Shaft mechanism and terminal equipment

By designing a rotating shaft mechanism using the arc-shaped sliding fit of the first swing arm and the connecting member in the foldable electronic device, the problem of difficulty in reducing the size of the folding mechanism is solved, and the lightweight design and operation stability of the equipment are realized.

CN117847076BActive Publication Date: 2025-05-16HONOR DEVICE CO LTD
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Patent Information

Application Number
CN202311641400.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-03-22
Publication Date
2025-05-16
Estimated Expiration
2043-03-22

AI Technical Summary

Technical Problem

The size of the folding mechanism in existing foldable electronic devices is difficult to further reduce, making it difficult for the equipment to achieve a thinner design.

Method used

A rotating shaft mechanism is designed to achieve a rotating connection by slidingly cooperating the first arc-shaped sliding part and the sliding fitting part between the first swing arm and the connecting member, thereby reducing the possibility of interference between the swing arm and the folding screen in the terminal device.

Benefits of technology

By reducing the size of the shaft mechanism, the thinner design of the terminal equipment is realized and the operation stability of the equipment in the folded state is improved.

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Abstract

The present application relates to the technical field of foldable electronic devices, and provides a hinge mechanism and a terminal device, wherein the hinge mechanism includes a base, at least two connecting members, and at least two first swing arms, wherein the connecting members are arranged on both sides of the base; the first swing arms are arranged on both sides of the base, and the first swing arms are rotatably connected to the base; wherein, in the first swing arm and the connecting member located on the same side of the base, a first arc-shaped sliding portion is provided on the first swing arm, and a first arc-shaped sliding matching portion is provided on the connecting member, and the first arc-shaped sliding portion and the first arc-shaped sliding matching portion are slidably matched, so that the first swing arm is rotatably connected to the connecting member; when the hinge mechanism is converted from an unfolded state to a folded state, the connecting member drives the first swing arm to rotate relative to the base, and the first arc-shaped sliding portion and the first arc-shaped sliding matching portion slide relative to each other, so that the connecting member and the first swing arm rotate relative to each other. The present application is conducive to miniaturization of the hinge mechanism, thereby facilitating the thinness of the terminal device.
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Description

[0001] This case is a divisional application. The application number of the original application is 202310355530.7, and the application date of the original application is 2023.03.22. The entire content of the original application is incorporated into this application by reference. Technical Field

[0002] The present application relates to the technical field of foldable electronic devices, and in particular to a hinge mechanism and a terminal device. Background Art

[0003] Foldable electronic devices refer to electronic devices that can be folded and unfolded, such as foldable screen mobile phones, foldable screen tablets, foldable screen laptops, etc. Foldable electronic devices generally include a body and a flexible display screen arranged on the body. The body can be folded or unfolded through its folding mechanism, and the flexible display screen can be folded or unfolded together with the body by bending its flexible deformable parts.

[0004] In some cases, the size of the folding mechanism is still relatively large, and it is difficult to further reduce the size when it needs to cooperate normally with components such as flexible display screens, making it difficult to further reduce the size of the foldable electronic device. Summary of the invention

[0005] The embodiments of the present application provide a hinge mechanism and a terminal device, which can improve the technical problem in the related art that the size of the folding mechanism is difficult to reduce.

[0006] To achieve the above purpose, the embodiment of the present application adopts the following technical solution:

[0007] In a first aspect, an embodiment of the present application provides a rotating shaft mechanism, wherein the rotating shaft mechanism comprises:

[0008] Base;

[0009] At least two connecting members are disposed on two sides of the base; and

[0010] At least two first swing arms are respectively arranged on two sides of the base, and the first swing arms are rotatably connected to the base;

[0011] Among them, in the first swing arm and the connecting member located on the same side of the base, the first swing arm is provided with a first arc-shaped sliding portion, and the connecting member is provided with a first arc-shaped sliding matching portion, and the first arc-shaped sliding portion and the first arc-shaped sliding matching portion are slidingly matched with each other so that the first swing arm is rotatably connected with the connecting member, and when the rotating shaft mechanism is converted from the unfolded state to the folded state, the connecting member drives the first swing arm to rotate relative to the base, and the first arc-shaped sliding portion and the first arc-shaped sliding matching portion slide relative to each other, so that the connecting member and the first swing arm rotate relative to each other.

[0012] The above technical solutions in the embodiments of the present application have at least the following technical effects or advantages:

[0013] The hinge mechanism provided in the embodiment of the present application realizes rotational connection between the first swing arm and the connecting member through sliding cooperation between the first circular arc sliding portion and the first circular arc sliding cooperation portion. The first swing arm and the connecting member can be regarded as rotationally connected via a virtual axis. During the rotation of the hinge mechanism, the angle of rotation of the first swing arm relative to the base and the angle of rotation of the connecting member relative to the base may be different. Therefore, when the hinge mechanism is applied to the terminal device, during the process of the terminal device rotating from the unfolded state to the folded state, the angle through which the first swing arm rotates relative to the base can be designed as needed, and does not need to be the same as the angle through which the connecting member rotates relative to the base. This can reduce the possibility of interference between the first swing arm and the folding screen of the terminal device when the terminal device is in the folded state, thereby facilitating further miniaturization of the hinge mechanism and thus facilitating a lightweight design of the terminal device.

[0014] In some embodiments of the first aspect, one of the first arc-shaped sliding portion and the first arc-shaped sliding fitting portion is an arc-shaped slide rail, and the other is an arc-shaped slide groove; the first arc-shaped sliding portion is in surface contact with the first arc-shaped sliding fitting portion.

[0015] In some embodiments of the first aspect, the first swing arm is a synchronous swing arm.

[0016] In some embodiments of the first aspect, the rotating shaft mechanism further includes a synchronization component, and the first swing arms located on both sides of the base are connected through the synchronization component.

[0017] In some embodiments of the first aspect, the rotating shaft mechanism further includes a damping assembly, wherein the damping assembly is connected to the first swing arm and is used to provide a damping force for the first swing arm.

[0018] In some embodiments of the first aspect, the rotating shaft mechanism further includes a first rotating shaft, and the first swing arm is rotatably connected to the base via the first rotating shaft.

[0019] In some embodiments of the first aspect, the pivot mechanism also includes at least two second swing arms, which are respectively arranged on both sides of the base and rotatably connected to the base; wherein the second swing arms located on the same side of the base are rotatably connected to the connecting member.

[0020] In some embodiments of the first aspect, the rotating shaft mechanism further includes a second rotating shaft, and the second swing arm and the connecting member located on the same side of the base are rotatably connected via the second rotating shaft.

[0021] In some embodiments of the first aspect, in the second swing arm and the connecting member located on the same side of the base, the second swing arm is provided with a second circular arc sliding portion, and the connecting member is provided with a second circular arc sliding fitting portion, and the second circular arc sliding portion is slidingly fitted with the second circular arc sliding fitting portion so that the second swing arm is rotatably connected to the connecting member.

[0022] In some embodiments of the first aspect, the connecting members located on both sides of the base can rotate relative to each other based on the base, so that the hinge mechanism is converted between the unfolded state and the folded state; when the hinge mechanism is converted from the unfolded state to the folded state, the connecting member drives the first swing arm and the second swing arm to rotate relative to the base, and the first arc-shaped sliding portion slides relative to the first arc-shaped sliding fitting portion, so that the connecting member and the first swing arm rotate relative to each other, and the second arc-shaped sliding portion slides relative to the second arc-shaped sliding fitting portion, so that the connecting member and the second swing arm rotate relative to each other;

[0023] Wherein, when the hinge mechanism is transformed from the unfolded state to the folded state, the rotation angle of the second swing arm relative to the base is less than 90°.

[0024] In some embodiments of the first aspect, one of the second circular arc sliding portion and the second circular arc sliding fitting portion is a circular arc sliding rail, and the other is a circular arc sliding groove; the second circular arc sliding portion is in surface contact with the second circular arc sliding fitting portion.

[0025] In some embodiments of the first aspect, the pivot mechanism also includes at least two second swing arms, which are respectively arranged on both sides of the base and rotatably connected to the base; wherein the second swing arms located on the same side of the base are slidably connected to the connecting member.

[0026] In some embodiments of the first aspect, a first sliding connection portion is provided on one of the second swing arm and the connecting member located on the same side of the base, and a first straight sliding groove is provided on the other, and the first sliding connection portion is slidably matched with the first straight sliding groove.

[0027] In some embodiments of the first aspect, a third arc-shaped sliding portion is provided on the second swing arm, and a third arc-shaped sliding fitting portion is provided on the base, and the third arc-shaped sliding portion is slidably fitted with the third arc-shaped sliding fitting portion so that the second swing arm is rotatably connected to the base.

[0028] In some embodiments of the first aspect, one of the third circular arc sliding portion and the third circular arc sliding fitting portion is a circular arc sliding rail, and the other is a circular arc sliding groove; the third circular arc sliding portion is in surface contact with the third circular arc sliding fitting portion.

[0029] In some embodiments of the first aspect, the rotating shaft mechanism further includes a third rotating shaft, and the second swing arm is rotatably connected to the base via the third rotating shaft.

[0030] In some embodiments of the first aspect, the first swing arm is a main swing arm.

[0031] In some embodiments of the first aspect, the pivot mechanism also includes at least two third swing arms, which are respectively arranged on both sides of the base and rotatably connected to the base; wherein the third swing arms and the connecting member located on the same side of the base are slidably connected.

[0032] In some embodiments of the first aspect, a second sliding connection portion is provided on one of the third swing arm and the connecting member located on the same side of the base, and a second straight sliding groove is provided on the other, and the second sliding connection portion is slidably matched with the second straight sliding groove.

[0033] In some embodiments of the first aspect, the rotating shaft mechanism further includes a fourth rotating shaft, and the first swing arm is rotatably connected to the base via the fourth rotating shaft.

[0034] In some embodiments of the first aspect, the connecting members located on both sides of the base can rotate relative to each other based on the base, so that the rotating shaft mechanism is converted between the unfolded state and the folded state;

[0035] An arcuate surface is concavely provided on the first swing arm; when the hinge mechanism is in the folded state, the arcuate surface on the first swing arm on one side of the base faces the first swing arm on the other side of the base.

[0036] In some embodiments of the first aspect, the rotating shaft mechanism also includes at least two fourth swing arms, which are respectively arranged on both sides of the base; the fourth swing arms are rotatably connected to the connecting piece located on the same side of the base; one of the fourth swing arm and the first swing arm located on the same side of the base is provided with a track groove, and the other is provided with a sliding body, and the sliding body is high-paired with the track groove.

[0037] In some embodiments of the first aspect, in the fourth swing arm and the connecting member located on the same side of the base, the fourth swing arm is provided with a fourth circular arc sliding portion, and the connecting member is provided with a fourth circular arc sliding fitting portion, and the fourth circular arc sliding portion is slidingly fitted with the fourth circular arc sliding fitting portion so that the fourth swing arm is rotatably connected to the connecting member.

[0038] In some embodiments of the first aspect, the rotating shaft mechanism further includes a support member, and the support member is connected to the fourth swing arm;

[0039] The connecting members located on both sides of the base can rotate relative to each other based on the base so that the hinge mechanism can be converted between the unfolded state and the folded state; when the hinge mechanism is in the folded state, the supporting member is located between the first swing arms located on both sides of the base.

[0040] In some embodiments of the first aspect, the first swing arm comprises:

[0041] A first arm portion rotatably connected to the base; and

[0042] At least two second arms connected to the first arm and arranged in sequence along the direction of the rotation axis of the first arm;

[0043] Among them, in the first swing arm and the connecting member located on the same side of the base, the second arm portion of the first swing arm is provided with the first arc-shaped sliding portion, and the connecting member is provided with a plurality of the first arc-shaped sliding matching portions, and the first arc-shaped sliding portion is slidably matched with the first arc-shaped sliding matching portions in a one-to-one correspondence;

[0044] In the fourth swing arm and the first swing arm located on the same side of the base, the fourth swing arm is located between two adjacent second arm portions of the first swing arm.

[0045] In a second aspect, an embodiment of the present application provides a terminal device, the terminal device comprising:

[0046] A folding device, comprising a first shell, a second shell and the hinge mechanism described in any embodiment of the first aspect; the first shell is connected to the connecting member on one side of the base, and the second shell is connected to the connecting member on the other side of the base; and

[0047] A folding screen is arranged on the first shell and the second shell, and the position of the foldable part of the folding screen corresponds to the position of the rotating shaft mechanism.

