Foldable hinge and electronic device

The foldable hinge with synchronized swing arms and gears provides a compact, cost-effective solution for protecting the flexible screen in foldable devices by forming a teardrop-shaped space during folding, addressing the complexity and damage issues of existing designs.

JP7794376B2Active Publication Date: 2026-01-06HUAWEI TECH CO LTD
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Patent Information

Application Number
JP2024523779
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-11-09
Filing Date
2022-10-31
Publication Date
2026-01-06
Estimated Expiration
2042-10-31

AI Technical Summary

Technical Problem

Foldable electronic devices often require complex structures to accommodate the bent portion of the flexible screen in a drop-shaped cross section, which can lead to potential damage and increased complexity.

Method used

A foldable hinge design featuring a base with two folding assemblies, each comprising a first and second swing arm connected by a synchronizing gear, allowing for a simple and low-cost structure that supports the flexible screen through a double-rotation motion, forming a teardrop-shaped space when folded.

Benefits of technology

The design achieves a compact, stable, and efficient folding mechanism that protects the flexible screen while reducing manufacturing costs and maintaining the device in desired configurations without automatic unfolding due to gravity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiments of the present disclosure disclose a foldable hinge and an electronic device, which belongs to the field of mobile terminals. The foldable hinge includes a base and two folding assemblies. The two folding assemblies are disposed on two sides of the base, both connected to the base, and can be opened and closed relative to each other. The folding assemblies include a first swing arm, a second swing arm, a synchronization gear, and a support component. The first swing arm is pivotally connected to the base. The second swing arm is pivotally connected to the base. The synchronization gear is disposed on the base, and the first swing arm and the second swing arm are connected through a transmission by using the synchronization gear. The support component is pivotally connected to the first swing arm and coupled to the second swing arm, and can rotate relative to the first swing arm under the action of the second swing arm. In the process of the two folding assemblies folding relative to each other, the support component may perform a double rotational movement, so that the two support components present a certain narrow angle when the two folding assemblies are folded. The transmission between the first swing arm and the second swing arm is performed by using a synchronous gear, which has a simple structure, is convenient to manufacture and has a low cost.
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Description

[Technical Field]

[0001] This application claims priority to Chinese Patent Application No. 202111322650.4, filed on November 9, 2021, entitled "FOLDABLE HINGE AND ELECTRONIC DEVICE," which is incorporated herein by reference in its entirety.

[0002] The present disclosure relates to the field of mobile terminals, and more particularly to foldable hinges and electronic devices including foldable hinges. [Background technology]

[0003] With the development of technology, electronic devices are increasingly used and have become important tools in people's daily lives and work. Foldable electronic devices are popular because they take up little space and are easy to carry.

[0004] A foldable electronic device typically includes two housings, a foldable hinge, and a flexible screen. The two housings are connected to two sides of the foldable hinge, respectively, and the two housings can open and close relative to each other under the action of the foldable hinge. The flexible screen is located on the same side of the two housings and the foldable hinge, and is connected to the housings such that the flexible screen is folded or unfolded during the process of the two housings opening and closing relative to each other. When the foldable hinge is unfolded, the flexible screen is unfolded on the surfaces of the two housings and the foldable hinge.

[0005] In order to have enough space to accommodate the bent portion of the flexible screen in the folded state and to prevent the flexible screen from being damaged, the foldable hinge may form a space with a drop-shaped cross section after being folded. In the prior art, in order to form a space with a drop-shaped cross section after being folded, the foldable hinge usually has a complicated structure. Summary of the Invention

[0006] The embodiments of the present disclosure provide a foldable hinge and an electronic device to solve the problems in the prior art.

[0007] According to a first aspect, one embodiment of the present disclosure provides a foldable hinge. The foldable hinge includes a base and two folding assemblies. The two folding assemblies are disposed on two sides of the base, both connected to the base, and can open and close relative to each other. The folding assemblies include a first swing arm, a second swing arm, a synchronizing gear, and a support component. The first swing arm is pivotally connected to the base. The second swing arm is pivotally connected to the base, and a pivotal connection axis between the second swing arm and the base is parallel to the pivotal connection axis between the first swing arm and the base. The synchronizing gear is located within the base. The first swing arm and the second swing arm are connected through a transmission using the synchronizing gear. The support component is pivotally connected to the first swing arm. The support component is further linked to the second swing arm. The support component can rotate relative to the first swing arm under the action of the second swing arm. The support component is configured to provide support for the flexible screen. When the two folding assemblies are unfolded relative to each other, the support components of the two folding assemblies are coplanar.

[0008] Based on the above features, the first swing arm and the second swing arm are both pivotally connected to the base, so that both the first swing arm and the second swing arm can rotate relative to the base. The first swing arm and the second swing arm are connected through a transmission using a synchronous gear. Therefore, when either the first swing arm or the second swing arm rotates relative to the base, the other of the first swing arm and the second swing arm also rotates relative to the base under the action of the synchronous gear.

[0009] As the second swing arm rotates, it drives the support component, allowing the support component to rotate relative to the first swing arm. In other words, the support component rotates relative to the base together with the first swing arm and rotates relative to the first swing arm. Therefore, when the two folding assemblies are folded, the two support components can present a specific included angle. The transmission between the first swing arm and the second swing arm is implemented by using a synchronized gear. This has a simple structure, is convenient to manufacture, and is low-cost.

[0010] Optionally, a transmission ratio of the synchronizer gear for the first swing arm is smaller than a transmission ratio of the synchronizer gear for the second swing arm.

