Carrying clip

The carrying clip design, featuring a track-type connection and magnetic elastic drive, solves the problem of inconvenient operation of existing carrying clips, enabling convenient one-handed operation and efficient device fixation and separation, thus improving the user experience.

CN116265799BActive Publication Date: 2025-11-18HYTERA COMM CORP
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Patent Information

Application Number
CN202111555254.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-12-17
Publication Date
2025-11-18
Estimated Expiration
2041-12-17

AI Technical Summary

Technical Problem

Existing clips are inconvenient to use when removing electronic devices, requiring overcoming significant resistance and being difficult to operate with one hand.

Method used

The first and second fixing components are detachably connected by sliding a slider in the slide rail groove. The slider is locked and disengaged by sliding at the limiting part. Combined with the driving force of the magnetic and elastic components, the operation process is simplified.

Benefits of technology

It enables convenient one-handed operation, reduces operational resistance, improves ease of use and user experience, and adapts to different usage habits.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the present application provides a carrying clamp. The carrying clamp comprises a first fixing assembly and a second fixing assembly; wherein the first fixing assembly comprises a sliding block, and the second fixing assembly is detachably connected with the first fixing assembly; the second fixing assembly comprises a sliding rail groove matched with the sliding block, and the sliding rail groove forms a limiting part; when the first fixing assembly and / or the second fixing assembly is subjected to a first external force, the sliding block can slide to the limiting part in the sliding rail groove, so that the first fixing assembly and the second fixing assembly are relatively clamped; when the first fixing assembly and / or the second fixing assembly is subjected to a second external force, the sliding block can be detached from the limiting part and slide out of the sliding rail groove, so that the first fixing assembly and the second fixing assembly can be mutually detached. The carrying clamp is simple to operate and high in convenience.
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Description

Technical Field

[0001] This invention relates to the field of portable products, and more particularly to a carrying clip for electronic products. Background Technology

[0002] In the field of electronic communication equipment, especially handheld electronic devices such as walkie-talkies and law enforcement equipment, it is often necessary to place electronic devices on the waist or shoulder. Therefore, users are placing increasingly higher demands on the portability of electronic devices.

[0003] In the prior art, the carrying clip is usually fixed to the device by screws or by a buckle. The back of the carrying clip is fixedly connected to the positioning component, which can be hooked onto the user to fix the device to the user.

[0004] However, when users need to remove the device, they usually have to remove the entire carrying clip from their body, or overcome the resistance of the clips to remove it, which is not very convenient to use and is difficult to operate with one hand in an emergency. Summary of the Invention

[0005] The carrying clip provided in this application aims to solve the problems of inconvenience in removing electronic devices from carrying clips, the need to overcome significant resistance, and the difficulty of one-handed operation.

[0006] To solve the above-mentioned technical problems, this application adopts a technical solution: providing a carrying clip. The carrying clip includes: a first fixing component and a second fixing component; wherein the second fixing component is detachably connected to the first fixing component; wherein the first fixing component includes a slider; the second fixing component includes a slide rail groove matching the slider, and the slide rail groove forms a limiting portion; when the first fixing component and / or the second fixing component is subjected to a first external force, the slider can slide in the slide rail groove to the limiting portion, thereby locking the first fixing component and the second fixing component relative to each other; when the first fixing component and / or the second fixing component is subjected to a second external force, the slider can disengage from the limiting portion and slide out of the slide rail groove, thereby allowing the first fixing component and the second fixing component to disengage from each other.

[0007] The first fixing component further includes a faceplate and a slide rod; the slide rod and the faceplate are rotatably connected by a pivot, and the slide rod has a slider at the end away from the pivot. The second fixing component includes a sliding panel, the first surface of which has a slide rail groove; the slide rail groove includes a sliding in rail, a limiting rail, and a sliding out rail connected in sequence; the limiting rail has a bent portion that bends toward the end of the sliding in rail away from the limiting rail to form a limiting portion.

[0008] In this process, the slider slides into the limiting part from the port away from the limiting track under the action of the first external force; the slider disengages from the limiting part under the action of the second external force and slides out from the port through the exit track.

[0009] The bent portion points towards the aforementioned port.

[0010] At the port, the bottom surface of the sliding-in track is lower than the bottom surface of the sliding-out track.

[0011] The limiting track includes a first sub-limiting track connected to the sliding in track and a second sub-limiting track connected to the sliding out track. The connection between the first sub-limiting track and the second sub-limiting track forms the bending portion. In this bending portion, the bottom surface of the first sub-limiting track is higher than the bottom surface of the second sub-limiting track.

[0012] Specifically, at the connection between the first sub-limiting track and the sliding track, the bottom surface of the first sub-limiting track is lower than the bottom surface of the sliding track; at the connection between the second sub-limiting track and the sliding track, the bottom surface of the second sub-limiting track is higher than the bottom surface of the sliding track.

