Nasal cavity cleaning equipment

By setting up detection components in the nasal cleaning equipment, the problem of inaccurate distance control between the electric nasal scrubber nozzle and the face is solved, and spraying is started when an object is detected, preventing liquid from spraying onto the user's face, improving safety and user experience.

CN223126875UActive Publication Date: 2025-07-22GUANGZHOU STARS PULSE CO LTD
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Patent Information

Application Number
CN202421989667.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-15
Publication Date
2025-07-22
Estimated Expiration
2034-08-15

AI Technical Summary

Technical Problem

During the use of existing electric nasal scrubbers, it is difficult for users to accurately control the distance between the nozzle and the face, resulting in the nasal scrubber that may be sprayed to other parts of the face, posing a safety hazard.

Method used

A detection component is provided in the nasal cleaning device, including a photoelectric sensor or a touch sensing component, which is connected to the controller. The detection component is used to detect whether an object enters the sensing area and sends information to the controller to control the state of the spraying component to prevent spraying on the user's face.

Benefits of technology

Through detection and control of the detection components, the nasal cleaning device can initiate spraying when it detects an object entering the sensing area, avoiding liquid spraying on the user's face, improving the safety of use and user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses nasal cavity cleaning equipment. According to the nasal cavity cleaning equipment, the detection assembly is arranged in the nasal cavity cleaning equipment, the target information can be sent to the controller under the condition that the detection assembly detects that the object enters the corresponding induction area, and therefore the controller controls the spraying assembly of the nasal cavity cleaning equipment to be in the working state; the nasal washing liquid stored in the nasal cavity cleaning equipment is sprayed out, and the liquid of the nasal cavity cleaning equipment can be prevented from being sprayed on the face of the user when the distance between the nasal cavity cleaning equipment and the user is too far.
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Description

Technical Field

[0001] The embodiments of the present application relate to electronic technology, and relate to, but are not limited to, a nasal cavity cleaning device. Background Art

[0002] There are various categories of nasal cavity cleaning devices currently in use. Among them, the electric nasal irrigator is widely popular in hospitals and families because it adopts an electric control method, which can better ensure the stability and controllability of the cleaning process. The commonly used electric nasal irrigator uses a micro water pump to pump the nasal irrigation liquid in the liquid cup to one side of the nasal cavity, and then flows out from the other side of the nasal cavity around the nasal septum to complete the flushing and cleaning of the nasal cavity. However, for first-time users, due to the unclear flushing distance, the sprayed nasal irrigation liquid is likely to impact other parts of the face. Usually, the first reaction of the user is not to think of closing the nasal cavity cleaning device in time, resulting in the high-pressure water flow ejected from the nozzle hurting other parts of the human body or objects. Utility Model Content

[0003] In view of this, the nasal cavity cleaning device provided by the embodiments of the present application can prevent the liquid of the nasal cavity cleaning device from being sprayed on the user's face when the distance between the nasal cavity cleaning device and the user is too far.

[0004] The nasal cavity cleaning device provided by the embodiments of the present application includes a device body, a spraying assembly, a controller, and a detection assembly. The controller is arranged in the device body, and the controller is electrically connected to the spraying assembly and the detection assembly respectively. Among them:

[0005] The detection assembly has a sensing area for detecting whether an object enters the sensing area and sending target information to the controller. The target information is used to indicate whether the object enters the sensing area.

[0006] The controller is used to receive and control the state of the spraying assembly according to the target information. The state includes a stop state or a working state. Among them, when the target information is used to indicate that the object enters the sensing area, the controller controls the spraying assembly to be in the working state according to the target information.

[0007] In the above nasal cavity cleaning device, by arranging a detection assembly in the nasal cavity cleaning device, the detection assembly can send target information to the controller when detecting that an object enters the corresponding sensing area, so that the controller controls the spraying assembly of the nasal cavity cleaning device to be in the working state and spray out the nasal irrigation liquid stored in the nasal cavity cleaning device, which can prevent the liquid of the nasal cavity cleaning device from being sprayed on the user's face when the distance between the nasal cavity cleaning device and the user is too far.

[0008] In some embodiments, the device body includes a housing, the detection component includes a photoelectric sensor, the photoelectric sensor is disposed on the outer surface of the housing, and the photoelectric sensor is configured to emit a light beam and collect the reflected light beam reflected by the object to generate and transmit the target information to the controller.

[0009] It can be understood that by disposing the photoelectric sensor on the outer surface of the housing, a wider sensing area can be provided for the photoelectric sensor, improving the detection efficiency of the object.

[0010] In some embodiments, a groove is formed on the outer surface of the housing, and the photoelectric sensor is disposed in the groove.