[0048] It can be understood that the beneficial effects of the second aspect mentioned above can be found in the relevant description of the first aspect mentioned above, and will not be repeated here. BRIEF DESCRIPTION OF THE DRAWINGS

[0049] Figure 1 Schematic diagrams of structures of electronic devices in an unfolded state in some cases;

[0050] Figure 2 Schematic diagrams of structures of electronic devices in a folded state in some cases;

[0051] Figure 3 Schematic diagrams of the structure of the folding mechanism in the unfolded state in some cases;

[0052] Figure 4 Schematic diagrams of the structure of the folding mechanism in a folded state in some cases;

[0053] Figure 5 A schematic diagram of the structure of a terminal device in an unfolded state provided in some embodiments of the present application;

[0054] Figure 6 for Figure 5 A schematic diagram of the structure of the terminal device shown in the folded state;

[0055] Figure 7 A schematic diagram of the structure of the rotating shaft mechanism provided in some embodiments of the present application when in an expanded state;

[0056] Figure 8 for Figure 7 A schematic diagram of the structure of the rotating shaft mechanism when it is in a folded state;

[0057] Fig. 9 for Figure 7 A schematic cross-sectional view of the rotating shaft mechanism in an unfolded state;

[0058] Fig.10 for Figure 7 A cross-sectional schematic diagram of the rotating shaft mechanism in the folded state cooperating with the folding screen;

[0059] Fig.11 for Figure 7 An exploded view of the shaft mechanism shown;

[0060] Fig.12 A schematic diagram of the structure of the rotating shaft mechanism provided in some other embodiments of the present application when it is in an expanded state;

[0061] Fig.13 for Fig.12 A schematic diagram of the structure of the rotating shaft mechanism when it is in a folded state;

[0062] Fig.14 for Fig.12 An exploded view of the shaft mechanism shown;

[0063] Fig.15 A schematic diagram of the structure of the rotating shaft mechanism provided in some other embodiments of the present application when it is in an expanded state;

[0064] Fig.16 for Fig.15 A schematic diagram of the structure of the rotating shaft mechanism when it is in a folded state;

[0065] Fig.17 for Fig.15 An exploded view of the shaft mechanism shown;

[0066] Fig.18A schematic diagram of the structure of the rotating shaft mechanism provided in some other embodiments of the present application when it is in an expanded state;

[0067] Fig.19 for Fig.18 A schematic diagram of the structure of the rotating shaft mechanism when it is in a folded state;

[0068] Fig. 20 for Fig.18 Exploded view of the shaft mechanism shown.

[0069] Among them, the reference numerals in the figure are:

[0070] 1. Electronic device; 01. Body; 02. Flexible display screen; 021. Flexible deformable portion; 011. Folding mechanism; 0111. Support seat; 01111. Side edge; 0112. Auxiliary swing arm; 01121. Arched portion; 0113. Fixed block; 012. First side panel; 013. Second side panel;

[0071] 10000, terminal device; 2000, folding screen; 2100, foldable part;

[0072] 1000, folding device; 200, first shell; 300, second shell;

[0073] 100, shaft mechanism; 10, base; 20, connecting member; 30, first swing arm; 301, first arc-shaped sliding portion; 201, first arc-shaped sliding fitting portion;

[0074] 41, synchronization assembly; 411, first gear; 412, second gear; 413, third gear; 414, fourth gear;

[0075] 42, damping assembly; 421, first cam structure; 422, first moving member; 423, second cam structure; 424, elastic member; 425, third cam structure; 426, second moving member; 427, fourth cam structure;

[0076] 51, first rotating shaft; 60, second swing arm; 52, second rotating shaft; 601, second arc-shaped sliding part; 202, second arc-shaped sliding matching part; 602, first sliding connection part; 203, first straight slide groove; 603, third arc-shaped sliding part; 101, third arc-shaped sliding matching part; 53, third rotating shaft; 61, third swing arm; 604, second sliding connection part; 204, second straight slide groove; 54, fourth rotating shaft; 310, arc-shaped surface;

[0077] 70. fourth swing arm; 701. track groove; 302. sliding body; 702. fourth arc-shaped sliding portion; 205. fourth arc-shaped sliding fitting portion; 31. first arm portion; 32. second arm portion. DETAILED DESCRIPTION

[0078] Embodiments of the present application are described in detail below, and examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present application, and should not be construed as limiting the present application.

[0079] In the description of the present application, it should be understood that the terms "length", "width", "thickness", "top", "bottom", "inside", "outside", "up", "down", "left", "right", etc., indicating the orientation or position relationship are based on the orientation or position relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present application.

[0080] The terms "first", "second", "third", "fourth", etc. are only used to distinguish descriptions, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of indicated technical features. For example, the first swing arm and the second swing arm are only used to distinguish different swing arms, and their order is not limited. The first swing arm can also be named as the second swing arm, and the second swing arm can also be named as the first swing arm without departing from the scope of the various described embodiments. And the terms "first", "second", "third", "fourth", etc. do not limit the indicated features to be different.

[0081] In this application, unless otherwise clearly specified and defined, the terms "connected", "connected" and the like should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral one. The relationship between the two components defined by the terms "connected", "connected", "fixed" and the like can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, it can be the internal connection of the two elements or the interaction relationship between the two elements. For those of ordinary skill in the art, the specific meanings of the above terms in this application can be understood according to the specific circumstances.

[0082] In this application, "and / or" is only a description of the association relationship of associated objects, indicating that there can be three relationships; for example, A and / or B can mean that A exists alone, A and B exist at the same time, and B exists alone. In addition, the character " / " in this article generally indicates that the associated objects before and after are in an "or" relationship.

[0083] It should be noted that, in this application, words such as "in some embodiments", "exemplarily", "for example", etc. are used to indicate examples, illustrations or descriptions. Any embodiment or design described in this application as "in some embodiments", "exemplarily", "for example" should not be interpreted as being more preferred or more advantageous than other embodiments or designs. Specifically, the use of words such as "in some embodiments", "exemplarily", "for example", etc. is intended to present related concepts in a specific way.

[0084] In order to make the objectives, technical solutions and advantages of the present application more clearly understood, the present application is further described in detail below in conjunction with the accompanying drawings and embodiments.

[0085] See also Figure 1 and Figure 2 , Figure 1 shows a front view of a foldable electronic device 1 in an unfolded state in some cases, Figure 2 Shows Figure 1 The electronic device 1 is shown in a front view in a folded state.

[0086] The electronic device 1 includes a body 01 and a flexible display screen 02 disposed on the body 01. The body 01 includes a folding mechanism 011, a first side panel 012, and a second side panel 013. The first side panel 012 and the second side panel 013 are respectively connected to the two sides of the folding mechanism 011, and can rotate between an unfolded state and a folded state based on the folding mechanism 011. The flexible display screen 02 is disposed on the first side panel 012 and the second side panel 013. The position of a flexibly deformable portion 021 of the flexible display screen 02 corresponds to the position of the folding mechanism 011; the flexibly deformable portion 021 can be bent so that the flexible display screen 02 can be folded or unfolded as the first side panel 012 and the second side panel 013 rotate.

[0087] See also Figure 1 When the electronic device 1 is in the unfolded state, the angle between the first side panel 012 and the second side panel 013 is approximately 180°, the flexible display screen 02 is approximately flat, and the flexibly deformable portion 021 of the flexible display screen 02 is approximately flat.

[0088] See also Figure 2 When the electronic device 1 is in a folded state, the angle between the first side panel 012 and the second side panel 013 is approximately 0°, the flexibly deformable portion 021 of the flexible display screen 02 is bent, and the flexible display screen 02 is located between the first side panel 012 and the second side panel 013 .

[0089] When the electronic device 1 is in a folded state, if the size of the folding mechanism 011 is set to be small, especially when the thickness size is set to be small, it is difficult to provide sufficient accommodation space for the flexibly deformable part 021. The folding mechanism 011 is likely to interfere with the flexibly deformable part 021, and then exert force on the flexibly deformable part 021, which may cause the flexibly deformable part 021 to have defects such as arching and wrinkling, or even damage, thereby affecting the appearance and service life of the flexible display screen 02 in the folded state, and thus affecting the service life of the electronic device 1 and the user experience.

[0090] For example, see Figure 3 and Figure 4 , Figure 3 The diagram shows the cooperation between the folding mechanism 011 and the flexibly deformable portion 021 of the flexible display screen 02 in the unfolded state. Figure 4 The diagram illustrates the cooperation between the folding mechanism 011 and the flexibly deformable portion 021 of the flexible display screen 02 in the folded state.

[0091] The folding mechanism 011 includes a support seat 0111, two auxiliary swing arms 0112 respectively arranged on both sides of the support seat 0111, and two fixed blocks 0113 respectively arranged on both sides of the support seat 0111. One end of the auxiliary swing arm 0112 is rotatably connected to the support seat 0111 through a rotating shaft, and the other end of the auxiliary swing arm 0112 is slidably matched with the linear slide groove of the fixed block 0113. The two fixed blocks 0113 are respectively used to be fixedly connected to the first side plate 012 and the second side plate 013. When the electronic device 1 is converted between the folded state and the unfolded state, the first side plate 012 and the second side plate 013 respectively drive the two fixed blocks 0113 to rotate relative to the support seat 0111, and the fixed block 0113 drives the auxiliary swing arm 0112 on the same side to rotate relative to the support seat 0111, and the auxiliary swing arm 0112 slides in the linear slide groove. When the electronic device 1 is converted from the unfolded state to the folded state, or from the folded state to the unfolded state, the rotation angles of the fixed block 0113 and the auxiliary swing arm 0112 relative to the support base 0111 are the same, both of which are fixed at 90°.

[0092] In order to enable the auxiliary swing arm 0112 to avoid the side edge 01111 of the support seat 0111 when the electronic device 1 is in the unfolded state, the auxiliary swing arm 0112 generally has an arched portion 01121, so that a recessed portion is formed on the back of the arched portion 01121, and the side edge 01111 of the support seat 0111 can be avoided through the recessed portion. However, when the electronic device 1 is converted from the unfolded state to the folded state, since the auxiliary swing arm 0112 needs to rotate 90°, the arched portion 01121 of the auxiliary swing arm 0112 is likely to interfere with the flexibly deformable portion 021 of the flexible display screen 02, which is likely to affect the shape of the flexible display screen 02, and even cause damage to the flexible display screen 02.

[0093] Therefore, the current size of the folding mechanism 011 is still relatively large. When it is necessary to ensure that the folding mechanism 011 and components such as the flexible display screen 02 cooperate normally without interference, it is difficult to further reduce the size of the folding mechanism 011 (especially the size of the folding mechanism 011 along the width direction when it is in the folded state, where the width direction refers to the direction in which the auxiliary swing arm 0112 on one side of the support base 0111 points to the auxiliary swing arm 0112 on the other side), resulting in difficulty in further slimming down the electronic device 1.

[0094] In view of this, an embodiment of the present application provides a hinge mechanism, a folding device including the hinge mechanism, and a terminal device including the folding device, which can improve the technical problem in the related art that the size of the folding mechanism is difficult to further reduce due to interference between the folding mechanism and the flexible display screen.

[0095] The terminal device provided in the embodiment of the present application belongs to a foldable electronic device, that is, an electronic device that can be folded and unfolded. The terminal device can be a mobile phone, a tablet computer, a laptop computer (Laptop), a notebook computer (Notebook PC), a personal digital assistant (Personal Digital Assistant, PDA), a wearable device (such as a watch), a vehicle-mounted device, an augmented reality (Augmented Reality, AR) / virtual reality (Virtual Reality, VR) device, etc., but is not limited thereto.

[0096] See also Figure 5 and Figure 6 , Figure 5 1 shows a schematic diagram of a three-dimensional structure of a terminal device 10000 provided in some embodiments of the present application in an unfolded state. Figure 6 Shows Figure 5 The terminal device 10000 is shown in a front view in a folded state. For ease of understanding, in the embodiments of the present application, the terminal device 10000 is described as a mobile phone as an example.

[0097] Under different usage requirements, the terminal device 10000 can be unfolded to the unfolded state, folded to the folded state, or in an intermediate state between the unfolded state and the folded state. It should be understood that the intermediate state can be any state of the terminal device 10000 between the unfolded state and the folded state, but not the only state.

[0098] The terminal device 10000 includes a folding device 1000 and a folding screen 2000, wherein the folding screen 2000 is arranged on the folding device 1000. The folding device 1000 can provide support and protection for the folding screen 2000, and can be folded or unfolded. The folding screen 2000 is a flexible screen, which can be folded or unfolded together with the folding device 1000. It can be understood that the folding screen 2000 can be used to display information and provide an interactive interface for the user, and can be a variety of types of display screens.

[0099] The folding device 1000 includes a hinge mechanism 100, a first housing 200, and a second housing 300. The hinge mechanism 100 is located between the first housing 200 and the second housing 300, and is respectively connected to the first housing 200 and the second housing 300. The first housing 200 and the second housing 300 can rotate relative to each other based on the hinge mechanism 100, so that the terminal device 10000 can be relatively rotated close to each other (i.e., rotated toward each other) to put the terminal device 10000 in a folded state, and can be relatively rotated away from each other (i.e., rotated away from each other) to put the terminal device 10000 in an unfolded state.

[0100] It is understandable that the number of the rotating shaft mechanism 100 can be one or more. When the number of the rotating shaft mechanism 100 is multiple, each rotating shaft mechanism 100 can be arranged in sequence and spaced apart, and all are located between the first shell 200 and the second shell 300 .

[0101] Please continue reading Figure 5 and Figure 6 The folding screen 2000 is arranged on the first shell 200 and the second shell 300, and can be folded or unfolded as the first shell 200 and the second shell 300 rotate. The folding screen 2000 has a foldable portion 2100, and the position of the foldable portion 2100 corresponds to the position of the hinge mechanism 100, that is, the foldable portion 2100 is arranged opposite to the hinge mechanism 100. The foldable portion 2100 is flexible, so that when the first shell 200 and the second shell 300 rotate relative to each other, the folding screen 2000 can be folded by bending the foldable portion 2100. When the folding screen 2000 is in a folded state, the foldable portion 2100 can be in a teardrop shape or a U shape, but is not limited to this shape.

