Magnetic buckle assembly

The magnetic buckle assembly addresses the complexity and operability issues of conventional buckle assemblies by using magnetic attraction and repulsion for easy and secure connections in baby carriers.

JP7860049B2Active Publication Date: 2026-05-15WONDERLAND SWITZERLAND AG
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
WONDERLAND SWITZERLAND AG
Filing Date
2023-11-10
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Conventional buckle assemblies for baby carriers are difficult to operate and have a complex structure.

Method used

A magnetic buckle assembly comprising a male and female buckle component with locking portions and magnetic components that facilitate easy connection and disconnection through magnetic attraction and repulsion, utilizing elastic structures for secure engagement and disengagement.

Benefits of technology

The magnetic buckle assembly provides a compact and user-friendly design with secure connections, preventing accidental separation and enhancing convenience during use.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an improved buckle assembly which is easy to operate and has a compact structure.SOLUTION: A magnetic buckle assembly has: a male buckle component; a female buckle component; a first engaging part placed in the female buckle component; a second engaging part placed in the male buckle component and engaging the first engaging part; an operation component movably arranged in the female buckle component; a first magnetic component arranged in the female buckle component; and a second magnetic component arranged in the male buckle component and magnetically cooperating with the first magnetic component. The male buckle component is connected to the female buckle component along a connection direction by engagement between the first engaging part and the second engaging part. The operation component includes at least one extension leg. The operation component is operated to press the first engaging part with at least one extension leg, and the first engaging part is disengaged from the second engaging part.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] The present invention relates to a buckle assembly, and more particularly to a magnetic buckling assembly.

Background Art

[0002] With the development of the economy and the progress of technology, there are increasingly more consumer goods available in the market to bring convenience to people's lives. A baby carrier is one of these consumer goods.

[0003] It is well known that a baby carrier usually includes a plurality of straps and a plurality of buckle assemblies for quickly connecting or disconnecting the straps.

[0004] Currently, conventional buckle assemblies usually include a male buckle component, a female buckle component, and a release button. The male buckle component is connected to a strap, and the female buckle component is connected to another strap, and these straps can be connected to each other by the engagement of the male buckle component and the female buckle component. The release button is a button for disengaging the male buckle component from the female buckle component to disconnect the straps.

[0005] However, conventional buckle assemblies have the disadvantages that the operation is difficult and the structure is complex.

[0006] Therefore, in order to solve the above-mentioned problems, it is necessary to provide an improved buckle assembly that is easy to operate and has a compact structure.

Summary of the Invention

[0007] An object of the present invention is to provide a magnetic buckle assembly that is easy to operate and has a compact structure.

[0008] To achieve the above-mentioned objectives, the present invention discloses a magnetic buckle assembly comprising a male buckle component, a female buckle component, a first locking portion, a second locking portion, an operating component, a first magnetic component, and a second magnetic component. The first locking portion is located on one of the male buckle component and the female buckle component. The second locking portion is located on the other of the male buckle component and the female buckle component and engages with the first locking portion. The operating component is movably located on the other of the male buckle component and the female buckle component. The first magnetic component is located on the female buckle component. The second magnetic component is located on the male buckle component and magnetically cooperates with the first magnetic component. The male buckle component is connected to the female buckle component along the connection direction by the engagement of the first locking portion and the second locking portion. The first magnetic component magnetically attracts or repels the second magnetic component during the connection process between the male buckle component and the female buckle component along the connection direction, and the first magnetic component magnetically attracts the second magnetic component to prevent separation of the male buckle component and the female buckle component, or magnetically repels the second magnetic component to facilitate separation between the first and second locking components when an operating component is operated to disengage the first locking portion from the second locking portion, allowing separation of the first and second locking portions.

[0009] According to one embodiment of the present invention, the first locking portion is an elastic structure. The second locking portion includes a contact structure and an engagement structure. The contact structure presses and elastically deforms the first locking portion during the connection process between the male buckle component and the female buckle component along the connection direction, thereby causing the first locking portion to slide and engage with the engagement structure. An operating component is operated to elastically deform the first locking portion, thereby disengaging the first locking portion from the engagement structure.

[0010] According to one embodiment of the present invention, the first locking portion includes at least one elastic arm and at least one engaging head for engaging with an engagement structure. The at least one engaging head is connected to the at least one elastic arm. The at least one elastic arm biases the at least one engaging head to engage with the engagement structure. The contact structure pushes the at least one engaging head during the process of connecting a male buckle component and a female buckle component along the connection direction, causing the at least one engaging head to slide and engage with the engagement structure. An operating component is operated to cause the at least one elastic arm to elastically deform, thereby disengaging the at least one engaging head from the engagement structure.

