nail clippers
Patent Information
- Application Number
- CN202522269492.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-27
- Publication Date
- 2026-09-22
- Estimated Expiration
- 2035-10-27
AI Technical Summary
然而,现有技术中的磨甲片设计存在明显不足:一方面,固定式磨甲片在使用时需要重新调整握持姿势,操作不便且存在安全隐患;另一方面,可拆卸式磨甲片虽然解决了使用灵活性问题,但在收纳和取用方面存在明显缺陷
[0015]由上可知,本申请提供的一种具有磨甲片收纳功能的指甲钳,通过设置带按压槽的容置槽和操作凹槽,配合磁吸固定与定位结构,实现磨甲片的安全收纳与便捷取用,具有磨甲片收纳稳固、取用便捷且操作空间充足,有效防止部件丢失的优点。
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Figure CN224776257U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of everyday consumer goods, and more specifically, to a nail clipper with a nail clipper storage function. Background Technology
[0002] As a daily personal care tool, nail clippers' basic function is to trim nails. Traditional nail clippers typically consist of two pivotally connected clamping bodies with cutting edges for cutting nails. With increasing demands for personal care, modern nail clippers often also include a nail-grinding disc for smoothing and finishing the nail edges after trimming. However, existing nail-grinding disc designs have significant shortcomings: firstly, fixed nail-grinding discs require readjustment of the grip, making operation inconvenient and posing safety hazards; secondly, while detachable nail-grinding discs solve the flexibility issue, they have significant drawbacks in storage and retrieval. Especially when the nail-grinding disc needs frequent access, existing structures often fail to achieve quick and convenient operation and are prone to loss. Furthermore, the nail-grinding disc storage structure of existing nail clippers is not user-friendly enough; either the disc is difficult to secure, leading to easy detachment, or it is too tightly secured, making retrieval difficult. These problems severely impact the user experience, preventing this important functional component from fully realizing its intended purpose.
[0003] To address the aforementioned issues, existing technologies urgently need improvement. Utility Model Content
[0004] The purpose of this application is to provide a nail clipper with a nail clipper storage function, which has the advantages of stable nail clipper storage, convenient access and sufficient operating space, and effectively prevents parts from being lost.
[0005] A nail clipper includes: a first clipper body and a second clipper body pivotally connected to each other; the first clipper body has a first handle, a first end portion, and a first cutting edge; the second clipper body has a second handle, a second end portion, a second cutting edge, and a nail-grinding plate; one of the first clipper body and the second clipper body has a receiving groove and a recess for receiving the nail-grinding plate, the receiving groove has a receiving platform, the length of the receiving platform is shorter than the receiving groove, thereby forming a pressing groove at one end of the receiving groove, the recess is located at one end of the receiving groove, and the recess provides space for pressing the nail-grinding plate.
[0006] Preferably, the receiving groove or recess is provided on the second clamp body.
[0007] Preferably, the receiving platform is provided with a magnetic suction element for adsorbing the abrasive plate.
[0008] More preferably, the magnetic attractor is a cylindrical magnetic attractor, and a circular groove is provided on the receiving platform, in which the magnetic attractor is placed.
[0009] Preferably, the thickness of the receiving platform is less than the thickness of the receiving groove, and the receiving platform is provided with space for placing the abrasive plate.
[0010] Preferably, the second clamp body has a positioning hole, and the first clamp body has a positioning plug; the positioning plug is inserted into the positioning hole.
[0011] Optionally, the width of the groove is smaller than the width of the receiving slot, thereby facilitating the removal of the nail polish from the finger.
[0012] Preferably, the first end is pivotally connected to the second end, so that the first blade and the second blade are disposed opposite to each other, thereby being used to cut nails, and the first end is movably connected to the first handle.
[0013] More preferably, the first end has a sliding groove, and the first handle end is provided with a sliding pin that slides in cooperation with the sliding groove.
[0014] Optionally, the sliding groove is provided with a stop pin for limiting the sliding area of the sliding pin.
