Shaving razor

CN119567320BActive Publication Date: 2026-09-22GUANGZHOU WEIDI COMMODITY CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202411792202.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-06
Publication Date
2026-09-22
Estimated Expiration
2044-12-06

AI Technical Summary

Technical Problem

但是推扭释放刀头形式在顺畅度,精度等难保证,因此无法保证快速装配和拆卸

Benefits of technology

[0027]在上述实现的过程中,刀头组件通过连接器连接于控制件后,刀头组件与弹出端进行抵接,可通过弹出端对刀头组件进行角度调节的限位,同时在连接器与控制件脱离后,弹出端会对连接器与刀头组件连接形成的整体施加一推力,实现自动弹出,拆卸及更换效率更高。

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119567320B_ABST
    Figure CN119567320B_ABST
Patent Text Reader

Abstract

The embodiment of the present application provides a shaver, comprising a pressing linkage assembly, the pressing linkage assembly comprising a control member and a pop-up structure, the pop-up structure being connected with the control member, and the pop-up structure being provided with a pop-up end; a connector being connected with the control member, the connector being in abutment with the pop-up end, so that when the control member is pressed, the connector is separated from the control member, and the pop-up end pops up the connector; a handle assembly being connected with the pop-up structure, and the handle assembly being located on the side of the pressing linkage assembly away from the connector. When the connector needs to be assembled on the control member, the handle assembly is gripped, and the control member is pressed; the control member is moved, and at the same time, the connector is moved to a specified position of the pressing linkage assembly; then the control member is released, and the control member returns to the original state, so that the connection between the control member and the connector is completed; similarly, when the control member needs to be separated from the connector, the control member is only needed to be pressed, and after the control member is separated from the connector, the control member is released; the whole process can realize quick assembly and disassembly, and the efficiency is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of razor technology, and more specifically, to a razor. Background Technology

[0002] A razor, also known as a beard shaving razor, is a tool used primarily by adult men for shaving. It can be categorized into three types based on its structure: safety razors, electric razors, and mechanical razors. Manual razors generally consist of a razor head and a shaving handle. The handle is made of materials such as aluminum, stainless steel, copper, plastic, or rubber. The razor head is composed of blades combined with plastic or rubber. The blades are typically made of stainless steel or carbon steel, and the cutting edge undergoes special material treatment to ensure sharpness and durability. To ensure a smooth shave, the razor head usually contains a lubricating strip for moisturizing and soothing. To use, the razor head is attached to the handle, and the razor handle is held for shaving.

[0003] In related technologies, a push-twist mechanism involves applying forward force with a finger, causing the plastic part to move forward and deform the retaining clip. Once the deformation reaches the required amount, the clip releases, separating the cutter head from the handle, thus enabling the replacement of the cutter head. However, the push-twist method for releasing the cutter head is difficult to guarantee in terms of smoothness and precision, thus failing to ensure rapid assembly and disassembly. Summary of the Invention

[0004] The purpose of this application is to provide a razor that can be quickly assembled and disassembled, thereby improving efficiency.

[0005] In a first aspect, embodiments of this application provide a shaver, comprising: a press-linkage assembly including a control member and a pop-out structure, the pop-out structure being connected to the control member and having a pop-out end; a connector connected to the control member, the connector abutting against the pop-out end, such that when the control member is pressed, at least a portion of the structure of the control member is configured to move along a preset direction, the connector disengaging from the control member, and the pop-out end popping out the connector; and a handle assembly connected to the pop-out structure, the handle assembly being located on the side of the press-linkage assembly opposite to the connector.

[0006] In the above process, the control component is connected to the pop-up structure. When it is necessary to assemble the connector onto the control component, simply grip the handle assembly and press the control component. Part of the control component moves along the preset direction, and at the same time, the connector is moved to the designated position of the pressing linkage assembly. Then, release the control component, and the control component returns to its original state, thus completing the connection between the control component and the connector. Similarly, when it is necessary to detach the control component from the connector, simply press the control component, wait for the control component to detach from the connector, and then release the control component. The entire process enables quick assembly and disassembly, improving efficiency.

[0007] In some embodiments, the control element includes a button, a latching body, and a reset element. The latching body is connected to the button and configured to adapt to the connector and the pop-out structure. The reset element is connected to the button so that when the button is pressed, the latching body disengages from the connector and the pop-out structure, and the reset element is compressed.

[0008] In the above implementation process, the snap-fit ​​body and the reset component are respectively connected to the button. The snap-fit ​​body can be adapted to the pop-up structure and the connector respectively. The whole structure is more compact and the parts are more streamlined, which facilitates manual assembly. When the button is pressed, the connector and / or pop-up structure can be released to achieve quick assembly and disassembly, which improves efficiency. At the same time, the press-type disassembly will greatly reduce the risk of hurting or injuring fingers, and the experience of replacement and installation will be better.

[0009] In some embodiments, the connector is configured with a first snap-fit ​​groove, and the pop-out structure is configured with a second snap-fit ​​groove, wherein at least a portion of the structure of the first snap-fit ​​groove and the second snap-fit ​​groove overlaps, so that the first snap-fit ​​groove and the second snap-fit ​​groove are connected.