[0011] According to one embodiment of the present invention, the operating component is operated to push at least one elastic arm along an operating direction parallel to the connection direction, to elastically deform at least one elastic arm along a deformation direction intersecting the connection direction, and to disengage at least one engaging head from the engaging structure.

[0012] According to one embodiment of the present invention, the operating component includes at least one contact inclined surface that is inclined with respect to the connection direction, and the operating component is operated to press against at least one elastic arm with the at least one contact inclined surface, causing it to elastically deform.

[0013] According to one embodiment of the present invention, at least one engaging head surrounds an engaging structure. At least one contact inclined surface is inclined from the inside outward toward away from the contact structure, and the operating component is operated by the at least one contact inclined surface to push at least one elastic arm outward and elastically expand it.

[0014] According to one embodiment of the present invention, the first locking portion includes at least two elastic arms surrounding the second locking portion and at least two engaging heads, each of the at least two elastic arms being connected to a corresponding one of the at least two engaging heads.

[0015] According to one embodiment of the present invention, at least one extension leg extends from the operating component along the connection direction, and at least one contact inclined surface is formed on the at least one extension leg.

[0016] According to one embodiment of the present invention, the first locking portion includes at least one driven inclined surface located at the base end of at least one elastic arm connected to at least one engaging head in cooperation with at least one contact inclined surface, and the operating component is operated to push and elastically deform at least one elastic arm by the cooperation of at least one contact inclined surface and at least one driven inclined surface.

[0017] According to one embodiment of the present invention, a recess is formed at the base end of at least one elastic arm connected to at least one engaging head. At least one extension leg extends into the recess. At least one driven inclined surface is formed on the wall of the recess, and at least one contact inclined surface is formed at the end of at least one extension leg.

[0018] According to one embodiment of the present invention, at least one contact inclined surface is formed at the end of at least one extension leg and cooperates with the tip of at least one elastic arm in a direction away from at least one end.

[0019] According to one embodiment of the present invention, the magnetic buckle assembly further includes an elastic component that provides an elastic restorative force for returning the operating component to its original position.

[0020] According to one embodiment of the present invention, the end of the contact structure includes a first inclined structure inclined with respect to the connection direction. At least one engaging head includes a second inclined structure cooperating with the first inclined structure, and the contact structure slides across the at least one engaging head, engaging the engaging structure with the at least one engaging head through the cooperation of the first and second inclined structures.

[0021] According to one embodiment of the present invention, at least one engagement head is a hook, and the engagement structure is a hook slot corresponding to the hook.

[0022] According to one embodiment of the present invention, a first installation chamber is formed in the female buckle component. A second installation chamber is formed in the male buckle component. The first magnetic component is installed in the first installation chamber, and the second magnetic component is installed in the second installation chamber.

[0023] According to one embodiment of the present invention, the first installation chamber is aligned with the second installation chamber along the connection direction.

[0024] According to one embodiment of the present invention, the first installation chamber or the second installation chamber is formed inside the second locking portion.

[0025] According to one embodiment of the present invention, at least one of the first magnetic component and the second magnetic component is a permanent magnetic component.

[0026] According to one embodiment of the present invention, the operating component is a circular button or a rectangular button.

[0027] According to one embodiment of the present invention, one of the male buckle component and the female buckle component includes an outer cover and a buckle body disposed inside the outer cover, and the operating component is movably passed through the outer cover along the connection direction.

[0028] According to one embodiment of the present invention, each of the other of the male buckle component and the female buckle component and the outer cover includes at least one assembling portion for attaching at least one strap, a through hole is formed in the at least one assembling portion, and the at least one strap is allowed to pass through the through hole.

[0029] According to an embodiment of the present invention, the second locking portion is a columnar structure. The male buckle part is rotatable with respect to the female buckle part around the second locking portion. The other of the male buckle part and the female buckle part includes two assembling parts facing each other, and the positions of the two assembling parts with respect to the outer cover are adjustable by the rotation of the male buckle part with respect to the female buckle part.

[0030] According to an embodiment of the present invention, the placement hole is formed in the first surface of the outer cover in a direction away from the second locking portion. The operating part is arranged inside the placement hole, the connection hole is formed in the second surface of the outer cover adjacent to the second locking portion, and the second locking portion is allowed to pass through the connection hole.

[0031] According to an embodiment of the present invention, at least one rib protrudes from the outer cover and is adjacent to the side wall of the outer cover.

[0032] According to an embodiment of the present invention, the magnetic buckle assembly further includes a protection part arranged on one of the male buckle part and the female buckle part and movable between a first position and a second position with respect to one of the male buckle part and the female buckle part. When the protection part is in the first position, the protection part suppresses the operating part from disengaging the first locking portion from the second locking portion, and the operating part is allowed to disengage the first locking portion from the second locking portion when the protection part is in the second position.

[0033] According to an embodiment of the present invention, when the protection part is in the first position, the protection part engages with the operating part, and when the protection part is in the second position, the protection part disengages from the operating part.