[0011] It can be understood that by disposing the photoelectric sensor in the groove, the direct contact between the user and the connection point of the photoelectric sensor and the outer surface of the housing can be reduced, thereby reducing the damage to the photoelectric sensor.

[0012] In some embodiments, the height of the photoelectric sensor is less than or equal to the depth of the groove.

[0013] It can be understood that by setting the thickness of the photoelectric sensor to be less than or equal to the depth of the groove, the photoelectric sensor can be embedded in the housing, avoiding direct contact between the user and the photoelectric sensor, and at the same time ensuring the integrity of the appearance and maintaining a certain aesthetic.

[0014] In some embodiments, the detection component includes a photoelectric sensor, the device body includes a housing, a receiving space is formed inside the housing, and the photoelectric sensor is disposed at a target position in the receiving space; a photoelectric path is provided on the housing corresponding to the target position, and the sensing area includes the area corresponding to the photoelectric path, wherein:

[0015] The photoelectric sensor is configured to emit a light beam, and in the case where the object enters the sensing area corresponding to the photoelectric sensor, generate and transmit the target information to the controller according to the reflected light beam corresponding to the object.

[0016] It can be understood that by disposing the photoelectric sensor in the receiving space inside the housing and transmitting the emitted light beam of the photoelectric sensor through the photoelectric path, the photoelectric sensor can be accommodated in the receiving space inside the housing, reducing the risk of damage to the photoelectric sensor.

[0017] In some embodiments, the spraying component includes a nozzle, a water pumping component and a water tank, the water tank is communicated with the nozzle through the water pumping component, and the controller is electrically connected to the water pumping component.

[0018] It can be understood that the controller directly controls the water pumping component in the spraying component, enabling the controller to control the stop state or working state of the spraying component.

[0019] In some embodiments, the target position is a position within the accommodating space where the distance difference from the position of the nozzle is less than a preset distance threshold.

[0020] It can be understood that by setting the photoelectric sensor at a position within the accommodating space where the distance difference from the position of the nozzle is less than a preset distance threshold, the photoelectric sensor can detect the distance between the user and the nozzle, thereby achieving splash prevention.

[0021] In some embodiments, a transparent cover plate or a translucent cover plate is provided at a position on the outer surface of the housing that coincides with the photoelectric path.

[0022] It can be understood that providing a transparent cover plate or a translucent cover plate at a position on the outer surface of the housing that coincides with the photoelectric path can prevent liquid from entering the nasal irrigator and damaging the internal components while ensuring the working effect of the photoelectric sensor, providing a sealing solution for the nasal irrigator.

[0023] In some embodiments, the photoelectric path is filled with a transparent material body or a translucent material body.

[0024] It can be understood that filling the photoelectric path with a transparent material body or a translucent material body can prevent liquid from entering the nasal irrigator and damaging the internal components while ensuring the working effect of the photoelectric sensor, providing another sealing solution for the nasal irrigator.

[0025] In some embodiments, the first aperture of the photoelectric path on the outer surface of the housing is different from the second aperture on the inner surface of the housing.

[0026] It can be understood that by setting the first aperture on the outer surface and the second aperture on the inner surface to be different, the collection effectiveness of the photoelectric path in transmitting the light beam can be ensured.

[0027] In some embodiments, the photoelectric path includes a first path and a second path. The first path extends perpendicularly from the outer surface of the housing to the inner surface to a first position, and the second path extends perpendicularly from the first position to the inner surface.

[0028] It can be understood that by setting the photoelectric path as the first path and the second path, the change in the light beam transmission path can further adjust the transmission direction and speed of the light beam to improve the transmission stability of the light beam.

[0029] In some embodiments, the diameter of the second passage gradually increases, and / or the diameter of the first passage gradually decreases.

[0030] It can be understood that the diameter of the second passage is the largest near the inner surface, which can ensure that the second passage can collect as many light beams emitted by the light sensor as possible, while the diameter of the first passage is the largest near the outer surface, which can ensure that the first passage can collect as many light beams reflected by the object as possible.

[0031] In some embodiments, the detection component includes a touch sensing component, the device body includes a housing, the touch sensing component is disposed on the outer surface of the housing, and the touch sensing component is electrically connected to the controller, wherein:

[0032] The touch sensing component is configured to generate and send the target information to the controller when the object touches the touch sensing component.

[0033] It can be understood that by providing the touch sensing component, the touch sensing component can further control the spraying component to be in a stopped state or a working state only when it senses that an object touches it, thereby improving the user's interaction experience.

[0034] In some embodiments, the touch sensing component includes a capacitive sensor.