[0010] In the above implementation process, by connecting the first and second snap-fit ​​slots, the snap-fit ​​body can simultaneously engage with both the first and second snap-fit ​​slots, making the entire structure more compact and the parts more streamlined, facilitating manual assembly. When the button is pressed, the connector and / or pop-out structure can be released, enabling quick assembly and disassembly, improving efficiency. At the same time, the press-type disassembly will greatly reduce the risk of hurting or injuring fingers, and the experience of replacement and installation will be better.

[0011] In some embodiments, the button is configured with an extension post, and the extension post is fitted with the reset member. By fitting the reset member onto the extension post, when the button is pressed, it is ensured that the reset member is compressed or released along a preset direction, preventing the reset member from deviating, resulting in a more concentrated force and a better tactile feel.

[0012] In some embodiments, the control element includes a button and a deformable element. The button is configured with a deformation space for its deformation. The deformable element is disposed in the inner cavity of the button and is adapted to the connector and the pop-out structure, respectively, so that when the button is pressed, the deformable element deforms and disengages from the connector and the pop-out structure, respectively.

[0013] In the above process, the deformable part comes into contact with the button. When the button is pressed, the button deforms and squeezes the deformable part, which in turn displaces the deformable part, causing the connector and pop-out structure to detach. The parts are more streamlined and easier to assemble manually. When the button is pressed, the connector and / or pop-out structure can be detached to achieve quick assembly and disassembly, improving efficiency. At the same time, the press-type disassembly will greatly reduce the risk of hurting or injuring fingers, and the replacement and installation experience will be better.

[0014] In some embodiments, the deformable element includes a deformable body and a snap-fit ​​body, the deformable body being connected to the snap-fit ​​body, the deformable body abutting against the pop-out structure and being located inside the pop-out structure, and a portion of the structure of the snap-fit ​​body passing through the pop-out structure, the structure of which is configured to be adapted to the connector.

[0015] In some embodiments, the deformable shape is configured with an arc segment that protrudes along a direction close to the pop-up structure and abuts against the pop-up structure.

[0016] In some embodiments, the control element includes a button and a latching body, the latching body being connected to the button, a portion of the latching body penetrating the pop-out structure, and this portion abutting against the connector.

[0017] In some embodiments, the snap-fit ​​body is provided with a first inclined portion, and the pop-out structure is provided with a second inclined portion. The first inclined portion and the second inclined portion are adapted to each other so that when the button is pressed, the second inclined portion compresses the snap-fit ​​body through the first inclined portion to deform it, and the snap-fit ​​body disengages from the connector.

[0018] In some embodiments, the control element includes a button, a first mating body, and a second mating body. The button is configured with a deformation space for its deformation. The first mating body and the second mating body are respectively connected to the button. The first mating body is configured to be adapted to the connector, and the second mating body is configured to be adapted to the pop-up structure. When the button is pressed, the button causes the first mating body to displace and disengage from the connector.

[0019] In the above implementation process, the first mating body and the second mating body are connected to the button. When the button is pressed, the first mating body can be exposed in the pop-up structure and used to engage with the connector. Alternatively, the first mating body can be disengaged from the connector, avoiding wear between the fasteners and improving the reliability of the first mating body.

[0020] In some embodiments, the button includes a pressing portion and a connecting portion, the pressing portion being connected to the connecting portion, and the pressing portion protruding in a direction away from the connecting portion.

[0021] In the above implementation process, the pressing part protrudes relative to the connecting part, so that after the pressing linkage component, connector and handle component are assembled, the user can easily find the button position through the pressing part, which improves the recognition and feel. At the same time, it can also increase the contact area with the user's fingers, avoid the risk of hurting or injuring the fingers, and make the replacement and installation experience better.

[0022] In some embodiments, the pop-out structure includes an elastic element and a pop-out member. The elastic element acts on the control element and the pop-out member respectively. One end of the pop-out member facing away from the pop-out member abuts against the connector, so that when the connector is connected to the control element, the elastic element is in a compressed state, and when the connector is disengaged from the control element, the elastic element is in a released state.

[0023] In the above process, the elastic element abuts against the control element and the pop-out element respectively, so that when the connector is connected to the control element, the elastic element can store energy due to its own compression. When the connector is separated from the control element, the elastic element can apply a pushing force, so that the connector can automatically pop out from the pressing linkage component. The disassembly and replacement are more efficient, avoiding finger discomfort caused by manual disassembly and improving the user experience.

[0024] In some embodiments, the pop-out structure further includes a fixing block, at least a portion of which is disposed on the connector, the fixing block connecting the control element and the handle assembly, and one end of the pop-out element passing through the fixing block.

[0025] In the above process, the fixing block is connected to the handle assembly and the control component respectively. After the fixing block, the control component and the handle assembly are assembled, it can accommodate part of the pop-out component and the elastic component. When the control component and the connector are disassembled, the elastic component returns to its original position. After the pop-out component applies a push force to the connector, the fixing block limits it to ensure that the pop-out component will not detach from the pop-out structure.

[0026] In some embodiments, the shaver further includes a blade head assembly connected to the connector and abutting against the ejector end.

[0027] In the above process, after the cutter head assembly is connected to the control component via the connector, the cutter head assembly abuts against the pop-out end. The pop-out end can limit the angle adjustment of the cutter head assembly. At the same time, after the connector is separated from the control component, the pop-out end will apply a pushing force to the whole formed by the connection between the connector and the cutter head assembly, so as to achieve automatic pop-out and higher efficiency in disassembly and replacement.