[0034] According to an embodiment of the present invention, when the protection part is in the first position, the protection part covers the operating part, and when the protection part is in the second position, the operating part is exposed.

[0035] According to one embodiment of the present invention, the operating component is slidably positioned on one of the male buckle component and the female buckle component along an operating direction parallel to the connection direction, and the protective component is slidably positioned on one of the male buckle component and the female buckle component along a sliding direction intersecting the connection direction.

[0036] According to one embodiment of the present invention, a protective component is positioned on one of a male buckle component and a female buckle component, and is slidable or rotatable between a first position and a second position with respect to one of the male buckle component and the female buckle component.

[0037] According to one embodiment of the present invention, the magnetic buckle assembly further includes a recovery element that biases a protective component to slide or rotate it to a first position.

[0038] According to one embodiment of the present invention, the protective component includes a cover portion and a guide portion connected to the cover portion. The cover portion selectively covers or exposes the operating component. The guide portion is movably positioned on one of the male buckle component and the female buckle component, and the cover portion and the guide portion are offset from each other along the connection direction.

[0039] According to one embodiment of the present invention, at least one of the guide portion and the cover portion is a hollow structure that opens toward the other of the male buckle component and the female buckle component.

[0040] According to one embodiment of the present invention, the protective component includes a first end and a second end. The first end of the protective component is an elastic structure and is connected to one of a male buckle component and a female buckle component, and the second end of the protective component is configured to cover or expose an operating component.

[0041] According to one embodiment of the present invention, at least one clearance structure is formed in at least one of a male buckle component and a female buckle component, which allows the second locking portion to slide to an offset position along an offset direction intersecting the connection direction after the first locking portion has engaged with the second locking portion, and which of the male buckle component and the female buckle component includes a contact portion that contacts the second locking portion to prevent separation of the male buckle component and the female buckle component when the second locking portion is in the offset position.

[0042] According to one embodiment of the present invention, the second locking portion includes at least one first partition that engages with the first locking portion and at least one second partition that abuts against the contact portion. The at least one clearance structure includes a first clearance structure formed in the second locking portion, the first clearance structure being a clearance slot.

[0043] According to one embodiment of the present invention, one of the male buckle component and the female buckle component includes an outer cover and a buckle body disposed inside the outer cover. A first locking portion is disposed on the buckle body. A connecting hole is formed on the side of the outer cover, allowing a second locking portion to pass through the connecting hole. At least one clearance structure further includes a second clearance structure formed on the outer cover. The second clearance structure is a relief hole communicating with the connecting hole, and the contact portion is formed on the outer cover.

[0044] According to one embodiment of the present invention, the side wall of the clearance slot abuts against the inner wall of the relief hole when the second locking portion is in an offset position.

[0045] According to one embodiment of the present invention, the contact surface of the side wall of the clearance slot and the contact surface of the inner wall of the relief hole are flat surfaces.

[0046] According to one embodiment of the present invention, the connecting hole is an arc-shaped hole, and the relief hole is a rectangular hole that communicates with the arc-shaped hole.

[0047] According to one embodiment of the present invention, the contact portion is positioned on the inner surface of the outer cover adjacent to the inner wall of the relief hole.

[0048] According to one embodiment of the present invention, the buckle body is formed with a notch corresponding to a relief hole. The notch is parallel to the connection direction. At least one second partition of the second locking portion slides within the notch during the offset process of the second locking portion.

[0049] According to one embodiment of the present invention, two clearance structures are formed facing each other on the second locking portion.

[0050] In summary, the present invention utilizes the engagement of a first locking portion and a second locking portion to connect a male buckle component to a female buckle component. Furthermore, the present invention further utilizes the magnetic cooperation of a first magnetic component and a second magnetic component to ensure a secure connection between the male buckle component and the female buckle component. Thus, the connection between the male buckle component and the female buckle component becomes more reliable. When the first magnetic component is configured to magnetically attract the second magnetic component, the male buckle component can still be connected to the female buckle component even if the first and second locking portions are disengaged by accidental operation of the operating component. This improves safety during use and prevents the male or female buckle component from falling off and being lost due to disengagement of the male or female buckle component. On the other hand, when the first magnetic component is configured to magnetically repel the second magnetic component, the first and second locking portions can be driven to come into contact with each other by the magnetic repulsive force between the first and second magnetic components, thereby enabling the male buckle component to be connected to the female buckle component, and thus making the connection between the male and female buckle components more secure. Furthermore, when the first and second locking portions are disengaged from each other by the operating component, the magnetic repulsive force between the first and second magnetic components can be driven to separate the male buckle component from the female buckle component, which provides convenience in use. Moreover, the magnetic buckle assembly of the present invention also has the advantage of being compact in structure.