[0035] It can be understood that setting the touch sensing component as a capacitive sensor can further provide an implementation solution for detecting whether an object touches the nasal cavity cleaning device.

[0036] In some embodiments, both the controller and the detection component are disposed on the same integrated circuit board.

[0037] It can be understood that disposing the controller and the detection component on one integrated circuit board can minimize the number of circuit boards and reduce the device cost. BRIEF DESCRIPTION OF THE DRAWINGS

[0038] The accompanying drawings herein are incorporated into the specification and form a part of the specification, which illustrate embodiments consistent with the present application and, together with the specification, are used to explain the technical solutions of the present application.

[0039] Figure 1 One of the structural schematic diagrams of the nasal cavity cleaning device provided by the embodiment of the present application;

[0040] Figure 2 The structural schematic diagram of the spraying component provided by the embodiment of the present application;

[0041] Figure 3 One of the structural schematic diagrams of the photoelectric sensor provided by the embodiment of the present application;

[0042] Figure 4 This is the second structural schematic diagram of the optoelectronic sensor provided by the embodiment of the present application;

[0043] Figure 5 This is the third structural schematic diagram of the optoelectronic sensor provided by the embodiment of the present application;

[0044] Figure 6 This is the second structural schematic diagram of the nasal cavity cleaning device provided by the embodiment of the present application;

[0045] Figure 7 This is the structural schematic diagram of the nasal cavity cleaning device provided by the embodiment of the present application;

[0046] Figure 8 This is the first structural schematic diagram of the optoelectronic path provided by the embodiment of the present application;

[0047] Figure 9 This is the second structural schematic diagram of the optoelectronic path provided by the embodiment of the present application;

[0048] Figure 10 This is the third structural schematic diagram of the nasal cavity cleaning device provided by the embodiment of the present application;

[0049] Figure 11 This is the implementation structural schematic diagram of the nasal cavity cleaning device provided by the embodiment of the present application. Detailed implementation manners

[0050] To make the objectives, technical solutions, and advantages of the embodiments of the present application clearer, the following will further describe the specific technical solutions of the present application in detail with reference to the accompanying drawings in the embodiments of the present application. The following embodiments are used to illustrate the present application but are not used to limit the scope of the present application.

[0051] The embodiment of the present application provides a nasal cavity cleaning device. The nasal cavity cleaning device may include a nasal douche or a nasal irrigator, etc., which is not limited herein.

[0052] Figure 1 This is the structural schematic diagram of the nasal cavity cleaning device provided by the embodiment of the present application. As Figure 1 shown, the nasal cavity cleaning device includes a device body 101, a spraying assembly 104, a controller 103, and a detection assembly 102. The spraying assembly 104, the controller 103, and the detection assembly 102 are arranged inside the device body 101. The controller 103 is electrically connected to the spraying assembly 104 and the detector respectively, where:

[0053] The detection assembly 102 has a sensing area for detecting whether an object enters the sensing area and sending target information to the controller 103. The target information is used to indicate whether the object enters the sensing area;

[0054] A controller 103 is configured to receive and control the state of the spraying component 104 based on target information. The state includes a stop state or a working state. Wherein, when the target information is used to indicate that an object enters the sensing area, the controller 103 controls the spraying component 104 to be in the working state according to the target information.

[0055] During the implementation process, the detection component 102 is used to detect whether a human nasal cavity enters the sensing area. When it detects that a human nasal cavity enters the sensing area, it sends target information indicating that an object enters the sensing area to the controller 103, so that the controller 103 controls the spraying component 104 to be in the working state and spray the nasal wash solution. When it detects that no object enters the sensing area, it sends target information indicating that no object enters the sensing area to the controller 103, so that the controller 103 controls the spraying component 104 to be in the stop state to stop spraying the nasal wash solution.

[0056] Wherein, before the controller 103 controls the spraying component 104 to be in the working state according to the target information, it can be in the stop state or in the working state. That is, when the controller 103 controls the spraying component 104 to be in the working state according to the target information, the spraying component 104 can switch from the stop state to the working state to control the spraying component 104 to start spraying; or it can continue to maintain the working state to control the spraying component 104 to continue spraying. Specifically, it is set by those skilled in the art according to the actual situation, and this application does not make any restrictions. Similarly, when the controller 103 controls the spraying component 104 to be in the stop state according to the target information, the spraying component 104 can switch from the working state to the stop state to control the spraying component 104 to switch from the original spraying state to the stop spraying state; or it can continue to maintain the stop state to control the spraying component 104 to always maintain the stop spraying state.