[0011] Based on the above characteristics, when the two folding assemblies are folded relative to each other, the rotation angle of the first swing arm can be larger than the rotation angle of the second swing arm. In this manner, the support components of the two folding assemblies rotate at a specific narrow angle relative to the first swing arm, so that the support components of the two folding assemblies are inclined relative to each other, limiting the teardrop-shaped space between the base.

[0012] In some examples, the first swing arm and the second swing arm are spaced apart in a direction parallel to the axis of the synchronizing gear. The first swing arm includes a first body portion and a first gear portion, and the first gear portion is located on a side of the first body portion closer to the second swing arm. The second swing arm includes a second body portion and a second gear portion, and the second gear portion is located on a side of the second body portion closer to the first swing arm. The synchronizing gear is located between the first body portion and the second body portion and meshes with the first gear portion and the second gear portion.

[0013] Based on the above features, when the first swing arm rotates, the synchronous gear is driven to rotate, and then the synchronous gear drives the second swing arm to rotate. The first swing arm and the second swing arm move stably and have high movement precision due to the gear transmission.

[0014] For example, the diameter of the first gear portion is smaller than the diameter of the second gear portion, and therefore, in this method, the transmission ratio of the synchronizer gear to the first gear portion is smaller than the transmission ratio of the synchronizer gear to the second gear portion.

[0015] Optionally, orthographic projections of the first gear portion and the second gear portion on a plane perpendicular to the axis of the synchronizing gear at least partially overlap.

[0016] Based on the above features, the first gear portion and the second gear portion are arranged close to each other, and the orthogonal projections of the first gear portion and the second gear portion on a plane perpendicular to the axis of the synchronous gear at least partially overlap, so that the overall structure of the foldable hinge is more compact.

[0017] Optionally, the distance between the axes of the synchronizing gears of the two folding assemblies is smaller than the distance between the pivot connection axes between the first swing arms of the two folding assemblies and the base, and is also smaller than the distance between the pivot connection axes between the second swing arms of the two folding assemblies and the base, which helps to reduce the volume of the base, and therefore allows the foldable hinge to be designed to be smaller in size, making the structure more compact.

[0018] In some examples, the synchronization gears of the two folding assemblies are meshed. Based on the above features, since the synchronization gears are meshed, the two folding assemblies can move synchronously during the process of folding and unfolding the two folding assemblies.

[0019] In some examples, the first swing arm further includes a first end cam located on a side of the first body portion away from the first gear portion, and the first end cam is disposed coaxially with the first gear portion.

[0020] The foldable hinge further includes a damping mechanism located within the base and on a side of the first body portion away from the first gear portion, and the damping mechanism fits on an end face of the first end cam away from the first body portion.

[0021] Based on the above features, the damping mechanism engages with the first end cam to provide resistance to the first swing arm and prevent it from rotating. When folding is caused by an external force, the external force applied to the first swing arm exceeds the resistance applied to the first swing arm by the damping mechanism, allowing the first swing arm to rotate. After the external force is removed, the resistance provided by the damping mechanism prevents the first swing arm from rotating, allowing the first swing arm to be maintained in its current position and preventing the electronic device from automatically folding or unfolding under the action of gravity.

[0022] Optionally, the damping mechanism includes a second end cam and an elastic component. The second end cam is located at an end of the first end cam that is remote from the first body portion, and the second end cam is disposed coaxially with the first end cam. The elastic component is located at an end of the second end cam that is remote from the first end cam. The elastic component is configured to provide an elastic force to allow the second end cam to contact the first end cam.

[0023] Based on the above structure, when the first swing arm rotates, the first end cam and the second end cam rotate relative to each other. Under the action of the elastic force of the elastic component, the second end cam abuts against the first end cam, so that the first end cam and the second end cam are held in a stable position, thereby preventing the electronic device from automatically opening or closing due to factors such as gravity.

[0024] In some examples, the support component includes a plate body and an arc-shaped arm. The arc-shaped arm is located on a side of the plate body that is closer to the first swing arm and is also located on a side of the first swing arm. One end of the arc-shaped arm is connected to the plate body and the other end extends in a direction away from the base. A side wall of the first swing arm that is closer to the arc-shaped arm has an arc-shaped groove. The arc-shaped arm is located within the arc-shaped groove and can slide along the arc-shaped groove.

[0025] Based on the above features, the arcuate arm fits into the arcuate groove, so that the support component can rotate around the axis of the arcuate groove relative to the first swing arm.

[0026] The arc-shaped arm is fitted into the arc-shaped groove to realize a swivel connection. Both the arc-shaped arm and the arc-shaped groove are arc-shaped. The swivel connection axis is located at the axis of the arc-shaped arm or the arc-shaped groove. The radius of the arc-shaped arm and the arc-shaped groove can be changed, so the position of the swivel connection axis can be changed. This method makes the arrangement of the support component more flexible.

[0027] In some examples, the support component further includes a drive portion. The drive portion and the arcuate arm are located on the same side of the plate body, and the drive portion is located on a side of the second swing arm. The drive portion has a drive groove. The drive groove is located on a side of the drive portion that is closer to the second swing arm. A side wall of the second swing arm has a drive protrusion. The drive protrusion is located on a side of the second swing arm that is closer to the drive portion and is partially located within the drive groove.

[0028] Based on the above features, when the second swing arm rotates relative to the base, the drive protrusion contacts the side wall of the drive groove and squeezes the side wall of the drive groove to press the drive part. In this way, the support component rotates around the pivot connection axis between the support component and the first swing arm, so that the support component is driven by the second swing arm and the support component is coupled to the second swing arm.

