Massager

By combining the airflow generating component and the massage component, and utilizing the ejection direction of the pulsed airflow and the heating design, the problem of insufficient massage experience in existing massagers is solved, thereby improving the accuracy and intensity of the massage position and enhancing the comfort of the skin's touch and the massage experience.

CN224671799UActive Publication Date: 2026-08-25NINGHAI COUNTY JIMEITE ELECTRONICS CO LTD
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Patent Information

Application Number
CN202521647594.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-04
Publication Date
2026-08-25
Estimated Expiration
2035-08-04

AI Technical Summary

Technical Problem

The massage experience of existing massagers needs to be further enriched, and users have a demand for improved combinations of massage head movement modes.

Method used

The device uses an air mass generating component to spray pulsed air masses. The massage component guides the direction of the pulsed air masses, and the design of the concave sleeve and air jet hole improves the accuracy and intensity of the massage position. At the same time, the pulsed air masses can be heated by a heating element, the control component adjusts the coordinated work of the air pump and solenoid valve, and the sensing element detects human contact to achieve precise response of the massager.

Benefits of technology

It improves the accuracy and intensity of massage positioning, enhances the comfort of skin touch, provides stimulation at multiple frequencies, and improves the massage experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of massage equipment, aims to solve the problem of how to improve the massage experience, and provides a massager. The massager provided by the embodiment comprises a gas cluster generating assembly and a massage assembly. The massage assembly is used for being directed towards a human body part to be massaged. The gas cluster generating assembly is communicated with the massage assembly. The gas cluster generating assembly is used for spraying pulse gas clusters. The pulse gas clusters pass through the massage assembly to massage the human body part. The massage assembly guides the spraying direction of the pulse gas clusters. The human body skin located in the area of the massage assembly is pushed by the pressure of the pulse gas clusters. Therefore, the comfort of the skin touch is improved, so that the massage experience is improved.
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Description

Technical Field

[0001] This application relates to the field of massage equipment technology, and more specifically, to massagers. Background Technology

[0002] A massager is a health care device designed based on the principles of physics, bionics, and traditional Chinese medicine. It uses electromagnetic vibration or mechanical rotation to simulate manual massage techniques such as kneading and percussion, helping to relieve muscle fatigue and promote blood circulation.

[0003] In the existing technology, massagers simulate the feeling of human hands to knead and rub by combining the movement modes of the massage heads. However, there is a need for users to further enrich their massage experience. How to develop new massage products to improve the user's massage experience is a question that those skilled in the art need to consider. Summary of the Invention

[0004] The core of this application is to use the pressure of pulsed air masses to conduct massage to parts of the human body through a massage component, thereby solving the problem of how to improve the massage experience.

[0005] An embodiment of this application provides a massager, including an airflow generating component and a massage component. The massage component is directed toward a body part to be massaged. The airflow generating component is in communication with the massage component, and the airflow generating component is used to emit pulsed airflows, which then pass through the massage component to massage the body part.

[0006] Compared to existing technologies, the air mass generating component of the massager sprays out pulsed air masses, and the massage component guides the direction of the pulsed air masses, so that the skin in the area of ​​the massage component is pushed by the pressure of the pulsed air masses, thereby improving the comfort of the skin's touch and achieving the effect of enhancing the massage experience.

[0007] Embodiments of this application also provide a massager, including a massage component and an airflow generating component. The massage component includes a massage element comprising a concave sleeve and a jet sleeve. The jet sleeve has a communicating air passage and a jet orifice. The diameter of the jet orifice is smaller than the diameter of the air passage, and the jet orifice communicates with the concave sleeve. The airflow generating component includes an air pump and a solenoid valve. One end of the solenoid valve is connected to the air pump, and the other end is connected to the air passage. The air pump is used to input compressed air into the solenoid valve. The solenoid valve can repeatedly open or close, thereby causing the compressed air to form pulsed airflows that enter the air passage.

[0008] Compared to existing technologies, the massager provided in this embodiment uses a concave sleeve that corresponds to the part of the body to be massaged. The concave sleeve fits the skin and also guides the direction of the pulse airflow, improving the positional accuracy of the massage. The concave sleeve is connected to the air jet nozzle of the air jet sleeve. The nozzle has a small diameter, thereby increasing the ejection speed of the pulse airflow and increasing the massage intensity. This design improves the positional accuracy and intensity of the pulse airflow pressure stimulation on the skin, enhancing the massage experience. A solenoid valve allows the pulse airflow to intermittently enter the air guide channel and then through the air jet nozzle into the concave sleeve. The pulse airflow is then intermittently ejected from the concave sleeve onto the skin, causing the skin to move periodically under the pressure of the pulse airflow, thus improving the comfort of the skin's touch and enhancing the massage experience.