[0102] It can be understood that the portion of the folding screen 2000 corresponding to the first housing 200 can be flexible or rigid. The portion of the folding screen 2000 corresponding to the second housing 300 can be flexible or rigid.

[0103] The front side of the folding screen 2000 is the side facing away from the hinge mechanism 100, that is, the display surface of the folding screen 2000 for displaying images. The back side of the folding screen 2000 is the side facing the hinge mechanism 100, which can also be regarded as the non-display surface of the folding screen 2000.

[0104] See also Figure 5 When the terminal device 10000 is in the unfolded state, the folding device 1000 and the folding screen 2000 are also in the unfolded state, and the first surface of the first housing 200 for mounting the folding screen 2000 and the second surface of the second housing 300 for mounting the folding screen 2000 are approximately in the same plane, that is, the angle between the first surface and the second surface is approximately 180°; at this time, the folding screen 2000 is approximately flat, so that the terminal device 10000 has a larger display area. It should be understood that when the folding device 1000 is in the unfolded state, the angle between the first surface and the second surface is not limited to an absolute 180°, and the angle between the two can also be greater than or less than 180°, but close to 180°, for example, the angle can range from 165 to 190° (for example, 170°, 173°, 175°, 182°, 185°, etc., but not limited thereto), and the unfolding of the folding screen 2000 can also be achieved.

[0105] See also Figure 6 When the terminal device 10000 is in the folded state, the folding device 1000 and the folding screen 2000 are also in the folded state, and the first surface of the first housing 200 for mounting the folding screen 2000 and the second surface of the second housing 300 for mounting the folding screen 2000 are arranged relatively and substantially parallel, that is, the angle between the first surface and the second surface is substantially 0°; at this time, the folding screen 2000 is folded relative to the foldable portion 2100 and is in the folded state, so as to facilitate the storage of the terminal device 10000. It should be understood that when the folding device 1000 is in the unfolded state, it is not limited to that the first surface and the second surface are absolutely parallel, and the angle between the two can also be greater than 0°, but close to 0°, for example, the angle can range from 0° to 15 (for example, 1°, 2°, 3°, 5°, 10°, etc., but not limited thereto), and the folding of the folding screen 2000 can also be achieved.

[0106] In some embodiments, see Figure 5 and Figure 6 The terminal device 10000 may be an inward-folding terminal device, and the folding screen 2000 is an inward-folding folding screen. After the folding screen 2000 is folded, the folding screen 2000 is located between the first shell 200 and the second shell 300.

[0107] Of course, in some other embodiments, the terminal device 10000 may also be an outward folding terminal device, and the folding screen 2000 is an outward folding folding screen. After the folding screen 2000 is folded, the display surface of the folding screen 2000 is exposed, and the first shell 200 and the second shell 300 are located between the folding screen 2000.

[0108] In some embodiments, at least one of the first shell 200 and the second shell 300 may be provided with an installation space for installing the electronic components of the terminal device 10000. For example, the electronic components may include circuit boards, batteries, receivers, speakers, cameras, etc., but are not limited thereto. Among them, the circuit board can integrate the main controller, storage unit, antenna module, power management module and other electronic components of the terminal device 10000, and the battery can power the folding screen 2000, circuit board, receiver, speaker, camera and other electronic components. The shape and structure of the first shell 200 and the second shell 300 may be the same or different, and are not limited in the embodiment of the present application. The first shell 200 and the second shell 300 may be a middle frame structure, and the specific shape and structure may be set as needed, and are not limited in the embodiment of the present application.

[0109] Next, the rotating shaft mechanism 100 provided in the embodiment of the present application will be introduced and described.

[0110] In order to facilitate the description of the embodiments below, an XYZ three-axis rectangular coordinate system is established, and the width direction of the hinge mechanism 100 is defined as the X-axis direction, which is parallel to the direction in which the first shell 200 points to the second shell 300 when the terminal device 10000 is in the unfolded state; the length direction of the hinge mechanism 100 is defined as the Y-axis direction, which is parallel to the direction in which one end of the first shell 200 points to the opposite other end when the terminal device 10000 is in the unfolded state; the thickness direction of the hinge mechanism 100 is defined as the Z-axis direction, which is parallel to the direction in which the first shell 200 points to the folding screen 2000 when the terminal device 10000 is in the unfolded state, that is, parallel to the thickness direction of the terminal device 10000. The X-axis direction, the Y-axis direction, and the Z-axis direction are perpendicular to each other. The X-axis direction includes the positive direction of the X-axis and the negative direction of the X-axis, and the Y-axis direction and the Z-axis direction are the same. It should be understood that the coordinate system of the hinge mechanism 100 can be flexibly set according to actual needs. This application only gives an example and cannot be considered as a special limitation to this application.

[0111] See also Figures 7 to 11 , Figure 7 1 shows a schematic diagram of a three-dimensional structure of a rotating shaft mechanism 100 provided in some embodiments of the present application in an unfolded state. Figure 8 Shows Figure 7 The three-dimensional structural diagram of the rotating shaft mechanism 100 in the folded state is shown. Fig. 9 Shows Figure 7 The cross-sectional schematic diagram of the rotating shaft mechanism 100 in the unfolded state is shown. Fig.10 Shows Figure 7 The cross-sectional schematic diagram of the hinge mechanism 100 in the folded state cooperating with the foldable portion 2100 of the folding screen 2000 is shown. Fig.11 Shows Figure 7An exploded view of the rotating shaft mechanism 100 is shown.

[0112] The rotating shaft mechanism 100 includes a base 10, at least two connecting members 20 and at least two first swing arms 30. Each connecting member 20 is disposed on both sides of the base 10. Each first swing arm 30 is disposed on both sides of the base 10, and the first swing arm 30 is rotatably connected to the base 10. Among them, in the first swing arm 30 and the connecting member 20 located on the same side of the base 10, a first arc-shaped sliding portion 301 is provided on the first swing arm 30, and a first arc-shaped sliding matching portion 201 is provided on the connecting member 20. The first arc-shaped sliding portion 301 is slidably matched with the first arc-shaped sliding matching portion 201, so that the first swing arm 30 is rotatably connected to the connecting member 20.

[0113] It is understood that the base 10 can support and connect the first swing arm 30, and can be various regular or irregular structures, such as a block structure, a frame structure, a shell structure, a plate structure, etc., but not limited thereto. The base 10 can be a single component or an assembly including a plurality of assembled components. In some cases, the base 10 is also referred to as a main shaft, a main body, etc.

[0114] It can be understood that each connecting member 20 is disposed on both sides of the base 10, which means that both sides of the base 10 are arranged with connecting members 20, but the number of connecting members 20 on each side can be one or more, and the number of connecting members 20 on both sides of the base 10 can be the same or different. It should be understood that the two sides of the base 10 refer to the two sides with the central longitudinal section m of the base 10 as the dividing interface, and the central longitudinal section m is a plane parallel to the length direction (i.e., the Y-axis direction) and thickness direction (i.e., the Z-axis direction) of the base 10 and bisecting the base 10 along the width direction (i.e., the X-axis direction) of the base 10. By analogy, the two sides of the components appearing in the following text refer to the two sides with the central longitudinal section of the component as the dividing interface. Optionally, the connecting members 20 on both sides of the base 10 can be arranged relative to each other, that is, they are approximately in the same position in the length direction of the base 10, Figure 7 and Figure 8 Of course, in some other embodiments, the connectors 20 on both sides of the base 10 may not be arranged opposite to each other, that is, they may be staggered along the length direction of the base 10 .

[0115] The connecting member 20 on one side of the base 10 is used to be fixedly connected to the first shell 200, and the connecting member 20 on the other side of the base 10 is used to be fixedly connected to the second shell 300. When the first shell 200 and the second shell 300 rotate relative to each other, the connecting members 20 on both sides of the base 10 are respectively driven to rotate. Optionally, the connecting member 20 on one side of the base 10 and the first shell 200 can be separately formed and connected, for example, they can be connected by fasteners (such as bolts, screws, pins, rivets, etc.); of course, in some other embodiments, the connecting member 20 on one side of the base 10 and the first shell 200 can also be an integral structure formed in one piece. Similarly, the connecting member 20 on the other side of the base 10 and the second shell 300 can be separately formed and connected, or they can be an integral structure formed in one piece. The connecting member 20 can be a structural member of various regular or irregular shapes, for example, it can be a block structure, a plate structure, a frame structure, etc., but it is not limited thereto.

[0116] It can be understood that the first swing arms 30 are arranged on both sides of the base 10, which means that the first swing arms 30 are arranged on both sides of the base 10, but the number of the first swing arms 30 on each side can be one or more, and the number of the first swing arms 30 on both sides of the base 10 can be the same or different. The first swing arm 30 can be connected to the base 10 by various rotational connection methods, so that the first swing arm 30 can rotate relative to the base 10 while being connected to the base 10. The rotation axes of the first swing arms 30 rotating relative to the base 10 can be arranged roughly parallel, and of course there can be a certain deviation but close to parallel, that is, manufacturing errors, assembly errors, etc. are allowed. The rotation axis of the first swing arm 30 rotating relative to the base 10 can be roughly parallel to the length direction of the base 10.

[0117] The first swing arm 30 can be a swing arm structure of various shapes and can be set according to actual needs, which is not limited in the embodiments of the present application. The main function of the first swing arms 30 on both sides of the base 10 is to rotate relative to the base 10. For the convenience of description, they are all called first swing arms, but the shapes and structures of the first swing arms 30 on both sides of the base 10 can be the same or different.

[0118] Since the first swing arm 30 and the connecting member 20 located on the same side of the base 10 are rotatably connected by the first arc-shaped sliding portion 301 and the first arc-shaped sliding matching portion 201 slidingly matching, the first arc-shaped sliding portion 301 and the first arc-shaped sliding matching portion 201 slide relatively along the arc-shaped trajectory to achieve relative rotation. The first arc-shaped sliding portion 301 and the first arc-shaped sliding matching portion 201 are both arc-shaped structures, and can be various forms of arc-shaped structures, as long as the two can slide relatively along the arc-shaped trajectory. The first arc-shaped sliding portion 301 and the first swing arm 30 can be an integral structure formed in one piece, or they can be formed separately and fixedly connected; similarly, the first arc-shaped sliding matching portion 201 and the connecting member 20 can be an integral structure formed in one piece, or they can be formed separately and fixedly connected.

[0119] The connectors 20 located on both sides of the base 10 can rotate relative to the base 10 to switch the hinge mechanism 100 between the unfolded state and the folded state. When the hinge mechanism 100 is applied to the terminal device 10000, as the terminal device 10000 switches between the unfolded state and the folded state, the hinge mechanism 100 also switches between the unfolded state and the folded state synchronously.

[0120] Please refer to Fig. 9 , Fig.10 When the hinge mechanism 100 is converted from the unfolded state to the folded state, the connecting members 20 located on both sides of the base 10 relatively move closer to each other and rotate, and the connecting member 20 drives the first swing arm 30 to rotate relative to the base 10, and the first swing arm 30 located on both sides of the base 10 also relatively move closer to each other and rotate. At the same time, the first arc-shaped sliding portion 301 and the first arc-shaped sliding matching portion 201 slide relatively to each other, so that the connecting member 20 and the first swing arm 30 rotate relatively, and the connecting member 20 roughly moves away from the base 10 and away from the first swing arm 30, which can be regarded as the length of the assembly formed by the connecting member 20 and the first swing arm 30 being extended.

[0121] Please refer to Fig.10 , Fig. 9 When the hinge mechanism 100 is converted from the folded state to the unfolded state, the connecting members 20 located on both sides of the base 10 rotate relatively away from each other, and the connecting member 20 drives the first swing arm 30 to rotate relative to the base 10. The first swing arm 30 located on both sides of the base 10 also rotates relatively away from each other. At the same time, the first arc-shaped sliding portion 301 slides relatively with the first arc-shaped sliding matching portion 201 to make the connecting member 20 and the first swing arm 30 rotate relatively. The connecting member 20 moves roughly toward the base 10 and close to the first swing arm 30, which can be regarded as a shortening of the length of the assembly formed by the connecting member 20 and the first swing arm 30.

[0122] When the terminal device 10000 is an inward-folding terminal device, when the hinge mechanism 100 is in the folded state, a storage space for accommodating the foldable portion 2100 of the folding screen 2000 can be formed between the first swing arms 30 located on both sides of the base 10. As the hinge mechanism 100 rotates from the unfolded state to the folded state, the connector 20 and the first swing arm 30 rotate relative to each other through the relative sliding of the first arc-shaped sliding portion 301 and the first arc-shaped sliding matching portion 201, so that the angle through which the first swing arm 30 rotates relative to the base 10 can be smaller than the angle through which the connector 20 rotates relative to the base 10. Compared with the 90° angle at which the first swing arm 30 and the connector 20 rotate and are fixed, it is beneficial to increase the storage space formed between the first swing arms 30 located on both sides of the base 10, and reduce the possibility of interference between the first swing arm 30 and the foldable portion 2100.