[0028] Other features and advantages of this disclosure will be set forth in the following description, or some features and advantages may be inferred from the description or determined without doubt, or may be learned by practicing the techniques described above.

[0029] To make the above-mentioned objectives, features and advantages of this application more apparent and understandable, preferred embodiments are described below in detail with reference to the accompanying drawings. Attached Figure Description

[0030] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments of this application will be briefly introduced 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.

[0031] Figure 1 This is a schematic diagram of the structure of the razor provided in the embodiments of this application;

[0032] Figure 2 A schematic diagram of the assembly structure of a razor provided in an embodiment of this application;

[0033] Figure 3 This is an exploded view of a razor provided in an embodiment of this application;

[0034] Figure 4 This is a partial structural schematic diagram of a razor provided in one embodiment of this application;

[0035] Figure 5 This is a partial structural schematic diagram of a razor provided in another embodiment of this application;

[0036] Figure 6 A partial structural schematic diagram of a razor provided in another embodiment of this application;

[0037] Figure 7 A partial structural schematic diagram of the razor provided in an embodiment of this application;

[0038] Figure 8 for Figure 7 A sectional view of AA;

[0039] Figure 9 for Figure 7 A cross-sectional view of BB;

[0040] Figure 10 This is a schematic diagram of the structure of the control component of the shaver provided in the embodiments of this application;

[0041] Figure 11 This is a schematic diagram of the ejector mechanism of a razor provided in an embodiment of this application.

[0042] Figure Labels

[0043] 100. Press-linkage assembly; 101. Control component; 1011. Button; 10111. Pressing part; 10112. Connecting part; 1012. First mating body; 1013. Second mating body; 1014. Mounting post; 1015. Snap-fit ​​body; 1016. Reset component; 1017. Deformation part; 1018. Arc segment; 1019. First inclined part; 1020. Second inclined part; 102. Pop-out structure; 1021. Elastic element; 1022. Pop-out element; 10221. First connecting body; 10222. Second connecting body; 10223. Limiting rib; 1023. Fixing block; 200. Connector; 201. Mating part; 300. Handle assembly; 400. Blade assembly; 500. Decorative ring. Detailed Implementation

[0044] The technical solutions of 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. The components of the embodiments of this application described and shown in the accompanying drawings can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of this application provided in the accompanying drawings is not intended to limit the scope of the claimed application, but merely represents selected embodiments of this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application without inventive effort are within the scope of protection of this application.

[0045] In this application, the terms "upper," "lower," "left," "right," "front," "rear," "top," "bottom," "inner," "outer," "middle," "vertical," "horizontal," "lateral," and "longitudinal" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for the purpose of better describing this application and its embodiments, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation.

[0046] Furthermore, in addition to indicating location or positional relationship, some of the aforementioned terms may also have other meanings. For example, the term "above" may also be used in some cases to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0047] Furthermore, the terms "installation," "setup," "equipped with," "connection," and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral structure; they can refer to a mechanical connection or a point connection; they can refer to a direct connection or an indirect connection through an intermediate medium, or an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0048] Furthermore, the terms "first," "second," etc., are primarily used to distinguish different devices, elements, or components (which may be the same or different in specific type and construction), and are not intended to indicate or imply the relative importance or quantity of the indicated devices, elements, or components. Unless otherwise stated, "a plurality of" means two or more.

[0049] Example

[0050] During the design process, the inventor discovered that current multi-layer shaver head replacement methods mainly involve: 1. Pushing a knob with the finger to apply forward force, causing the plastic part to move forward, deforming the retaining clip, and releasing it after deformation, separating the shaver head from the handle, thus replacing the shaver head; 2. Pushing a knob with the finger to apply forward force, causing the sliding groove to contract inward, thus separating the shaver head from the handle, thus replacing the shaver head. The push-tune head release method has issues with smoothness and precision. Good smoothness results in noticeable loosening of the knob, while poor smoothness means the knob doesn't loosen. However, due to the pre-pressure of the button's U-shaped groove structure, the play is relatively small, and there is no noticeable looseness. The slope and size of the knob are perceived differently by different people, so fingertips and nails may feel uncomfortable or even injure the fingers. Furthermore, the large number and small size of the parts make manual assembly relatively complex, hindering production efficiency.

[0051] Most shavers on the market release the blades by pushing or twisting, with the finger exerting force forward while simultaneously experiencing a backward reaction force, which can easily cause discomfort in the fingertips and nails. In contrast, the solution proposed in this application releases the blades via a button, with the finger exerting force downward. The button has a large surface area, resulting in a larger force-bearing area on the finger, eliminating the need for force on the fingertips and nails, thus significantly reducing finger discomfort.

[0052] Specifically, such as Figures 1-11As shown, in a first aspect, embodiments of this application provide a shaver, including: a press-linkage assembly 100, including a control member 101 and a pop-out structure 102, the pop-out structure 102 being connected to the control member 101 and having a pop-out end; a connector 200 connected to the control member 101, the connector 200 abutting against the pop-out end, such that when the control member 101 is pressed, at least a portion of the structure of the control member 101 is configured to move along a preset direction, the connector 200 disengages from the control member 101, and the pop-out end pops out the connector 200; and a handle assembly 300 connected to the pop-out structure 102, the handle assembly 300 being located on the side of the press-linkage assembly 100 opposite to the connector 200.