[0051] These and other objects of the present invention will certainly become apparent to those skilled in the art after reading the following detailed description of preferred embodiments shown in various figures and drawings. [Brief explanation of the drawing]

[0052] [Figure 1] This is a schematic diagram of a magnetic buckle assembly according to a first embodiment of the present invention. [Figure 2] This is a schematic diagram of a magnetic buckle assembly according to a first embodiment of the present invention. [Figure 3] This is an exploded view of a magnetic buckle assembly according to a first embodiment of the present invention. [Figure 4] This is an internal structure diagram of a magnetic buckle assembly according to a first embodiment of the present invention. [Figure 5] This is a diagram of a magnetic buckle assembly according to a first embodiment of the present invention, without showing the outer cover. [Figure 6] This is a partial view of a female buckle component according to the first embodiment of the present invention. [Figure 7] This is a schematic diagram of a magnetic buckle assembly according to a second embodiment of the present invention. [Figure 8] This is a schematic diagram of a magnetic buckle assembly according to a second embodiment of the present invention. [Figure 9] This is an internal structure diagram of a magnetic buckle assembly according to a second embodiment of the present invention. [Figure 10] This is a partially exploded view of a magnetic buckle assembly according to a second embodiment of the present invention. [Figure 11] This is an exploded view of a magnetic buckle assembly according to a third embodiment of the present invention. [Figure 12] This is an exploded view of a magnetic buckle assembly according to a third embodiment of the present invention. [Figure 13] This is an internal structure diagram of a magnetic buckle assembly according to a third embodiment of the present invention. [Figure 14] This is a schematic diagram of a magnetic buckle assembly according to a fourth embodiment of the present invention. [Figure 15] This is a cross-sectional view of a magnetic buckle assembly according to a fourth embodiment of the present invention. [Figure 16] This is a schematic diagram of a magnetic buckle assembly according to a fourth embodiment of the present invention. [Figure 17] This is a schematic diagram of a magnetic buckle assembly according to a fourth embodiment of the present invention. [Figure 18] This is a schematic diagram of a magnetic buckle assembly according to a fourth embodiment of the present invention. [Figure 19]This is a partial view of a magnetic buckle assembly according to a fourth embodiment of the present invention. [Figure 20] This is an exploded view of a magnetic buckle assembly according to a fourth embodiment of the present invention. [Figure 21] This is a partial view of a female buckle component according to a fourth embodiment of the present invention. [Figure 22] This is a diagram of a male buckle component according to a fourth embodiment of the present invention. [Figure 23] This is a schematic diagram of a magnetic buckle assembly according to a fifth embodiment of the present invention. [Figure 24] This is a schematic diagram of a magnetic buckle assembly according to a fifth embodiment of the present invention. [Figure 25] This is an exploded view of a magnetic buckle assembly according to a fifth embodiment of the present invention. [Figure 26] This is an exploded view of a magnetic buckle assembly according to a fifth embodiment of the present invention. [Figure 27] This is a diagram of a male buckle component according to a fifth embodiment of the present invention. [Figure 28] This is a diagram of an outer cover according to a fifth embodiment of the present invention. [Figure 29] This is a partial view of a female buckle component according to a fifth embodiment of the present invention. [Figure 30] This is a diagram of an operating component according to a fifth embodiment of the present invention. [Figure 31] This is a diagram showing the internal structure of a magnetic buckle assembly according to a fifth embodiment of the present invention. [Figure 32] This is a diagram showing the internal structure of a magnetic buckle assembly according to a fifth embodiment of the present invention. [Modes for carrying out the invention]

[0053] The following detailed description of preferred embodiments refers to accompanying drawings that form part of this specification and illustrate specific embodiments that can carry out the invention. In this regard, directional terms such as “up,” “down,” “front,” and “back” are used in relation to the orientation of the drawings(s) described. The components of the invention can be arranged in several different orientations. Thus, directional terms are used for illustrative purposes and are not limiting. Accordingly, the drawings and detailed description are considered to be illustrative and non-limiting in nature.

[0054] Please refer to Figures 1 to 4. Figures 1 and 2 are schematic diagrams of a magnetic buckle assembly 100 according to a first embodiment of the present invention from different viewpoints. Figure 3 is an exploded view of the magnetic buckle assembly 100 according to a first embodiment of the present invention. Figure 4 is an internal structure diagram of the magnetic buckle assembly 100 according to a first embodiment of the present invention. As shown in Figures 1 to 4, the magnetic buckle assembly 100 includes a female buckle component 1, a male buckle component 2, an operating component 3, a first magnetic component 4, a second magnetic component 5, a first locking portion 1a, and a second locking portion 2a. In this embodiment, the first locking portion 1a and the first magnetic component 4 can be positioned on the female buckle component 1, and the second locking portion 2a and the second magnetic component 5 can be positioned on the male buckle component 2. The male buckle component 2 can be connected to the female buckle component 1 along the connection direction by engagement between the first locking portion 1a and the second locking portion 2a. The operating part 3 is movably positioned on the female buckle part 1 to disengage the first locking part 1a from the second locking part 2a, enabling separation of the female buckle part 2 and the female buckle part 1.