[0123] It can be understood that by changing the positions of the centers of the first arc-shaped sliding portion 301 and the first arc-shaped sliding mating portion 201, the angle through which the first swing arm 30 rotates relative to the base 10 during the process of the hinge mechanism 100 rotating from the unfolded state to the folded state can be changed. Therefore, the rotation angle of the first swing arm 30 can be designed according to actual needs, and is not solely limited in the embodiments of the present application.

[0124] According to the above description, the pivot mechanism 100 provided in the embodiment of the present application realizes a rotational connection between the first swing arm 30 and the connecting member 20 through the sliding cooperation between the first circular arc sliding portion 301 and the first circular arc sliding cooperation portion 201. It can be regarded that the first swing arm 30 and the connecting member 20 are rotationally connected through a virtual axis. When the pivot mechanism 100 is converted between the unfolded state and the folded state, the rotation angle of the first swing arm 30 relative to the base 10 and the rotation angle of the connecting member 20 relative to the base 10 may be different. Therefore, when the hinge mechanism 100 is applied to the terminal device 10000, during the process of the terminal device 10000 rotating from the unfolded state to the folded state, the angle through which the first swing arm 30 rotates relative to the base 10 can be designed as needed, and does not need to be the same as the angle through which the connecting member 20 rotates relative to the base 10. This can reduce the possibility of interference between the first swing arm 30 and the folding screen 2000 of the terminal device 10000 when the terminal device 10000 is in the folded state, which provides space for further reducing the size of the hinge mechanism 100. For example, it is beneficial to reduce the size of the hinge mechanism 100 along the width direction in the folded state, which is beneficial to further miniaturization of the size of the hinge mechanism 100, thereby facilitating a lightweight design of the terminal device 10000.

[0125] In some embodiments, see Fig. 9 and Fig.10When the hinge mechanism 100 is converted from the unfolded state to the folded state, the rotation angle of the first swing arm 30 relative to the base 10 is less than 90°, that is, the angle through which the first swing arm 30 rotates from the unfolded state to the folded state relative to the base 10 is less than 90°, for example, it can be 50°, 60°, 65°, 70°, 73°, 80°, 85°, etc., but is not limited thereto.

[0126] Similarly, when the hinge mechanism 100 is transformed from the folded state to the unfolded state, the rotation angle of the first swing arm 30 relative to the base 10 is also less than 90°.

[0127] Such arrangement, compared with the case where the angle through which the first swing arm 30 rotates relative to the base 10 from the unfolded state to the folded state is greater than or equal to 90°, can reduce the possibility of the first swing arm 30 interfering with the foldable portion 2100 of the folding screen 2000 in the folded state, thereby providing space for further reducing the size of the hinge mechanism 100, which is beneficial to further miniaturization of the size of the hinge mechanism 100, thereby facilitating a lightweight design of the terminal device 10000.

[0128] In some embodiments, see Figures 9 to 11 One of the first arc-shaped sliding portion 301 and the first arc-shaped sliding matching portion 201 is an arc-shaped slide rail, and the other is an arc-shaped slide groove. Figures 9 to 11 In the figure, the first arc-shaped sliding part 301 is an arc-shaped slide rail, and the first arc-shaped sliding matching part 201 is an arc-shaped slide groove. Of course, the two can also be exchanged, that is, the first arc-shaped sliding part 301 is an arc-shaped slide groove, and the first arc-shaped sliding matching part 201 is an arc-shaped slide rail. The first arc-shaped sliding part 301 is in surface contact with the first arc-shaped sliding matching part 201, and the arc-shaped slide rail can slide inside the arc-shaped slide groove along the groove wall of the arc-shaped slide groove and contact the groove wall surface of the arc-shaped slide groove.

[0129] It can be understood that the arc-shaped slide rail can be an arc-shaped slide rail of various structural forms, for example, it can be a plate-shaped arc-shaped slide rail ( Figures 7 to 11 This situation is exemplarily shown in FIG), and it can also be a convex arc-shaped slide rail, but is not limited to this, as long as it can slide with the arc-shaped slide groove along the arc-shaped track.

[0130] Such arrangement, since the arc-shaped slide rail and the arc-shaped slide groove are slidably matched and the two are in surface contact, compared with point contact and line contact, is beneficial to improving the stability and reliability of the relative sliding of the first arc-shaped sliding part 301 and the first arc-shaped sliding matching part 201, thereby improving the stability of the rotational cooperation between the first swing arm 30 and the connecting member 20.

[0131] Optionally, see Figure 7 , Figure 8 and Fig.11 The first arc-shaped sliding fitting portion 201 is an arc-shaped slide groove, which can penetrate the upper surface of the connecting member 20 to form an opening, so as to avoid the first swing arm 30 through the opening, which is conducive to reducing the overall thickness of the first swing arm 30 and the connecting member 20. The upper surface of the connecting member 20 refers to the surface of the connecting member 20 facing the folding screen 2000. Of course, in some other embodiments, the arc-shaped slide groove may not penetrate the upper surface of the connecting member 20.

[0132] It should be noted that the cooperation between the first arc-shaped sliding portion 301 and the first arc-shaped sliding matching portion 201 is not limited to the cooperation between the arc-shaped slide rail and the arc-shaped slide groove.

[0133] Optionally, in some other embodiments, the first arc-shaped sliding portion 301 and the first arc-shaped sliding fitting portion 201 can both be arc-shaped slide plates or arc-shaped slide rails, and the outer walls of the two include arc-shaped walls. The arc-shaped wall of the first arc-shaped sliding portion 301 is slidably fitted with the arc-shaped wall of the first arc-shaped sliding fitting portion 201 and is in surface contact, and the two can also slide along the arc-shaped trajectory to enable the first swing arm 30 to be rotatably connected with the connecting member 20.

[0134] In order to improve the stability of the sliding fit between the first arc-shaped sliding part 301 and the first arc-shaped sliding fitting part 201, optionally, a limit member (which may be a rod-shaped structure, a block-shaped structure or a plate-shaped structure, etc., but not limited to this) can be set on one of the first arc-shaped sliding part 301 and the first arc-shaped sliding fitting part 201, and a limit slide groove can be set on the other one. The limit member can be inserted into the limit slide groove. When the first arc-shaped sliding part 301 and the first arc-shaped sliding fitting part 201 slide relative to each other, the limit member slides in the limit slide groove to limit the first arc-shaped sliding part 301 and the first arc-shaped sliding fitting part 201 from disengaging.

[0135] Optionally, in some other embodiments, one of the first arc-shaped sliding portion 301 and the first arc-shaped sliding matching portion 201 can be an arc-shaped groove, and the other can include multiple sub-sliding portions (the sub-sliding portions can be rod-shaped structures, block-shaped structures, etc., but are not limited to this), each sub-sliding portion is slidably arranged in the arc-shaped groove, and the sub-sliding portion and the groove wall of the arc-shaped groove can be in point contact, line contact or surface contact, which can also realize the relative sliding of the first arc-shaped sliding portion 301 and the first arc-shaped sliding matching portion 201 along an arc-shaped trajectory.

[0136] The first swing arm 30 can be a variety of types of swing arms, for example, a synchronous swing arm or a main swing arm. Below, the case where the first swing arm 30 is a synchronous swing arm will be exemplarily introduced.

[0137] In some embodiments, see Figures 7 to 11 The first swing arm 30 is a synchronous swing arm, which is also called an auxiliary swing arm in some cases. The synchronous swing arm refers to a swing arm that rotates synchronously, that is, the first swing arms 30 located on both sides of the base 10 rotate synchronously (synchronous rotation can be achieved through various synchronous connection methods).

[0138] In the related art, the synchronous swing arm usually needs to rotate a fixed 90° from the unfolded state to the folded state, which makes it easy for the synchronous swing arm to interfere with the folding screen 2000 in the folded state. In the embodiment of the present application, since the first swing arm 30 and the connecting member 20 are rotatably connected by the sliding cooperation of the first arc-shaped sliding portion 301 and the first arc-shaped sliding cooperation portion 201, the angle of rotation of the first swing arm 30, which is the synchronous swing arm, from the unfolded state to the folded state can be less than 90°, which can reduce the possibility of the synchronous swing arm interfering with the folding screen 2000 in the folded state, and break through the bottleneck in the current industry solution that the synchronous swing arm needs to rotate 90° from the unfolded state to the folded state and is easy to interfere with the folding screen, which makes it difficult to further miniaturize the overall size of the hinge mechanism, which is conducive to the further miniaturization design of the hinge mechanism 100, and further conducive to the thin and light design of the terminal device 10000.

[0139] Optionally, in some embodiments, see Figure 7 , Figure 8 and Fig.11 The rotating shaft mechanism 100 further includes a synchronization component 41 , and the first swing arms 30 located on both sides of the base 10 are connected via the synchronization component 41 .

[0140] With such arrangement, the first swing arms 30 located on both sides of the base 10 can be linked via the synchronization component 41 to achieve synchronous rotation, that is, they can be synchronously rotated closer to each other to a folded state, or synchronously rotated away from each other to an unfolded state.

[0141] It can be understood that the synchronization component 41 can be any component used to synchronize the rotation of two components, such as various types of gear components, worm gear transmission components, friction wheel transmission components, etc., but is not limited thereto.

[0142] In one possible implementation, see Figure 7 and Fig.11The synchronization component 41 may include a first gear 411, a second gear 412, a third gear 413 and a fourth gear 414 that are meshed and connected in sequence. The first gear 411 is connected to the first swing arm 30 located on one side of the base 10, and the fourth gear 414 is connected to the first swing arm 30 located on the other side of the base 10. Therefore, when the first swing arm 30 located on one side of the base 10 rotates relative to the base 10, the first gear 411 can be driven to rotate synchronously. The first gear 411 can be meshed with the second gear 412 and the third gear 413 to transmit the fourth gear 414, and the fourth gear 414 can drive the first swing arm 30 located on the other side of the base 10 to rotate, and the rotation directions of the first swing arms 30 located on both sides of the base 10 are opposite. The first gear 411 can be directly connected to the first swing arm 30 located on one side of the base 10 (can be integrally formed or separately formed and fixedly connected), or can be indirectly connected through a rotating shaft; similarly, the fourth gear 414 can be directly connected to the first swing arm 30 located on the other side of the base 10 (can be integrally formed or separately formed and fixedly connected), or can be indirectly connected through a rotating shaft.

[0143] For example, see Figure 7 and Fig.11 The first gear 411 , the second gear 412 , the third gear 413 and the fourth gear 414 may all be spur gears, and the rotation axes of the first gear 411 , the second gear 412 , the third gear 413 and the fourth gear 414 are substantially parallel.

[0144] For example, the rotation axis of the first gear 411 may be perpendicular to the rotation axis of the second gear 412, the rotation axis of the third gear 413 may be perpendicular to the rotation axis of the fourth gear 414, and the rotation axis of the first gear 411 may be parallel to the rotation axis of the fourth gear 414. The first gear 411, the second gear 412, the third gear 413 and the fourth gear 414 may all be helical gears to achieve meshing transmission from the first gear 411 to the fourth gear 414; one of the first gear 411 and the second gear 412 may be a spur gear and the other may be a face gear, and one of the third gear 413 and the fourth gear 414 may be a spur gear and the other may be a face gear, and the meshing transmission from the first gear 411 to the fourth gear 414 may also be achieved.

[0145] It should be noted that the synchronization component 41 is not limited to four gears including the first gear 411, the second gear 412, the third gear 413 and the fourth gear 414; it can also include two meshing gears, one of which is connected to the first swing arm 30 located on one side of the base 10, and the other is connected to the first swing arm 30 located on the other side of the base 10, so that the first swing arms 30 located on both sides of the base 10 can rotate synchronously and in opposite directions. Of course, the synchronization component 41 can also include an even number of gears such as six, eight, or ten.

[0146] In another possible embodiment, the synchronization component 41 may include a worm wheel and two worms, the worms mesh with the worm wheel, and the worm wheel is located between the two worms. The two worms are respectively connected to the first swing arms 30 on both sides of the base 10, and the rotation axes of the two worms are parallel, and the rotation axes of the worms coincide with or are parallel to the rotation axes of the connected first swing arms 30. When the first swing arm 30 located on one side of the base 10 rotates relative to the base 10, the first swing arm 30 drives the connected worm to rotate at the same time, and the worm drives the other worm through the worm wheel, thereby driving the first swing arm 30 located on the other side of the base 10 to rotate, and the rotation directions of the first swing arms 30 located on both sides of the base 10 are opposite.

[0147] Optionally, in some embodiments, see Figure 7 , Figure 8 and Fig.11 The rotating shaft mechanism 100 further includes a damping assembly 42 , which is connected to the first swing arm 30 and is used to provide a damping force for the first swing arm 30 .

[0148] With such a configuration, the first swing arms 30 located on both sides of the base 10 have a certain damping when they rotate relative to each other, which is beneficial for the first swing arms 30 to maintain or stay at the angle position after rotating to a preset angle relative to the base 10, so that the hinge mechanism 100 has a certain buffering effect during the rotation between the unfolded state and the folded state, thereby helping to improve the stability of the terminal device 10000 in different folding modes and the user's operating feel.

[0149] It can be understood that the damping assembly 42 can be various types of damping assemblies capable of providing damping force, for example, a damping assembly including a cam structure and an elastic member assembled therewith, but is not limited thereto.