[0053] For example, the control element 101 is configured with a control end, which is configured to apply pressure to move at least a portion of the structure of the control element 101. After the connector 200 connects the control element 101, the control end is exposed in the overall structure formed after the two are connected. The position of the control end includes, but is not limited to, the upper end of the overall structure, and the direction of applying pressure to the control end includes, but is not limited to, the up and down direction.

[0054] It is understood that the control component 101 of the pressing linkage assembly 100 is connected to the pop-up structure 102 and the connector 200 respectively, forming a linkage structure. When the control component 101 and the connector 200 are in a fastened state, the connector 200 will squeeze the pop-up structure 102, causing the pop-up structure 102 to form a pre-pressure. When the control component 101 is pressed, the control component 101 disengages from the connector 200, and part of the pop-up structure 102 will move along the direction close to the connector 200, thereby popping out the connector 200. By modularly assembling the pressing linkage assembly 100 and the connector 200, it is possible to test and inspect in advance whether the overall modular movement is smooth or has other defects, avoiding disassembly and rework caused by defects in the semi-finished products later.

[0055] It should be noted that the connector 200 automatically pops out through the pop-out structure 102, and the pop-out distance can be set to about 10 to 30 cm. This can avoid the problem of some pop-out distances being too large, or even having to search around for the connector 200 to connect to the end component.

[0056] In the above process, the control component 101 is connected to the pop-out structure 102. When it is necessary to assemble the connector 200 onto the control component 101, simply grip the handle assembly 300 and press the control component 101. Part of the structure of the control component 101 moves along a preset direction, and at the same time, the connector 200 is moved to the designated position of the pressing linkage assembly 100. Then, release the control component 101, and the control component 101 returns to its original state, thus completing the connection between the control component 101 and the connector 200. Similarly, when it is necessary to detach the control component 101 from the connector 200, simply press the control component 101, and after the control component 101 is detached from the connector 200, release the control component 101. The whole process can achieve quick assembly and disassembly, improving efficiency.

[0057] like Figure 4 As shown, the control component 101 includes a button 1011, a latching body 1015, and a reset component 1016. The latching body 1015 is connected to the button 1011 and is configured to be adapted to the connector 200 and the pop-out structure 102. The reset component 1016 is connected to the button 1011 so that when the button 1011 is pressed, the latching body 1015 disengages from the connector 200 and the pop-out structure 102 respectively, and the reset component 1016 is compressed.

[0058] For example, the button 1011 has an arc diameter of approximately 13mm and a protrusion height of approximately 2.5mm, which allows for good contact with the finger. This design also facilitates disassembly using fingers other than the thumb; simply applying downward pressure causes the blade assembly 400 to automatically separate and pop out. The reset component 1016 includes, but is not limited to, a reset spring. The latching body 1015 and the button 1011 can be fixed using an integral molding technique, or they can be fixed using screws, adhesives, etc. No specific limitation is made here. The latching body 1015 is located on the outside of the button 1011. The position of the latch body 1015 is not specifically limited. The reset member 1016 is located at the bottom of the button 1011. After the reset member 1016 is connected to the button 1011, it can provide the button 1011 with a reset after being pressed. Of course, in order to ensure the accuracy of the movement of the button 1011, in addition to setting a limiting structure on the button 1011 or the pop-up structure 102, a guide post can also be set on the pop-up structure 102. The distribution direction of the guide post includes, but is not limited to, the up and down direction. The button 1011 is sleeved on the guide post and can be guided by the guide post.

[0059] In the above implementation process, the latch body 1015 and the reset part 1016 are respectively connected to the button 1011. The latch body 1015 can be adapted to the pop-out structure 102 and the connector 200 respectively. The whole structure is more compact and the parts are more streamlined, which facilitates manual assembly. When the button 1011 is pressed, the connector 200 and / or the pop-out structure 102 can be released to achieve quick assembly and disassembly, which improves efficiency. At the same time, the press-type disassembly will greatly reduce the risk of hurting or injuring fingers, and the experience of replacement and installation will be better.

[0060] In some embodiments, the connector 200 is provided with a first latching groove, and the pop-out structure 102 is provided with a second latching groove. At least a portion of the structure of the first latching groove and the second latching groove overlaps, so that the first latching groove and the second latching groove are connected. For example, the first latching groove and the second latching groove overlap in the vertical direction. Two latching bodies 1015 are provided. Each latching body 1015 passes through the second latching groove and extends into the first latching groove. The reset member 1016 provides a pre-tightening force so that when the button member 1011 is pressed, the reset member 1016 is gradually compressed, and the latching body 1015 sequentially disengages from the first latching groove and the second latching groove.

[0061] In the above implementation process, by connecting the first snap-fit ​​slot and the second snap-fit ​​slot, the snap-fit ​​body can simultaneously engage the first snap-fit ​​slot and the second snap-fit ​​slot, making the entire structure more compact, the parts more streamlined, and facilitating manual assembly. When the button 1011 is pressed, the connector 200 and / or the pop-out structure 102 can be released, enabling quick assembly and disassembly, improving efficiency. At the same time, the press-type disassembly will greatly reduce the risk of hurting or injuring fingers, and the experience of replacement and installation will be better.