[0057] In some embodiments, in the two cases where the target information indicates that an object enters the sensing area and indicates that an object does not enter the sensing area, the voltages of the target information are different. For example, when the target information indicates that an object enters the sensing area, the target information is a high-level voltage; when the target information indicates that an object does not enter the sensing area, the target information is a low-level voltage. Thus, the controller 103 determines whether an object enters the sensing area according to the voltage level of the target information.

[0058] In other embodiments, in the two cases where the target information indicates that an object enters the sensing area and indicates that an object does not enter the sensing area, the information content included in the target information is different. For example, when the target information indicates that an object enters the sensing area, the information content of the target information is that an object is detected; when the target information indicates that an object does not enter the sensing area, the information content of the target information is that no object is detected. Thus, the controller 103 determines whether an object enters the sensing area according to the information content of the target information.

[0059] It should be noted that the specific structure of the nasal cavity cleaning device can be determined according to the type of the nasal cavity cleaning device, user preferences, and functional requirements. However, the functional modules included in the nasal cavity cleaning device and the connection relationships between the functional modules are the same as or equivalent to the technical solution of this application, and should still be regarded as the protection scope of this application.

[0060] Among them, the above object can be a human body part or other objects that can reflect light beams, such as a table. In some embodiments, to prevent the nasal cavity cleaning device from being in a working state when other objects except human body parts enter the induction area, it can be set that the controller 103 controls the detection component 102 to start detecting whether an object enters the induction area only after receiving a start instruction triggered by the user, so as to reduce the splashing of the nasal cavity cleaning device on other objects. Among them, the start instruction can be triggered by a start button provided on the nasal cavity cleaning device or by receiving a voice instruction from the user. Specifically, those skilled in the art can set it according to the actual situation, and this application does not make any restrictions.

[0061] Among them, the setting of the above induction area can be set according to the user's usage habits, so that the nasal cavity cleaning device starts to work when the user's nasal cavity touches the spraying component 104 and stops working when leaving, so as to achieve the anti-splashing function.

[0062] Optionally, the above detection component 102 can be a photoelectric sensor 1021 or a capacitive sensor. Specifically, those skilled in the art can set it according to the actual situation, and this application does not make any restrictions. Among them, the photoelectric sensor 1021 includes a transmitter, a receiver, and a detection circuit. The transmitter can include, but is not limited to, a light-emitting diode, a laser diode, and an infrared emitting diode; the receiver can include, but is not limited to, a photodiode, a phototransistor, and a photovoltaic cell; the detection circuit is used to filter the initial electrical signal converted by the receiver to output a stable detection signal to the controller. The size and model of the photoelectric sensor 1021 are set by those skilled in the art according to the actual situation, and this application does not make any restrictions.

[0063] In the above nasal cavity cleaning device, by setting the detection component 102 in the nasal cavity cleaning device, the detection component 102 can send target information to the controller 103 when detecting that an object enters the corresponding induction area, so that the controller 103 controls the spraying component 104 of the nasal cavity cleaning device to be in a working state and spray out the nasal washing liquid stored in the nasal cavity cleaning device, which can prevent the nasal cavity cleaning device from spraying the liquid of the nasal cavity cleaning device on the user's face when the distance between the nasal cavity cleaning device and the user is too far.

[0064] In some embodiments, such as Figure 2As shown, the above-mentioned spraying assembly 104 includes a spray head 1041, a water pumping assembly 1042, and a water tank 1043. The water tank 1043 is communicated with the spray head 1041 through the water pumping assembly 1042, and the controller 103 is electrically connected to the water pumping assembly 1042.

[0065] During the implementation process, the user can fill the water tank 1043 with water in advance. When the spraying assembly 104 of the nasal cavity cleaning device is in the working state, the controller 103 specifically controls the water pumping assembly 1042 to start working, so that the water pumping assembly 1042 is in the water pumping state, and the water in the water tank 1043 is transmitted to the spray head 1041 through the waterway, and then the water is sprayed out through the spray head 1041, so as to achieve the purpose of cleaning the nasal cavity.

[0066] It can be understood that the controller 103 directly controls the water pumping assembly 1042 in the spraying assembly 104, and can realize the control of the stop state or working state of the spraying assembly 104 by the controller 103.

[0067] In some embodiments, as Figure 3 shown, the above-mentioned device body 101 includes a housing 1011, and the detection assembly 102 includes a photoelectric sensor 1021. The photoelectric sensor 1021 is arranged at a target position on the outer surface of the housing 1011. The photoelectric sensor 1021 is used to emit a light beam and collect the reflected light beam reflected by an object, so as to generate and send target information to the controller 103.