[0029] According to a second aspect, an embodiment of the present disclosure further provides an electronic device. The electronic device includes a foldable hinge, a first housing, a second housing, and a flexible screen. The foldable hinge is the foldable hinge according to the first aspect. The first housing is connected to a first swing arm of one folding assembly within the foldable hinge. The second housing is connected to a first swing arm of the other folding assembly within the foldable hinge. The flexible screen is located on the same side of the foldable hinge, the first housing, and the second housing, and is connected to the first housing and the second housing.

[0030] Based on the above features, during the process of opening and closing the first and second housings, the support component can perform a double-rotation motion, rotating with the first swing arm relative to the base and rotating relative to the first swing arm. Because the relative positions of the support component and the first swing arm can change before and after folding, when the two folding assemblies are folded, the two support components form a specific narrow angle and, together with the base, enclose a teardrop-shaped space to accommodate the flexible screen. Transmission between the first swing arm and the second swing arm is achieved by using a synchronous gear. This has a simple structure, is convenient to manufacture, and is low-cost. [Brief explanation of the drawings]

[0031] [Figure 1] 1 is a schematic diagram of a structure of an electronic device according to one embodiment of the present disclosure.

[0032] [Figure 2] 1 is a schematic diagram of a structure of an electronic device according to one embodiment of the present disclosure.

[0033] [Figure 3] 1 is a schematic diagram of a structure of an electronic device according to one embodiment of the present disclosure.

[0034] [Figure 4] FIG. 1 is a schematic diagram of a foldable hinge structure according to an embodiment of the present disclosure.

[0035] [Figure 5] FIG. 1 is a schematic diagram of a foldable hinge structure according to an embodiment of the present disclosure.

[0036] [Figure 6] FIG. 6 is a schematic enlarged view of a portion of FIG. 5.

[0037] [Figure 7]FIG. 7 is a top view of the foldable hinge shown in FIG. 6.

[0038] [Figure 8] FIG. 1 is a simplified operational diagram of a foldable hinge according to one embodiment of the present disclosure.

[0039] [Figure 9] FIG. 8 is a cross-sectional view of the foldable hinge of FIG. 7 taken along line II.

[0040] [Figure 10] FIG. 2 is a schematic diagram of a first swing arm structure according to an embodiment of the present disclosure.

[0041] [Figure 11] 1 is a schematic diagram of a partial structure of a foldable hinge according to one embodiment of the present disclosure; FIG.

[0042] [Figure 12] 1 is a schematic diagram of a support component structure according to one embodiment of the present disclosure.

[0043] [Figure 13] FIG. 8 is a cross-sectional view of the foldable hinge of FIG. 7 taken along line II-II.

[0044] [Figure 14] 1 is a schematic diagram of a structure of an electronic device according to one embodiment of the present disclosure. [Explanation of symbols]

[0045] 100: foldable hinge; 110:base; 120: Folding assembly; 121: First swing arm; 1211: First body portion; 1211a: Arc-shaped groove; 1212: First gear portion; 1213: First end surface cam; 122: second swing arm; 1221: second body portion; 1222: second gear portion; 1223: drive projection; 123: Synchronous gear; 124: Support component; 1241: Plate body; 1242: Arc-shaped arm; 1243: Drive part; 1243a: Drive groove; 131: first pin shaft; 132: second pin shaft; 133: third pin shaft; 140: damping mechanism; 1401: second end face cam; 1402: elastic component; 1403: snap ring; 150:Top plate; 200: First housing; 300: Second housing; 400: Flexible screen; 500 Bottom plate. DETAILED DESCRIPTION OF THE INVENTION

[0046] The terms used in the implementation of this disclosure are used only to describe the embodiments of the present disclosure and are not intended to limit the disclosure. Unless otherwise defined, technical or scientific terms used in the implementation of this disclosure should have the common meaning understood by those skilled in the art of the present disclosure. In this specification and the claims of this disclosure, terms such as "first," "second," and "third" are not intended to denote any order, quantity, or importance, but are intended to distinguish between different components. Similarly, terms such as "a / an" and "one" are not intended to denote a limitation of quantity, but are intended to indicate the presence of at least one. Terms such as "have" or "comprise" mean that the elements or things before "have" or "comprise" cover the elements or things listed after "have" or "comprise" and their equivalents, and do not exclude other elements or things. Terms such as "connect" or "connect" are not limited to physical or mechanical connections and can include electrical connections, whether direct or indirect. Terms such as "top," "bottom," "left," and "right" are used solely to indicate relative positions. When the absolute positions of the described objects change, the relative positions may change accordingly.

[0047] 1 is a schematic diagram of the structure of an electronic device according to one embodiment of the present disclosure. The electronic device may be, but is not limited to, a mobile phone, a tablet computer, a display, or a notebook computer.

[0048] 1 , the electronic device includes a foldable hinge 100, a first housing 200, a second housing 300, and a flexible screen 400. The flexible screen 400 is located on the same side of the foldable hinge 100, the first housing 200, and the second housing 300, and the flexible screen 400 is connected to the first housing 200 and the second housing 300.

[0049] The first housing 200 and the second housing 300 can be opened and closed relative to each other. When the first housing 200 and the second housing 300 are unfolded, the flexible screen 400 is unfolded on the surfaces of the foldable hinge 100, the first housing 200, and the second housing 300. When the first housing 200 and the second housing 300 are folded relative to each other, the flexible screen 400 is folded between the first housing 200 and the second housing 300.