[0009] In one possible embodiment, the concave sleeve is used to contact and enclose a body part to form a first massage chamber, and the pulsed air mass enters the first massage chamber through the jet hole, thereby increasing the air pressure in the first massage chamber to massage the body part.

[0010] It is evident that when the pulsed air mass is not ejected, the first massage chamber is in a closed state. When the pulsed air mass is ejected, it helps to quickly increase the air pressure in the first massage chamber, thereby increasing the massage intensity and achieving the effect of improving the comfort of skin touch and enhancing the massage experience.

[0011] In one possible embodiment, the massage assembly further includes a heating element disposed between the jet sleeve and the solenoid valve, the heating element being used to heat the pulse air mass.

[0012] As can be seen, the massager heats the pulse air mass by using a heating element, making the temperature of the pulse air mass close to the temperature of human skin. This allows the warm pulse air mass to be sprayed onto the skin, thereby improving the comfort of the skin's touch and enhancing the massage experience.

[0013] In one possible embodiment, the heating element includes an air heating tube, which is hollow and has a heating cavity. One end of the heating cavity is connected to the air guide channel, and the other end is connected to the air outlet of the solenoid valve.

[0014] As can be seen, the heating chamber is used to heat the pulse gas mass ejected by the solenoid valve. The heated pulse gas mass enters the air guide channel and is ejected through the jet hole.

[0015] In one possible embodiment, the air mass generating component further includes a control unit electrically connected to the air pump and the solenoid valve, respectively, and the control unit is used to control the air pump and the solenoid valve to work together.

[0016] As can be seen, the control unit controls the air pump to generate compressed air, and also controls the solenoid valve to open intermittently to spray out pulsed air currents. The control unit controls the frequency at which the solenoid valve opens, thereby generating variable-frequency pulsed air currents. These pulsed air currents not only enhance the massage experience but also provide multiple frequencies of stimulation to the skin, thereby improving tactile comfort and the overall massage experience.

[0017] In one possible embodiment, the massage assembly further includes a sensor disposed on the concave sleeve and electrically connected to the control unit. The sensor is used to detect whether the concave sleeve is in contact with a human body part, and the control unit is used to control the air pump and the solenoid valve to operate when a contact signal is received.

[0018] As can be seen, when the sensor detects that a part of the human body is in contact with the concave sleeve, the control unit controls the air pump and solenoid valve to work, and stops working when there is no contact, so that the massager can spray out pulse air in time, thereby the massager can quickly respond to the user's massage needs, so as to improve the comfort of skin touch and enhance the massage experience.

[0019] In one possible embodiment, the sensing element includes a capacitive sensing module.

[0020] As can be seen, the capacitive sensing module detects whether a part of the human body is in contact with the concave sleeve by means of self-capacitance sensing or mutual capacitance sensing.

[0021] In one possible embodiment, the massager further includes a support for supporting and securing the sensor to the concave sleeve.

[0022] It is evident that the sensor and the concave sleeve are supported and fixed by the bracket, which helps to improve the positional accuracy of the sensor and the concave sleeve, thereby improving the detection accuracy of the sensor. This allows the massager to accurately identify the user's massage needs, thereby improving the comfort of skin touch and enhancing the massage experience.

[0023] In one possible embodiment, the concave sleeve and the jet sleeve are integrally connected.

[0024] It is evident that the one-piece molding of the concave sleeve and the air jet sleeve can increase the overall airtightness, and also help improve the overall strength of the concave sleeve and the air jet sleeve, extend their service life, and help the massager provide a comfortable massage experience for a long time.

[0025] In one possible embodiment, the concave sleeve is a rubber sleeve, which can elastically deform under force.

[0026] As can be seen, the concave sleeve is made of rubber material, which makes the feel of the concave sleeve when in contact with the human body more gentle, so as to enhance the massage experience.

[0027] In one possible embodiment, the massage element further includes a membrane disposed on the concave sleeve, the membrane and the concave sleeve enclosing a second massage chamber, and the pulsed air mass is injected into the second massage chamber, causing the membrane to vibrate.

[0028] As can be seen, the membrane and the concave sleeve surround each other, making the second massage chamber semi-closed. The pulsed air mass is injected into the second massage chamber, which helps to quickly increase the air pressure in the second massage chamber, thereby increasing the vibration intensity of the membrane. In this way, the pressure of the pulsed air mass is indirectly applied to the human body through the membrane, so as to improve the comfort of skin touch and enhance the massage experience.

