support strip 41 to be suspended. When the flexible support strip 41 is subjected to pressure, it can bend and deform to adapt to patients with different facial contours. When the flexible support strip 41 is driven, it can vibrate with the driving force. Eye exposure holes 42 are respectively provided on both sides of the front of the flexible support strip 41, and an orbital support device 43 is installed in each eye exposure hole 42. When worn by the patient, the orbital support device 43 contacts the patient's orbit, thereby exposing the patient's eyes to the fumigation chamber 12 and contacting the atomized medication. The periphery of the orbit is blocked by the flexible support strip 41, reducing the contact area between the atomized medication and the face, thereby reducing condensation on the patient's face and improving user comfort.
[0042] like Figure 8 As shown, in some embodiments, each orbital support device 43 of the present invention includes a first connecting cylinder 431 and a second connecting cylinder 432, which are detachably fixed in the eye exposure hole 42. After use, the device can be disinfected by disassembling the first connecting cylinder 431 and the second connecting cylinder 432. A contact pad 433 is provided on the edge of the first connecting cylinder 431 facing the orbit, and the contact pad 433 is made of a soft material. By having the soft material contact the patient's orbit, patient comfort can be improved.
[0043] like Figure 7 and Figure 8 As shown, in some embodiments, a massage device 44 is provided on the back of the flexible support strip 41 of the present invention, and the massage device 44 is electrically connected to the human-computer interaction device 32. When the massage device 44 is powered on, it will generate vibration, and the vibration force will be transmitted through the flexible support strip 41 to the area around the patient's eyes to massage the area around the eyes, improve the patient's comfort and improve blood circulation around the eye socket.
[0044] like Figure 9As shown, in some embodiments, the massage device 44 of the present invention includes a waterproof housing 441, which is entirely sealed to prevent atomized or liquid medications from entering. A drive device 442 is installed inside the waterproof housing 441 and is electrically connected to a human-machine interface device 32. The operator can control the start / stop and operating frequency of the drive device 442 via the human-machine interface device 32. An eccentric force generator 443 is mounted on the output shaft of the drive device 442 in an eccentric manner. The drive device 442 can drive the eccentric force generator 443 to rotate. When the eccentric force generator 443 rotates, it generates an eccentric centrifugal force, causing the waterproof housing 441 to vibrate. When the waterproof housing 441 vibrates, the vibration force is transmitted to the flexible support strip 41, which in turn moves the eye socket support device 43 around the eyes, achieving a massage effect.
[0045] The specific usage process of this invention is as follows: The eye mask shell 11 is worn on the patient's face through the head fixation device 2, and then connected to the drug nebulizer through the drug connection tube 33, and connected to the recovery device or the input port of the nebulizer through the condensate drain pipe 5. Patients or medical staff can set the heating temperature and heating frequency of the heater 36 and the working frequency of the massage device 44 through the human-computer interaction device 32. During the nebulization process, the heater 36 intermittently heats the drug, creating an alternating hot and cold effect. Meanwhile, the massage device 44 drives the flexible support bar 41 to vibrate and massage the patient's eyes, thereby relieving high pressure in the patient's eyes and improving the patient's comfort.
[0046] In summary, the medical atomizing eye mask of the present invention, by installing a heat exchange mechanism 3 on the eye covering mechanism 1, allows the atomized drug to enter the eye covering mechanism 1 through the heat exchange mechanism 3. The heat exchange mechanism 3 intermittently heats and stops heating the atomized drug according to the settings, thereby causing the drug to generate hot and cold alternation. The hot and cold alternation of the drug promotes eye circulation and reduces or alleviates the symptoms of high intraocular pressure.
[0047] The present invention supports the patient's eyes by setting an intraocular pressure relief mechanism 4 inside the eye covering mechanism 1, and covers part of the patient's face by covering part of the patient's face with the intraocular pressure relief mechanism 4, so as to avoid the drug directly hitting the patient's face and causing facial discomfort. At the same time, the blocking effect of the intraocular pressure relief mechanism 4 can increase the condensation rate of the drug, allowing the diffused drug to drip down with the intraocular pressure relief mechanism 4 to be collected at the bottom of the eye covering mechanism 1, reducing the condensation of the drug on the patient's face and allowing it to flow down with the patient's face.
[0048] The present invention improves the sealing of the contact area between the eye mask shell 11 and the patient by setting a sealing strip 13 on the front of the eye mask shell 11 to contact the patient's face, thereby preventing condensation from flowing out from the contact area between the mask and the human body.
[0049] Meanwhile, a drain hole 15 is provided at the bottom of the fumigation chamber 12 and connected to the condensate drain pipe 5. During the atomization process, the condensed medicine will be recovered through the drain hole 15 and the condensate drain pipe 5 or continue to be circulated to the atomization device for atomization.