[0013] The edge of the faceplate has a notch to expose the slider; the pivot is located in the extension direction of the notch; the sliding panel is disposed in the notch and can slide back and forth in the direction close to or away from the pivot to allow the slider to slide into or out of the slide rail groove; the opposite sides of the sliding panel have limiting grooves; the edge of the notch is embedded in the limiting groove to limit the faceplate and the sliding panel in the thickness direction of the faceplate.

[0014] The first fixing component further includes at least one elastic element; the elastic element is disposed on at least one side of the notch along the extension direction of the notch; wherein, during the sliding panel sliding towards the axis of rotation, the elastic element undergoes elastic deformation to provide a driving force to the sliding panel to slide away from the axis of rotation.

[0015] The first fixing component further includes a first magnetic element and a second magnetic element. The first magnetic element is disposed on the faceplate and along the extension direction of the notch on the side of the rotating shaft away from the notch; the second magnetic element is disposed on the end of the slide bar away from the slider.

[0016] During the sliding process of the slider in the slide rail groove, the slide rod can swing around the axis on both sides of the straight line defined by the first magnetic component and the axis. The magnetic force of the first and second magnetic components drives the slide rod to swing in the direction of the straight line. When the slider slides to the connection between the sliding in track and the limiting track, the elastic component drives the second fixing component to slide in the direction away from the axis. At the same time, the magnetic force of the first and second magnetic components drives the slider to slide along the limiting track to the bend. When the slider slides to the connection between the sliding out track and the limiting track, the elastic component drives the second fixing component to slide in the direction away from the axis. At the same time, the slider slides out along the sliding out track.

[0017] The first fixing component further includes a bottom shell and a third magnetic component. The bottom shell is located on the side of the slide rod away from the top shell and is connected to the top shell; the third magnetic component is located on the bottom shell and on the side of the slide rod away from the top shell. The third magnetic component and the second magnetic component are correspondingly arranged, and their opposite ends have the same magnetic poles, so that the slider is driven to be tightly embedded in the slide rail groove by the magnetic force of mutual repulsion between the third magnetic component and the second magnetic component.

[0018] The sliding panel includes a panel body, a protrusion, and a fixing member. The panel body has a first surface and a second surface disposed opposite to each other; the first surface of the panel body has the aforementioned slide rail groove; the protrusion is disposed on the second surface of the panel body; the protrusion is disposed within the aforementioned notch and can slide back and forth within the notch in a direction close to or away from the pivot axis; the fixing member is connected to the side of the protrusion away from the panel body and is used to fix the electronic device; the dimensions of the fixing member and the panel body in the direction perpendicular to the notch are both larger than the dimensions of the protrusion in the direction perpendicular to the notch, so as to cooperate to form the aforementioned limiting groove.

[0019] The second fixing component also includes a housing, which is detachably connected to the sliding panel via a fastener for housing electronic equipment.

[0020] The first fixing component further includes a positioning component, which is disposed on the side of the bottom shell opposite to the slide rod and connected to the bottom shell for connecting and fixing with a belt or clothing.

[0021] The carrying clip provided in this application embodiment uses a rail-type connection to detachably connect the first fixing component and the second fixing component, allowing the slider of the first fixing component to slide in the slide rail groove. The slider is limited by the limiting part of the slide rail groove, thereby fixing the first fixing component and the second fixing component. At the same time, by allowing the slider to slide in the slide rail groove to disengage from the slide rail groove, the user only needs to push the first fixing component and / or the second fixing component to fix the second fixing component to the first fixing component or to separate the second fixing component from the first fixing component during use. Compared with the prior art solution of fixing two fixing components with screws or buckles, this application can not only achieve relative fixation of the two fixing components, but also achieve separation of the two fixing components by sliding. The resistance to be overcome is small, and the user can operate with one hand. The operation process is simpler and more convenient. In addition, during use, only one of the two fixing components needs to be removed from the user, without removing both fixing components at the same time. The user's grip is better during use, effectively improving the user experience. Attached Figure Description

[0022] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort, wherein:

[0023] Figure 1 This is a schematic diagram of the structure of a carrying clip provided in one embodiment of this application;

[0024] Figure 2 for Figure 1 The exploded view of the carrying clip shown;

[0025] Figure 3a This is a schematic diagram of the structure of a slide bar provided in one embodiment of this application;

[0026] Figure 3b for Figure 3a Axial cross-sectional view of the slide rod;

[0027] Figure 4 This is a schematic diagram of the slide rail groove provided in one embodiment of this application;

[0028] Figure 5 This is a schematic diagram of the slide rail groove provided in another embodiment of this application;

[0029] Figure 6 This is a schematic diagram of the combined structure of the faceplate and the elastic element provided in an embodiment of this application;

[0030] Figure 7 This is a schematic diagram of the assembly structure of the faceplate, elastic element, slide rod and sliding panel provided in an embodiment of this application;

[0031] Figure 8a This is a schematic diagram of a magnetic component structure provided in an embodiment of this application;

[0032] Figure 8b This is a schematic cross-sectional view of a magnetic component provided in an embodiment of this application;

[0033] Figure 9 This is a schematic diagram of a magnetic component structure provided in another embodiment of this application;

[0034] Figure 10 This is a schematic diagram of a sliding panel structure provided in an embodiment of this application.