[0055] Furthermore, the first magnetic component 4 can be configured to magnetically attract the second magnetic component 5. Thus, the first magnetic component 4 can magnetically attract the second magnetic component 5 during the connection process between the male buckle component 2 and the female buckle component 1 along the connection direction, thereby achieving the objective of quickly connecting the male buckle component 2 and the female buckle component 1. In addition, the first magnetic component 4 can magnetically attract the second magnetic component 5 to prevent separation of the male buckle component 2 and the female buckle component 1, and enable separation of the male buckle component 2 and the female buckle component 1 when the operating component 3 is operated to disengage the first locking portion 1a from the second locking portion 2a. However, the present invention is not limited thereto. For example, in another embodiment, when a male buckle component is connected to a female buckle component, the first magnetic component can be configured to magnetically repel the second magnetic component, driving the first locking portion to contact the second locking portion, which makes the connection between the male and female buckle components more reliable. Furthermore, when the first and second locking portions are disengaged from each other by an operating component, the magnetic repulsive force between the first and second magnetic components can drive the male buckle component to separate from the female buckle component, which provides convenience during use.

[0056] Specifically, in this embodiment, the female buckle component 1 may further include an outer cover 6 and a buckle body 1b. The buckle body 1b is located inside the outer cover 6, and the first locking portion 1a is located on the buckle body 1b. The operating component 3 moves movably through the outer cover 6 along the connection direction, i.e., the vertical direction in Figure 4. Preferably, in this embodiment, the operating component 3 may be a circular button that allows the user to easily disengage the first locking portion 1a from the second locking portion 2a by pressing the operating component 3. The placement hole 61 is formed on the first surface of the outer cover 6, i.e., the upper surface of the outer cover 6 shown in Figure 4, in a direction away from the second locking portion 2a, and the operating component 3 can be placed in the placement hole 61. Additionally, the connection hole 62 is formed on the second surface of the outer cover 6, i.e., the lower surface of the outer cover 6 shown in Figure 4, adjacent to the second locking portion 2a, and the second locking portion 2a can be passed through the connection hole 62 and engaged with the first locking portion 1a.

[0057] The outer cover 6 not only ensures more reliable cooperation between the male buckle component 2 and the female buckle component 1, but also prevents wear and damage to the male buckle component 2 or the female buckle component 1 due to dust from the environment, thereby extending the service life of the magnetic buckle assembly 100 and improving its aesthetic appearance. However, the present invention is not limited to this embodiment. For example, in another embodiment, the outer cover of the female buckle component may be omitted, i.e., the operating component may be directly located on the buckle body of the female buckle component. Alternatively, in another embodiment, the male buckle component may include an outer cover and a buckle body located inside the outer cover. The first and second locking portions may be located on the buckle body of the male buckle component and the buckle body of the female buckle component, respectively. The operating component may be movably located on the outer cover of the male buckle component to disengage the first locking portion from the second locking portion.

[0058] Please refer to Figures 3 to 6. Figure 5 is a diagram of a magnetic buckle assembly 100 without the outer cover 6 according to the first embodiment of the present invention. Figure 6 is a partial view of the female buckle component 1 according to the first embodiment of the present invention. As shown in Figures 3 to 6, the first locking portion 1a is an elastic structure. The second locking portion 2a includes a contact structure 21 and an engagement structure 22. The contact structure 21 can press and elastically deform the first locking portion 1a during the connection process between the male buckle component 2 and the female buckle component 1 along the connection direction, thereby allowing the first locking portion 1a to slide and engage with the engagement structure 22. Thus, the contact structure 21 allows the engagement structure 22 to easily and smoothly engage with the first locking portion 1a. Furthermore, the first locking portion 1a can be elastically deformed by operating the operating component 3, and the first locking portion 1a can be disengaged from the engagement structure 22.

[0059] Specifically, the first locking portion 1a includes two elastic arms 11 and two engaging heads 12. Each engaging head 12 is connected to the corresponding elastic arm 11 to engage with the engagement structure 22. Preferably, as shown in Figure 3, in this embodiment, each elastic arm 11 and the corresponding engaging head 12 are integrally formed structures, and the two engaging heads 12 are suspended inside the central portion of the female buckle component 1 by the two elastic arms 11, thereby ensuring that the two elastic arms 11 can reliably drive and move the two engaging heads 12. The two elastic arms 11 are for biasing the two engaging heads 12 to engage with the engagement structure 22. Therefore, during the connection process between the male buckle component 2 and the female buckle component 1 along the connection direction, the contact structure 21 presses the two engaging heads 12 and elastically deforms the two elastic arms 11, thereby allowing the two engaging heads 12 to slide to engage with the engagement structure 22, thereby achieving the objective of automatic engagement between the male buckle component 2 and the female buckle component 1 during the connection process between the male buckle component 2 and the female buckle component 1.