[0050] As shown in FIG. 1 , the electronic device further includes a bottom plate 500. FIG. 2 is a schematic diagram of the structure of the electronic device according to one embodiment of the present disclosure. FIG. 2 illustrates a folded state of the electronic device. In the state illustrated in FIG. 2 , the bottom plate 500 is located at the bottom of the foldable hinge 100. In the folded state, the bottom plate 500 is exposed between the first housing 200 and the second housing 300 and forms part of the outer surface of the electronic device. FIG. 3 is a schematic diagram of the structure of the electronic device according to one embodiment of the present disclosure. In FIG. 3 , the electronic device is in a semi-folded state, i.e., a state between the folded state and the unfolded state. As shown in FIG. 3 , the bottom plate 500 is indented between the first housing 200 and the second housing 300 under the actuation of the foldable hinge 100. When the first housing 200 and the second housing 300 are in the unfolded state, referring to the state shown in FIG. 1, the bottom plate 500 is hidden between the first housing 200 and the second housing 300.

[0051] 4 is a schematic diagram of a structure of a foldable hinge according to one embodiment of the present disclosure. As shown in FIG. 4, the foldable hinge includes a base 110 and two folding assemblies 120. The two folding assemblies 120 are located on two sides of the base 110, and the two folding assemblies 120 are both connected to the base 110 and can open and close relative to each other. One of the two folding assemblies 120 is configured to be connected to a first housing 200, and the other of the two folding assemblies 120 is configured to be connected to a second housing 300. During the folding process, the two folding assemblies 120 move toward each other, driving the first housing 200 and the second housing 300 to move toward each other.

[0052] Figure 5 is a schematic diagram of a structure of a foldable hinge according to one embodiment of the present disclosure. Figure 6 is a partial enlarged schematic diagram of the foldable hinge of Figure 5. As shown in Figures 5 and 6, the folding assembly 120 includes a first swing arm 121, a second swing arm 122, a synchronizing gear 123, and a support component 124.

[0053] Figure 7 is a top view of the foldable hinge shown in Figure 6. At least the base 110 and the support component 124 are not shown in Figure 7. As shown in Figure 7, the first swing arm 121 is pivotally connected to the base 110. Figure 7 shows the pivotal connection axis m1 between the first swing arm 121 and the base 110.

[0054] The second swing arm 122 is pivotally connected to the base 110. Figure 7 shows the pivotal connection axis m2 between the first swing arm 121 and the base 110. The pivotal connection axis m2 between the second swing arm 122 and the base 110 is parallel to the pivotal connection axis m1 between the first swing arm 121 and the base 110.

[0055] A synchronization gear 123 is located in the base 110, and the first swing arm 121 and the second swing arm 122 are connected through transmission by using the synchronization gear 123. In this way, when the first swing arm 121 rotates around the pivot connection axis m1, the synchronization gear 123 can drive the second swing arm 122 to rotate around the pivot connection axis m2.

[0056] The support component 124 is pivotally connected to the first swing arm 121. Figure 7 shows a pivotal connection axis m3 between the support component 124 and the first swing arm 121. The support component 124 is coupled to the second swing arm 122, and the support component 124 can rotate relative to the first swing arm 121 under the action of the second swing arm 122. When the first swing arm 121 rotates, the first swing arm 121 drives the synchronizer gear 123 to rotate, and the synchronizer gear 123 in turn drives the second swing arm 122 to rotate. The support component 124 rotates around the pivotal connection axis m3 under the action of the second swing arm 122.

[0057] The support components 124 are configured to provide support for the flexible screen 400. When the two folding assemblies 120 are unfolded relative to each other, the support components 124 of the two folding assemblies 120 are coplanar and support the flexible screen 400 in the unfolded state.

[0058] In this embodiment of the present disclosure, the first swing arm 121 and the second swing arm 122 are both pivotally connected to the base 110, so that the first swing arm 121 and the second swing arm 122 can both rotate relative to the base 110. In addition, the first swing arm 121 and the second swing arm 122 are connected through a transmission using a synchronization gear 123. Therefore, when one of the first swing arm 121 and the second swing arm 122 rotates relative to the base 110, the synchronization gear 123 can drive the other of the first swing arm 121 and the second swing arm 122 to rotate relative to the base 110. The support component 124 is pivotally connected to the first swing arm 121. In the process of rotating the second swing arm 122, the second swing arm 122 drives the support component 124, allowing the support component 124 to rotate relative to the first swing arm 121. In this manner, during the process of folding the two folding assemblies 120 relative to each other, the support component 124 can perform double rotational motion. That is, the support component 124 rotates with the first swing arm 121 relative to the base 110 and rotates relative to the first swing arm 121. In this manner, the relative positions of the support component 124 and the first swing arm 121 can change before and after folding, so that when the two folding assemblies 120 are folded, the two support components 124 can exhibit a specific included angle. Transmission between the first swing arm 121 and the second swing arm 122 is performed using a synchronized gear 123. This has a simple structure, is convenient to manufacture, and is low-cost.

[0059] In this embodiment of the present disclosure, the transmission ratio of the synchronizer gear 123 to the first swing arm 121 is smaller than the transmission ratio of the synchronizer gear 123 to the second swing arm 122.