[0029] In one possible embodiment, the second massage chamber is provided with an exhaust section, through which the pulsed air mass is injected into the second massage chamber from the jet hole and discharged from the exhaust section.

[0030] As can be seen, the second massage chamber is semi-enclosed by an exhaust section. After the pulsed air mass is ejected, the air pressure inside the second massage chamber can return to normal, so that the pulsed air mass can be ejected into the second massage chamber again. The air pressure inside the second massage chamber rises and falls repeatedly due to the entry of the pulsed air mass, which helps to increase the vibration frequency of the membrane, thereby improving the comfort of skin touch and enhancing the massage experience.

[0031] In one possible embodiment, the exhaust section includes at least one of an exhaust port, an exhaust passage, or an exhaust pump.

[0032] In one possible embodiment, the membrane is provided with vent holes.

[0033] It is evident that the impact of the pulsed air mass on the membrane causes the membrane to vibrate, and the pulsed air mass is discharged from the exhaust port. The vibration of the membrane and the airflow of the pulsed air mass work together on the skin to improve the comfort of the skin's touch and enhance the massage experience.

[0034] In one possible embodiment, the membrane is used to correspond to a part of the human body to be massaged, and the surface shape of the membrane facing the part of the human body includes at least one of wavy, arcuate, or flat.

[0035] In one possible embodiment, the surface of the membrane facing the human body part has a protrusion.

[0036] In one possible embodiment, the membrane is detachably connected to the concave sleeve.

[0037] In one possible embodiment, the concave sleeve is provided with a mounting groove, and the membrane is inserted into the concave sleeve through the mounting groove.

[0038] Embodiments of this application also provide a massager, including a massage component and an airflow generating component. The massage component includes a membrane for contacting a body part to be massaged. The airflow generating component is disposed on the side of the membrane opposite to the body part, and the airflow generating component sprays pulsed airflow toward the membrane to massage the body part in contact with the membrane.

[0039] Compared to existing technologies, the air-generating component of the massager sprays pulsed air onto the membrane, causing the membrane to vibrate. The pressure of the membrane vibration brings a comfortable tactile sensation to the skin, thereby enhancing the massage experience. Attached Figure Description

[0040] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings in the embodiments will be briefly described below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.

[0041] Figure 1 This is a schematic diagram of the structure of a massager according to an embodiment of this application;

[0042] Figure 2 for Figure 1 A magnified view of a portion of the massage components of a massager;

[0043] Figure 3 for Figure 1 A schematic diagram of a massager with added heating elements;

[0044] Figure 4 for Figure 1 A schematic diagram of the structure of the massager with added membrane;

[0045] Figure 5 for Figure 4 A schematic diagram of the second shape of the membrane in a massager;

[0046] Figure 6 for Figure 4 A schematic diagram of the third shape of the membrane in a massager;

[0047] Figure 7 for Figure 1 A 3D image of a massager;

[0048] Figure 8 for Figure 1 The massager features an added heating element and a membrane (explosive diagram).

[0049] Explanation of key component symbols:

[0050] 1. Massager; 11. Airflow generating component; 111. Air pump; 112. Air duct; 113. Solenoid valve; 114. Air inlet; 115. Air outlet; 116. Control component; 12. Massage component; 121. Massage element; 122. Membrane; 123. Convex bulge; 124. Concave sleeve; 1241. Periphery; 1242. Center; 1243. Mounting slot; 125. Jet sleeve; 1251. Air duct; 1252. Jet nozzle; 126. Heating element; 1261. Air heating pipe; 1262. Heating chamber; 127. Sensor; 13. Housing; 131. Opening; 14. Charging module; 15. Battery; 16. Support; 17. First massage chamber; 18. Second massage chamber; 181. Exhaust section; 182. Exhaust port; 2. Human body part; 21. Skin; 3. Airflow. Detailed Implementation

[0051] The technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.

[0052] It should be noted that when a component is said to be "fixed to" another component, it can be directly on the other component or there may be an intervening component. When a component is said to be "connected to" another component, it can be directly connected to the other component or there may be an intervening component. When a component is said to be "set on" another component, it can be directly set on the other component or there may be an intervening component. The terms "vertical," "horizontal," "left," "right," and similar expressions used in this document are for illustrative purposes only.

[0053] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. The term "or / and" as used herein includes any and all combinations of one or more of the associated listed items.