[0035] Figure 11 This is a schematic diagram of the motion trajectory of the slider in the slide rail groove according to an embodiment of this application;

[0036] Figure 12a This is a schematic diagram of a slider entering the slide rail groove port according to an embodiment of this application;

[0037] Figure 12b This is a schematic diagram showing the slider sliding to the third step according to an embodiment of this application;

[0038] Figure 12c This is a schematic diagram of the slider sliding into the limiting part according to an embodiment of this application;

[0039] Figure 13a This is a schematic diagram showing the slider sliding to the fourth step according to an embodiment of this application;

[0040] Figure 13b This is a schematic diagram of a slider sliding into and out of a track according to an embodiment of this application. Detailed Implementation

[0041] 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 a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.

[0042] The terms "first," "second," and "third" in this application are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined as "first," "second," or "third" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified. All directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of this application are only used to explain the relative positional relationships and movements between components in a specific orientation (as shown in the figures). If the specific orientation changes, the directional indications also change accordingly. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or devices.

[0043] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0044] The present application will now be described in detail with reference to the accompanying drawings and embodiments.

[0045] Please see Figure 1 and Figure 2 , Figure 1 This is a partial structural diagram of a carrying clip provided in one embodiment of this application. Figure 2 for Figure 1 A partially exploded structural diagram of a carrying clip is provided in this application. The carrying clip 100 can be used to secure electronic devices such as pagers, mobile phones, tablets, and computers to a user, and can also be used as a connector for backpacks or shoulder straps. The following embodiments all use this as an example. Of course, the carrying clip 100 can also be used to secure baby carriers or water bottles to a user. Specifically, the carrying clip 100 includes a first fixing component 1 and a second fixing component 2. The first fixing component 1 can be used to secure the device to the user, and the second fixing component 2 can be used to secure the electronic device 30. The first fixing component 1 and the second fixing component 2 are detachably connected, so that during use, the electronic device 30 can be relatively secured or detached from the user as the first fixing component 1 and the second fixing component 2 are relatively locked or separated.

[0046] The first fixing component 1 includes a front shell 11, a slide bar 12, an elastic element 13, a magnetic element 14, a bottom shell 15, and a positioning component (not shown); the second fixing component 2 includes a sliding panel 21 and a housing for accommodating the electronic device 30 (not shown). The second fixing component 2 may also exclude the housing and directly fix the sliding panel 21 to the electronic device 30.

[0047] Please see Figure 3a and Figure 3b , Figure 3a This is a schematic diagram of the structure of a sliding rod provided in one embodiment of this application. Figure 3b for Figure 3a The axial cross-sectional view of the slide bar is shown below. In this embodiment, the slide bar 12 includes a rod body 121, a slider 122, and a rotating shaft 123. The rod body 121 can be configured into different shapes according to specific requirements. In this embodiment, one end of the rod body 121 is a rounded rectangle and the other end is a long strip. The rotating shaft 123 is located at the end of the rounded rectangle near the long strip. The rod body 121 has protruding columnar bodies on its two side surfaces facing the bottom shell 15 and near the front shell 11, respectively, to form the rotating shaft 123. The two ends of the rotating shaft 123 are respectively embedded in the front shell 11 and the bottom shell 15, so that the slide bar 12 can rotate relative to the front shell 11 and the bottom shell 15 through the rotating shaft 123. Of course, in other embodiments, the slide bar 12 can also be fixed relative to the bottom shell 15 without rotation. The slider 122 is located at the end of the rod body 121 away from the rotating shaft 123. The slider 122 can be configured into different shapes according to actual requirements. In this embodiment, the slider 122 is preferably a columnar body. The rod 121, slider 122, and rotating shaft 123 can be integrally formed or combined, and no specific limitation is made in this application. Furthermore, the end of the slider 12 away from the slider 122 also has a receiving groove 124, and the second magnetic element 142 is disposed within the receiving groove 124. Specifically, the slider 12 can be made of a material with a certain strength, such as a metal or a polymer material; in this embodiment, a metal material is preferred.