[0060] Specifically, when the first swing arm 121 rotates to drive the synchronizer gear 123 and the second swing arm 122 to rotate together, the rotation angle of the first swing arm 121 is α1, the rotation angle of the synchronizer gear 123 is α2, and the rotation angle of the second swing arm 122 is α3, where α2 / α1<α2 / α3. It can be seen that α3<α1. When the foldable hinge changes from an unfolded state to a folded state, the rotation angle of the first swing arm 121 is greater than the rotation angle of the second swing arm 122, and the relative positions of the first swing arm 121 and the second swing arm 122 may change. The support component 124 is pivotally connected to the first swing arm 121. When the position of the second swing arm 122 relative to the first swing arm 121 changes, the support component 124 is allowed to rotate relative to the first swing arm 121.

[0061] FIG. 8 is a simplified operational diagram of a foldable hinge according to one embodiment of the present disclosure. As shown in FIG. 8, the foldable hinge changes from an unfolded state to a folded state. The rotation angle of the first swing arm 121 is α1, and the rotation angle of the second swing arm 122 is α3. Because the rotation angle of the second swing arm 122 is small, the support component 124 is allowed to rotate relative to the first swing arm 121, and the two support components 124 are inclined relative to each other. The two support components 124 and the base 110 enclose a space resembling a water drop shape to accommodate the folded portion of the flexible screen, so that the folded portion of the flexible screen is bent into a water drop shape.

[0062] 7, the first swing arm 121 and the second swing arm 122 are spaced apart in a direction parallel to the axis m4 of the synchronizer gear 123. The first swing arm 121 includes a first main body portion 1211 and a first gear portion 1212, and the first gear portion 1212 is located on a side of the first main body portion 1211 that is closer to the second swing arm 122. The second swing arm 122 includes a second main body portion 1221 and a second gear portion 1222, and the second gear portion 1222 is located on a side of the second main body portion 1221 that is closer to the first swing arm 121. The synchronizer gear 123 is located between the first main body portion 1211 and the second main body portion 1221, and meshes with the first gear portion 1212 and the second gear portion 1222.

[0063] The first gear portion 1212 of the first swing arm 121 and the second gear portion 1222 of the second swing arm 122 mesh with the synchronous gear 123, so that when the first swing arm 121 rotates, the synchronous gear 123 can be driven to rotate, and as a result, the synchronous gear 123 drives the second swing arm 122 to rotate. Transmission using gears helps to achieve a compact structure and stable transmission that is highly efficient, reliable, and stable.

[0064] In this embodiment of the present disclosure, because the diameter of the first gear portion 1212 is smaller than the diameter of the second gear portion 1222, the transmission ratio of the synchronous gear 123 to the first gear portion 1212 is smaller than the transmission ratio of the synchronous gear 123 to the second gear portion 1222.

[0065] The first swing arm 121, the second swing arm 122, and the synchronous gear 123 can be connected to the base 110 using pin shafts. For example, as shown in FIG. 7 , the first swing arm 121 is connected to the base 110 using a first pin shaft 131. A first main body portion 1211 of the first swing arm 121 has a first connecting hole, which is arranged coaxially with a first gear portion 1212. The first pin shaft 131 is attached to the base 110, and the first connecting hole is sleeved on the outside of the first pin shaft 131, so that the first swing arm 121 can rotate around the first pin shaft 131. During the rotation process, the first gear portion 1212 also rotates around its axis to drive the synchronous gear 123.

[0066] The second swing arm 122 is connected to the base 110 by using a second pin shaft 132. The second pin shaft 132 is located on a side of the second main body portion 1221 of the second swing arm 122, away from the second gear portion 1222, and since the second pin shaft 132 is connected to the base 110, the second swing arm 122 can rotate around the second pin shaft 132. The second pin shaft 132 has a clearance fit with one of the second main body portion 1221 and the base 110, and has a transition fit with or is integral with the other of the second main body portion 1221 and the base 110.

[0067] For example, in some examples, the second body portion 1221 has a second connection hole. The second pin shaft 132 has a clearance fit with the second connection hole. The second pin shaft 132 and the base 110 are of one piece. Alternatively, a receptacle is disposed in the base 110, and the second pin shaft 132 is inserted into the receptacle and has a clearance fit or transition fit with the receptacle. In other examples, the second pin shaft 132 and the second body portion 1221 are of one piece. The receptacle is disposed in the base 110, and the second pin shaft 132 is inserted into the receptacle and has a clearance fit with the receptacle.

[0068] The synchronizer gear 123 can be connected to the base 110 by using a third pin shaft 133. The third pin shaft 133 is attached to the base 110, the synchronizer gear 123 has an axial through hole, and the synchronizer gear 123 is sleeve-like disposed on the outside of the third pin shaft 133 that passes through the axial through hole. The third pin shaft 133 has a clearance fit with the axial through hole, so that the synchronizer gear 123 can rotate relative to the third pin shaft 133.

[0069] As shown in FIG. 7, the distance between the axes m4 of the synchronized gears 123 of the two folding assemblies 120 is smaller than the distance between the pivotal connection axes m1 between the first swing arms 121 of the two folding assemblies 120 and the base 110, and is also smaller than the distance between the pivotal connection axes m2 between the second swing arms 122 of the two folding assemblies 120 and the base 110.

[0070] In this embodiment of the present disclosure, the spacing between the third pin shafts 133 of the two folding assemblies 120 is smaller than the spacing between the second pin shafts 132 of the two folding assemblies 120, and is also smaller than the spacing between the first pin shafts 131 of the two folding assemblies 120. This helps to reduce the volume of the base 110, so the size of the foldable hinge can be designed to be smaller.