[0062] In some embodiments, the button 1011 is provided with an extension post, and the extension post is fitted with the reset member 1016. By fitting the reset member onto the extension post, when the button 1011 is pressed, it is ensured that the reset member is compressed or released along a preset direction, preventing the reset member from deviating, and the force is more concentrated, resulting in a better tactile feel.

[0063] like Figure 5 As shown, the control component 101 includes a button 1011 and a deformable component. The deformable component includes, but is not limited to, a spring. The button 1011 is configured with a deformation space for its deformation. The deformable component is disposed in the inner cavity of the button 1011, and the deformable component is adapted to the connector 200 and the pop-out structure 102 respectively, so that when the button 1011 is pressed, the deformable component deforms and disengages from the connector 200 and the pop-out structure 102 respectively.

[0064] For example, the control component 101 can be U-shaped, with its opening facing the connector 200. By pressing the control end, the U-shaped structure is compressed and deformed, thereby causing the deformable component to move downward and achieve the purpose of disassembly. Of course, the shape of the button 1011 can also be T-shaped, L-shaped, etc., as long as the button 1011 can form the deformation space.

[0065] Understandably, this solution omits the elastic component. The deformable element is located inside the button 1011 and is in contact with the button 1011. The deformable element can provide a pre-tightening force to the button 1011. That is, the deformable element is engaged in the fixing block 1023 of the pop-out structure 102. When the button 1011 is pressed, the deformable element will be squeezed by the fixing block 1023, causing the deformable element to retract inward during its downward movement, thereby disengaging the deformable element from the connector 200 and completing the disassembly of the connector 200.

[0066] In the above process, the deformable part contacts the button 1011. When the button 1011 is pressed, the button 1011 deforms and squeezes the deformable part, which in turn causes the deformable part to displace, thereby causing the connector 200 and the pop-out structure 102 to detach. The parts are more streamlined and easier to assemble manually. When the button 1011 is pressed, the connector 200 and / or the pop-out structure 102 can be released, enabling quick assembly and disassembly, which improves efficiency. At the same time, the press-type disassembly will greatly reduce the risk of hurting or injuring fingers, and the replacement and installation experience will be better.

[0067] Please refer to again Figure 5 The deformable component includes a deformable part 1017 and a snap-fit ​​body 1015. The deformable part is configured with an opening, the direction of which is opposite to the direction of the button 1011. The deformable part 1017 is connected to the snap-fit ​​body 1015. The deformable part 1017 abuts against the fixing block 1023 of the pop-up structure 102, and the deformable part 1017 is located inside the pop-up structure 102. A portion of the structure of the snap-fit ​​body 1015 passes through the fixing block 1023 of the pop-up structure 102. This portion of the structure is configured to be adapted to the connector 200. This structure allows for quick assembly and disassembly, improving efficiency. At the same time, the press-type disassembly greatly reduces the risk of hurting or injuring fingers, and the experience of replacement and installation is better.

[0068] In some embodiments, the deformable shape is configured with an arc segment 1018, the arc segment 1018 protruding in a direction close to the pop-up structure 102, and the arc segment 1018 abutting against the pop-up structure 102.

[0069] Specifically, the inner side of the fixing block 1023 of the pop-out structure 102 is provided with a squeezing part. The squeezing part is configured to be inclined and is configured to abut against the arc segment 1018. When the button 1011 is pressed, the squeezing part will squeeze the arc segment 1018, causing the deformation body 1017 to deform. This causes the buckle body 1015 to gradually disengage from the mating groove of the connector 200, and finally completes the disassembly of the connector 200.

[0070] like Figure 6 As shown, the control component includes a button 1011 and a latching body 1015. The latching body 1015 is connected to the button 1011. A portion of the structure of the latching body 1015 passes through the pop-out structure 102, and this portion of the structure abuts against the connector 200.

[0071] For example, the button 1011 has an arc diameter of approximately 13mm and a protrusion height of approximately 2.5mm, which allows for good contact with the finger. This design also facilitates disassembly using fingers other than the thumb; simply applying downward pressure causes the blade assembly 400 to automatically separate and pop out. Two latching bodies 1015 are configured, located on either side of the button 1011. Each latching body 1015 passes through the fixing block 1023 of the pop-out structure 102 and extends into the mating groove of the connector 200. The latching body 1015 has a certain deformation capacity, ensuring that after pressing the button 1011, the latching body 1015, under the pressure of the fixing block 1023, gradually detaches from the mating groove of the connector 200. This structure allows for quick assembly and disassembly, improving efficiency. Furthermore, the press-type disassembly greatly reduces the risk of finger injury, resulting in a better experience for replacement and installation.

[0072] Please refer to again Figure 6 The latching body 1015 is provided with a first inclined portion 1019, and the pop-out structure 102 is provided with a second inclined portion 1020. The first inclined portion 1019 and the second inclined portion 1020 are adapted to each other so that when the button 1011 is pressed, the second inclined portion 1020 squeezes the latching body 1015 through the first inclined portion 1019 to deform it, and the latching body 1015 disengages from the connector 200.