[0060] Furthermore, the operating part 3 is operated to elastically deform the two elastic arms 11, thereby disengaging the two engaging heads 12 from the engaging structure 22. Preferably, in this embodiment, the operating part 3 is operated to push the two elastic arms 11 along an operating direction parallel to the connection direction, thereby elastically deforming the two elastic arms 11 along two deformation directions intersecting the connection direction, and disengaging the two engaging heads 12 from the engaging structure 22, which facilitates the disengagement of the two engaging heads 12 from the engaging structure 22.

[0061] Preferably, in this embodiment, the two elastic arms 11 can cooperate to surround the second locking portion 2a, and the two engaging heads 12 can cooperate to surround the engaging structure 22. This configuration makes the engagement between the two engaging heads 12 and the engaging structure 22 more secure, and ensures the connection between the male buckle component 2 and the female buckle component 1. However, the present invention is not limited thereto. For example, in another embodiment, the number of elastic arms and engaging heads may be one, three, four, or five.

[0062] Preferably, in this embodiment, each engaging head 12 can be a hook, and the engaging structure 22 can be a hook slot corresponding to the hook, and the engagement of the hook and hook slot can firmly connect the male buckle component 2 to the female buckle component 1. Furthermore, the buckle body 1b of the female buckle component 1 can be a hollow structure, and the female buckle component 1 may further include support arms 14 located in the central part of the buckle body 1b of the female buckle component 1, positioned between two elastic arms 111, and connected to two opposing sides of the buckle body 1b of the female buckle component 1 to reinforce the structural strength of the female buckle component 1.

[0063] As shown in Figures 3 to 6, the end of the contact structure 21 includes a first inclined structure 211 that is inclined with respect to the connection direction. Each engaging head 12 includes a second inclined structure 121 that cooperates with the first inclined structure 211. The contact structure 21 slides across the two engaging heads 12, and the cooperation of the first inclined structure 211 and the second inclined structure 121 allows the engaging structure 22 to easily engage with the two engaging heads 12, which facilitates the connection between the male buckle component 2 and the female buckle component 1.

[0064] Furthermore, the operating part 3 includes two contact inclined surfaces 31 inclined with respect to the connection direction, and the operating part 3 is operated by the two contact inclined surfaces 31 to push and elastically deform the two elastic arms 11, thereby disengaging the two engagement heads 12 from the engagement structure 22. Since the two engagement heads 12 cooperate to surround the engagement structure 22, each contact inclined surface 31 can be configured to be inclined from the inside outward in a direction away from the corresponding engagement head 12. Thus, the operating part 3 is operated by the two contact inclined surfaces 31 to push the two elastic arms 11 outward and elastically expand, thereby driving the two engagement heads 12 outward and disengaging them from the engagement structure 22 by the two elastic arms 11. However, the present invention is not limited to this embodiment. For example, in another embodiment, each engagement head can be driven to move inward and disengaged from the engagement structure by the two elastic arms.

[0065] Furthermore, two extension legs 32 extend from the operating part 3 along the connection direction, and each contact inclined surface 31 is formed on the corresponding extension leg 32. The first locking portion 1a includes two driven inclined surfaces 111. Each driven inclined surface 111 is positioned at the base end of a corresponding elastic arm 11 connected to a corresponding engagement head 12 in order to cooperate with the corresponding contact inclined surface 31. The operating part 3 is operated to push and elastically deform the two elastic arms 11 by the cooperation of the two contact inclined surfaces 31 and the two driven inclined surfaces 111, thereby disengaging the two engagement heads 12 from the engagement structure 22. Preferably, in this embodiment, a recess 112 can be formed at the base end of each elastic arm connected to the corresponding engagement head 12. Each extension leg 32 extends into the corresponding recess 112. Each driven inclined surface 111 is formed on the wall of the corresponding recess 112. Each contact inclined surface 31 is formed at the end of the corresponding extension leg 32. This configuration allows the operating part 3 to be easily operated to push and deform the two elastic arms 11. Furthermore, the two extension legs 32 can directly cooperate with the two driven inclined surfaces 111 on the two recesses 112 adjacent to the base ends of the two elastic arms 11, so that the two elastic arms 11 can be quickly deformed and the two engaging heads 12 can be quickly disengaged from the engaging structure 22. Moreover, the cooperation between the contact inclined surfaces 31 of the extension legs 32 and the base ends of the elastic arms 11 allows the operating part 3 to be driven to recover by the two elastic arms 11. However, the present invention is not limited thereto. For example, in another embodiment, the number of contact inclined surfaces, extension legs, recesses, and driven inclined surfaces can be one if there is only one elastic arm.