[0054] Some embodiments of this application are described in detail. Unless otherwise specified, the following embodiments and features can be combined with each other.

[0055] Example

[0056] Please refer to Figures 1 to 8As shown, the concept of this application is to utilize the pressure of the pulsed air mass 3, which is transmitted through the massage component 12 to the human body part 2 for massage, thereby enhancing the massage experience. The pressure of the pulsed air mass 3 is directly sprayed onto the human body part 2 through the massage component 12, or the pressure of the pulsed air mass 3 is indirectly applied to the human body part 2 through the massage component 12, thereby providing the user's skin 21 with a comfortable tactile sensation and enhancing the massage experience.

[0057] An embodiment of this application provides a massager 1, including an airflow generating component 11 and a massage component 12. The massage component 12 is directed toward a human body part 2 to be massaged. The airflow generating component 11 is connected to the massage component 12, and the airflow generating component 11 is used to emit pulsed airflow 3, which passes through the massage component 12 to massage the human body part 2.

[0058] The air mass generating component 11 ejects a pulsed air mass 3, and the massage component 12 guides the ejection direction of the pulsed air mass 3, so that the human body part 2 located in the area of ​​the massage component 12 is pushed by the pressure of the pulsed air mass, thereby improving the comfort of skin touch and enhancing the massage experience.

[0059] In this embodiment, the air mass generating component 11 is driven by compressed air or atmospheric air to eject pulsed air masses 3.

[0060] The massage component 12 can guide the direction of the pulsed airflow 3 for massage independently, or it can be combined with other massage methods such as mechanical vibration massage. The pressure of the pulsed airflow acts on the human body part 2 alone, or the pressure of the pulsed airflow acts on the human body part 2 together with mechanical vibration, thereby bringing a comfortable tactile sensation to the skin and enhancing the massage experience.

[0061] Understandably, this embodiment is not limited to the specific structure of the massage component 12 and the combination of massage forms.

[0062] The following describes some possible specific structural embodiments of the massager 1.

[0063] Please combine Figure 1 and Figure 2As shown, an embodiment of this application also provides a massager 1. The massage component 12 includes a massage element 121, which includes a concave sleeve 124 and a jet sleeve 125. The concave sleeve 124 has a recessed center 1242 and a raised periphery 1241. The jet sleeve 125 has a communicating air passage 1251 and a jet hole 1252. The diameter of the jet hole 1252 is smaller than the diameter of the air passage 1251, and the jet hole 1252 communicates with the center 1242 of the concave sleeve 124. The air mass generating component 11 includes an air pump 111, an air pipe 112, and a solenoid valve 113. The air pump 111 is used to generate compressed air. One end of the air pipe 112 is connected to the air pump 111, and the other end is connected to the air inlet 114 of the solenoid valve 113. The air inlet 114 of the solenoid valve 113 is connected to the air pump 111 through the air guide pipe 112, and the air pump 111 inputs compressed air to the solenoid valve 113. The air outlet 115 of the solenoid valve 113 is connected to the air guide channel 1251, and the solenoid valve 113 can be repeatedly opened or closed, thereby causing the compressed air to form a pulse air mass 3 and enter the air guide channel 1251.

[0064] In this embodiment, the pulsed air mass 3 of the massager 1 enters the air guide channel 1251 and is injected into the concave sleeve 124 through the jet nozzle 1252. The diameter of the jet nozzle 1252 is small, thereby increasing the jet speed of the pulsed air mass 3, rapidly increasing the air pressure inside the concave sleeve 124, and enhancing the massage intensity. The massager 1 corresponds to the human body part 2 to be massaged through the concave sleeve 124. The periphery 1241 of the concave sleeve 124 fits against the human body part 2, and the periphery 1241 of the concave sleeve 124 also guides the jet direction of the pulsed air mass 3, improving the positional accuracy of the massage. This configuration improves the positional accuracy and intensity of the pulsed air mass pressure stimulation on the human body part 2, which is beneficial to enhancing the massage experience. The solenoid valve 113 is used to intermittently allow the pulse air mass 3 to enter the air guide channel 1251 and enter the concave sleeve 124 through the jet hole 1252. As a result, the pulse air mass 3 is intermittently sprayed from the concave sleeve 124 to the human body part 2. Therefore, the human body part 2 is subjected to the pressure of the pulse air mass 3 and moves back and forth periodically to improve the comfort of skin touch and enhance the massage experience.