[0073] like Figure 10As shown, the control component 101 includes a button 1011, a first mating body 1012, and a second mating body 1013. The button 1011 is configured with a deformation space for its deformation. The first mating body 1012 and the second mating body 1013 are respectively connected to the button 1011. The first mating body 1012 is configured to be adapted to the connector 200, and the second mating body 1013 is configured to be adapted to the pop-up structure 102. When the button 1011 is pressed, the button 1011 drives the first mating body 1012 to move and disengage from the connector 200.

[0074] For example, the control component 101 can be U-shaped, with its opening facing the connector 200. By pressing the control end, the U-shaped structure is compressed and deformed, causing the deformable component to move downwards, thus achieving the purpose of disassembly. Of course, the button 1011 can also be T-shaped, L-shaped, etc., as long as the button 1011 can form the deformation space. The arc diameter of the button 1011 is about 13mm, and the protrusion height is about 2.5mm, which will make good contact with the fingers. At the same time, this solution can also be easily operated by fingers other than the thumb. Just apply a downward pressing force, and the blade assembly will automatically separate and pop out.

[0075] The first mating body 1012 includes, but is not limited to, a first snap fastener, and the second mating body 1013 includes, but is not limited to, a second snap fastener. The button 1011 is connected to the first mating body 1012 and the second mating body 1013 respectively, so that when the button 1011 is pressed, it drives the first mating body 1012 and / or the second mating body 1013 to move. Part of the structure of the first mating body 1012 is exposed in the fixing block 1023 of the pop-out structure 102. The second mating body 1013 is adapted to the fixing block 1023 of the pop-out structure 102. The pressing direction of the button 1011 includes, but is not limited to, the up and down direction, so that when the button 1011 is pressed, the button 1011 deforms, which not only facilitates the disassembly and connection of the control component 101 and the fixing block 1023, but also facilitates the disassembly and connection of the first mating body 1012 and the connector 200.

[0076] The connector 200 is provided with a mating part 201, which serves as a female buckle and is configured to be adapted to the first snap-fit ​​body (as a male buckle). By utilizing the compression deformation of the button 1011, the first snap-fit ​​bodies on both sides are moved up or down to achieve engagement or disengagement with the connector 200.

[0077] In the above implementation process, the first mating body 1012 and the second mating body 1013 are connected to the button 1011. When the button 1011 is pressed, the first mating body 1012 can be exposed in the pop-out structure 102 and used to engage with the connector 200. Alternatively, the first mating body 1012 can be disengaged from the connector 200, avoiding wear between the mating parts and improving the reliability of the first mating body 1012.

[0078] like Figure 8 As shown, the button 1011 includes a pressing part 10111 and a connecting part 10112. The pressing part 10111 is connected to the connecting part 10112, and the pressing part 10111 protrudes in a direction away from the connecting part 10112.

[0079] For example, the pressing part 10111 is exposed in the shaver. The pressing part 10111 and the connecting part 10112 may be integrally formed, and the pressing part 10111 is configured for pressing when replacing or installing the shaver head assembly 400. The pressing part 10111 protrudes relative to the connecting part 10112 and is distributed in an arc shape (i.e., the pressing part 10111 is curved). The protrusion height of the pressing part 10111 relative to the connecting part 10112 includes, but is not limited to, more than 2.5 mm. Correspondingly, the connecting part can be configured in an arc shape. The diameter of the connecting part 10112 is close to 13 mm, realizing a large area design of the button 1011, which effectively and comfortably contacts the fingers.

[0080] In the above implementation process, the pressing part 10111 protrudes relative to the connecting part 10112, so that after the pressing linkage component 100, connector 200 and handle component 300 are assembled, the user can easily find the position of button 1011 through the pressing part 10111, which improves the recognition and feel, and also increases the contact area with the user's fingers, avoiding the risk of hurting or injuring the fingers, and the replacement and installation experience will be better.

[0081] like Figures 8-9 As shown, the pop-out structure 102 includes an elastic element 1021 and a pop-out element 1022. The elastic element 1021 acts on the control element 101 and the pop-out element 1022 respectively. One end of the pop-out element 1022 away from the control element 1022 abuts against the connector 200. When the connector 200 is connected to the control element 101, the elastic element 1021 is in a compressed state. When the connector 200 is disengaged from the control element 101, the elastic element 1021 is in a released state.

[0082] For example, the elastic element 1021 includes a spring, one end of which abuts against the control element 101, and the other end of which abuts against the ejector element 1022. The control element 101 is provided with a mounting post 1014, and the elastic element 1021 is sleeved on the mounting post 1014. Of course, in order to ensure the compactness of the overall structure and to prevent the elastic element 1021 from deviating, the ejector element 1022 is provided with a limiting cavity. The limiting cavity is configured to accommodate a part of the structure of the elastic element 1021. The limiting cavity can be cylindrical, square, or conical, etc. Of course, in other embodiments, the elastic element 1021 can be fixedly connected to the control element 101 and the ejector element 1022 respectively, or one end of the elastic element 1021 can be fixed to one of the control element 101 and the ejector element 1022, and the other end of the elastic element 1021 abuts against the other of the control element 101 and the ejector element 1022, etc.