[0068] During the implementation process, the photoelectric sensor 1021 emits a light beam so that the emitted light beam is transmitted in the sensing area. When an object enters the sensing area, the object will reflect the emitted light beam, and part of the reflected light beam will be refolded back to the photoelectric sensor 1021, so that the photoelectric sensor 1021 generates target information according to the received reflected light beam and sends the target information to the controller 103, completing the detection process of whether an object enters the sensing area. Among them, when the user uses it, he can insert a human body part such as a finger into the sensing range of the detection assembly 102, so that after the controller receives the reflected light beam reflected by the human body part, it controls the spraying assembly 104 to be in the working state.

[0069] Optionally, the above-mentioned photoelectric sensor 1021 may include a signal transmitter and a signal receiver, and the signal transmitter and the signal receiver are integrated on the same control main board and are electrically connected. Through the design scheme of this embodiment, when the signal transmitter detects an object in the sensing area by emitting a light beam, the optical signal is transmitted along the medium in the air. When there is a medium in the sensing area, the object will emit an optical signal to obtain the reflected light beam corresponding to the object. After the reflected light beam is transmitted to the signal receiver, the photoelectric sensor 1021 determines that an object has entered the sensing area.

[0070] In some embodiments, the photoelectric sensor 1021 may further include a signal transmitter. The signal transmitter is configured as a cover that completely fits over the signal emitter and the signal receiver. A transmission channel for transmitting optical signals is provided inside the signal transmitter so that the emitted light beam and the reflected light beam are transmitted through the transmission channel, which can prevent external light from interfering with or weakening the light reception of the signal receiver.

[0071] In some embodiments, the target position on the outer surface of the housing 1011 of the photoelectric sensor 1021 may be a position where the distance difference from the position of the nozzle 1041 of the spraying assembly 104 is less than a preset distance threshold, so that the photoelectric sensor 1021 can start to control the spraying assembly 104 to spray only after detecting that the user's nasal cavity enters the sensing area.

[0072] It can be understood that by disposing the photoelectric sensor 1021 on the outer surface of the housing 1011, a wider sensing area can be provided for the photoelectric sensor 1021, improving the detection efficiency of objects.

[0073] In some embodiments, as Figure 4 shown, a groove is provided on the outer surface of the housing 1011, and the photoelectric sensor 1021 is disposed in the groove.

[0074] It can be understood that by disposing the photoelectric sensor 1021 in the groove, the direct contact between the user and the connection point of the photoelectric sensor 1021 and the outer surface of the housing 1011 can be reduced, thereby reducing the damage to the photoelectric sensor 1021.

[0075] In some embodiments, the height of the photoelectric sensor 1021 is less than or equal to the depth of the groove.

[0076] Exemplarily, as Figure 5 shown, when the height of the photoelectric sensor 1021 is equal to the depth of the groove, the photoelectric sensor 1021 is completely embedded in the housing 1011, and the end face of the photoelectric sensor 1021 away from the housing 1011 is flush with the outer surface of the housing 1011. Thus, when the user touches the outer surface of the housing 1011, the photoelectric sensor 1021 will not be damaged, protecting the photoelectric sensor 1021.

[0077] It can be understood that setting the height of the photoelectric sensor 1021 to be less than or equal to the depth of the groove can make the photoelectric sensor 1021 embedded in the housing 1011, avoiding direct contact between the user and the photoelectric sensor 1021.

[0078] In some embodiments, as Figure 6As shown in the figure, the above-mentioned detection component 102 includes a photoelectric sensor 1021. The device body 101 includes a housing 1011. An accommodation space is formed inside the housing 1011, and the photoelectric sensor 1021 is arranged at a target position in the accommodation space; a photoelectric path 1012 is arranged at the housing 1011 corresponding to the target position, and the induction area includes the area corresponding to the photoelectric path 1012, where:

[0079] The photoelectric sensor 1021 is used for emitting a light beam, and when an object enters the induction area corresponding to the photoelectric sensor 1021, generating and sending target information to the controller 103 according to the reflected light beam corresponding to the object.

[0080] During the implementation process, since the photoelectric sensor 1021 is arranged in the accommodation space inside the housing 1011, a photoelectric path 1012 needs to be arranged at the position of the housing 1011 corresponding to the photoelectric sensor 1021, so that the emitted light beam emitted by the photoelectric sensor 1021 is transmitted to the outside of the nasal cavity cleaning device through the photoelectric path 1012, thereby detecting whether an object enters the induction area.

[0081] It can be understood that by arranging the photoelectric sensor 1021 in the accommodation space inside the housing 1011 and transmitting the emitted light beam of the photoelectric sensor 1021 through the photoelectric path 1012, the photoelectric sensor 1021 can be accommodated in the accommodation space inside the housing 1011, reducing the damage risk of the photoelectric sensor 1021.