[0050] The present invention provides a massage device 44 on the back of a flexible support strip 41 and electrically connects the massage device 44 to a human-computer interaction device 32. The human-computer interaction device 32 can control the massage device 44 to vibrate. The vibrating massage device 44 will cause the flexible support strip 41 to vibrate, thereby providing a vibrating massage to the patient's eyes through the eye socket support device 43, thus improving the patient's comfort during use.
[0051] Therefore, this invention effectively overcomes the various shortcomings of the prior art and has high industrial application value.
[0052] The above embodiments are merely illustrative of the principles and effects of the present invention and are not intended to limit the invention. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in the present invention should still be covered by the claims of the present invention.
Claims
1. A medical atomizing eye mask, characterized in that, include: An eye covering mechanism (1) is used to cover the patient's eyes; Head fixation (2), the head fixation (2) is disposed on the outer surface of the eye covering mechanism (1) and is used to fix and limit the position of the eye covering mechanism (1) in conjunction with the patient's head; The heat exchange mechanism (3) is disposed on the outer surface of the eye covering mechanism (1) and is connected to the interior of the eye covering mechanism (1). External drugs enter the interior of the eye covering mechanism (1) through the heat exchange mechanism (3) and come into contact with the patient's eyes. The heat exchange mechanism (3) is used to make the external drugs alternate between hot and cold. The intraocular pressure relief mechanism (4) is located inside the eye covering mechanism (1). The intraocular pressure relief mechanism (4) is in contact with the patient's eye socket and can massage the patient's eye socket through vibration.
2. The medical atomizing eye mask according to claim 1, characterized in that: The heat exchange mechanism (3) includes a temperature control device (31). The outer surface of the temperature control device (31) is respectively provided with a human-computer interaction device (32) and an atomizing nozzle (34). The human-computer interaction device (32) is located on the back of the temperature control device (31), and the atomizing nozzle (34) is located on the front of the temperature control device (31). There are multiple atomizing nozzles (34), and all of the multiple atomizing nozzles (34) extend into the interior of the eye covering mechanism (1). The temperature control device (31) is provided with a drug connection tube (33) at the bottom, which can transmit the drug required for atomization to the atomizing nozzle (34). The temperature control device (31) is equipped with a temperature control device inside to change the temperature of the medicine transmitted into the temperature control device (31) from the outside.
3. The medical atomizing eye mask according to claim 2, characterized in that: The temperature control device (31) is provided with a multi-port pipe (35) inside, which is used to connect the drug connecting pipe (33) and multiple atomizing nozzles (34); A heater (36) is provided on the multi-port pipe (35), and the heater (36) is electrically connected to the human-machine interaction device (32).
4. The medical atomizing eye mask according to claim 2, characterized in that: The eye covering mechanism (1) includes an eye mask shell (11), the inside of which is provided a fumigation chamber (12) with a front opening, the atomizing nozzle (34) is located above the inner wall of the fumigation chamber (12), and the eye pressure relief mechanism (4) is installed in the middle section of the fumigation chamber (12).
5. The medical atomizing eye mask according to claim 4, characterized in that: The front of the eye mask shell (11) is provided with a sealing strip (13) along the edge. Both sides of the top of the eye mask shell (11) are provided with pressure relief holes (14), which are connected to the interior of the fumigation chamber (12).
6. The medical atomizing eye mask according to claim 4, characterized in that: Drainage holes (15) are provided on both sides of the bottom of the fumigation chamber (12). The drainage holes (15) are located in the low-lying area at the bottom of the fumigation chamber (12). A condensate drain pipe (5) is provided on the outside of the eye mask shell (11). The condensate drain pipe (5) is connected to the two drainage holes (15) respectively.
7. The medical atomizing eye mask according to claim 2, characterized in that: The intraocular pressure relief mechanism (4) includes a flexible support strip (41), the two ends of which are connected to the two ends of the inner wall of the fumigation chamber (12). The two sides of the front of the flexible support strip (41) are respectively provided with eye exposure holes (42), and each eye exposure hole (42) is equipped with an orbital support device (43).
8. The medical atomizing eye mask according to claim 7, characterized in that: Each of the orbital support devices (43) includes a first connecting tube (431) and a second connecting tube (432), which are detachably fixed in the eye exposure hole (42); The first connecting tube (431) has a contact pad (433) on the edge facing the eye socket.
9. The medical atomizing eye mask according to claim 7, characterized in that: A massage device (44) is provided on the back of the flexible support strip (41), and the massage device (44) is electrically connected to the human-computer interaction device (32).
10. The medical atomizing eye mask according to claim 9, characterized in that: The massage device (44) includes a waterproof housing (441), and a drive device (442) is installed inside the waterproof housing (441). The drive device (442) is electrically connected to the human-computer interaction device (32). An eccentric force generator (443) is mounted on the output shaft of the drive device (442), and the drive device (442) can drive the eccentric force generator (443) to rotate.