[0065] In this embodiment, the diameter of the jet hole 1252 is smaller than that of the air guide channel 1251, which helps to increase the pressure of the pulse air mass 3. In addition, the middle part 1242 of the concave sleeve 124 is recessed and funnel-shaped, thereby guiding the direction of the pulse air mass 3 and improving the positional accuracy of the pulse air mass 3. Therefore, the massage intensity and precision are improved, thereby improving the comfort of the skin touch and the massage experience.

[0066] In one embodiment, the concave sleeve 124 is used to contact and enclose the human body part 2 to form a first massage chamber 17. The pulsed air mass 3 enters the first massage chamber 17 through the jet hole 1252, thereby increasing the air pressure in the first massage chamber 17 to massage the human body part 2.

[0067] In this embodiment, the periphery 1241 of the concave sleeve 124 fits against the human body part 2, and the middle part 1242 of the concave sleeve 124 is recessed and surrounds the human body part 2 to form a first massage chamber 17. The jet sleeve 125 is connected to the side of the concave sleeve 124 opposite to the human body part 2. The diameter of the jet hole 1252 is smaller than the diameter of the air guide channel 1251, which is beneficial to increase the pressure of the pulse air mass 3. Therefore, the massager 1 increases the pressure of the pulse air mass 3 through the jet sleeve 125, and the first massage chamber 17 facilitates the direct application of the pressure of the pulse air mass 3 to the human body part 2. When the pulse air mass 3 is not ejected, the first massage chamber 17 is in a closed state. When the pulse air mass 3 is ejected, it is beneficial to quickly increase the air pressure in the first massage chamber 17, thereby increasing the massage intensity, improving the comfort of skin touch, and enhancing the massage experience.

[0068] It should be noted that when the pulse air mass 3 is ejected, the air pressure in the first massage chamber 17 increases, which creates a gap between the concave sleeve 124 and the human body part 2, and the pulse air mass 3 is discharged to the outside through the gap.

[0069] Please combine Figure 3 As shown, in one embodiment, the massage assembly 12 further includes a heating element 126, which is disposed between the jet sleeve 125 and the air outlet 115 of the solenoid valve 113. The heating element 126 is used to heat the pulse air mass 3.

[0070] In this embodiment, the heating element 126 can use a resistance wire or steam to heat the pulse air mass 3, and this application is not limited thereto. The massager 1 heats the pulse air mass 3 through the heating element 126, so that the temperature of the pulse air mass 3 is close to the temperature of human skin 21, so that the warm pulse air mass 3 is sprayed onto human skin 21 to improve the comfort of skin touch and enhance the massage experience.

[0071] In one embodiment, the heating element 126 includes an air heating tube 1261, which is hollow and has a heating cavity 1262. One end of the heating cavity 1262 is connected to the air guide channel 1251, and the other end is connected to the air outlet 115 of the solenoid valve 113.

[0072] In this embodiment, the air in the heating chamber 1262 is heated to a higher temperature. The pulsed air mass 3 ejected by the solenoid valve 113 enters the heating chamber 1262 and mixes with the air in the heating chamber 1262, thereby heating the pulsed air mass 3. The heated pulsed air mass 3 enters the air guide channel 1251 and is ejected through the jet hole 1252, so that the warm pulsed air mass 3 is ejected onto the human skin 21 to improve the comfort of skin touch and enhance the massage experience.

[0073] In one embodiment, the air mass generating assembly 11 further includes a control element 116, which is electrically connected to the air pump 111 and the solenoid valve 113 respectively, and is used to control the air pump 111 and the solenoid valve 113 to work together.

[0074] In this embodiment, the control unit 116 includes a chip and a circuit board. Understandably, the control unit 116 controls the air pump 111 and the solenoid valve 113 through the chip's programming and the circuit board's circuit design. The control unit 116 controls the air pump 111 to generate compressed air, and the control unit 116 controls the solenoid valve 113 to open intermittently to eject pulsed airflow 3. The control unit 116 controls the opening frequency of the solenoid valve 113, thereby generating variable-frequency pulsed airflow 3. This pulsed airflow 3 not only enhances the massage experience but also provides stimulation to the body part 2 at multiple frequencies, improving the comfort of skin touch.

[0075] The control unit 116 is also electrically connected to the air heating tube 1261. The control unit 116 is used to control the working state of the air heating tube 1261, thereby selecting whether to heat the pulse air mass 3. Understandably, the massager 1 in this embodiment has a heating mode and a normal temperature mode. The control unit 116 can also adjust the temperature of the air heating tube 1261, thereby adjusting the temperature of the pulse air mass 3 and improving the massage experience.