[0082] In some embodiments, the above-mentioned target position is a position in the accommodation space where the distance difference from the position where the nozzle 1041 of the spraying component 104 is located is less than a preset distance threshold.

[0083] To ensure that the detection component 102 detects the positional relationship between the user's nasal cavity and the nozzle 1041, the position of the photoelectric sensor 1021 can be set near the nozzle 1041, so that after the user's nasal cavity approaches the nozzle 1041, the photoelectric sensor 1021 can detect that the nasal cavity enters the induction area.

[0084] It can be understood that by arranging the photoelectric sensor 1021 at a position in the accommodation space where the distance difference from the position where the nozzle 1041 is located is less than a preset distance threshold, the photoelectric sensor 1021 can detect the distance between the user and the nozzle 1041, thereby realizing anti-splash.

[0085] In some embodiments, as Figure 7 shown, a cover plate 1013 is arranged on the outer surface of the above-mentioned housing 1011 and at a position coinciding with the photoelectric path 1012. The cover plate 1013 can be transparent or translucent.

[0086] Among them, to ensure the flatness of the outer surface of the housing 1011, a cover plate 1013 can be provided at a position on the outer surface of the housing 1011 that coincides with the optoelectronic path 1012. Thus, when a user touches the optoelectronic path 1012, they will not feel a foreign body sensation due to the uneven surface. At the same time, it can also effectively prevent nasal irrigation fluid or other liquids from entering the accommodation space and avoid damage to the internal components.

[0087] In some embodiments, when the cover plate 1013 is transparent, the composition of the cover plate 1013 can include one or more of transparent materials such as polypropylene, polyethylene, and polyethylene terephthalate. Specifically, it is set by those skilled in the art according to the actual situation, and this application does not make any restrictions.

[0088] In some embodiments, when the cover plate 1013 is translucent, the composition of the cover plate 1013 can include one or more of translucent materials such as polycarbonate, plexiglass, and polyvinyl chloride. Specifically, it is set by those skilled in the art according to the actual situation, and this application does not make any restrictions.

[0089] It can be understood that providing the cover plate 1013 at a position on the outer surface of the housing 1011 that coincides with the optoelectronic path 1012 can prevent liquids from entering the nasal irrigator internally and damaging the internal components while ensuring the working effect of the optoelectronic sensor, providing a sealing solution for the nasal irrigator.

[0090] In some embodiments, the above-mentioned optoelectronic path 1012 is filled with a transparent material body or a translucent material body.

[0091] In some embodiments, the above-mentioned transparent material body can include one or more of transparent materials such as polypropylene, polyethylene, and polyethylene terephthalate. Specifically, it is set by those skilled in the art according to the actual situation, and this application does not make any restrictions.

[0092] In some embodiments, the translucent material body can include one or more of translucent materials such as polycarbonate, plexiglass, and polyvinyl chloride. Specifically, it is set by those skilled in the art according to the actual situation, and this application does not make any restrictions.

[0093] It can be understood that filling the optoelectronic path 1012 with a transparent material body or a translucent material body can prevent liquids from entering the nasal irrigator internally and damaging the internal components while ensuring the working effect of the optoelectronic sensor, providing another sealing solution for the nasal irrigator.

[0094] In some embodiments, as Figure 8 shown, the first aperture of the above-mentioned optoelectronic path 1012 on the outer surface of the housing and the second aperture on the inner surface of the housing can be the same or different.

[0095] Among them, the difference between the first aperture and the second aperture can be manifested as the first aperture being larger than the second aperture, or the first aperture being smaller than the second aperture.

[0096] In the case where the first aperture is larger than the second aperture, after collecting as many light beams reflected by the object as possible, the collected light beams can be concentrated and transmitted to the photoelectric sensor 1021.

[0097] In the case where the first aperture is smaller than the second aperture, after collecting as many light beams emitted by the photoelectric sensor 1021 as possible, the collected light beams can be concentrated and transmitted to the outside.

[0098] It should be noted that Figure 8 the size relationship between the first aperture and the second aperture shown is only an example and should not be used as a limitation to this application.

[0099] It can be understood that by setting the difference between the first aperture on the outer surface and the second aperture on the inner surface, the collection effectiveness of the photoelectric path when transmitting light beams can be ensured.

[0100] Among them, the photoelectric path can be single-segment or multi-segment.

[0101] In some embodiments, in the case where the photoelectric path is multi-segment, as Figure 9 shown, the above-mentioned photoelectric path 1012 includes a first path 10121 and a second path 10122. The first path 10121 extends vertically from the outer surface of the housing 1011 to the inner surface to a first position, and the second path 10122 extends vertically from the first position to the inner surface.