[0048] Please see Figure 4 , Figure 4This is a schematic diagram of the slide rail groove provided in one embodiment of this application. The slide rail groove 211 is disposed on the first surface of the sliding panel 21. Specifically, the slide rail groove 211 can be a concave groove. The slide rail groove 211 includes a sliding entry rail 212, a limiting rail 213, and a sliding exit rail 214 connected in sequence. In this embodiment, the port of the sliding entry rail 212 away from the limiting rail 213 and the port of the sliding exit rail 214 away from the limiting rail 213 are the same port 215. This port 215 is the entrance for the slider 122 to enter the slide rail groove 211 and the exit for the slider 122 to leave the slide rail groove 211. The limiting rail 213 includes a first sub-limiting rail 213a and a second sub-limiting rail 213b. The connection between the first sub-limiting rail 213a and the second sub-limiting rail 213b has a bent portion that bends toward the port 215 to form a limiting portion 216, that is, the bent portion points toward the port 215. When the first fixing component 1 and / or the second fixing component 2 are subjected to a first external force, i.e., when the first fixing component 1 and / or the second fixing component 2 are subjected to a push force from the user, the slider 122 can slide in the slide rail groove 211 to the limiting part 216, thereby locking the first fixing component 1 and the second fixing component 2 relative to each other; when the first fixing component 1 and / or the second fixing component 2 are subjected to a second external force, i.e., when the first fixing component 1 and / or the second fixing component 2 are subjected to a push force from the user again, the slider 122 can disengage from the limiting part 216 and slide out of the slide rail groove 211, thereby disengaging the first fixing component 1 and the second fixing component 2 from each other. Of course, in other embodiments, the port of sliding into the track 212 away from the limiting track 213 and the port of sliding out of the track 214 away from the limiting track 213 can also be two non-connected ports, i.e., the entrance of the slider 122 into the slide rail groove 211 and the exit of the slider 122 from the slide rail groove 211 are two different ports.

[0049] In this embodiment, at port 215, the bottom surface of the sliding in track 212 is lower than the bottom surface of the sliding out track 214, forming a first step 231, which allows the slider 122 to smoothly enter the sliding in track 212 when entering the slide rail groove 211, avoiding accidental entry into the sliding out track 214; at the limiting part 216, the bottom surface of the first sub-limiting track 213a is higher than the bottom surface of the second sub-limiting track 213b, forming a second step 232, which allows the slider 122 to fall from the bottom surface of the first sub-limiting track 213a, thereby smoothly entering the limiting part 216 to fix the slider 122 and the sliding panel 21. At the same time, when the slider 122 slides out of the limiting part 216, it can smoothly slide along the second sub-limiting track 213b, avoiding accidental entry into the first sub-limiting track 213a.

[0050] When the sliding panel 21 enters the faceplate 11, the slider 122 enters the sliding track 212 from the port 215 under the action of the first external force. That is, under the action of the user's push, the slider 122 enters the sliding track 212 from the port 215, enters the first sub-limiting track 213a along the sliding track 212, and falls from the bottom surface of the first sub-limiting track 213a into the limiting part 216 at the second step 232, thereby making the first fixing component 1 and the second fixing component 2 relatively locked. When the first fixing component 1 and the second fixing component 2 separate, the slider 122 slides out from the limiting part 216 and enters the second sub-limiting track 213b under the action of the second external force. That is, under the action of the user's push again, the slider 122 slides out from the limiting part 216 and enters the second sub-limiting track 213b, slides along the second sub-limiting track 213b into the sliding exit track 214, and slides out of the slide rail groove 211 along the sliding exit track 214. The embodiments of this application achieve relative locking and separation of the first fixing component 1 and the second fixing component 2 through a sliding method, which requires less resistance to overcome, can be operated by the user with one hand, and is simpler and more convenient.

[0051] Please see Figure 5 , Figure 5 The diagram below shows the structure of a slide rail groove according to another embodiment of this application. In this embodiment, there is a third step 233 at the connection between the sliding in rail 212 and the first sub-limiting rail 213a. At this connection, the bottom surface of the sliding in rail 212 is higher than the bottom surface of the first sub-limiting rail 213a, so that the slider 122 can fall from the bottom surface of the sliding in rail 212 to the first sub-limiting rail 213a at the third step 233. There is also a fourth step 234 at the connection between the second sub-limiting rail 213b and the sliding out rail 214. At this connection, the bottom surface of the second sub-limiting rail 213b is higher than the bottom surface of the sliding out rail 214, so that the slider 122 can fall from the bottom surface of the second sub-limiting rail 213b to the bottom surface of the sliding out rail 214 at the fourth step 234. This embodiment adds a third step 233 and a fourth step 234 to the slide rail groove 211 in the above embodiment, which makes the slider 122 slide more smoothly in the slide rail groove 211 and can avoid the problem of reverse sliding. This makes the first component and the second component more smoothly fixed and separated, effectively improving the user experience.