[0066] As shown in Figures 3, 4, and 6, a first mounting chamber 13 is formed in the female buckle component 1, and a second mounting chamber 23 is formed in the male buckle component 2. The first magnetic component 4 is installed in the first mounting chamber 13, and the second magnetic component 5 is installed in the second mounting chamber 23, thereby concealing the first magnetic component 4 and the second magnetic component 5 inside the female buckle component 1 and the male buckle component 2, respectively. Specifically, in this embodiment, the first mounting chamber 13 can be aligned with the second mounting chamber 23 along the connection direction to maximize the magnetic cooperation between the first magnetic component 4 and the second magnetic component 5, thereby achieving the objectives of quick connection between the male buckle component 2 and the female buckle component 1, and preventing separation between the male buckle component 2 and the female buckle component 1. In this embodiment, the second mounting chamber 23 can be formed inside the second locking portion 2a, and the first mounting chamber 13 can be formed inside the central portion of the female buckle component 1, more specifically the central portion of the support arm 14, thereby achieving the objective of making the structure of the magnetic buckle assembly 100 rational and compact and saving material.

[0067] Furthermore, in this embodiment, each of the first magnetic component 4 and the second magnetic component 5 can be a permanent magnetic component. However, the present invention is not limited to this embodiment. For example, in another embodiment, one of the first magnetic component and the second magnetic component can be a permanent magnetic component, and the other of the first magnetic component and the second magnetic component can be a conductive magnetic component such as a metal structure. Preferably, the thickness of the first magnetic component 4 may be 3.0 to 5.5 millimeters (mm). More preferably, the thickness of the first magnetic component 4 may be 3.0, 3.8, 4.5, 5.0, or 5.5 mm. In this embodiment, the thickness of the first magnetic component 4 can be 3.8 mm. Note that in another embodiment, when the second locking portion is positioned in a female buckle component, the first mounting chamber can be formed inside the second locking portion.

[0068] As shown in Figures 1, 2, 3, and 5, each of the male buckle component 2 and the outer cover 6 includes at least one assembly portion for attaching at least one strap. Preferably, the male buckle component 2 includes two assembly portions facing each other, and the outer cover 6 may include one assembly portion. The assembly portion of the outer cover 6 may always be offset from one of the two assembly portions of the male buckle component 2 to facilitate strap assembly. Specifically, through holes 24 may be formed in each of the two assembly portions of the male buckle component 2, and a through hole 63 may be formed in the assembly portion of the outer cover 6. The male buckle component 2 can be secured to a first fabric surface (not shown) by passing the strap through the two assembly portions of the male buckle component 2. The female buckle component 1 can be secured to a second fabric surface (not shown) by passing the strap through the assembly portion of the outer cover 6. Therefore, the magnetic buckle assembly 100 allows the first fabric surface to be detachably connected to the second fabric surface.

[0069] In this embodiment, the second locking portion 2a can be made into a columnar structure, allowing the male buckle component 2 to rotate around the second locking portion 2a relative to the female buckle component 1, thereby increasing the degree of freedom during use. The positions of the two assembly portions relative to the outer cover 6 can be adjusted by the rotation of the male buckle component 2 relative to the female buckle component 1, so that one of the two assembly portions of the male buckle component 2 can be used in conjunction with the assembly portion of the outer cover 6. If one of the two assembly portions of the male buckle component 2 is damaged, the other of the two assembly portions of the male buckle component 2 can be used in conjunction with the assembly portion of the outer cover 6 by rotating the male buckle component 2 relative to the female buckle component 1, thereby further improving the durability of the magnetic buckle assembly 100.

[0070] As shown in Figures 1 to 6, the operating principle of the magnetic buckle component 100 of this embodiment is as follows: When it is desired to separate or disengage the male buckle component 2 from the female buckle component 1, the operating component 3 is pushed downward to drive the extension leg 32, which in turn pushes the driven inclined surface 111 on the recess 112 of the elastic arm 11. Through the cooperation of the contact inclined surface 31 of the extension leg 32 and the driven inclined surface 111 of the recess 112, the elastic arm 11 elastically expands outward, driving the engagement head 12 connected to the elastic arm 11 to move outward, disengaging from the engagement structure 22 of the second locking portion 2a, and enabling the separation of the female buckle component 1 and the male buckle component 2. At this point, the male buckle component 2 remains connected to the female buckle component 1 due to the magnetic attraction between the first magnetic component 4 and the second magnetic component 5. Subsequently, when the female buckle component 1 and the male buckle component 2 are pulled apart from each other in a manner that overcomes the magnetic attraction between the first magnetic component 4 and the second magnetic component 5, the female buckle component 1 can be separated from or disengaged from the male buckle component 2.