[0102] Among them, since the diameter of the end of the second path 10122 close to the photoelectric sensor 1021 is the largest, as many light beams emitted by the photoelectric sensor 1021 can be collected as possible, thereby improving the collection effectiveness of the light beams emitted by the photoelectric sensor 1021. Then, the light beams are sequentially transmitted to the outside of the nasal cavity cleaning device through the second path 10122 and the first path 10121, completing the transmission of the light beams emitted by the photoelectric sensor 1021.

[0103] When transmitting the light beams reflected by the object, the first path 10121 collects the reflected light beams, and then transmits them to the photoelectric sensor 1021 through the first path 10121 and the second path 10122, completing the reception of the reflected light beams corresponding to the object.

[0104] It should be noted that dividing the photoelectric path into the first path 10121 and the second path 10122 indicates that there are differences between the first path 10121 and the second path 10122.

[0105] Optionally, the difference between the first passage 10121 and the second passage 10122 described above may be in shape. For example, the cross-sectional shape of the first passage 10121 is square, and the cross-sectional shape of the second passage 10122 is circular. Specifically, those skilled in the art can set it according to the actual situation, and this application does not make any restrictions.

[0106] Optionally, the difference between the first passage 10121 and the second passage 10122 described above may be in diameter. For example, the diameter of the first passage 10121 is 10 mm, and the diameter of the second passage 10122 is 15 mm. Specifically, those skilled in the art can set it according to the actual situation, and this application does not make any restrictions.

[0107] It should be noted that Figure 9 The size relationship of the diameters of the first passage 10121 and the second passage 10122 shown is only an example and should not be used as a limitation to this application.

[0108] It can be understood that by setting the optoelectronic passage 1012 into the first passage 10121 and the second passage 10122, the change in the beam transmission passage can further adjust the transmission direction and speed of the beam to improve the transmission stability of the beam.

[0109] In some embodiments, the diameter of the second passage 10122 gradually increases, and / or the diameter of the first passage 10121 gradually decreases.

[0110] It can be understood that the diameter of the second passage 10122 is the largest near the inner surface, which can ensure that the second passage 10122 can collect as much light beam emitted by the light sensor as possible, while the diameter of the first passage 10121 is the largest near the outer surface, which can ensure that the first passage 10121 can collect as much light beam reflected by the object as possible.

[0111] In some embodiments, the light beam emitted by the above optoelectronic sensor 1021 is infrared light.

[0112] It can be understood that the visible infrared light beam emitted by the optoelectronic sensor 1021 can further remind the user that the nasal cavity is being scanned at this time.

[0113] In some embodiments, as Figure 10 shown, the above detection component 102 includes a touch sensing component 1022, the device body 101 includes a housing 1011, the touch sensing component 1022 is arranged on the outer surface of the housing 1011, and the touch sensing component 1022 is electrically connected to the controller 103, where:

[0114] The touch sensing component 1022 is configured to generate and send target information to the controller 103 when an object touches the touch sensing component 1022.

[0115] During the implementation process, since the touch sensing component 1022 is arranged on the outer surface of the housing 1011, it is convenient for users to touch. Thus, after the user completes the nasal cavity cleaning action, the user can touch the touch sensing component 1022, so that the touch sensing component 1022 generates target information according to the user's touch action and sends the target information to the controller 103, thereby completing the triggering operation of the working state of the spraying component 104.

[0116] It can be understood that by setting the touch sensing component 1022, the touch sensing component 1022 can further control the spraying component 104 to be in a stopped state or a working state only when it senses that an object is in contact, thereby improving the user's interaction experience.

[0117] In some embodiments, the above-mentioned touch sensing component 1022 includes a capacitive sensor.

[0118] It can be understood that setting the touch sensing component 1022 as a capacitive sensor can further provide an implementation solution for whether an object touches the nasal cavity cleaning device.

[0119] In some embodiments, the above-mentioned controller 103 and the detection component 102 are both arranged on the same integrated circuit board.

[0120] Exemplarily, taking the detection component 102 as the photoelectric sensor 1021 as an example, as Figure 11 shown, an accommodation space is formed inside the housing 1011 of the nasal cavity cleaning device. The photoelectric sensor 1021 is arranged on the integrated circuit board, and the integrated circuit board is arranged in the accommodation space. Moreover, the light beam emitting end of the photoelectric sensor 1021 is opposite to the photoelectric path 1012 of the housing 1011. After the photoelectric sensor 1021 emits a light beam, the emitted light beam is transmitted to the outside of the nasal cavity cleaning device through the photoelectric path 1012. After being reflected by an object, it is also transmitted to the photoelectric sensor 1021 through the photoelectric path 1012, so that the photoelectric sensor 1021 generates target information according to the received light beam and sends it to the controller 103 in the integrated circuit board. Among them, in addition to the photoelectric sensor 1021, the controller 103 and other necessary devices, such as a power supply, are also arranged on the integrated circuit board. Specifically, those skilled in the art can set them according to the actual situation, and this application does not make any restrictions.