[0076] In one embodiment, the massage assembly 12 further includes a sensor 127 disposed on the concave sleeve 124. The sensor 127 is electrically connected to the control unit 116. The sensor 127 is used to detect whether the concave sleeve 124 is in contact with the human body part 2. The control unit 116 is used to control the air pump 111 and the solenoid valve 113 to work when a contact signal is received.

[0077] In this embodiment, the sensing element 127 includes a capacitive sensing module. The concave sleeve 124 is located between the human body part 2 and the capacitive sensing module. When the concave sleeve 124 contacts the human body part 2, the capacitive sensing module detects the contact between the human body part 2 and the concave sleeve 124 through self-capacitance sensing or mutual capacitance sensing. When the sensing element 127 detects that the human body part 2 is in contact with the concave sleeve 124, the control element 116 controls the air pump 111 and the solenoid valve 113 to operate. When the concave sleeve 124 is not in contact with the human body part 2, the control element 116 controls the air pump 111 and the solenoid valve 113 to stop operating. The massager 1, through the detection of the sensing element 127, promptly sprays pulsed air masses 3, thereby quickly identifying the user's massage needs, improving the comfort of skin touch, and enhancing the massage experience.

[0078] In one embodiment, the massager 1 further includes a housing 13, a charging module 14, a battery 15, and a support 16. An airflow generating assembly 11, a control unit 116, a battery 15, and a heating element 126 are disposed within the housing 13. The charging module 14 is used to charge the battery 15, which in turn supplies power to the air pump 111, the solenoid valve 113, the sensor 127, and the control unit 116.

[0079] In this embodiment, the housing 13 has an opening 131, and a concave sleeve 124 is disposed in the opening 131, with the circumferential surface of the concave sleeve 124 engaging with the opening 131.

[0080] The bracket 16 is fixed to the opening 131 of the housing 13. One end of the bracket 16 is connected to the periphery 1241 of the concave sleeve 124, and the other end extends toward the center 1242 of the concave sleeve 124. The sensor 127 is disposed between the concave sleeve 124 and the bracket 16. The bracket 16 supports the sensor 127 so that the sensor 127 is in close contact with the concave sleeve 124. The bracket 16 is used to support and fix the sensor 127 and the concave sleeve 124, thereby improving the positional accuracy of the sensor 127 and the concave sleeve 124, improving the detection accuracy of the sensor 127, which is conducive to the massager 1 accurately identifying the user's massage needs, so as to improve the comfort of skin touch and enhance the massage experience.

[0081] In one embodiment, the concave sleeve 124 and the jet sleeve 125 are integrally connected.

[0082] In this embodiment, the concave sleeve 124 and the jet sleeve 125 are integrally formed, which helps to improve the overall strength of the concave sleeve 124 and the jet sleeve 125. The concave sleeve 124 and the jet sleeve 125 are subjected to the air pressure of the pulse air mass 3 for a long time. The integral forming of the concave sleeve 124 and the jet sleeve 125 can also increase the overall airtightness, extend the service life, and help the massager 1 provide a comfortable massage experience for a long time.

[0083] In one embodiment, the concave sleeve 124 is a rubber sleeve, and the concave sleeve 124 can elastically deform under force.

[0084] In this embodiment, the concave sleeve 124 and / or the air jet sleeve 125 are made of rubber material, making the concave sleeve 124 feel softer when in contact with the human body part 2, thereby enhancing the massage experience. The concave sleeve 124 contacts the human body part 2 and encloses it to form a first massage chamber 17. The air pressure in the first massage chamber 17 increases due to the pressure of the pulse air mass 3, causing the concave sleeve 124 to undergo elastic deformation. The elastic deformation of the concave sleeve 124 generates vibration and acts on the human skin 21. Thus, the pulse air mass pressure and mechanical vibration work together on the human skin 21, thereby improving the comfort of skin touch and enhancing the massage experience.

[0085] Understandably, the massager 1 directly sprays the pulse air blast 3 onto the human body part 2 to be massaged through the concave sleeve 124. The specific structure of the massage component 121 in this application is not limited to the concave sleeve 124. The concave sleeve 124 can be replaced by other massage components such as rubber plugs or rubber hammers, or the concave sleeve 124 can be used in combination with other massage components.

[0086] Please combine Figures 4 to 6 As shown, some embodiments of the pressure of the pulsed air mass 3 acting indirectly on the human body part 2 through the membrane 122 will be described below.

[0087] In one embodiment, the massage member 121 further includes a membrane 122 disposed on a concave sleeve 124. The membrane 122 and the concave sleeve 124 enclose a second massage chamber 18. A pulse air mass 3 is injected into the second massage chamber 18, causing the membrane 122 to vibrate.