[0052] Please see Figure 6 , Figure 6This is a schematic diagram of the combined structure of the face shell and the elastic element provided in an embodiment of this application; the face shell 11 is disposed on the bottom shell 15 and forms an internal space with the bottom shell 15 to accommodate the slide rod 12; a notch 111 is formed on the edge of the face shell 11, exposing the slider 122, thereby allowing the slider 122 to enter the slide rail groove 211 and slide in the slide rail groove 211; a pivot hole 112 is provided on the face shell 11 in the extending direction of the notch 111, and the first end of the pivot shaft 123 is disposed in the pivot hole 112; a groove 113 is provided on the side of the face shell 11 away from the notch 111 for accommodating the first magnetic element 141. Please refer to Figure 10 The sliding panel 21 has limiting grooves 240 on opposite sides. The edge of the notch 111 is embedded in the limiting groove 240 to limit the face shell 11 and the sliding panel 21 in the thickness direction of the face shell 11. This fixes the sliding panel 21 to the face shell 11 when the slider 122 enters the limiting part 216, preventing the sliding panel 21 from falling off the face shell 11.

[0053] In this embodiment, elastic members 13 are provided on both sides of the extending direction of the notch 111. There can be multiple elastic members 13; in this embodiment, two elastic members 13 are provided, respectively located on opposite sides of the extending direction of the notch 111. Please refer to [link to relevant documentation]. Figure 6-7One end of the elastic element 13 abuts against and is fixed to the face shell 11; when the sliding panel 21 is pushed, after the sliding panel 21 enters the notch 111, the other end of the elastic element 13 abuts against the sliding panel 21. During the process of the sliding panel 21 sliding towards the rotating shaft 123, that is, under the action of the first external force, the slider 122 enters the sliding rail 212 from the port 215 of the slide rail groove 211 and slides to the connection between the sliding rail 212 and the first sub-limiting rail 213a, or the sliding panel 21 is pushed again, that is, under the action of the second external force, the slider During the sliding of slider 122 from the limiting part 216 to the connection point between the second sub-limiting track 213b and the sliding exit track 214, the elastic member 13 undergoes elastic deformation and is compressed to provide a driving force to the sliding panel 21 in a direction away from the rotating shaft 123. It is easy to understand that this driving force can cause slider 122 to slide from the connection point between the sliding in track 212 and the first sub-limiting track 213a to the limiting part 216, or cause slider 122 to slide from the connection point between the second sub-limiting track 213b and the sliding exit track 214 to the port 215, thereby sliding out of the slide rail groove 211. When slider 122 is locked relative to the first fixing component 1 and the second fixing component 2 at the limiting part 216, the elastic member 13 provides a supporting force to the sliding panel 21, thereby supporting slider 122, allowing slider 122 to fit tightly against the slide rail groove 211, and preventing loosening due to changes in the placement direction of the first fixing component 1 and the second fixing component 2, thus making it more securely fixed. Specifically, the elastic element 13 can be a spring or a sheet, etc. This application prefers a spring. Springs with different elastic coefficients and spring shapes and sizes can be selected according to specific needs, so that the first fixing component 1 and the second fixing component 2 are relatively locked together. In the process of fixing or separating the first fixing component 1 and the second fixing component 2, the user does not need to use too much force to overcome the elastic deformation of the elastic element 13. It can be operated with one hand, which is more convenient.

[0054] Please see Figure 8a and Figure 8b , Figure 8a This is a schematic diagram of a magnetic component structure provided in an embodiment of this application. Figure 8bThis is a cross-sectional structural diagram of a magnetic component provided in an embodiment of this application. In this embodiment, the magnetic component 14 includes a first magnetic component 141 and a second magnetic component 142. The first magnetic component 141 is disposed in the groove 113 of the faceplate 11 and is disposed along the extension direction of the notch 111 on the side of the rotating shaft hole 112 away from the notch 111. The second magnetic component 142 is disposed in the receiving groove 124 at the end of the slide rod 12 away from the slider 122. The magnetic poles of the opposite ends of the first magnetic component 141 and the second magnetic component 142 are opposite, resulting in an attractive force between them. The slide rod 12 can swing around the rotating shaft 123 on both sides of the straight line 114 defined by the first magnetic component 141 and the rotating shaft 123, and the angle of swing relative to both sides of the straight line 114 can be any angle. The slide rod 12 is driven to swing towards the straight line 114 by the attractive force of the first magnetic component 141 and the second magnetic component 142. Please refer to... Figure 12b and Figure 13a It is easy to understand that when the sliding panel 21 is pushed, that is, when the slider 122 slides to the connection between the sliding in track 212 and the first sub-limiting track 213a under the action of the first external force, the elastic element 13 drives the sliding panel 21 to slide in the direction away from the rotating shaft 123. At the same time, the attraction between the first magnetic element 141 and the second magnetic element 142 drives the slider 122 to slide along the first sub-limiting track 213a to the limiting part 216. When the sliding panel 21 is pushed again, that is, when the slider 122 slides to the connection between the second sub-limiting track 213b and the sliding out track 214 under the action of the second external force, the elastic element 13 drives the sliding panel 21 to slide in the direction away from the rotating shaft 123, and the slider 122 slides out along the sliding out track 214. During the above process, when the slider 122 slides in the sliding in track 212 and sliding out track 214, the attraction between the first magnetic element 141 and the second magnetic element 142 always drives the slider 122 to stay close to the inner wall of the slide rail groove 211 near the straight line defined by the first magnetic element 141 and the rotating shaft 123. Moreover, the slider 122 does not bring much resistance when sliding in the slide rail groove 211, which can better constrain the movement trajectory of the slider 122 in the slide rail groove 211 and, to a certain extent, prevent the slider 122 from derailing.