[0015] As can be seen from the above, the nail clipper with nail filing plate storage function provided by this application, by setting a receiving groove with a pressing groove and an operating groove, combined with a magnetic fixing and positioning structure, realizes the safe storage and convenient use of nail filing plates. It has the advantages of stable storage of nail filing plates, convenient use and sufficient operating space, and effectively prevents the loss of parts. Attached Figure Description
[0016] The above and / or additional aspects and advantages of this application will become apparent and readily understood from the following description of the embodiments taken in conjunction with the accompanying drawings, wherein: Figure 1 This is a three-dimensional structural diagram of the nail clipper of this application.
[0017] Figure 2 This is an exploded three-dimensional structural diagram of the nail clipper of this application.
[0018] 10. First clamp body; 14. Positioning plug; 16. First handle; 161. First handle end; 162. Sliding pin; 17. First end; 171. Stop pin; 172. Sliding groove; 18. First cutting edge; 20. Second clamp body; 21. Receiving groove; 210. Pressing groove; 211. Receiving platform; 22. Groove; 23. Magnetic suction element; 24. Positioning hole; 26. Second handle; 27. Second end; 28. Second blade. 30. Nail polishing tip; 31. Nail file. Detailed Implementation
[0019] The embodiments of this application are described in detail below, examples of which are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application and should not be construed as limiting this application.
[0020] Those skilled in the art will understand that, unless explicitly stated otherwise, the singular forms “a,” “an,” “the,” and “the” used herein may also include the plural forms. It should be further understood that the term “comprising” as used in this application means the presence of the stated feature, integer, step, operation, element, and / or component, but does not exclude the presence or addition of one or more other features, integers, steps, operations, elements, and / or components, nor does it exclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof. It should be understood that when we say an element is “connected” or “coupled” to another element, it can be directly connected or coupled to the other element, or there may be intermediate elements. Furthermore, “connected” or “coupled” as used herein can include wireless connection or wireless coupling. The term “and / or” as used herein includes all or any unit and all combinations of one or more associated listed items.
[0021] Those skilled in the art will understand that, unless otherwise defined, all terms used herein (including technical and scientific terms) have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains. It should also be understood that terms such as those defined in general dictionaries should be understood to have the same meaning as in the context of the prior art, and should not be interpreted in an idealized or overly formal sense unless specifically defined as herein.
[0022] The embodiments of this application are described in detail below with reference to the accompanying drawings. Examples of the embodiments are shown in the drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting the scope of patent protection of this application.
[0023] To address the aforementioned issues, existing nail polisher designs suffer from deficiencies in storage and retrieval due to an imbalance between the fixing method and the operating space. Traditional solutions overemphasize stability while neglecting ergonomic requirements. Analysis of user workflows revealed that nail polishers need to simultaneously provide reliable fixation in the stored state and quick separation in the usable state. Based on this, the design approach shifted to constructing a releasable storage structure within the clamp body, enabling simple operation through a specific spatial layout. As one embodiment of this application, such as Figure 1 and Figure 2 As shown, the nail clippers proposed in this application include a first clipper body 10 and a second clipper body 20 pivotally connected to each other, and a nail-grinding plate 30. The first clipper body 10 has a first handle 16, a first end portion, and a first cutting edge 18. The second clipper body 20 has a second handle 26, a second end portion 27, and a second cutting edge 28. Either clipper body, such as the second clipper body 20, has a receiving groove 21 and a recess 22 for accommodating the nail-grinding plate 30. The receiving groove 21 has a receiving platform, the length of which is shorter than the receiving groove 21, thereby allowing the receiving platform to be positioned at one end of the receiving groove 21 (e.g., at one end of the receiving groove 21). Figure 2 A pressing groove 210 is formed at the right end of the receiving groove 21, and a recess 22 is located at one end of the receiving groove 21, providing space for operating the nail polishing plate 30. The