[0150] In one possible implementation, see Figure 7 and Fig.11The damping assembly 42 includes a first cam structure 421 disposed on the first swing arm 30, a first moving member 422 located on one side of the first cam structure 421, a second cam structure 423 disposed on the first moving member 422, and an elastic member 424 connected to the first moving member 422. The elastic member 424 is used to provide a force for the first moving member 422 to move toward the first cam structure 421, so that the second cam structure 423 is pressed and contacted with the first cam structure 421. The elastic member 424 can be various types of structural members capable of elastic deformation, such as a spring, a leaf spring, a torsion spring, etc., but is not limited thereto. When the first swing arm 30 rotates, the first cam structure 421 is driven to rotate at the same time, and the first cam structure 421 slides relative to the second cam structure 423 to generate friction, thereby providing a damping force for the rotation of the first swing arm 30.

[0151] For example, see Figure 7 and Fig.11 The first cam structure 421 may include a plurality of first convex parts and first concave parts alternately arranged around the rotation axis of the first swing arm 30, and the second cam structure 423 may include a plurality of second convex parts and second concave parts alternately arranged around the rotation axis of the first swing arm 30, and the first convex part may contact and cooperate with the inner wall of the second convex part or the second concave part, and the first concave part may contact and cooperate with the inner wall of the second convex part. When the first convex part contacts and cooperates with the second concave part, and the first concave part contacts and cooperates with the second convex part, the first swing arm 30 and the first moving member 422 can be relatively limited, similar to the meshing between teeth, so as to facilitate the first swing arm 30 to maintain or stay in the corresponding position. When the first swing arm 30 continues to rotate, so that the first convex part gradually separates from the second concave part, and gradually moves to the process of contacting and cooperating with the second convex part, the first moving member 422 moves away from the first cam structure 421 and applies force to the elastic member 424, and the elastic member 424 also applies a reaction force accordingly to provide a damping force for the rotation of the first swing arm 30.

[0152] Optionally, see Fig.11The damping assembly 42 may further include a third cam structure 425 disposed on the first swing arm 30, a second moving member 426 located on one side of the third cam structure 425, and a fourth cam structure 427 disposed on the second moving member 426. The third cam structure 425 is arranged opposite to and spaced from the first cam structure 421, and the first moving member 422, the second moving member 426 and the elastic member 424 are all located between the third cam structure 425 and the first cam structure 421. The elastic member 424 is located between the first moving member 422 and the second moving member 426, and is connected to the first moving member 422 and the second moving member 426, respectively. The elastic member 424 is also used to provide a force to move the second moving member 426 toward the third cam structure 425, so that the fourth cam structure 427 is pressed against and in contact with the third cam structure 425. When the first swing arm 30 rotates, the first cam structure 421 and the third cam structure 425 are driven to rotate simultaneously, the first cam structure 421 slides relative to the second cam structure 423 to generate friction, and the third cam structure 425 slides relative to the fourth cam structure 427 to generate friction, thereby providing damping force for the rotation of the first swing arm 30.

[0153] The structure of the third cam structure 425 may be the same as that of the first cam structure 421 , and the structure of the fourth cam structure 427 may be the same as that of the second cam structure 423 , which will not be described in detail herein.

[0154] It can be understood that the number of the first cam structure 421, the first moving member 422, the second cam structure 423, the elastic member 424, the third cam structure 425, the second moving member 426 and the fourth cam structure 427 can be at least two, and each of the first cam structure 421, the first moving member 422, the second cam structure 423, the elastic member 424, the third cam structure 425, the second moving member 426 and the fourth cam structure 427 can form a damping group to form at least two damping groups, so that each damping group is respectively connected and matched with the first swing arm 30 located on both sides of the base 10, and the damping group can be set in a one-to-one correspondence with the first swing arm 30. The first moving members 422 located on both sides of the base 10 can be fixedly connected so as to be able to move simultaneously; similarly, the second moving members 426 located on both sides of the base 10 can be fixedly connected so as to be able to move simultaneously.

[0155] In another possible embodiment, the damping assembly 42 may include a cam member, a sliding member, and an elastic body. The cam member may be fixed to the base 10, and the cam member has a cam surface. The sliding member may be slidably disposed on the first swing arm 30 or the connecting member 20 so as to be able to slide toward or away from the base 10. One side of the sliding member abuts against the cam surface of the cam member, and the other side of the sliding member is connected to the first swing arm 30 or the connecting member 20 through the elastic body. The elastic body may be used to provide an elastic force for moving the sliding member toward the base 10, so as to facilitate the sliding member to always elastically abut against the cam surface of the cam member. The expansion and contraction direction of the elastic body when elastically deformed is roughly the same as the sliding direction of the sliding member, that is, roughly perpendicular to the rotation axis of the first swing arm 30. The abutment force of the elastic abutment between the sliding member and the cam member can be converted into the damping force of the damping assembly 42 and output outward to provide a damping force for the rotation of the first swing arm 30.

[0156] Optionally, in some embodiments, see Figure 7 , Fig. 9 and Fig.11 The rotating shaft mechanism 100 also includes a first rotating shaft 51 , and the first swing arm 30 is rotatably connected to the base 10 via the first rotating shaft 51 .

[0157] It can be understood that the first rotating shaft 51 can be a rotating shaft formed separately from the first swing arm 30 and the base 10, and the first swing arm 30 and the base 10 can be respectively provided with a rotating shaft hole, and the first rotating shaft 51 can be passed through the rotating shaft holes on the first swing arm 30 and the base 10 to realize the rotation connection between the first swing arm 30 and the base 10. Figure 7 and Fig.11 This situation is exemplarily shown in FIG.

[0158] Of course, the first rotating shaft 51 can also be an integrated structure integrally formed with the first swing arm 30, a rotating shaft hole is provided on the base 10, and the first rotating shaft 51 is rotatably matched with the rotating shaft hole on the base 10. Similarly, the first rotating shaft 51 can also be an integrated structure integrally formed with the base 10, a rotating shaft hole is provided on the first swing arm 30, and the first rotating shaft 51 is rotatably matched with the rotating shaft hole on the first swing arm 30.

[0159] With such arrangement, the first swing arm 30 and the base 10 are rotationally connected via a physical axis, which can improve connection reliability compared to a virtual axis connection, and further improve the reliability of the rotation axis mechanism 100 in switching between the unfolded state and the folded state.

[0160] Optionally, see Figure 7 , Fig. 9 and Fig.11, the first swing arms 30 located on both sides of the base 10 can be rotatably connected to the base 10 through a first rotating shaft 51 respectively. When the synchronization assembly 41 includes a first gear 411, a second gear 412, a third gear 413 and a fourth gear 414 that are meshed and connected in sequence, the first gear 411 and the fourth gear 414 can be fixedly connected to the first rotating shaft 51 located on both sides of the base 10 respectively, so as to be able to rotate synchronously with the corresponding first rotating shaft 51, and at this time, the first swing arm 30 is also fixedly connected to the first rotating shaft 51 so as to be able to rotate synchronously. The second gear 412 and the third gear 413 can be rotatably arranged on the base 10 through other rotating shafts respectively. In this way, it is beneficial to improve the compactness between the first swing arm 30, the first rotating shaft 51 and the synchronization assembly 41.

[0161] See also Fig.11 When the damping assembly 42 includes the first moving member 422, the elastic member 424 and the second moving member 426, in the damping group and the first rotating shaft 51 located on the same side of the base 10, the first moving member 422 and the second moving member 426 of the damping group can be sleeved on the first rotating shaft 51 to be able to move along the direction of the axis of the first rotating shaft 51, and the elastic member 424 of the damping group can be a spring and sleeved on the first rotating shaft 51 to be able to extend and retract along the direction of the axis of the first rotating shaft 51. In this way, it is beneficial to improve the compactness between the first swing arm 30, the first rotating shaft 51 and the damping assembly 42.

[0162] Optionally, in some embodiments, see Figure 7 , Figure 8 and Fig.11 The shaft mechanism 100 further includes at least two second swing arms 60, which are disposed on both sides of the base 10 and are rotatably connected to the base 10. The second swing arms 60 on the same side of the base 10 are rotatably connected to the connecting member 20.

[0163] It can be understood that the second swing arms 60 are arranged on both sides of the base 10, which means that the second swing arms 60 are arranged on both sides of the base 10, but the number of second swing arms 60 on each side can be one or more, and the number of second swing arms 60 on both sides of the base 10 can be the same or different.

[0164] The second swing arm 60 can be connected to the base 10 by various rotational connection modes, so that the second swing arm 60 can rotate relative to the base 10 while being connected to the base 10. The rotation axes of the second swing arms 60 relative to the base 10 can be arranged substantially parallel, and of course there can be a certain deviation but close to parallel, that is, manufacturing error, assembly error, etc. can be allowed. The rotation axis of the second swing arm 60 relative to the base 10 can be substantially parallel to the length direction of the base 10. The second swing arm 60 can be rotationally connected to the connecting member 20 located on the same side of the base 10 by various rotational connection modes.

[0165] The second swing arm 60 can be a swing arm structure of various shapes and can be set according to actual needs, which is not limited in the embodiments of the present application. The main function of the second swing arms 60 on both sides of the base 10 is to rotate relative to the base 10. For the convenience of description, they are all called second swing arms, but the shapes and structures of the second swing arms 60 on both sides of the base 10 can be the same or different.

[0166] With such arrangement, the second swing arm 60 can be regarded as the main swing arm, and the connecting member 20 is rotatably connected to the base 10 through the first swing arm 30 and the second swing arm 60, which can be regarded as forming a hinged four-bar mechanism, which is beneficial to improving the stability of the rotating shaft mechanism 100 when switching between the unfolded state and the folded state.

[0167] There are many feasible implementations of the rotational connection between the second swing arm 60 and the connecting member 20, which will be described exemplarily below.

[0168] In one possible implementation, see Figure 7 and Fig.11 The rotating shaft mechanism 100 also includes a second rotating shaft 52 , and the second swing arm 60 and the connecting member 20 located on the same side of the base 10 are rotatably connected through the second rotating shaft 52 .

[0169] It can be understood that the second rotating shaft 52 can be a rotating shaft formed separately from the second swing arm 60 and the connecting member 20, and the second swing arm 60 and the connecting member 20 can be respectively provided with a rotating shaft hole, and the second rotating shaft 52 can be passed through the rotating shaft hole on the second swing arm 60 and the rotating shaft hole on the connecting member 20 to realize the rotation connection between the second swing arm 60 and the connecting member 20. Figure 7 and Fig.11 This situation is exemplarily shown in FIG.

[0170] Of course, the second rotating shaft 52 can also be an integral structure integrally formed with the second swing arm 60, a rotating shaft hole is provided on the connecting member 20, and the second rotating shaft 52 is rotationally matched with the rotating shaft hole on the connecting member 20. Similarly, the second rotating shaft 52 can also be an integral structure integrally formed with the connecting member 20, a rotating shaft hole is provided on the second swing arm 60, and the second rotating shaft 52 is rotationally matched with the rotating shaft hole on the second swing arm 60.

[0171] With such arrangement, the second swing arm 60 and the connecting member 20 are rotationally connected via a physical axis, which can improve connection reliability compared to a virtual axis connection, and further improve the reliability of the rotation axis mechanism 100 in switching between the unfolded state and the folded state.

[0172] See also Figure 12 to Figure 14 , Fig.12 Schematic diagrams of the three-dimensional structure of the rotating shaft mechanism 100 in the unfolded state provided in some other embodiments of the present application are shown. Fig.13 Shows Fig.12 The three-dimensional structural diagram of the rotating shaft mechanism 100 in the folded state is shown. Fig.14 Shows Fig.12 An exploded view of the rotating shaft mechanism 100 is shown.

[0173] In another possible embodiment, in the second swing arm 60 and the connecting member 20 located on the same side of the base 10, a second arc-shaped sliding portion 601 is provided on the second swing arm 60, and a second arc-shaped sliding fitting portion 202 is provided on the connecting member 20. The second arc-shaped sliding portion 601 is slidably fitted with the second arc-shaped sliding fitting portion 202 to enable the second swing arm 60 to be rotatably connected with the connecting member 20.

[0174] The second arc-shaped sliding part 601 and the second arc-shaped sliding fitting part 202 slide relative to each other along the arc-shaped trajectory to achieve relative rotation. The second arc-shaped sliding part 601 and the second arc-shaped sliding fitting part 202 are both arc-shaped structures, and can be various forms of arc-shaped structures, as long as the two can slide relative to each other along the arc-shaped trajectory. The second arc-shaped sliding part 601 and the second swing arm 60 can be an integral structure formed in one piece, or they can be formed separately and fixedly connected; similarly, the second arc-shaped sliding fitting part 202 and the connecting member 20 can be an integral structure formed in one piece, or they can be formed separately and fixedly connected.