[0055] Further, please see Figure 9The magnetic component 14 also includes a third magnetic component 143, which is disposed on the bottom shell 15 and located on the side of the slide rod 12 away from the front shell 11. The third magnetic component 143 is correspondingly disposed to the second magnetic component 142, and their opposite ends have the same magnetic poles, resulting in a repulsive magnetic force between them. This magnetic force consistently drives the slider 122 on the slide rod 12 to be tightly embedded in the slide rail groove 211, further effectively preventing the slider 122 from derailing when sliding within the slide rail groove 211. This ensures that during the fixing or separation of the first fixing component 1 and the second fixing component 2, the slider 122 is tightly embedded in the slide rail groove 211, and the slider 122 does not need to overcome significant resistance when sliding within the slide rail groove 211, allowing for smooth sliding and improved convenience. Furthermore, the aforementioned magnetic components can also be springs, coil springs, etc.

[0056] Please see Figure 10 , Figure 10 This is a schematic diagram of a sliding panel structure provided in an embodiment of this application. The sliding panel 21 includes a panel body 210, a protrusion 220, and a fixing member 230. The panel body 210 has a first surface and a second surface that are disposed opposite to each other. The slide rail groove 211 is specifically located on the first surface of the panel body 210. When the sliding panel 21 enters the notch 111 of the housing 11, the protrusion 220 enters the notch 111 and can slide back and forth in the notch 111 in a direction close to or away from the pivot 123, that is, slide back and forth along the straight line 114. The fixing member 230 is connected to the side of the protrusion 220 away from the panel body 210 and is used to fix the electronic device 30. The dimensions of the fastener 230 and the panel body 210 in the direction perpendicular to the notch 111 (i.e., perpendicular to the line 114 and parallel to the faceplate 11) are both larger than the dimensions of the protrusion 220 in the direction perpendicular to the notch 111, in order to form the aforementioned limiting groove 240. This allows the sliding panel 21 to be limited in the thickness direction when fixed to the first fixing component 1, preventing the sliding panel 21 from falling off the faceplate 11, thereby making the fixation between the first fixing component 1 and the second fixing component 2 more secure. The fastener 230 can be directly connected to the electronic device 30 to fix the electronic device 30, or connected and fixed to the electronic device 30 through the housing. Furthermore, the second fixing component also includes a housing, which is detachably connected to the fastener 230, i.e., detachably connected to the sliding panel 21, and the housing is used to house the electronic device 30.

[0057] Please see Figure 11 and Figure 12a When the electronic device 30 is fixed to the user, the sliding panel 21 is engaged with the notch 111 of the faceplate 11, pushing the second fixing component 2 and / or the first fixing component 1. The sliding panel 21 of the second fixing component 2 enters the notch 111 of the faceplate 11, and the slider 122 of the slide rod 12 enters the port 215 of the slide rail groove 211; see also Figure 12b and Figure 12c Under the action of the first external force, the slider 122 enters the sliding track 212 from the port 215 and slides along the sliding track 212 to the connection between the sliding track 212 and the first sub-limiting track 213a. At this time, the elastic force of the elastic member 13 and the magnetic force of the first magnetic member 141 and the second magnetic member 142 drive the slider 122 to enter the first sub-limiting track 213a of the limiting track 213 and slide along the first sub-limiting track 213a to the limiting part 216, so that the sliding panel 21 and the first fixing component 1 are locked relative to each other. Further, the positioning component is connected to the side of the bottom shell 15 away from the slide rod 12. The positioning component is used to fix it with the user. Specifically, it can be a clip or other components that can be worn on the user's body, so that the electronic device 30 is worn on the user's waist belt or shoulder strap, etc. Of course, in other embodiments, the positioning component may also be connected to the side of the sliding panel 21 opposite to the protrusion 220 via the fixing member 230, and the electronic device 30 may be connected to the side of the bottom housing 15 opposite to the slide rod 12. The bottom housing 15 and / or the fixing member 230 may be assembled with the positioning component along the axial direction of the positioning component, or along a direction perpendicular to the axial direction of the positioning component, or along a direction forming any other arbitrary angle with the axial direction of the positioning component; this application does not impose any limitations on this.