receiving groove 21 refers to a recessed structure formed inside, for example, the second clamp body 20, to accommodate the nail polishing plate 30. It can be implemented by milling or stamping, and its depth matches the thickness of the nail polishing plate 30 to limit the lateral displacement of the nail polishing plate 30. The receiving platform refers to a support platform set at the bottom of the receiving groove 21, which can be implemented by a raised step structure. Its length is less than the total length of the receiving groove 21 to form a pressing area at the end. The pressing groove 210 refers to the gap space between the end of the receiving platform and the end wall of the receiving groove 21. It can be implemented by controlling the length of the receiving platform. This space allows the user to lift the nail polishing plate 30 from one end by pressing, making it easy for the user to remove the nail polishing plate 30. The recess 22 refers to the extended space set at the end of the receiving groove 21, which can be implemented by an arc-shaped recessed structure, providing an operating area for the fingers to contact the edge of the nail polishing plate 30. Specifically, such as Figure 2As shown, the nail polish pad 30, in its retracted state, is embedded in the receiving groove 21 and supported by the receiving platform 211, with its end extending above the pressing groove 210. When the nail polish pad 30 needs to be retrieved, the user's finger can be inserted into the groove 22 to contact the edge of the nail polish pad 30, and pressure is applied at the pressing groove 210 to lift the nail polish pad 30. The contact area between the receiving platform and the nail polish pad 30 is optimized to ensure both storage stability and leverage effect during pressing. The arc-shaped contour of the groove 22 is adapted to the shape of the fingertip, ensuring no slippage during operation. This application achieves single-handed pressing and retrieval of the nail polish pad while maintaining the overall structural compactness through the coordinated design of the receiving groove 21 and the groove 22. The stepped structure of the receiving platform 211 simultaneously undertakes the functions of support and release within a limited space, resulting in higher space utilization compared to traditional planar support structures.
[0024] This application achieves convenient storage and one-handed access to the nail clipper with the nail file 30, or allows for easy removal of the nail file 30. The nail file 30 remains stable in its stored state, preventing accidental dislodgement; when in use, it can be quickly separated using the leverage of the pressing groove 210, and the groove 22 provides an ergonomic operating space, significantly improving operational efficiency and safety. This structure, while ensuring functional reliability, does not add any extra parts, effectively controlling production costs.
[0025] As another embodiment of this application, such as Figure 1 and Figure 2 As shown, this application further proposes that a receiving groove 21 and a recess 22 be disposed on the second clamp body 20. The receiving groove 21 refers to a recessed area on the surface of the second clamp body 20 for fixing the nail polishing plate 30. Specifically, it can be implemented using a rectangular or arc-shaped recess 22 structure, with its depth matching the thickness of the nail polishing plate 30 for stable storage. The recess 22 refers to an extended space located at one end of the receiving groove 21. Specifically, it can be implemented using a U-shaped groove structure with a width smaller than the receiving groove 21, providing an operating area for the fingers to contact the nail polishing plate 30. The second clamp body 20, as the main gripping part, has a receiving groove 21 on its surface for embedding the nail polishing plate 30. The recess 22 is adjacent to the end of the receiving groove 21, forming a channel for the fingers to insert. When it is necessary to remove the nail polishing plate 30, the fingers contact the edge of the nail polishing plate 30 through the recess 22 and apply a pushing force, causing the nail polishing plate 30 to detach from the receiving groove 21. Since both the receiving slot 21 and the groove 22 are integrated into the second clamp body 20, the gripping position does not need to be changed during operation, and the finger movement path is limited to the surface area of the second clamp body 20, avoiding the problem of needing to switch gripping postures or adjust the clamp body angle in traditional solutions. Through the above technical solution, this application realizes the rapid picking and putting of the nail grinding plate 30 on a single clamp body. During operation, there is no need to change the gripping position or adjust the clamp body angle. The fingers only need to perform a pushing and pulling action on the surface of the second clamp body 20 to pick up the nail grinding plate 30, which significantly improves the convenience and efficiency of operation.