[0175] When the hinge mechanism 100 is converted from the unfolded state to the folded state, the connecting members 20 located on both sides of the base 10 relatively move closer to each other and rotate, and the connecting members 20 drive the first swing arm 30 and the second swing arm 60 to rotate relative to the base 10; the first swing arm 30 located on both sides of the base 10 also relatively move closer to each other and rotate, and at the same time, the first arc-shaped sliding portion 301 and the first arc-shaped sliding matching portion 201 slide relative to each other, so that the connecting member 20 and the first swing arm 30 rotate relative to each other, that is, the connecting member 20 generally moves away from the base 10 and moves away from the first swing arm 30, which can be regarded as the length extension of the assembly formed by the connecting member 20 and the first swing arm 30; the second swing arm 60 located on both sides of the base 10 also relatively move closer to each other and rotate, and at the same time, the second arc-shaped sliding portion 601 and the second arc-shaped sliding matching portion 202 slide relative to each other, so that the connecting member 20 and the second swing arm 60 rotate relative to each other, that is, the connecting member 20 generally moves away from the base 10 and moves away from the second swing arm 60, which can be regarded as the length extension of the assembly formed by the connecting member 20 and the second swing arm 60.

[0176] When the hinge mechanism 100 is converted from the folded state to the unfolded state, the connecting members 20 located on both sides of the base 10 rotate relatively away from each other, and the connecting members 20 drive the first swing arm 30 and the second swing arm 60 to rotate relative to the base 10; the first swing arm 30 located on both sides of the base 10 also rotates relatively away from each other, and at the same time, the first arc-shaped sliding portion 301 slides relatively with the first arc-shaped sliding fitting portion 201, so that the connecting member 20 and the first swing arm 30 rotate relatively, that is, the connecting member 20 moves roughly toward the base 10 and close to the first swing arm 30, which can be regarded as the length of the assembly formed by the connecting member 20 and the first swing arm 30 is shortened; the second swing arm 60 located on both sides of the base 10 also rotates relatively away from each other, and at the same time, the second arc-shaped sliding portion 601 slides relatively with the second arc-shaped sliding fitting portion 202, so that the connecting member 20 and the second swing arm 60 rotate relatively, that is, the connecting member 20 moves roughly toward the base 10 and close to the second swing arm 60, which can be regarded as the length of the assembly formed by the connecting member 20 and the second swing arm 60 is shortened.

[0177] When the terminal device 10000 is an inward folding terminal device, when the hinge mechanism 100 is in the folded state, a storage space for accommodating the foldable portion 2100 of the folding screen 2000 can be formed between the second swing arms 60 located on both sides of the base 10. As the hinge mechanism 100 rotates from the unfolded state to the folded state, the connecting member 20 and the second swing arm 60 rotate relative to each other through the relative sliding of the second arc-shaped sliding portion 601 and the second arc-shaped sliding matching portion 202, so that the angle through which the second swing arm 60 rotates relative to the base 10 can be smaller than the angle through which the connecting member 20 rotates relative to the base 10. Compared with the 90° angle at which the second swing arm 60 and the connecting member 20 rotate and are fixed, it is beneficial to increase the storage space formed between the second swing arms 60 located on both sides of the base 10, and reduce the possibility of interference between the second swing arm 60 and the foldable portion 2100.

[0178] It can be understood that by changing the positions of the centers of the second arc-shaped sliding portion 601 and the second arc-shaped sliding mating portion 202, the angle through which the second swing arm 60 rotates relative to the base 10 during the process of the hinge mechanism 100 rotating from the unfolded state to the folded state can be changed. Therefore, the rotation angle of the second swing arm 60 can be designed according to actual needs, and is not solely limited in the embodiments of the present application.

[0179] In this arrangement, since the second swing arm 60 and the connecting member 20 are rotationally connected through the sliding cooperation between the second arc-shaped sliding portion 601 and the second arc-shaped sliding cooperation portion 202, the second swing arm 60 and the connecting member 20 can be regarded as being rotationally connected through a virtual axis. When the hinge mechanism 100 is converted between the unfolded state and the folded state, the rotation angle of the second swing arm 60 relative to the base 10 and the rotation angle of the connecting member 20 relative to the base 10 may be different. Therefore, when the hinge mechanism 100 is applied to the terminal device 10000, during the process of the terminal device 10000 rotating from the unfolded state to the folded state, the angle through which the second swing arm 60 rotates relative to the base 10 can be designed as needed, and does not need to be the same as the angle through which the connecting member 20 rotates relative to the base 10. This can reduce the possibility of interference between the second swing arm 60 and the folding screen 2000 of the terminal device 10000 when the terminal device 10000 is in the folded state, which provides space for further reducing the size of the hinge mechanism 100, which is beneficial to further miniaturization of the size of the hinge mechanism 100, thereby facilitating a lightweight design of the terminal device 10000.

[0180] Optionally, when the hinge mechanism 100 is converted from the unfolded state to the folded state, the rotation angle of the second swing arm 60 relative to the base 10 is less than 90°, that is, the angle through which the second swing arm 60 rotates from the unfolded state to the folded state relative to the base 10 is less than 90°, for example, it can be 50°, 60°, 65°, 70°, 73°, 80°, 85°, etc., but is not limited to this.

[0181] Similarly, when the hinge mechanism 100 is transformed from the folded state to the unfolded state, the rotation angle of the second swing arm 60 relative to the base 10 is also less than 90°.

[0182] Such arrangement, compared with the case where the angle through which the second swing arm 60 rotates relative to the base 10 from the unfolded state to the folded state is greater than or equal to 90°, can reduce the possibility of the second swing arm 60 interfering with the foldable portion 2100 of the folding screen 2000 in the folded state, thereby providing space for further reducing the size of the hinge mechanism 100, which is beneficial to further miniaturization of the size of the hinge mechanism 100, thereby facilitating a lightweight design of the terminal device 10000.

[0183] Optionally, see Figure 12 to Figure 14 One of the second arc-shaped sliding portion 601 and the second arc-shaped sliding matching portion 202 is an arc-shaped sliding rail, and the other is an arc-shaped sliding groove. Fig.14In the figure, the second arc-shaped sliding part 601 is an arc-shaped slide rail, and the second arc-shaped sliding matching part 202 is an arc-shaped slide groove. Of course, the two can also be exchanged, that is, the second arc-shaped sliding part 601 is an arc-shaped slide groove, and the second arc-shaped sliding matching part 202 is an arc-shaped slide rail. The second arc-shaped sliding part 601 is in surface contact with the second arc-shaped sliding matching part 202, and the arc-shaped slide rail can slide inside the arc-shaped slide groove along the groove wall of the arc-shaped slide groove and contact the groove wall surface of the arc-shaped slide groove.

[0184] Such a configuration, since the arc-shaped slide rail and the arc-shaped slide groove are slidably matched and the two are in surface contact, is beneficial to improving the stability and reliability of the relative sliding of the second arc-shaped sliding part 601 and the second arc-shaped sliding matching part 202 compared to point contact and line contact, thereby improving the stability of the rotational cooperation between the second swing arm 60 and the connecting member 20.

[0185] In the above embodiment, a solution of rotational connection between the second swing arm 60 and the connecting member 20 is introduced. However, the cooperation between the second swing arm 60 and the connecting member 20 is not limited to rotational connection, and other solutions will be exemplarily introduced below.

[0186] See also Figures 15 to 17 , Fig.15 Schematic diagrams of the three-dimensional structure of the rotating shaft mechanism 100 in the unfolded state provided in some other embodiments of the present application are shown. Fig.16 Shows Fig.15 The three-dimensional structural diagram of the rotating shaft mechanism 100 in the folded state is shown. Fig.17 Shows Fig.15 An exploded view of the rotating shaft mechanism 100 is shown.

[0187] Optionally, in some other embodiments, the hinge mechanism 100 includes at least two second swing arms 60, which are disposed on both sides of the base 10 and are rotatably connected to the base 10. The second swing arms 60 and the connecting member 20 located on the same side of the base 10 are slidably connected.

[0188] With such arrangement, the second swing arm 60 can also be regarded as the main swing arm, and the connecting member 20 is rotatably connected to the base 10 via the first swing arm 30 and the second swing arm 60, which is also beneficial to improving the stability of the pivot mechanism 100 in switching between the unfolded state and the folded state.

[0189] Optionally, see Figures 15 to 17 A first sliding portion 602 is disposed on one of the second swing arm 60 and the connecting member 20 located on the same side of the base 10 , and a first straight slide groove 203 is disposed on the other, and the first sliding portion 602 is slidably matched with the first straight slide groove 203 .

[0190] It is understood that the first sliding portion 602 may be a variety of regular or irregular structures, for example, a plate-like structure ( Fig.17 The first straight slide groove 203 is a slide groove with a straight path, so that the first sliding portion 602 slides in the first straight slide groove 203 along a straight track.

[0191] With such arrangement, when the hinge mechanism 100 switches between the unfolded state and the folded state, the connecting member 20 and the second swing arm 60 rotate synchronously, and the first sliding portion 602 slides in the first straight groove 203 .

[0192] There are many feasible implementations of the rotational connection between the second swing arm 60 and the base 10, which will be described exemplarily below.

[0193] In one possible implementation, see Figure 7 , Figure 8 and Fig.11 The second swing arm 60 is provided with a third arc-shaped sliding portion 603, and the base 10 is provided with a third arc-shaped sliding matching portion 101. The third arc-shaped sliding portion 603 is slidably matched with the third arc-shaped sliding matching portion 101, so that the second swing arm 60 is rotatably connected to the base 10.

[0194] The third arc-shaped sliding portion 603 and the third arc-shaped sliding fitting portion 101 slide relative to each other along an arc-shaped trajectory to achieve relative rotation. The third arc-shaped sliding portion 603 and the third arc-shaped sliding fitting portion 101 are both arc-shaped structures, and can be various forms of arc-shaped structures, as long as the two can slide relative to each other along an arc-shaped trajectory. The third arc-shaped sliding portion 603 and the second swing arm 60 can be an integral structure formed in one piece, or they can be formed separately and fixedly connected; similarly, the third arc-shaped sliding fitting portion 101 and the base 10 can be an integral structure formed in one piece, or they can be formed separately and fixedly connected.

[0195] With such arrangement, the second swing arm 60 and the base 10 can be regarded as being rotationally connected via a virtual axis. Compared with being rotationally connected via a physical axis, this is beneficial to reducing the overall thickness dimension formed by the second swing arm 60 and the base 10, thereby helping to reduce the thickness dimension of the hinge mechanism 100, thereby facilitating a lightweight design of the terminal device 10000.

[0196] Optionally, see Figure 7 and Fig.11One of the third arc-shaped sliding portion 603 and the third arc-shaped sliding fitting portion 101 is an arc-shaped sliding rail, and the other is an arc-shaped sliding groove. Fig.11 In the figure, the third arc-shaped sliding part 603 is an arc-shaped slide rail, and the third arc-shaped sliding matching part 101 is an arc-shaped slide groove. Of course, the two can also be exchanged, that is, the third arc-shaped sliding part 603 is an arc-shaped slide groove, and the third arc-shaped sliding matching part 101 is an arc-shaped slide rail. The third arc-shaped sliding part 603 is in surface contact with the third arc-shaped sliding matching part 101, and the arc-shaped slide rail can slide inside the arc-shaped slide groove along the groove wall of the arc-shaped slide groove and contact the groove wall surface of the arc-shaped slide groove.

[0197] Such arrangement, since the arc-shaped slide rail and the arc-shaped slide groove are slidably matched and the two are in surface contact, compared with point contact and line contact, is beneficial to improving the stability and reliability of the relative sliding of the third arc-shaped sliding part 603 and the third arc-shaped sliding matching part 101, thereby improving the stability of the rotational cooperation between the second swing arm 60 and the base 10.

[0198] Optionally, see Figure 7 and Fig.11 When the second swing arm 60 is rotationally connected to the connecting member 20 located on the same side of the base 10 through the second rotating shaft 52, it is beneficial to further improve the connection reliability, thereby improving the reliability and stability of the second swing arm 60 in the conversion between the unfolded state and the folded state.

[0199] In another possible implementation, see Figures 12 to 17 The rotating shaft mechanism 100 also includes a third rotating shaft 53 , and the second swing arm 60 is rotatably connected to the base 10 via the third rotating shaft 53 .

[0200] It can be understood that the third rotating shaft 53 can be a rotating shaft formed separately from the second swing arm 60 and the base 10, and the second swing arm 60 and the base 10 can be respectively provided with a rotating shaft hole, and the third rotating shaft 53 can be passed through the rotating shaft hole on the second swing arm 60 and the rotating shaft hole on the base 10 to realize the rotation connection between the second swing arm 60 and the base 10. Fig.12 and Fig.14 This situation is exemplarily shown in FIG.

[0201] Of course, the third rotating shaft 53 can also be an integrated structure integrally formed with the second swing arm 60, a rotating shaft hole is provided on the base 10, and the third rotating shaft 53 is rotatably matched with the rotating shaft hole on the base 10. Similarly, the third rotating shaft 53 can also be an integrated structure integrally formed with the base 10, a rotating shaft hole is provided on the second swing arm 60, and the third rotating shaft 53 is rotatably matched with the rotating shaft hole on the second swing arm 60.

[0202] With such arrangement, the second swing arm 60 and the base 10 are rotationally connected via a physical axis, which can improve connection reliability compared to a virtual axis connection, and further improve the reliability of the rotation axis mechanism 100 in switching between the unfolded state and the folded state.

[0203] In the above embodiments, the first swing arm 30 is described as a synchronous swing arm, but the first swing arm 30 is not limited to being a synchronous swing arm. Next, the case where the first swing arm 30 is a main swing arm will be described exemplarily.