[0121] It can be understood that arranging the controller 103 and the detection component 102 on an integrated circuit board can minimize the number of circuit boards and reduce the device cost.

[0122] Those skilled in the art can understand, Figures 1 - 11The structure shown is only a block diagram of some structures related to the solution of this application, and does not constitute a limitation on the computer device to which the solution of this application is applied. The specific computer device may include more or fewer components than those shown in the figure, or combine certain components, or have different component arrangements.

[0123] As described above, it is only the implementation mode of this application, but the protection scope of this application is not limited thereto. Any person skilled in the art within the technical scope disclosed by this application can easily think of changes or substitutions, which should all be covered within the protection scope of this application. Therefore, the protection scope of this application should be subject to the protection scope of the said claims.

Claims

1. A nasal cavity cleaning device, characterized in that, The device includes a device body, a spraying component, a controller, and a detection component. The controller is arranged inside the device body and is electrically connected to the spraying component and the detection component respectively. Among them: The detection component has a sensing area for detecting whether an object enters the sensing area and sending target information to the controller. The target information is used to indicate whether the object enters the sensing area. The controller is configured to receive and control the state of the spraying component according to the target information. The state includes a stop state or a working state. Among them, when the target information is used to indicate that the object enters the sensing area, the controller controls the spraying component to be in the working state according to the target information.

2. The nasal cavity cleaning device according to claim 1, characterized in that, The device body includes a housing. The detection component includes a photoelectric sensor. The photoelectric sensor is arranged at a target position on the outer surface of the housing. The photoelectric sensor is configured to emit a light beam and collect the reflected light beam reflected by the object to generate and send the target information to the controller.

3. The nasal cavity cleaning device according to claim 2, characterized in that, A groove is provided on the outer surface of the housing, and the photoelectric sensor is arranged in the groove.

4. The nasal cavity cleaning device according to claim 3, characterized in that, The height of the photoelectric sensor is less than or equal to the depth of the groove.

5. The nasal cavity cleaning device according to claim 1, characterized in that, The detection component includes a photoelectric sensor. The device body includes a housing. An accommodation space is formed inside the housing, and the photoelectric sensor is arranged at a target position in the accommodation space. A photoelectric path is provided on the housing corresponding to the target position. The sensing area includes the area corresponding to the photoelectric path. Among them: The photoelectric sensor is configured to emit a light beam and, when the object enters the sensing area corresponding to the photoelectric sensor, generate and send the target information to the controller according to the reflected light beam corresponding to the object.

6. The nasal cavity cleaning device according to any one of claims 2-5, characterized in that, The spraying component includes a nozzle, a water pumping component, and a water tank. The water tank is communicated with the nozzle through the water pumping component, and the controller is electrically connected to the water pumping component.

7. The nasal cavity cleaning device according to claim 6, wherein, The target position is a position where the distance difference from the position where the nozzle is located is less than a preset distance threshold.

8. The nasal cavity cleaning device according to claim 5, wherein, A transparent cover or a translucent cover is provided at a position on the outer surface of the housing that coincides with the photoelectric path.

9. The nasal cavity cleaning device according to claim 5, characterized in that, The photoelectric path is filled with a transparent material body or a translucent material body.

10. The nasal cavity cleaning device according to claim 5, wherein, The first aperture of the photoelectric path on the outer surface of the housing is different from the second aperture on the inner surface of the housing.

11. The nasal cavity cleaning device according to claim 5, characterized in that, The photoelectric path includes a first path and a second path. The first path extends vertically from the outer surface of the housing to the inner surface to a first position, and the second path extends vertically from the first position to the inner surface.

12. The nasal cavity cleaning device according to claim 11, wherein, The diameter of the second path gradually increases, and / or the diameter of the first path gradually decreases.

13. The nasal cavity cleaning device according to claim 1, characterized in that, The detection component includes a touch sensing component. The device body includes a housing. The touch sensing component is arranged on the outer surface of the housing. The touch sensing component is electrically connected to the controller. Among them: The touch sensing component is configured to generate and send the target information to the controller when the object touches the touch sensing component.

14. The nasal cavity cleaning device according to claim 13, characterized in that, The touch sensing component includes a capacitive sensor.

15. The nasal cavity cleaning device according to claim 1, wherein, Both the controller and the detection component are disposed on the same integrated circuit board.