[0026] As another embodiment of this application, such as Figure 2 As shown, this application further proposes a magnetic suction element 23 on the receiving platform 211 for adsorbing the nail polishing piece 30. The magnetic suction element 23 refers to a component that fixes the nail polishing piece 30 through magnetic action. Specifically, it can be implemented using a permanent magnet or an electromagnet, such as a neodymium iron boron magnet with a diameter of 5-8 mm, embedded in the surface of the receiving platform 211. Its magnetic strength ranges from 200-500 Gauss, effectively adsorbing the metal nail polishing piece 30, thus holding the nail polishing piece 30 in place of the receiving platform 211 when not in use. The receiving platform 211 refers to a support structure located within the receiving groove 21. Specifically, it can be implemented as a raised platform integrally formed with the clamp body. Its length is shorter than the receiving groove 21, allowing the end of the nail polishing piece 30 to be exposed, forming a pressing area, facilitating the application of force to separate the nail polishing piece 30.
[0027] Specifically, the magnetic suction element 23 is fixed to the surface of the receiving platform 211. When the nail polishing plate 30 is placed in the receiving groove 21, its metal part is in direct contact with the magnetic suction element 23, achieving non-mechanical fixation through magnetic attraction. When the nail polishing plate 30 needs to be removed, a finger can contact the exposed part of the nail polishing plate 30 along the edge of the groove 22 and apply a peeling force perpendicular to the magnetic attraction direction. At this time, the attraction force of the magnetic suction element 23 on the nail polishing plate 30 is overcome, and the nail polishing plate 30 is removed from the receiving groove 21. In this process, there is no need to operate mechanical latches or rotating parts; the separation action can be completed by applying force in one direction only. Compared with the existing technology, the traditional nail polishing plate 30 fixing method mostly adopts a latch or friction fit structure. When removing it, it is necessary to operate with both hands and accurately align the latch position, which can easily cause wear on the surface of the nail polishing plate 30 or failure of the latch mechanism. This solution eliminates the wear risk caused by mechanical contact through magnetic fixation, and simplifies the removal operation steps. The nail polishing plate 30 can be quickly separated by applying force with only one finger.
[0028] This application effectively solves the problem of accidental detachment of the nail polishing pad 30 due to insecure fixing during storage, while avoiding damage to the surface texture of the nail polishing pad 30 caused by traditional mechanical fixing structures. Under the premise of ensuring stable fixing of the nail polishing pad 30, it achieves the convenience of quick access with one hand, improving the user's operating efficiency in the nail care process.
[0029] As a further embodiment of this application, such as Figure 2As shown, the magnetic chuck 23 has a cylindrical structure, and a circular groove is formed on the receiving platform 211 for placing the magnetic chuck 23. The cylindrical magnetic chuck 23 refers to a magnetic component with a circular planar structure, specifically made of a thin sheet of neodymium iron boron material, the diameter of which matches the size of the circular groove in the receiving platform 211. The circular groove is a circular recessed structure formed on the surface of the receiving platform 211, with a depth less than the thickness of the magnetic chuck 23. It can be formed by stamping or milling, and its inner diameter forms an interference fit with the outer diameter of the magnetic chuck 23. After the cylindrical magnetic chuck 23 is inserted into the circular groove, its outer edge forms full circumferential contact with the groove wall, and the horizontal displacement and rotation of the magnetic chuck 23 are restricted by geometric constraints. The bottom of the circular groove fits against the bottom surface of the magnetic chuck 23, ensuring that the position of the magnetic chuck 23 is fixed in the vertical direction.
[0030] During assembly, the magnetic component 23 can be directly pressed into the circular groove without the need for adhesive or screws. The annular sidewall of the groove provides self-positioning for the magnetic component 23. This application solves the problem of unstable installation of the magnetic component 23 leading to the failure of the abrasive plate 30 to adhere, eliminates manual positioning errors during the assembly process of the magnetic component 23, and achieves rapid and accurate installation of the magnetic component 23. The circular groove structure ensures that the magnetic component 23 maintains stable contact even under shear vibration conditions, avoiding the risk of the abrasive plate 30 falling off due to displacement of the magnetic component 23.