[0204] See also Figures 18 to 20 , Fig.18 Schematic diagram of the three-dimensional structure of the rotating shaft mechanism 100 in the unfolded state provided in some embodiments of the present application is shown. Fig.19 Shows Fig.18 The three-dimensional structural diagram of the rotating shaft mechanism 100 in the folded state is shown. Fig. 20 Shows Fig.18 An exploded view of the rotating shaft mechanism 100 is shown.

[0205] In some embodiments, the first swing arm 30 is a main swing arm, rather than a synchronous swing arm or a secondary swing arm. Since the first swing arm 30 is rotatably connected to the connecting member 20 by slidingly matching the first arc-shaped sliding portion 301 with the first arc-shaped sliding matching portion 201, the angle of rotation of the first swing arm 30, which is the main swing arm, from the unfolded state to the folded state can be less than 90°, which can reduce the possibility of interference between the main swing arm and the folding screen 2000 in the folded state, which is conducive to the further miniaturization design of the hinge mechanism 100, and further conducive to the lightweight design of the terminal device 10000.

[0206] Optionally, in some embodiments, see Figures 18 to 20 The rotating shaft mechanism 100 further includes at least two third swing arms 61, which are disposed on both sides of the base 10 and are rotatably connected to the base 10. The third swing arms 61 on the same side of the base 10 are slidably connected to the connecting member 20.

[0207] It can be understood that the third swing arms 61 are arranged on both sides of the base 10, which means that the third swing arms 61 are arranged on both sides of the base 10, but the number of the third swing arms 61 on each side can be one or more, and the number of the third swing arms 61 on both sides of the base 10 can be the same or different.

[0208] The third swing arm 61 can be connected to the base 10 by various rotational connection modes, so that the third swing arm 61 can rotate relative to the base 10 while being connected to the base 10. The rotation axes of the third swing arms 61 rotating relative to the base 10 can be arranged substantially parallel, and of course there can be a certain deviation but close to parallel, that is, manufacturing errors, assembly errors, etc. are allowed. The rotation axis of the third swing arm 61 rotating relative to the base 10 can be substantially parallel to the length direction of the base 10.

[0209] The third swing arm 61 can be a swing arm structure of various shapes and can be set according to actual needs, which is not limited in the embodiment of the present application. The main function of the third swing arms 61 on both sides of the base 10 is to rotate relative to the base 10. For the convenience of description, they are all called third swing arms, but the shapes and structures of the third swing arms 61 on both sides of the base 10 can be the same or different.

[0210] With such arrangement, the third swing arm 61 can be regarded as a synchronous swing arm or an auxiliary swing arm, and the connecting member 20 is rotatably connected to the base 10 through the first swing arm 30 and the third swing arm 61, which is beneficial to improving the stability of the rotation axis mechanism 100 when switching between the unfolded state and the folded state.

[0211] Optionally, see Fig.18 The third swing arms 61 located on both sides of the base 10 can be connected through a synchronization component. The synchronization component can adopt a structure that is the same as or similar to the synchronization component 41 introduced in the above embodiment, and will not be repeated here.

[0212] Optionally, see Fig.18 A damping assembly may be provided to be connected to the third swing arm 61 to provide a damping force to the third swing arm 61. The damping assembly may have a structure that is the same as or similar to the damping assembly 42 described in the above embodiment, and will not be described in detail herein.

[0213] Optionally, see Figures 18 to 20 A second sliding portion 604 is provided on one of the third swing arm 61 and the connecting member 20 located on the same side of the base 10 , and a second straight sliding groove 204 is provided on the other, and the second sliding portion 604 is slidably matched with the second straight sliding groove 204 . Fig.18 and Fig. 20 The figure shows by way of example that the third swing arm 61 is provided with a second sliding portion 604 and the connecting member 20 is provided with a second straight sliding groove 204. Of course, the two can also be switched.

[0214] It is understood that the second sliding portion 604 may be a variety of regular or irregular structures, for example, a plate-like structure ( Fig. 20The second straight slide groove 204 is a slide groove with a straight path, so that the second sliding portion 604 slides roughly along a straight track in the second straight slide groove 204.

[0215] With such arrangement, when the rotating shaft mechanism 100 switches between the unfolded state and the folded state, the connecting member 20 and the third swing arm 61 rotate synchronously, and the second sliding portion 604 slides in the second straight sliding groove 204 .

[0216] Optionally, see Fig.18 and Fig. 20 The rotating shaft mechanism 100 also includes a fourth rotating shaft 54 ​​, and the first swing arm 30 is rotatably connected to the base 10 via the fourth rotating shaft 54 ​​.

[0217] It can be understood that the fourth rotating shaft 54 ​​can be a rotating shaft formed separately from the first swing arm 30 and the base 10, and the first swing arm 30 and the base 10 can be respectively provided with a rotating shaft hole, and the fourth rotating shaft 54 ​​can be passed through the rotating shaft hole on the first swing arm 30 and the rotating shaft hole on the base 10 to realize the rotation connection between the first swing arm 30 and the base 10. Fig. 20 This situation is exemplarily shown in FIG.

[0218] Of course, the fourth rotating shaft 54 ​​can also be an integrated structure integrally formed with the first swing arm 30, a rotating shaft hole is provided on the base 10, and the fourth rotating shaft 54 ​​is rotatably matched with the rotating shaft hole on the base 10. Similarly, the fourth rotating shaft 54 ​​can also be an integrated structure integrally formed with the base 10, a rotating shaft hole is provided on the first swing arm 30, and the fourth rotating shaft 54 ​​is rotatably matched with the rotating shaft hole on the first swing arm 30.

[0219] With such arrangement, the first swing arm 30 and the base 10 are rotationally connected via a physical axis, which can improve connection reliability compared to a virtual axis connection, and further improve the reliability of the rotation axis mechanism 100 in switching between the unfolded state and the folded state.

[0220] Optionally, the third swing arm 61 and the base 10 may also be rotatably connected via a physical axis to improve connection reliability.

[0221] See also Figure 7 , Fig. 9 , Fig.11 as well as Fig.18In order to provide more accommodation space for the foldable part 2100 of the folding screen 2000 when the hinge mechanism 100 is in the folded state, in some embodiments, a curved surface 310 is recessed on the first swing arm 30. When the hinge mechanism 100 is in the folded state, the curved surface 310 on the first swing arm 30 on one side of the base 10 faces the first swing arm 30 on the other side of the base 10, that is, the curved surfaces 310 on the first swing arms 30 on both sides of the base 10 are arranged opposite to each other, so that an accommodation space for accommodating the foldable part 2100 can be formed between the curved surfaces 310 on the first swing arms 30 on both sides of the base 10, which can further reduce the possibility of interference with the foldable part 2100.

[0222] In some embodiments, see Figures 7 to 17 The rotating shaft mechanism 100 further includes at least two fourth swing arms 70, which are disposed on both sides of the base 10. The fourth swing arms 70 are rotatably connected to the connecting member 20 located on the same side of the base 10. One of the fourth swing arm 70 and the first swing arm 30 located on the same side of the base 10 is provided with a track groove 701, and the other is provided with a sliding body 302, and the sliding body 302 is matched with the track groove 701 in a high pair. Fig.11 The figure exemplarily shows that the fourth swing arm 70 is provided with a track groove 701 and the first swing arm 30 is provided with a sliding body 302 .

[0223] It can be understood that the fourth swing arm 70 is disposed on both sides of the base 10, which means that both sides of the base 10 are provided with the fourth swing arm 70, but the number of the fourth swing arms 70 on each side can be one or more, and the number of the fourth swing arms 70 on both sides of the base 10 can be the same or different. The fourth swing arm 70 can be connected to the connecting member 20 located on the same side of the base 10 by various rotational connection methods.

[0224] The high-pair matching between the sliding body 302 and the track groove 701 means that the sliding body 302 is in point contact or line contact with the groove wall of the track groove 701, so that the sliding body 302 can slide along the groove wall of the track groove 701 and can rotate in the track groove 701. The sliding body 302 can be a variety of regular or irregular structures, for example, a columnar structure ( Fig.11 The sliding body 302 may be an integral structure formed integrally with one of the fourth swing arm 70 and the first swing arm 30 to which it is connected, or it may be formed separately and connected. Fig.11 The figure shows by way of example that the first swing arm 30 is provided with a sliding body 302 and the two are an integrated structure.

[0225] With such arrangement, when the hinge mechanism 100 switches between the unfolded state and the folded state, the sliding body 302 can slide and rotate in the track groove 701, the fourth swing arm 70 can slide and rotate relative to the first swing arm 30, and the fourth swing arm 70 can rotate relative to the connecting member 20, so as to control the movement of the fourth swing arm 70. When the hinge mechanism 100 is applied to the terminal device 10000, the support member disposed on the fourth swing arm 70 can move simultaneously with the fourth swing arm 70, so that the support member supports the foldable portion 2100 of the folding screen 2000 in the unfolded state, and the support member surrounds and forms a receiving space for receiving the foldable portion 2100 in the folded state.

[0226] For example, see Fig. 9 and Fig.10 When the rotating shaft mechanism 100 is converted from the unfolded state to the folded state, among the first swing arm 30, the fourth swing arm 70 and the connecting member 20 located on the same side of the base 10, the first swing arm 30 rotates relative to the connecting member 20, and the first swing arm 30 and the fourth swing arm 70 slide and rotate relative to each other, that is, while the first swing arm 30 rotates relative to the connecting member 20, the fourth swing arm 70 is driven to slide and rotate relative to the first swing arm 30 (because the fourth swing arm 70 is rotatably connected to the connecting member 20, the fourth swing arm 70 is rotatably connected relative to the first swing arm 30). 30 is not easy to get stuck when sliding and rotating), so that when the hinge mechanism 100 is in the folded state, the fourth swing arms 70 located on both sides of the base 10 are relatively arranged and form an angle a (the angle a is greater than 0° and less than 180°, for example, it can be an acute angle, a right angle or an obtuse angle), and the distance between the edges of the fourth swing arms 70 located on both sides of the base 10 close to the base 10 is a first distance, and the distance between the edges of the fourth swing arms 70 located on both sides of the base 10 away from the base 10 is a second distance, and the first distance is greater than the second distance. In this way, when a support is provided on the fourth swing arm 70, when the terminal device 10000 is in the folded state, the support can make the foldable portion 2100 of the folding screen 2000 present a water drop shape.

[0227] Optionally, in some embodiments, see Figure 7 and Fig.11 In the fourth swing arm 70 and the connecting member 20 located on the same side of the base 10, the fourth swing arm 70 is provided with a fourth arc-shaped sliding portion 702, and the connecting member 20 is provided with a fourth arc-shaped sliding matching portion 205. The fourth arc-shaped sliding portion 702 is slidably matched with the fourth arc-shaped sliding matching portion 205, so that the fourth swing arm 70 is rotatably connected to the connecting member 20.

[0228] The fourth arc-shaped sliding portion 702 and the fourth arc-shaped sliding fitting portion 205 slide relative to each other along an arc-shaped trajectory to achieve relative rotation. The fourth arc-shaped sliding portion 702 and the fourth arc-shaped sliding fitting portion 205 are both arc-shaped structures, and can be various forms of arc-shaped structures, as long as the two can contact and fit relative to each other along an arc-shaped trajectory. The fourth arc-shaped sliding portion 702 and the fourth swing arm 70 can be an integrally formed one-piece structure, or they can be formed separately and fixedly connected; similarly, the fourth arc-shaped sliding fitting portion 205 and the connecting member 20 can be an integrally formed one-piece structure, or they can be formed separately and fixedly connected.

[0229] With such arrangement, the fourth swing arm 70 and the connecting member 20 can be regarded as being rotationally connected via a virtual axis, which is beneficial for reducing the overall size of the fourth swing arm 70 and the connecting member 20 while obtaining the required rotation radius, and has better rotational fit stability.

[0230] Optionally, one of the fourth arc-shaped sliding portion 702 and the fourth arc-shaped sliding fitting portion 205 is an arc-shaped sliding rail, and the other is an arc-shaped sliding groove. Fig.11 The fourth arc-shaped sliding part 702 is exemplarily shown as an arc-shaped slide rail, and the fourth arc-shaped sliding fitting part 205 is an arc-shaped slide groove, and of course the two can also be switched. The fourth arc-shaped sliding part 702 and the fourth arc-shaped sliding fitting part 205 are in surface contact, which is beneficial to improve the stability and reliability of the fourth arc-shaped sliding part 702 and the fourth arc-shaped sliding fitting part 205 when sliding relative to each other, compared with point contact and line contact, and further improve the stability of the rotational cooperation between the fourth swing arm 70 and the connecting member 20.

[0231] Optionally, the hinge mechanism 100 further includes a support member connected to the fourth swing arm 70 so as to move along with the movement of the fourth swing arm 70. When the hinge mechanism 100 is in the folded state, the support member is located between the first swing arms 30 located on both sides of the base 10 respectively.