[0083] In another embodiment, the elastic element 1021 can also be connected to the pop-out element 1022. The side of the elastic element 1021 facing away from the pop-out element 1022 forms an elastic end (not shown in the figure), which is configured to abut against the control element 101. The elastic element 1021 can be integrally molded and fixed to the pop-out element 1022, or it can be fixed to the pop-out element 1022 by screws, adhesive, or other methods. No specific limitation is made here. The elastic element 1021 can be an elastic plastic part, which can be an arc-shaped rib, and its quantity can be one, two, or more. The elastic element 1021 can also be a spring sheet, which can be C-shaped, etc., and its quantity can be one, two, or more.

[0084] like Figure 11 As shown, the pop-out component 1022 includes a first connector 10221, a second connector 10222, and a limiting rib 10223. The first connector 10221 is connected to the second connector 10222, and the cross-sectional dimension of the first connector 10221 is larger than that of the second connector 10222, so that the end of the first connector 10221 close to the second connector 10222 forms a contact position. The limiting rib 10223 is connected to the outside of the first connector 10221, and the length of the limiting rib 10223 is less than the length of the first connector 10221.

[0085] For example, the pop-out element 1022 includes, but is not limited to, the pop-out element 1022 is configured to be distributed along a preset direction, which includes the left and right directions. The first connecting body 10221, the second connecting body 10222 and the limiting rib 10223 can be fixed by integral molding technology. The limiting rib 10223 includes, but is not limited to, two, and the first connecting body 10221, the second connecting body 10222 and the limiting rib 10223 form a stepped shape after being connected. The length of the first connecting body 10221, the second connecting body 10222 and the limiting rib 10223 is not specifically limited.

[0086] In the above implementation process, the cross-sectional dimension of the first connector 10221 is larger than that of the second connector 10222. The limiting rib 10223 is located outside the first connector 10221. When the mating part 201 of the control member 101 is connected to the external structure, the contact position of the first connector 10221 will abut against the razor head assembly 400, thereby driving the pop-out member 1022 to move and the elastic member 1021 to be compressed. When the control member 101 is disengaged from the connector 200, the elastic member 1021 will drive the pop-out member 1022 to move in the opposite direction. Finally, the pop-out member 1022 stops moving by abutting against the fixing block 1023 through the limiting rib 10223, thus preventing the pop-out member 1022 from detaching from the pop-out structure 102 and improving the replacement efficiency of the razor head assembly 400.

[0087] When the contact position is compressed, the limiting rib 10223 forms a gap with the inner cavity of the fixing block 1023, and the elastic element 1021 is compressed. When the contact position is exposed to the fixing block 1023, the limiting rib 10223 abuts against the inner cavity of the fixing block 1023, and the elastic element 1021 is released.

[0088] The elastic element 1021 is used to provide the thrust required for the connector 200 to automatically pop out the pressing linkage component 100. This avoids the discomfort caused by the pushing and reaction forces on the fingers, and also avoids the misjudgment of whether the buckle is loose, as in the case of manually removing the blade head, thus improving the user experience.

[0089] In the above implementation process, the elastic element 1021 abuts against the control element 101 and the pop-out element 1022 respectively, so that when the connector 200 is connected to the control element 101, the elastic element 1021 can store energy due to its own compression, and when the connector 200 is disengaged from the control element 101, the elastic element 1021 can apply a pushing force, so that the connector 200 can automatically pop out from the pressing linkage component 100, making disassembly and replacement more efficient, avoiding finger discomfort caused by manual disassembly, and improving the user experience.

[0090] like Figures 3-9 As shown, the pop-out structure 102 further includes a fixing block 1023, at least a portion of which is disposed on the connector 200. The fixing block 1023 connects the control member 101 and the handle assembly 300, and one end of the pop-out member 1022 passes through the fixing block 1023.

[0091] For example, the bottom of the fixing block 1023 is provided with a fixing buckle, and the handle assembly 300 is provided with a fixing groove. The fixing buckle is used to fit into the fixing groove to fix the fixing block 1023 and the handle assembly 300.

[0092] In the above implementation process, the fixing block 1023 is connected to the handle assembly 300 and the control component 101 respectively. After the fixing block 1023, the control component 101 and the handle assembly 300 are assembled, it can accommodate part of the structure of the pop-out component 1022 and the elastic component 1021. When the control component 101 is disassembled from the connector 200, the elastic component 1021 returns to its original position. After the pop-out component 1022 applies a pushing force to the connector 200, the fixing block 1023 limits it to ensure that the pop-out component 1022 will not detach from the pop-out structure 102.

[0093] In some embodiments, the shaver further includes a head assembly 400, which includes, but is not limited to, multi-layer shaving heads, the head assembly 400 being connected to the connector 200, and the head assembly 400 abutting against the ejector end.

[0094] In the above implementation process, after the cutter head assembly 400 is connected to the control component 101 through the connector 200, the cutter head assembly 400 abuts against the pop-out end. The pop-out end can limit the angle adjustment of the cutter head assembly 400. The angle adjustment range can be 30° to 45°, for example, the adjustment angle is set to 35°, 40°, etc. At the same time, after the connector 200 is separated from the control component 101, the pop-out end will apply a pushing force to the whole formed by the connection between the connector 200 and the cutter head assembly 400, so as to realize automatic pop-out, and the disassembly and replacement efficiency is higher.