[0058] In the above process, simply pushing the second fixing component 2 and / or the first fixing component 1 is sufficient to fix the first fixing component 1 and the second fixing component 2. The resistance to overcome is small, and the user can operate with one hand. The operation process is relatively simple and convenient. In addition, the relative assembly direction of the bottom shell 15 and / or the fixing component 230 and the positioning component can be any angle direction, so that the extension direction of the notch 111 of the front shell 11 and / or the axial direction of the sliding panel 21 can change accordingly. This allows the user to push the second fixing component 2 and / or the first fixing component 1 at a horizontal or vertical angle, or other angle directions, to meet different user habits.

[0059] Please see Figure 11 and Figure 13a When the electronic device 30 is removed, the second fixing component 2 and / or the first fixing component 1 are pushed. Under the action of the second external force, the slider 122 moves from the limiting part 216 into the second sub-limiting track 213b of the limiting track 213, slides along the second sub-limiting track 213b to the connection point between the second sub-limiting track 213b and the sliding exit track 214, and falls from the bottom surface of the second sub-limiting track 213b of the fourth step 234 to the bottom surface of the sliding exit track 214. Please refer to [link to relevant documentation]. Figure 13bAt this time, the elastic force of the elastic element 13 drives the slider 122 to slide along the sliding track 214 to the port 215, so that the slider 12 disengages from the sliding panel 21, that is, the second fixing component 2 separates from the first fixing component 1, thereby removing the electronic device 30 from the user. In the above process, the first fixing component 1 and the second fixing component 2 can be separated simply by pushing the second fixing component 2 and / or the first fixing component 1. The resistance to overcome is small, and the user can operate with one hand. The operation process is simple and convenient. In addition, the relative assembly direction of the bottom shell 15 and / or the fixing component 230 and the positioning component can be any angle, so that the extension direction of the notch 111 of the front shell 11 and / or the axial direction of the sliding panel 21 can change accordingly. This allows the user to push the second fixing component 2 and / or the first fixing component 1 at a horizontal or vertical angle, or other angles, to meet different user habits. At the same time, during use, only one of the two fixing components needs to be removed from the user, without removing both fixing components at the same time. This makes the user feel better when using the electronic device 30 and effectively improves the user experience.

[0060] The carrying clip 100 provided in the above embodiments allows the electronic device 30 to be worn or removed from the user with only one push of the second fixing component 2 and / or the first fixing component 1. The operation is simple, requires little resistance, and can be completed with one hand, improving ease of use and saving time for the user in emergencies. In addition, the relative assembly direction of the bottom shell 15 and / or the fixing component 230 with the positioning component can be any angle, so that the extension direction of the notch 111 of the front shell 11 and / or the axial direction of the sliding panel 21 can change accordingly. This allows the user to push the second fixing component 2 and / or the first fixing component 1 at a horizontal or vertical angle, or other angles, to meet different user habits. At the same time, when removing the electronic device 30, only one of the two fixing components needs to be removed from the user, without removing both fixing components at the same time. This makes the grip of the electronic device 30 more comfortable and improves the user experience.

[0061] The above are merely embodiments of this application and do not limit the scope of this patent application. Any equivalent structural or procedural changes made using the content of this application's specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the scope of patent protection of this application.

Claims

1. A carrying clip, characterized in that, include: First fixed component; The second fixing component is detachably connected to the first fixing component; The first fixing component includes a face shell and a sliding rod; the sliding rod and the face shell are rotatably connected via a rotating shaft; the end of the sliding rod away from the rotating shaft has a slider; the second fixing component includes a slide rail groove that matches the slider; and the slide rail groove forms a limiting part; when the first fixing component and / or the second fixing component are subjected to a first external force, the slider can slide in the slide rail groove to the limiting part, thereby locking the first fixing component and the second fixing component relative to each other; when the first fixing component and / or the second fixing component are subjected to a second external force, the slider can disengage from the limiting part and slide out of the slide rail groove, thereby disengaging the first fixing component and the second fixing component from each other; the slide rail groove includes a sliding in rail, a limiting rail, and a sliding out rail connected in sequence; the limiting rail has a bent portion that bends toward the end of the sliding in rail away from the limiting rail to form the limiting part; The first fixing component further includes a first magnetic element and a second magnetic element. The first magnetic element is disposed on the face shell and along the extension direction of the slide rod on the side of the rotating shaft away from the slider. The second magnetic element is disposed at the end of the slide rod away from the slider. During the sliding of the slider in the slide rail groove, the slide rod can swing around the rotating shaft on both sides of the straight line defined by the first magnetic element and the rotating shaft. The magnetic force of the first magnetic element and the second magnetic element drives the slide rod to swing in the direction of the straight line. When the slider slides to the connection between the sliding in track and the limiting track, the magnetic force of the first magnetic element and the second magnetic element drives the slider to slide along the limiting track to the bend. When the slider slides to the connection between the sliding out track and the limiting track, the slider slides out along the sliding out track.