[0031] like Figure 2 As shown, this application further proposes that the thickness of the receiving platform 211 is less than the thickness of the receiving groove 21, so that when the receiving platform 211 is placed in the receiving groove 21, space is still reserved for placing the nail polishing plate 30. The thickness of the receiving platform 211 being less than the thickness of the receiving groove 21 means that the vertical dimension occupied by the receiving platform 211 is less than the overall height of the receiving groove 21, which can be achieved by designing the receiving platform 211 as a thin plate structure. This thickness difference forms a gap space between the receiving platform 211 and the receiving groove 21, used to accommodate the nail polishing plate 30 and allowing fingers to touch its edge. The space reserved for placing the nail polishing plate 30 refers to the gap area formed between the receiving platform 211 and the sidewall of the receiving groove 21, which can be achieved by providing a protruding receiving platform 211 at the bottom of the receiving groove 21, with a protrusion height of 0.5 mm to 2 mm. This space provides a separation gap between the nail polishing plate 30 and the bottom of the receiving groove 21 in the vertical direction and forms an operating channel surrounding the nail polishing plate 30 in the horizontal direction. The receiving platform 211 serves as the supporting base for the grinding plate 30. Its thinning design creates a height difference between the bottom surface of the grinding plate 30 and the bottom surface of the receiving groove 21.
[0032] When the nail polishing pad 30 is placed on the receiving platform 211, its suspended bottom area allows users to insert their fingers laterally into the gap space. During retrieval, the fingers press the edge of the nail polishing pad 30 to tilt it, utilizing the height difference between the receiving platform 211 and the receiving groove 21 to form a lever fulcrum, thus easily prying the nail polishing pad 30 out of its fixed position. When storing, the bottom surface of the nail polishing pad 30 contacts the top surface of the receiving platform 211 for stable positioning, while the lateral gap avoids resistance to retrieval caused by tight contact. This application achieves rapid separation and stable positioning of the nail polishing pad 30 in the stored state. In the vertical direction, the nail polishing pad 30 is supported by the receiving platform 211 to prevent wobbling; in the horizontal direction, the gap space provides sufficient range of motion for finger operation. This structure allows users to complete the retrieval and placement of the nail polishing pad 30 with just one fingertip, improving operational efficiency by approximately 30%, while avoiding the risk of tool damage due to excessive force.
[0033] like Figure 2 As shown, this application further proposes to open a positioning hole 24 on the second clamp body 20, and to set a positioning insert at the corresponding position on the first clamp body 10 to engage with the positioning hole 24. The positioning hole 24 refers to a hole-like structure that penetrates or partially embeds into the surface of the second clamp body 20, specifically it can be a circular through hole, a square blind hole, or a stepped hole, and its size forms a clearance fit or interference fit with the positioning insert. The positioning insert refers to a protruding structure fixed to the first clamp body 10 and complementary in shape to the positioning hole 24, specifically it can be a cylindrical, prismatic, or conical metal pin, and its end can be chamfered to assist in insertion guidance. When the nail clippers are not in use, the positioning insert 14 can be inserted into the positioning hole 24 to achieve a tight interlocking between the two inserts, thereby reducing the overall volume of the nail clippers and ensuring that the two blades are pressed together, ultimately ensuring safety.
[0034] like Figure 1 and Figure 2As shown, this application further proposes that the width of the groove 22 is smaller than the width of the receiving groove 21, thereby facilitating the removal of the nail polishing plate 30 by the fingers. The groove 22 refers to the operating space located at one end of the receiving groove 21, which can be implemented using an inwardly recessed groove-like structure to provide a force application area for the fingers to contact the nail polishing plate 30. The receiving groove 21 refers to the groove structure used to fix the nail polishing plate 30, which can be implemented using a channel structure with a receiving platform 211, whose width dimension is larger than that of the groove 22 to form a width difference. This width difference refers to the difference in lateral dimension between the groove 22 and the receiving groove 21, which can be achieved by controlling the machining precision of the groove. The stepped structure formed by this difference can limit the force application position of the fingers. When it is necessary to remove the nail polishing plate 30, the fingers can rest against the side wall of the groove 22 as a fulcrum, using the narrower width of the groove 22 to limit the direction of force, so that the prying action is performed along a predetermined trajectory. Because the width of the groove 22 is smaller than that of the receiving groove 21, the contact area between the finger and the side wall of the groove 22 is increased during operation, enhancing friction and preventing slippage during force application. Simultaneously, the width difference between the groove 22 and the receiving groove 21 forms a clear boundary structure, allowing the finger to quickly locate the operating area through tactile perception, enabling the removal of the nail clipper without visual assistance. This application effectively solves the problem of difficulty in controlling the direction of force when removing the nail clipper 30, allowing the finger to accurately abut against the side wall of the groove 22 to complete the prying action. The operation process allows for quick one-handed removal of the nail clipper without adjusting the grip angle, significantly improving ease of use.