[0088] In this embodiment, the membrane uses a flexible soft material, such as silicone, rubber, TPE, TPU, etc., and the membrane 122 is used to contact the human body part 2.

[0089] The membrane 122 is detachably connected to the concave sleeve 124 to facilitate replacement of the membrane 122.

[0090] Optionally, during use, the membrane 122 is adhered to the periphery 1241 of the concave sleeve 124. After use, the membrane 122 is torn off from the concave sleeve 124. This arrangement facilitates cleaning and hygiene of the massager 1. Alternatively, the membrane 122 is fitted onto the periphery 1241 of the concave sleeve 124, allowing for repeated disassembly and reassembly and reuse. This application is not limited to this.

[0091] Preferably, the concave sleeve 124 is provided with an installation groove 1243, and the membrane 122 is inserted into the concave sleeve 124 through the installation groove 1243 to facilitate the replacement of the membrane 122.

[0092] The membrane 122 and the periphery 1241 of the concave sleeve 124 enclose the second massage chamber 18, making the second massage chamber 18 semi-closed. The pulse air mass 3 is sprayed into the second massage chamber 18, which helps to quickly increase the air pressure in the second massage chamber 18, thereby increasing the vibration intensity of the membrane 122. In this way, the pressure of the pulse air mass is indirectly applied to the human body part 2 through the membrane 122 to improve the comfort of skin touch and enhance the massage experience.

[0093] In one embodiment, the second massage chamber 18 is provided with an exhaust section 181, and the pulse air mass 3 is injected into the second massage chamber 18 from the jet hole 1252 and discharged from the exhaust section 181.

[0094] In this embodiment, the second massage chamber 18 is semi-closed by an exhaust vent 181. After the pulsed air mass 3 is ejected, the air pressure inside the second massage chamber 18 can return to normal pressure, so that the pulsed air mass 3 can be ejected into the second massage chamber 18 again. The air pressure inside the second massage chamber 18 repeatedly rises and falls due to the entry of the pulsed air mass 3, which helps to increase the vibration frequency of the membrane 122, thereby improving the comfort of skin touch and enhancing the massage experience.

[0095] Specifically, the exhaust portion 181 includes at least one of an exhaust port, an exhaust passage, or an exhaust pump. The exhaust portion 181 may be disposed in the concave sleeve 124 and / or the membrane 122, but this application is not limited thereto.

[0096] In one embodiment, the membrane 122 is provided with an exhaust port 182.

[0097] In this embodiment, the membrane 122 has one or more exhaust holes 182. The pulsed air mass 3 impacts the membrane 122, causing the membrane 122 to vibrate, and the pulsed air mass 3 is discharged from the exhaust hole 182. The vibration of the membrane 122 and the airflow of the pulsed air mass 3 work together on the skin 21 to improve the comfort of skin touch and enhance the massage experience.

[0098] In one embodiment, the membrane 122 is used to correspond to the human body part 2 to be massaged, and the surface shape of the membrane 122 facing the human body part 2 includes at least one of wavy, arc-shaped or flat.

[0099] In one embodiment, the surface of the membrane 122 facing the human body part 2 is provided with a protrusion 123.

[0100] In this embodiment, the surface of the membrane 122 facing the human body part 2 is provided to the user with different shapes to enrich the massage experience.

[0101] Embodiments of this application also provide a massager 1, including a massage element 121 and an airflow generating assembly 11. The massage element 121 includes a membrane 122 for contacting a human body part 2 to be massaged. The airflow generating assembly 11 is disposed on the side of the membrane 122 opposite to the human body part 2, and the airflow generating assembly 11 sprays pulsed airflow 3 toward the membrane 122 to massage the human body part 2 in contact with the membrane 122.

[0102] The air mass generating component 11 of the massager 1 sprays pulsed air masses 3 onto the membrane 122, causing the membrane 122 to vibrate. The pressure of the vibrating membrane 122 brings a comfortable tactile sensation to the skin 21, thereby enhancing the massage experience.

[0103] In one embodiment, the membrane 122 is provided with an exhaust port 182, so that the pulsed air mass 3 is discharged from the exhaust port, and the membrane 122 vibrates and blows air toward the human body part 2.

[0104] It is evident that the pulsed air mass 3 flows out from the exhaust port, which not only facilitates the vibration of the membrane 122, but also allows the airflow of the pulsed air mass 3 and the vibration of the membrane 122 to work together on the human body part 2, thereby improving the comfort of skin touch and enhancing the massage experience.