[0071] Figure 9 is a cross-sectional view of the foldable hinge of Figure 7. As shown in Figure 9, the orthogonal projections of the first gear portion 1212 and the second gear portion 1222 on a plane perpendicular to the axis of the synchronous gear 123 at least partially overlap.

[0072] The first gear portion 1212 and the second gear portion 1222 are staggered in a direction parallel to the axis of the synchronizing gear 123 and interact with each other via the synchronizing gear 123. When the first swing arm 121 and the second swing arm 122 are arranged, the first gear portion 1212 and the second gear portion 1222 can mesh with the synchronizing gear 123. In this embodiment of the present disclosure, the first gear portion 1212 and the second gear portion 1222 are arranged close to each other, so that orthogonal projections of the first gear portion 1212 and the second gear portion 1222 on a plane perpendicular to the axis of the synchronizing gear 123 partially overlap. In this manner, the overall structure of the foldable hinge becomes more compact, and the foldable hinge can be designed to be smaller.

[0073] 9, the synchronization gears 123 of the two folding assemblies 120 are meshed with each other. Because the synchronization gears 123 are meshed with each other, the two folding assemblies 120 can move synchronously during the process of folding and unfolding the folding assemblies 120.

[0074] 10 is a schematic diagram of a structure of a first swing arm according to one embodiment of the present disclosure. As shown in FIG. 10, the first swing arm 121 further includes a first end cam 1213. The first end cam 1213 is located on a side of the first main body portion 1211, away from the first gear portion 1212. The first end cam 1213 is disposed coaxially with the first gear portion 1212.

[0075] 11 is a schematic diagram of a partial structure of a foldable hinge according to one embodiment of the present disclosure. As shown in FIG. 11, the foldable hinge further includes a damping mechanism 140. The damping mechanism 140 is located within the base 110, and the damping mechanism 140 is located on a side of the first body portion 1211 away from the first gear portion 1212. The damping mechanism 140 fits on an end surface of the first end cam 1213 away from the first body portion 1211.

[0076] When an electronic device is used, folding is typically performed by a user applying an external force. The damping mechanism 140 can provide damping during the folding process, so that after the user removes the external force, the electronic device can remain in the unfolded configuration. For example, after the two folding assemblies 120 are fully unfolded, the damping provided by the damping mechanism 140 maintains the foldable hinges in the unfolded state, so that the electronic device is in the unfolded state. After the two folding assemblies 120 are folded, the damping provided by the damping mechanism 140 maintains the foldable hinges in the folded state, so that the electronic device is in the folded state and will not automatically unfold under the influence of gravity or the like. When the two folding assemblies 120 are in a state between the fully unfolded state and the folded state, the electronic device is in a semi-unfolded state. For example, the flexible screen 400 is folded by 90°. In this case, the external force is removed, and the damping provided by the damping mechanism 140 can also maintain the foldable hinges in the semi-unfolded state.

[0077] The damping mechanism 140 engages with the first end cam 1213 to provide resistance to the first swing arm 121 and prevent the first swing arm 121 from rotating. When folding is performed through an external force, the external force applied to the first swing arm 121 exceeds the resistance applied to the first swing arm 121 by the damping mechanism 140, and the first swing arm 121 can rotate. After the external force is removed, the first swing arm 121 is maintained in its current position under the action of the resistance provided by the damping mechanism 140, so that the electronic device is maintained in the form in which the external force was removed.

[0078] 11 , the damping mechanism 140 includes a second end cam 1401 and an elastic component 1402. The second end cam 1401 is located at an end of the first end cam 1213 that is remote from the first body portion 1211, and the first end cam 1213 is disposed coaxially with the second end cam 1401. The elastic component 1402 is located at an end of the second end cam 1401 that is remote from the first end cam 1213. The elastic component 1402 is configured to provide an elastic force to allow the second end cam 1401 to contact the first end cam 1213.

[0079] In this embodiment of the present disclosure, the second end face cam 1401 is sleeve-like positioned on the outside of the first pin shaft 131, and the second end face cam 1401 can move along the axial direction of the first pin shaft 131, and the second end face cam 1401 and the first pin shaft 131 are circumferentially locked, so that the second end face cam 1401 cannot rotate circumferentially relative to the first pin shaft 131.

[0080] For example, in this embodiment of the present disclosure, a second end cam 1401 and an elastic component 1402 are disposed on each of the first swing arms 121 corresponding to the two folding assemblies 120. The two second end cams 1401 are respectively disposed on the outside of the two first pin shafts 131 in a sleeve-like manner, and the two second end cams 1401 are connected to each other. The two second end cams 1401 are disposed on the outside of two different pin shafts in a sleeve-like manner. Therefore, since the two second end cams 1401 are connected to each other, circumferential limiting can be performed on the two second end cams 1401, allowing the second end cams 1401 and the first pin shafts 131 to be locked in the circumferential direction.

[0081] In some examples, the elastic component 1402 is a spring, and the spring is sleeved around the outside of the first pin shaft 131. The damping mechanism 140 may further include a snap ring 1403. The snap ring 1403 is sleeved around the outside of the first pin shaft 131, and the spring is located between the second end cam 1401 and the snap ring 1403. Axial limiting is provided to the spring using the snap ring 1403, preventing the spring from loosening.

[0082] 12 is a schematic diagram of a structure of a support component according to one embodiment of the present disclosure. As shown in FIG. 12, the support component 124 includes a plate body 1241 and an arc-shaped arm 1242. The arc-shaped arm 1242 is located on a side of the plate body 1241 that is closer to the first swing arm 121, and the arc-shaped arm 1242 is located on a side of the first swing arm 121. One end of the arc-shaped arm 1242 is connected to the plate body 1241, and the other end of the arc-shaped arm 1242 extends in a direction away from the base 110.