[0035] like Figure 2 As shown, this application further proposes a pivotal connection between the first end and the second end 27, so that the first blade 18 and the second blade 28 are opposite each other for cutting nails, and the first end is movably connected to the first handle 16. The pivotal connection refers to the rotational connection of the two components through a hinge or pin, specifically a metal pivot or plastic hinge structure, to form a stable mating relationship between the first blade 18 and the second blade 28. The movable connection refers to a mechanical connection that allows relative displacement between the components, specifically a cooperation structure of sliding groove 172 and sliding pin 162, allowing the first handle 16 to be adjusted relative to the first end. The pivotal connection structure, by fixing the rotation center of the first end and the second end 27, ensures that the two blades always close along a preset trajectory during the cutting process, avoiding blade misalignment due to loose connection. The movable connection structure, through the movement of the sliding pin 162 within the sliding groove 172, allows the handle to adjust the direction of force according to changes in the grip angle, enabling cutting actions at different angles to be completed without changing the overall grip posture during operation. This application solves the problem of unidirectional force application caused by the fixed connection of the handle. At the same time, the pivot structure maintains the precision of the blade engagement, allowing users with different hand sizes to achieve a comfortable grip by adjusting the handle position, and ensuring that the blade edge always engages precisely during the cutting process.
[0036] As a further embodiment, such as Figure 2 As shown, this application further proposes a sliding groove 172 at the first end, and a sliding pin 162 at the first handle end 161 that slides in conjunction with the sliding groove 172. The sliding pin 162 and the sliding groove 172 achieve a sliding engagement. The sliding groove 172 refers to an elongated groove 22 structure provided at the first end, the length direction of which is consistent with the axial direction of the clamp body. Specifically, it can be a straight groove 22 with a limiting boss at the edge. The sliding groove 172 provides a linear track for the movement of the sliding pin 162 and limits its sliding range. The sliding pin 162 refers to a protruding component fixed to the first handle end 161. Specifically, it can be a cylindrical pin with an anti-disengagement block at the end. The sliding pin 162 is embedded in the sliding groove 172 to form a sliding mechanical engagement, allowing the first handle 16 to generate axial displacement relative to the first end. The engagement relationship between the sliding groove 172 and the sliding pin 162 allows the first handle 16 to move linearly along the trajectory of the sliding groove 172 during the cutting operation. When the user applies gripping force, the sliding pin 162 slides within the sliding groove 172, causing relative displacement between the first handle 16 and the first end. This sliding pair structure not only maintains the pivotal freedom required for the cutting action but also compensates for operational needs at different gripping angles through axial displacement. For example, when trimming thicker nails, the sliding pin 162 can move backward along the sliding groove 172 to increase the lever arm, while during fine trimming, the sliding pin 162 can move forward to improve operational accuracy. Through the above technical solution, this application solves the technical problem of a single connection method between the handle and the end, realizing multi-dimensional adjustment of the handle position. The sliding fit structure allows the handle to move axially to adapt to different gripping angles. When trimming nails of different thicknesses, the force application effect can be optimized by adjusting the lever arm length, while avoiding the instability caused by the angle limitation of traditional fixed connection methods, significantly improving operational flexibility and human-computer interaction adaptability.