[0095] Please refer to again Figure 3 The shaver also includes a decorative ring 500, which includes, but is not limited to, a rubber ring. The decorative ring 500 is sleeved on the control member 101, and its periphery is provided with several snap-fit ​​portions for engaging with the handle assembly 300. By providing the decorative ring 500 on the control member 101, it not only serves a decorative purpose but also ensures the shaver's airtightness, preventing contamination of the shaver's interior and facilitating cleaning.

[0096] In all embodiments of this application, "large" and "small" are relative terms, "more" and "less" are relative terms, and "upper" and "lower" are relative terms. The embodiments of this application will not elaborate further on the expression of such relative terms.

[0097] It should be understood that the phrases "in this embodiment," "in this application embodiment," or "as an optional implementation" throughout the specification mean that a specific feature, structure, or characteristic related to an embodiment is included in at least one embodiment of this application. Therefore, the phrases "in this embodiment," "in this application embodiment," or "as an optional implementation" appearing throughout the specification do not necessarily refer to the same embodiment. Furthermore, these specific features, structures, or characteristics can be combined in any suitable manner in one or more embodiments. Those skilled in the art should also understand that the embodiments described in the specification are all optional embodiments, and the actions and modules involved are not necessarily essential to this application.

[0098] In the various embodiments of this application, it should be understood that the sequence number of each process does not necessarily imply the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of this application.

[0099] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of protection of the claims.

Claims

1. A razor, characterized in that, include: The press-linkage component includes a control component and a pop-up structure, wherein the pop-up structure is connected to the control component and is configured with a pop-up end; A connector that connects to the control element and abuts against the pop-out end, such that when the control element is pressed, at least a portion of the structure of the control element is configured to move in a preset direction, the connector disengages from the control element, and the pop-out end ejects the connector. A handle assembly connected to the pop-out structure, and the handle assembly being located on the side of the press-linkage assembly opposite to the connector; The control component includes a button, a latching body, and a reset component. The latching body is connected to the button and configured to adapt to the connector and the pop-out structure. The reset component is connected to the button so that when the button is pressed, the latching body disengages from the connector and the pop-out structure, and the reset component is compressed. The connector is provided with a first latching slot, and the pop-out structure is provided with a second latching slot. At least a portion of the structure of the first latching slot and the second latching slot overlaps, so that the first latching slot and the second latching slot are connected. The buckle body can simultaneously engage with both the first buckle slot and the second buckle slot.

2. The razor according to claim 1, characterized in that, The button is equipped with an extension post, and the reset member is sleeved on the extension post.

3. The razor according to claim 1, characterized in that, The control component includes a button and a deformable component. The button is configured with a deformation space for its deformation. The deformable component is disposed in the inner cavity of the button and is adapted to the connector and the pop-out structure respectively, so that when the button is pressed, the deformable component deforms and disengages from the connector and the pop-out structure respectively.

4. The razor according to claim 3, characterized in that, The deformable component includes a deformable part and a snap-fit ​​body. The deformable part is connected to the snap-fit ​​body and abuts against the pop-out structure. The deformable part is located inside the pop-out structure. A portion of the structure of the snap-fit ​​body passes through the pop-out structure, and this portion of the structure is configured to be adapted to the connector.

5. The razor according to claim 4, characterized in that, The deformable shape is provided with an arc segment that protrudes along the direction close to the pop-up structure and abuts against the pop-up structure.

6. The razor according to claim 1, characterized in that, The control component includes a button and a latching body. The latching body is connected to the button, and a portion of the latching body extends through the pop-out structure, with this portion abutting against the connector.

7. The razor according to claim 6, characterized in that, The latch body is provided with a first inclined portion, and the pop-out structure is provided with a second inclined portion. The first inclined portion and the second inclined portion are adapted to each other so that when the button is pressed, the second inclined portion squeezes the latch body through the first inclined portion to deform, and the latch body disengages from the connector.

8. The razor according to claim 1, characterized in that, The control component includes a button, a first mating body, and a second mating body. The button is configured with a deformation space for its deformation. The first mating body and the second mating body are respectively connected to the button. The first mating body is configured to be adapted to the connector, and the second mating body is configured to be adapted to the pop-up structure. When the button is pressed, the button causes the first mating body to displace and disengage from the connector.

9. The razor according to any one of claims 1, 3, 6 or 8, characterized in that, The button includes a pressing part and a connecting part, the pressing part being connected to the connecting part, and the pressing part protruding in a direction away from the connecting part.

10. The razor according to any one of claims 1-8, characterized in that, The pop-out structure includes an elastic element and a pop-out element. The elastic element acts on the control element and the pop-out element respectively. The end of the pop-out element facing away from the pop-out element abuts against the connector. When the connector is connected to the control element, the elastic element is in a compressed state. When the connector is disconnected from the control element, the elastic element is in a released state.

11. The razor according to claim 10, characterized in that, The pop-out structure further includes a fixing block, at least a portion of which is disposed on the connector. The fixing block connects the control element and the handle assembly, and one end of the pop-out element passes through the fixing block.

12. The razor according to claim 1, characterized in that, The shaver also includes a blade head assembly connected to the connector and abutting against the ejector end.

Citation Information

Patent Citations

  • Handle of easily assembling

    CN206795896U

  • Manual shaver

    CN210361426U