2. The carrying clip according to claim 1, characterized in that, The second fixing component includes a sliding panel, the first surface of which has the slide rail groove.

3. The carrying clip according to claim 2, characterized in that, Under the action of the first external force, the slider slides into the limiting part from the port away from the limiting track on the sliding in track; under the action of the second external force, the slider disengages from the limiting part and slides out from the port through the sliding out track.

4. The carrying clip according to claim 2, characterized in that, The bent portion points towards the port.

5. The carrying clip according to claim 4, characterized in that, At the port, the bottom surface of the sliding-in track is lower than the bottom surface of the sliding-out track.

6. The carrying clip according to claim 4, characterized in that, The limiting track includes a first sub-limiting track connected to the sliding in track and a second sub-limiting track connected to the sliding out track. The bend is formed at the connection between the first sub-limiting track and the second sub-limiting track. In the bend, the bottom surface of the first sub-limiting track is higher than the bottom surface of the second sub-limiting track.

7. The carrying clip according to claim 6, characterized in that, At the connection between the first sub-limiting track and the sliding track, the bottom surface of the first sub-limiting track is lower than the bottom surface of the sliding track; at the connection between the second sub-limiting track and the sliding track, the bottom surface of the second sub-limiting track is higher than the bottom surface of the sliding track.

8. The carrying clip according to claim 2, characterized in that, The edge of the faceplate has a notch to expose the slider; the pivot is located in the extending direction of the notch; the sliding panel is disposed within the notch and can slide back and forth in a direction close to or away from the pivot, so that the slider slides into or out of the slide rail groove; the opposite sides of the sliding panel have limiting grooves; the edge of the notch is embedded in the limiting groove to limit the faceplate and the sliding panel in the thickness direction of the faceplate.

9. The carrying clip according to claim 8, characterized in that, The first fixing component further includes at least one elastic element; the elastic element is disposed on at least one side of the notch along the extension direction of the notch; wherein, during the sliding panel sliding towards the pivot, the elastic element undergoes elastic deformation to provide a driving force to the sliding panel to slide away from the pivot.

10. The carrying clip according to claim 9, characterized in that, When the slider slides to the connection point between the sliding in track and the limiting track, the elastic element drives the second fixing component to slide in a direction away from the rotating shaft; when the slider slides to the connection point between the sliding out track and the limiting track, the elastic element drives the second fixing component to slide in a direction away from the rotating shaft; the bent portion points to the port.

11. The carrying clip according to claim 10, characterized in that, The first fixing component further includes: A bottom shell is located on the side of the slide rod opposite to the top shell and is connected to the top shell; A third magnetic component is disposed on the bottom shell and located on the side of the slide rod away from the top shell; wherein the third magnetic component and the second magnetic component are correspondingly disposed and have the same magnetic poles at opposite ends, so that the slider is driven to be tightly embedded in the slide rail groove by the magnetic force of mutual repulsion between the third magnetic component and the second magnetic component.

12. The carrying clip according to claim 8, characterized in that, The sliding panel includes: The panel body has a first surface and a second surface disposed opposite to each other; the first surface of the panel body has the slide rail groove. A protrusion is disposed on the second surface of the panel body; the protrusion is disposed within the notch and is capable of sliding back and forth within the notch in a direction close to or away from the pivot. A fastener is connected to the side of the protrusion opposite to the panel body for fixing electronic devices; the dimensions of the fastener and the panel body in the direction perpendicular to the notch are both larger than the dimensions of the protrusion in the direction perpendicular to the notch, so as to cooperate in forming the limiting groove.

13. The carrying clip according to claim 12, characterized in that, The second fixing component also includes: A housing, which is detachably connected to the sliding panel via the fastener, is used to house an electronic device.

14. The carrying clip according to claim 11, characterized in that, The first fixing component further includes: A positioning component is located on the side of the bottom shell opposite to the slide rod, and is connected to the bottom shell for connection and fixation with a belt or clothing.

Citation Information

Patent Citations

  • Camera popup mechanism and terminal

    CN109379530A

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    CN109820294A

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    CN217003985U