[0083] 10, a side wall of the first swing arm 121 that is closer to the arc-shaped arm 1242 has an arc-shaped groove 1211a. The arc-shaped arm 1242 is positioned within the arc-shaped groove 1211a and can slide along the arc-shaped groove 1211a.

[0084] In this embodiment of the present disclosure, the first body portion 1211 of the first swing arm 121 is L-shaped. One end of the first body portion 1211 is pivotally connected to the base 110, and the arc-shaped groove 1211a is located on the end face of the other end of the first body portion 1211.

[0085] The arcuate arm 1242 is fitted into the arcuate groove 1211a, and the support component 124 can rotate relative to the first swing arm 121 around the axis of the arcuate groove 1211a, that is, the pivotal connection axis m3.

[0086] In the prior art, a pole component such as a pin shaft is typically used for pivotal connection, and the pivotal connection axis coincides with the axis of the pin shaft. Therefore, the position of the pivotal connection axis is regulated by the position of the pin shaft. In this embodiment of the present disclosure, the arc-shaped arm 1242 is fitted into the arc-shaped groove 1211a to achieve the pivotal connection. Both the arc-shaped arm 1242 and the arc-shaped groove 1211a are arc-shaped. The pivotal connection axis is located on the axis of the arc-shaped arm 1242 or the arc-shaped groove 1211a. As the radii of the arc-shaped arm 1242 and the arc-shaped groove 1211a change, the position of the pivotal connection axis can be changed. This is not limited to a structure like a pin shaft, and the configuration is more flexible.

[0087] 12, the support component 124 further includes a drive portion 1243. The drive portion 1243 and the arcuate arm 1242 are located on the same side of the plate body 1241, and the drive portion 1243 is located on the side of the second swing arm 122. The drive portion 1243 has a drive groove 1243a, which is located on the side of the drive portion 1243 that is closer to the second swing arm 122.

[0088] In this embodiment of the present disclosure, the drive unit 1243 is located on the side of the arc-shaped arm 1242, on the side closer to the second swing arm 122, i.e., between the second swing arm 122 and the arc-shaped arm 1242, making the structures of the first swing arm 121, the second swing arm 122, and the support component 124 more compact. In addition, the drive unit 1243 is located on the side of the pivotal connection axis m3 between the support component 124 and the first swing arm 121, on the side closer to the base 110. During the process of folding the two folding assemblies 120, the rotation angle of the second swing arm 122 is smaller than the rotation angle of the first swing arm 121, and the drive groove 1243a is closer to the base 110 than the pivotal connection axis m3. Therefore, the two support components 124 are in a splayed shape, approaching each other.

[0089] As shown in Figure 11, the side wall of the second swing arm 122 has a drive protrusion 1223. The drive protrusion 1223 is located on a side of the second swing arm 122 that is closer to the drive portion 1243. Figure 13 is a cross-sectional view of the foldable hinge of Figure 7 taken along line II-II. As shown in Figure 13, the drive protrusion 1223 is partially located within the drive groove 1243a.

[0090] In this embodiment of the present disclosure, one end of the second body portion 1221 of the second swing arm 122 is pivotally connected to the base 110, and the drive protrusion 1223 is located at the other end of the second body portion 1221, i.e., at the end of the second body portion 1221 that is remote from the base 110. The drive protrusion 1223 is cylindrical, and one end of the drive protrusion 1223 is connected to the second body portion 1221. The drive protrusion 1223 is parallel to the pivotal connection axis m2 between the second swing arm 122 and the base 110.

[0091] When the second swing arm 122 rotates relative to the base 110, the drive protrusion 1223 contacts the side wall of the drive groove 1243a and presses against the side wall of the drive groove 1243a to compress the drive part 1243. In this manner, the support component 124 rotates about the pivot connection axis m3. When the foldable hinge is in the unfolded state, the drive protrusion 1223 is located at the end of the drive groove 1243a that is farther from the base 110. When the foldable hinge is in the folded state, the drive protrusion 1223 is located at the end of the drive groove 1243a that is closer to the base 110.

[0092] 1 , the electronic device further includes a top plate 150. The top plate 150 is located on top of the base 110 and connected to the base 110. The top plate 150 can play a blocking and protective role, blocking the base 110 and the internal structure of the base 110 and preventing external foreign objects from entering the base 110 and affecting the normal operation of the foldable hinge 100. The top plate 150 can further provide a flat area to facilitate supporting the flexible screen 400.

[0093] FIG. 14 is a schematic diagram of the structure of an electronic device according to one embodiment of the present disclosure. As shown in FIG. 14, the electronic device includes a foldable hinge 100, a first housing 200, a second housing 300, and a flexible screen 400. The foldable hinge 100 is any of the foldable hinges shown in FIGS. 1 to 13. The first housing 200 is connected to the first swing arm 121 of one folding assembly 120 of the foldable hinge 100, and the second housing 300 is connected to the first swing arm 121 of the other folding assembly 120 of the foldable hinge 100. The flexible screen 400 is located on the same side of the foldable hinge 100, the first housing 200, and the second housing 300, and is connected to the first housing 200 and the second housing 300.