[0232] It can be understood that the support member is a structural member used to support the foldable portion 2100 of the folding screen 2000 and can shape the foldable portion 2100 in the folded state. It can be a structure of various shapes, for example, it can be a plate-like structure or a sheet-like structure, so as to form a support surface with a certain area, which can better support the foldable portion 2100. Of course, it can also be a structure of other shapes. The support member can be a rigid support member. In this case, the number of support members can be multiple, and they are respectively located on both sides of the base 10. The support member and the fourth swing arm 70 on the same side of the base 10 can be fixedly connected. In this case, the support member is also called a door panel. Of course, the support member can also be a flexible support member so that it can bend. In this case, the number of support members can be one, and the two sides of the support member are respectively fixedly connected to the fourth swing arm 70 on both sides of the base 10.

[0233] When the terminal device 10000 is in the unfolded state, the support member may be substantially flat to support the flat foldable portion 2100 of the folding screen 2000. When the terminal device 10000 is in the folded state, the inner side of the support member may form an accommodation space for accommodating the foldable portion 2100. The support member is located between the foldable portion 2100 and the first swing arm 30.

[0234] Optionally, in some embodiments, see Figure 7 and Fig.11 The first swing arm 30 includes a first arm portion 31 and at least two second arm portions 32. The first arm portion 31 is rotatably connected to the base 10. Each second arm portion 32 is connected to the first arm portion 31 and is sequentially arranged along the direction of the rotation axis of the first arm portion 31 relative to the base 10. Among them, in the first swing arm 30 and the connecting member 20 located on the same side of the base 10, the second arm portion 32 of the first swing arm 30 is provided with a first arc-shaped sliding portion 301, and the connecting member 20 is provided with a plurality of first arc-shaped sliding matching portions 201, and the first arc-shaped sliding portion 301 is slidably matched with the first arc-shaped sliding matching portion 201 in a one-to-one correspondence. Each pair of slidably matched first arc-shaped sliding portions 301 and first arc-shaped sliding matching portions 201 can form a sliding matching group, and the first swing arm 30 and the connecting member 20 can be slidably matched through multiple groups of sliding matching groups, which is conducive to improving the reliability of the rotation connection between the first swing arm 30 and the connecting member 20, thereby improving the reliability of the rotating shaft mechanism 100.

[0235] Optionally, see Figure 7 and Fig.11 , in the fourth swing arm 70 and the first swing arm 30 located on the same side of the base 10, the fourth swing arm 70 is located between two adjacent second arm portions 32 of the first swing arm 30. In this way, not only the second arm portion 32 and the fourth swing arm 70 on the same side of the base 10 are more evenly arranged, which is beneficial to improving the stability of the first swing arm 30 and the fourth swing arm 70 when rotating, but also it is beneficial to improve the compactness of the structure.

[0236] It should be noted that, in some other embodiments, please refer to Figures 18 to 20 When the first swing arm 30 is the main swing arm, a fourth swing arm 70 may be arranged between the third swing arm 61 and the connecting member 20. Specifically, the fourth swing arm 70 and the connecting member 20 located on the same side of the base 10 may be rotatably connected, and the fourth swing arm 70 and the third swing arm 61 located on the same side of the base 10 may be matched through the track groove and the sliding body high pair. In this way, the movement of the fourth swing arm 70 can also be controlled.

[0237] The above are only specific implementation methods of the present application, but the protection scope of the present application is not limited thereto. Any technician familiar with the technical field can easily think of changes or substitutions within the technical scope disclosed in the present application, which should be covered by the protection scope of the present application.

Claims

1. A hinge mechanism, applied to a terminal device with a folding screen, characterized in that: The rotating shaft mechanism comprises: Base; At least two connecting members are respectively arranged on two sides of the base; At least two first swing arms are respectively arranged on two sides of the base, and the first swing arms are rotatably connected to the base; Wherein, in the first swing arm and the connecting member located on the same side of the base, the first swing arm is provided with a first arc-shaped sliding portion, and the connecting member is provided with a first arc-shaped sliding matching portion, and the first arc-shaped sliding portion and the first arc-shaped sliding matching portion are slidingly matched, so that the first swing arm is rotatably connected with the connecting member; when the rotating shaft mechanism is converted from the unfolded state to the folded state, the connecting member drives the first swing arm to rotate relative to the base, and the first arc-shaped sliding portion and the first arc-shaped sliding matching portion slide relatively, so that the connecting member and the first swing arm rotate relatively; at least two second swing arms, the second swing arms are arranged on both sides of the base, and the second swing arms are rotatably connected to the base, and the second swing arms located on the same side of the base are rotatably connected to the connecting member, wherein a second arc-shaped sliding portion is provided on the second swing arm, and a second arc-shaped sliding matching portion is provided on the connecting member, and the second arc-shaped sliding portion and the second arc-shaped sliding matching portion are slidably matched to make the second swing arm rotatably connected to the connecting member, and a third arc-shaped sliding portion is provided on the second swing arm, and a third arc-shaped sliding matching portion is provided on the base, and the third arc-shaped sliding portion and the third arc-shaped sliding matching portion are slidably matched to make the second swing arm rotatably connected to the base; At least two support members are arranged on both sides of the base. When the terminal device is in the unfolded state, the support members are used to support the folding screen; when the terminal device is in the folded state, the support members are respectively located between the first swing arms on both sides of the base, and the support members are used to form a storage space for accommodating the folding screen.

2. The rotating shaft mechanism according to claim 1, characterized in that: One of the first arc-shaped sliding portion and the first arc-shaped sliding fitting portion is an arc-shaped sliding rail, and the other is an arc-shaped sliding groove; the first arc-shaped sliding portion is in surface contact with the first arc-shaped sliding fitting portion.

3. The rotating shaft mechanism according to claim 1, characterized in that: The first swing arm is a synchronous swing arm.

4. The rotating shaft mechanism according to claim 1, characterized in that: The rotating shaft mechanism also includes a synchronization component, and the first swing arms located on both sides of the base are connected through the synchronization component.

5. The rotating shaft mechanism according to claim 4, characterized in that: The rotating shaft mechanism also includes a damping component, which is connected to the first swing arm and is used to provide a damping force for the first swing arm.

6. The rotating shaft mechanism according to claim 1, characterized in that: The rotating shaft mechanism also includes a first rotating shaft, and the first swing arm is rotatably connected to the base via the first rotating shaft.

7. The rotating shaft mechanism according to any one of claims 1 to 6, characterized in that: The rotation angle of the first swing arm relative to the base is smaller than the rotation angle of the connecting member relative to the base, and the rotation angle of the first swing arm relative to the base is smaller than 90°.

8. The rotating shaft mechanism according to claim 7, characterized in that: The connecting members located on both sides of the base can rotate relative to each other based on the base, so that the rotating shaft mechanism is converted between the unfolded state and the folded state; when the rotating shaft mechanism is converted from the unfolded state to the folded state, the connecting member drives the first swing arm and the second swing arm to rotate relative to the base, and the first arc-shaped sliding portion slides relative to the first arc-shaped sliding matching portion, so that the connecting member and the first swing arm rotate relative to each other, and the second arc-shaped sliding portion slides relative to the second arc-shaped sliding matching portion, so that the connecting member and the second swing arm rotate relative to each other; Wherein, when the hinge mechanism is transformed from the unfolded state to the folded state, the rotation angle of the second swing arm relative to the base is less than 90°.

9. The rotating shaft mechanism according to claim 1, characterized in that: One of the second arc-shaped sliding portion and the second arc-shaped sliding fitting portion is an arc-shaped sliding rail, and the other is an arc-shaped sliding groove; the second arc-shaped sliding portion is in surface contact with the second arc-shaped sliding fitting portion.

10. The rotating shaft mechanism according to any one of claims 3 to 6, characterized in that: The second swing arm and the connecting member located on the same side of the base are slidably connected.

11. The rotating shaft mechanism according to claim 10, characterized in that: A first sliding portion is provided on one of the second swing arm and the connecting member located on the same side of the base, and a first straight sliding groove is provided on the other, and the first sliding portion is slidably matched with the first straight sliding groove.

12. The rotating shaft mechanism according to claim 1 or 9, characterized in that: A limiting piece is arranged on one of the first arc-shaped sliding portion and the first arc-shaped sliding fitting portion, and a limiting groove is arranged on the other one.

13. The rotating shaft mechanism according to claim 7, characterized in that: A limiting piece is arranged on one of the first arc-shaped sliding portion and the first arc-shaped sliding fitting portion, and a limiting groove is arranged on the other one.

14. The rotating shaft mechanism according to any one of claims 3 to 6, characterized in that: One of the third arc-shaped sliding portion and the third arc-shaped sliding fitting portion is an arc-shaped sliding rail, and the other is an arc-shaped sliding groove; the third arc-shaped sliding portion is in surface contact with the third arc-shaped sliding fitting portion.

15. The rotating shaft mechanism according to claim 12, characterized in that: One of the third arc-shaped sliding portion and the third arc-shaped sliding fitting portion is an arc-shaped sliding rail, and the other is an arc-shaped sliding groove; the third arc-shaped sliding portion is in surface contact with the third arc-shaped sliding fitting portion.

16. The rotating shaft mechanism according to claim 11, characterized in that: The rotating shaft mechanism also includes a third rotating shaft, and the second swing arm is rotatably connected to the base via the third rotating shaft.

17. The rotating shaft mechanism according to claim 1 or 2, characterized in that: The first swing arm is a main swing arm.

18. The rotating shaft mechanism according to claim 17, characterized in that: The pivot mechanism also includes at least two third swing arms, which are respectively arranged on both sides of the base and rotatably connected to the base; wherein the third swing arms located on the same side of the base are slidably connected to the connecting member.

19. The rotating shaft mechanism according to claim 18, characterized in that: A second sliding portion is provided on one of the third swing arm and the connecting member located on the same side of the base, and a second straight sliding groove is provided on the other, and the second sliding portion is slidably matched with the second straight sliding groove.

20. The rotating shaft mechanism according to claim 17, characterized in that: The rotating shaft mechanism also includes a fourth rotating shaft, and the first swing arm is rotatably connected to the base via the fourth rotating shaft.

21. The rotating shaft mechanism according to any one of claims 1 to 6, characterized in that: The connecting members located on both sides of the base can rotate relative to each other based on the base, so that the rotating shaft mechanism can be converted between the unfolded state and the folded state; An arcuate surface is concavely provided on the first swing arm; when the hinge mechanism is in the folded state, the arcuate surface on the first swing arm on one side of the base faces the first swing arm on the other side of the base.

22. The rotating shaft mechanism according to any one of claims 1 to 6, characterized in that: The rotating shaft mechanism also includes at least two fourth swing arms, which are respectively arranged on both sides of the base; the fourth swing arms are rotatably connected to the connecting member located on the same side of the base; one of the fourth swing arm and the first swing arm located on the same side of the base is provided with a track groove, and the other is provided with a sliding body, and the sliding body is high-paired with the track groove.

23. The rotating shaft mechanism according to claim 22, characterized in that: In the fourth swing arm and the connecting member located on the same side of the base, the fourth swing arm is provided with a fourth arc-shaped sliding portion, and the connecting member is provided with a fourth arc-shaped sliding matching portion. The fourth arc-shaped sliding portion is slidably matched with the fourth arc-shaped sliding matching portion to enable the fourth swing arm to be rotatably connected to the connecting member.

24. The rotating shaft mechanism according to claim 23, characterized in that: The rotating shaft mechanism further includes a support member, and the support member is connected to the fourth swing arm; The connecting members located on both sides of the base can rotate relative to each other based on the base so that the hinge mechanism can be converted between the unfolded state and the folded state; when the hinge mechanism is in the folded state, the supporting member is located between the first swing arms located on both sides of the base.

25. The rotating shaft mechanism according to any one of claims 1 to 6, characterized in that: The first swing arm comprises: A first arm portion rotatably connected to the base; and At least two second arms connected to the first arm and arranged in sequence along the direction of the rotation axis of the first arm; Among them, in the first swing arm and the connecting member located on the same side of the base, the second arm portion of each first swing arm is provided with the first arc-shaped sliding portion, and the connecting member is provided with at least two first arc-shaped sliding matching portions, and the first arc-shaped sliding portion is slidingly matched with the first arc-shaped sliding matching portions in a one-to-one correspondence.

26. The rotating shaft mechanism according to claim 9 or 13, characterized in that: The first swing arm comprises: A first arm portion rotatably connected to the base; and At least two second arms connected to the first arm and arranged in sequence along the direction of the rotation axis of the first arm; Among them, in the first swing arm and the connecting member located on the same side of the base, the second arm portion of each first swing arm is provided with the first arc-shaped sliding portion, and the connecting member is provided with at least two first arc-shaped sliding matching portions, and the first arc-shaped sliding portion is slidingly matched with the first arc-shaped sliding matching portions in a one-to-one correspondence.

27. The rotating shaft mechanism according to claim 25, characterized in that: The rotating shaft mechanism also includes at least two fourth swing arms, which are respectively arranged on both sides of the base; among the fourth swing arms and the first swing arm located on the same side of the base, the fourth swing arm is located between two adjacent second arm parts of the first swing arm.

28. A terminal device, characterized in that: The terminal device comprises: A folding device, comprising a first shell, a second shell and a hinge mechanism as described in any one of claims 1 to 27; the first shell is connected to the connecting member on one side of the base, and the second shell is connected to the connecting member on the other side of the base; and a folding screen is arranged on the first shell and the second shell, and the position of the foldable part of the folding screen corresponds to the position of the hinge mechanism.

Citation Information

Patent Citations

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