[0105] In summary, the massager 1 uses the pressure of the pulsed air mass 3 and the massage component 12. The massage component 12 guides the pulsed air mass 3 to be sprayed directly onto the human body part 2, or the pressure of the pulsed air mass 3 is indirectly applied to the human body part 2 through the massage component 12, thereby bringing a comfortable skin tactile sensation to the user and enhancing the massage experience.

[0106] The above embodiments are only used to illustrate the technical solutions of this application and are not intended to limit it. Although this application has been described in detail with reference to the above preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions to the technical solutions of this application should not depart from the spirit and scope of the technical solutions of this application.

Claims

1. A massager, characterized in that, include: A massage assembly includes a massage element, the massage element comprising a concave sleeve and a jet sleeve, the jet sleeve having a communicating air passage and a jet hole, the diameter of the jet hole being smaller than the diameter of the air passage, and the jet hole communicating with the concave sleeve; The air mass generating component includes an air pump and a solenoid valve. One end of the solenoid valve is connected to the air pump, and the other end is connected to the air guide channel. The air pump is used to input compressed air into the solenoid valve. The solenoid valve can be repeatedly opened or closed, thereby causing the compressed air to form a pulse air mass and enter the air guide channel.

2. The massager according to claim 1, characterized in that: The concave sleeve is used to contact and enclose the human body part to form a first massage chamber. The pulsed air mass enters the first massage chamber through the jet hole, thereby increasing the air pressure in the first massage chamber to massage the human body part.

3. The massager according to claim 1, characterized in that: The massage assembly also includes a heating element disposed between the jet sleeve and the solenoid valve, the heating element being used to heat the pulse air mass.

4. The massager according to claim 3, characterized in that: The heating element includes an air heating tube, which is hollow and has a heating cavity. One end of the heating cavity is connected to the air guide channel, and the other end is connected to the air outlet of the solenoid valve.

5. The massager according to claim 1, characterized in that: The air mass generating component also includes a control unit, which is electrically connected to the air pump and the solenoid valve respectively, and is used to control the air pump and the solenoid valve to work together.

6. The massager according to claim 5, characterized in that: The massage assembly also includes a sensor disposed on the concave sleeve and electrically connected to the control unit. The sensor is used to detect whether the concave sleeve is in contact with a part of the human body, and the control unit is used to control the air pump and the solenoid valve to work when a contact signal is received.

7. The massager according to claim 6, characterized in that: The sensing element includes a capacitive sensing module.

8. The massager according to claim 6, characterized in that: The massager also includes a support frame for supporting and securing the sensor and the concave sleeve.

9. The massager according to claim 1, characterized in that: The concave sleeve and the jet sleeve are integrally connected.

10. The massager according to claim 1, characterized in that: The concave sleeve is a rubber sleeve, and the concave sleeve can elastically deform under force.

11. The massager according to claim 1, characterized in that: The massage component also includes a membrane disposed on the concave sleeve. The membrane and the concave sleeve enclose a second massage chamber. The pulsed air mass is injected into the second massage chamber, causing the membrane to vibrate.

12. The massager according to claim 11, characterized in that: The second massage chamber is provided with an exhaust section, and the pulsed air mass is injected into the second massage chamber from the jet hole and discharged from the exhaust section.

13. The massager according to claim 12, characterized in that: The exhaust section includes at least one of an exhaust port, an exhaust passage, or an exhaust pump.

14. The massager according to claim 11, characterized in that: The membrane is provided with vent holes.

15. The massager according to claim 11, characterized in that: The membrane is used to massage a part of the human body, and the surface shape of the membrane facing the part of the human body includes at least one of wavy, arc-shaped, or flat.

16. The massager according to claim 15, characterized in that: The surface of the membrane facing the human body part has protrusions.

17. The massager according to claim 11, characterized in that: The membrane is detachably connected to the concave sleeve.

18. The massager according to claim 17, characterized in that: The concave sleeve is provided with an installation groove, and the membrane is inserted into the concave sleeve through the installation groove.

19. A massager, characterized in that, include: Massage components for use when directed toward the body part to be massaged; An air mass generating component is connected to the massage component. The air mass generating component is used to spray pulsed air masses, and the pulsed air masses massage the human body parts through the massage component.

20. A massager, characterized in that, include: A massage component, including a membrane for contacting a part of the human body to be massaged; An air mass generating component is disposed on the side of the membrane opposite to the human body part. The air mass generating component sprays pulsed air masses toward the membrane to massage the human body part in contact with the membrane.