[0094] During the process of opening or closing the first housing 200 and the second housing 300, the support component 124 may perform a double rotational movement. That is, the support component 124 rotates with the first swing arm 121 relative to the base 110 and rotates relative to the first swing arm 121. In this manner, the relative positions of the support component 124 and the first swing arm 121 may change before and after folding, so that when the two folding assemblies 120 are folded, the two support components 124 may exhibit a certain included angle. The transmission between the first swing arm 121 and the second swing arm 122 is performed by using a synchronous gear 123. This has a simple structure, is convenient to manufacture, and is low-cost.

[0095] The electronic device includes two foldable hinges 100, with the bases 110 of the two foldable hinges 100 connected together. In the two foldable hinges 100, the support components 124 of the folding assemblies 120 closer to the first housing 200 are connected together, and the support components 124 of the folding assemblies 120 closer to the second housing 300 are connected together, so that the two foldable hinges 100 move more synchronously.

[0096] The number of foldable hinges 100 in an electronic device can be set based on the size of the electronic device. For a small-sized electronic device, a small number of foldable hinges 100 can be arranged, for example, one or two foldable hinges 100. For a large-sized electronic device, a large number of foldable hinges 100 can be arranged, for example, three or more foldable hinges 100.

[0097] The above description is merely an embodiment of the present disclosure and is not intended to limit the present disclosure. Any modification, equivalent replacement, or improvement made without departing from the spirit and principle of the present disclosure shall fall within the protection scope of the present disclosure.

Claims

1. A foldable hinge having a base and two folding assemblies, the two folding assemblies being located on two sides of the base, both connected to the base, and capable of being opened or closed relative to each other; the folding assembly includes a first swing arm, a second swing arm, a synchronization gear that synchronizes rotation of the first swing arm with rotation of the second swing arm, and a support component that supports a flexible screen; the first swing arm is pivotally connected to the base; the second swing arm is pivotally connected to the base, and the pivotal connection axis between the second swing arm and the base is parallel to the pivotal connection axis between the first swing arm and the base; the synchronous gear is located within the base, and the first swing arm and the second swing arm are connected through a transmission using the synchronous gear; the support component is pivotally connected to the first swing arm, coupled to the second swing arm, and rotatable relative to the first swing arm under the action of the second swing arm; a transmission ratio of the synchronous gear to the first swing arm is smaller than a transmission ratio of the synchronous gear to the second swing arm; the first swing arm and the second swing arm are spaced apart in a direction parallel to the axis of the synchronous gear; the first swing arm has a first body portion and a first gear portion, the first gear portion being located on a side of the first body portion that is closer to the second swing arm; the second swing arm has a second body portion and a second gear portion, the second gear portion being located on a side portion of the second body portion that is closer to the first swing arm; the synchronous gear is located between the first body portion and the second body portion and meshes with the first gear portion and the second gear portion; When the two folding assemblies are folded, the two support components and the base enclose a teardrop-shaped space for accommodating the flexible screen. Foldable hinge.

2. Orthogonal projections of the first gear portion and the second gear portion on a plane perpendicular to the axis of the synchronous gear at least partially overlap. The foldable hinge of claim 1 .

3. a distance between the axes of the synchronous gears of the two folding assemblies is smaller than a distance between the pivot connection axes between each of the first swing arms of the two folding assemblies and the base, and is smaller than a distance between the pivot connection axes between each of the second swing arms of the two folding assemblies and the base; The foldable hinge of claim 1 .

4. the synchronous gears of the two folding assemblies mesh together; The foldable hinge of claim 1 .

5. the first swing arm further has a first end cam, the first end cam being located on a side of the first body portion away from the first gear portion, and the first end cam being arranged coaxially with the first gear portion; the foldable hinge further includes a damping mechanism, the damping mechanism being located within the base and located on a side of the first body portion away from the first gear portion, and the damping mechanism being fitted to an end surface of the first end surface cam away from the first body portion; The foldable hinge of claim 1 .

6. the damping mechanism includes a second end cam and an elastic component, the second end cam being located at an end of the first end cam that is remote from the first body portion and is arranged coaxially with the first end cam, and the elastic component being located at an end of the second end cam that is remote from the first end cam and configured to provide an elastic force to allow the second end cam to contact the first end cam.

6. The foldable hinge of claim 5.

7. The support component has a plate body and an arcuate arm, the arcuate arm being located on a side of the plate body that is closer to the first swing arm and on a side of the first swing arm, one end of the arcuate arm being connected to the plate body and the other end extending in a direction away from the base; a side wall of the first swing arm that is close to the arcuate arm has an arcuate groove, and the arcuate arm is positioned within the arcuate groove and can slide along the arcuate groove; The foldable hinge of claim 1 .

8. the support component further includes a drive portion, the drive portion and the arcuate arm being located on the same side of the plate body, the drive portion being located on a side of the second swing arm, the drive portion having a drive groove, the drive groove being located on a side of the drive portion that is closer to the second swing arm; a side wall of the second swing arm has a drive protrusion, the drive protrusion being located on a side of the second swing arm that is closer to the drive portion and is partially located within the drive groove; 8. The foldable hinge of claim 7.

9. 9. An electronic device comprising: a foldable hinge, a first housing, a second housing, and the flexible screen, wherein the foldable hinge is the foldable hinge of any one of claims 1 to 8, the first housing is connected to the first swing arm of one folding assembly within the foldable hinge, and the second housing is connected to the first swing arm of the other folding assembly within the foldable hinge, and the flexible screen is located on the same side of the foldable hinge, the first housing, and the second housing, and is connected to the first housing and the second housing.

Citation Information

Patent Citations

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    CN108648624A

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