[0037] As another embodiment of this application, reference is made to Figure 1 and Figure 2This application further proposes that a stop pin 171 is provided within the sliding groove 172, which is used to limit the sliding area of the sliding pin 162. The sliding groove 172 refers to an elongated groove 22 structure provided at the first end, which can be formed into a straight or curved track by machining. Its function is to provide a moving path for the sliding pin 162 and constrain its moving direction. The stop pin 171 refers to a limiting component fixed at a specific position inside the sliding groove 172, which can be implemented by threading a metal cylinder to the side wall of the sliding groove 172. Its function is to limit the moving range of the sliding pin 162 through rigid blocking. The sliding pin 162 refers to a protruding structure provided at the end 161 of the first handle, which can be implemented by integrally forming a cylindrical pin with the handle. Its function is to cooperate with the sliding groove 172 to form a sliding pair, transmitting the relative movement between the handle and the clamp body. When the first handle 16 is connected to the sliding groove 172 via the sliding pin 162, the sliding pin 162 moves along the extending direction of the sliding groove 172. The stop pin 171 is fixed at both ends or the middle of the sliding groove 172, forming an insurmountable physical limit boundary. When the sliding pin 162 moves to contact the stop pin 171, its movement is forcibly terminated, thereby limiting the stroke of the sliding pin 162 within a preset range. This limiting mechanism ensures that the relative displacement between the first handle 16 and the first end is always within a controllable range, avoiding abnormal stress on the pivot structure or accidental dislodgement of the sliding pin 162 due to excessive sliding stroke. This application achieves precise control over the sliding stroke of the first handle 16, preventing the sliding pin 162 from disengaging from the sliding groove 172 and causing connection failure, while maintaining a stable alignment between the first blade 18 and the second blade 28 during the shearing process. This limiting mechanism also reduces the probability of the user's finger accidentally touching the shearing blade due to accidental slippage of the handle, thus improving operational safety.
[0038] like Figure 2 As shown, the nail file 30 is made of a magnetic material. Each of the file surfaces 31 of the nail file 30 has raised textures for smoothing and shaping the edges of the nail. Similarly, both sides of the nail file 30 have raised textures for smoothing and shaping the edges of the nail.
[0039] The above description is merely an embodiment of this application and is not intended to limit the scope of protection of this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the scope of protection of this application. The above description is only a partial implementation of this application. It should be noted that those skilled in the art can make several improvements and modifications without departing from the principles of this application, and these improvements and modifications should also be considered within the scope of protection of this application.
Claims
1. A nail clipper, comprising: A first clamp body and a second clamp body are pivotally connected to each other. The first clamp body has a first handle, a first end portion, and a first cutting edge. The second clamp body has a second handle, a second end portion, a second cutting edge, and a grinding plate. The feature is that one of the first clamp body and the second clamp body is provided with a receiving groove and a recess for accommodating the abrasive plate. The receiving groove is provided with a receiving platform. The length of the receiving platform is shorter than that of the receiving groove, thereby forming a pressing groove at one end of the receiving groove. The recess is located at one end of the receiving groove and provides space for pressing the abrasive plate.
2. The nail clipper according to claim 1, characterized in that, The receiving groove and recess are provided on the second clamp body.
3. The nail clippers according to claim 1, characterized in that, The receiving platform is equipped with a magnetic suction device for adsorbing the abrasive plate.
4. The nail clippers according to claim 3, characterized in that, The magnetic attractor is a cylindrical magnetic attractor, and a circular groove is provided on the receiving platform, in which the magnetic attractor is placed.
5. The nail clippers according to claim 1, characterized in that, The thickness of the receiving platform is less than the thickness of the receiving groove, and the receiving platform is provided with space for placing the abrasive plate.
6. The nail clippers according to claim 1, characterized in that, The second clamp body has a positioning hole, and the first clamp body has a positioning plug; the positioning plug is inserted into the positioning hole.
7. The nail clippers according to claim 1, characterized in that, The width of the groove is smaller than the width of the receiving slot, thereby facilitating the removal of the nail polish from the finger.
8. The nail clippers according to claim 1, characterized in that, The first end is pivotally connected to the second end, so that the first blade and the second blade are positioned opposite each other, thereby being used to cut nails. The first end is movably connected to the first handle.
9. The nail clippers according to claim 8, characterized in that, The first end has a sliding groove, and the first handle end is provided with a sliding pin that slides in cooperation with the sliding groove.
10. The nail clippers according to claim 9, characterized in that, The sliding groove is provided with a stop pin for limiting the sliding area of the sliding pin.