[0071] When connecting the male buckle component 2 to the female buckle component 1, one simply moves the male buckle component 2 and the female buckle component 1 so that the second locking portion 2a aligns with the connection hole 62 on the outer cover 6, and then moves the male buckle component 2 and the female buckle component 1 toward each other. Due to the magnetic attraction between the first magnetic component 4 and the second magnetic component 5, the contact structure 21 of the second locking portion 2a can slide across the engagement head 12, thereby allowing the engagement structure 22 and the engagement head 12 to engage with each other, and thus achieving the objective of connecting the male buckle component 2 and the female buckle component 1, as shown in Figure 4.

[0072] Please refer to Figures 7 to 10. Figures 7 and 8 are schematic diagrams of a magnetic buckle assembly 100a according to a second embodiment of the present invention from different viewpoints. Figure 9 is an internal structure diagram of the magnetic buckle assembly 100a according to a second embodiment of the present invention. Figure 10 is a partially exploded view of the magnetic buckle assembly 100a according to a second embodiment of the present invention. As shown in Figures 7 to 10, unlike the first embodiment, multiple ribs 64 protrude from two opposing side walls of the outer cover 6 of this embodiment, providing friction to facilitate user operation of the magnetic buckle assembly 100a. However, the present invention is not limited to this embodiment. For example, in another embodiment, the number of ribs may be one. Also in this embodiment, the contact inclined surface 31 of each extension leg 32 is positioned adjacent to the tip of the corresponding elastic arm 11 in a direction away from the corresponding engagement head 12 in order to cooperate with the tip of the corresponding elastic arm 11. In other words, since each extension leg 32 is located between the corresponding elastic arm 11 and the support arm 14 and cooperates directly with the tip of the corresponding elastic arm 11, the driven inclined surface 111 and the recess 112 can be omitted in this embodiment. Furthermore, the support arm 14 in this embodiment can be configured to engage with the gap between two spaced-apart extension legs 32.

[0073] Furthermore, in this embodiment, since each extension leg 32 cooperates directly with the tip of the corresponding elastic arm 11, the restoring force generated by the two elastic arms 11 may be too small to restore the operating part 3. Therefore, the magnetic buckle assembly 100a may further include an elastic component 7 that provides an elastic restoring force to return the operating part 3. Preferably, the elastic component 7 may be an elastic spring that abuts between the operating part 3 and the female buckle component 1 and may be aligned with the first mounting chamber 13. However, the present invention is not limited thereto. For example, in another embodiment, the elastic component may be an elastic structure made of plastic material. Also, the thickness of the first magnetic component 4 in this embodiment may be 5.0 mm.

[0074] Other structural features of the magnetic buckle assembly 100a in this embodiment are similar to those of the magnetic buckle assembly 100 in the first embodiment. For simplicity, a detailed description is omitted here.

[0075] As shown in Figures 7 to 10, the operating principle of the magnetic buckle assembly 100a of this embodiment is as follows: When it is desired to separate or disconnect the male buckle component 2 from the female buckle component 1, the operating component 3 can be pushed downward to elastically compress the elastic portion 7. During the process described above, the contact inclined surface 31 on the extended leg portion 32 of the operating component 3 cooperates with the tip of the elastic arm 11 in a direction away from the engaging head 12, thereby causing the elastic arm 11 to expand outward, driving the engaging head 12 connected to the elastic arm 11 to move outward, disengaging the second locking portion 2a from the engaging structure 22, and enabling separation of the male buckle component 2 and the female buckle component 1. At this point, the male buckle component 2 remains connected to the female buckle component 1 by the magnetic attraction between the first magnetic component 4 and the second magnetic component 5. Subsequently, by pulling the female buckle component 1 and the male buckle component 2 apart to overcome the magnetic attraction between the first magnetic component 4 and the second magnetic component 5, the female buckle component 1 can be separated or disengaged from the male buckle component 2.

[0076] When connecting the male buckle component 2 to the female buckle component 1, one simply moves the male buckle component 2 and the female buckle component 1 so that the second locking portion 2a is aligned with the connection hole 62 on the outer cover 6, and then moves the male buckle component 2 and the female buckle component 1 toward each other. Due to the magnetic attraction between the first magnetic component 4 and the second magnetic component 5, the contact structure 21 of the second locking portion 2a can slide across the engagement head 12, thereby engaging the engagement structure 22 and the engagement head 12 with each other, and thus achieving the objective of connecting the male buckle component 2 and the female buckle component 1.

[0077] Please refer to Figures 11 to 13. Figures 11 and 12 are exploded views of a magnetic buckle assembly 100b according to a third embodiment of the present invention from different viewpoints. Figure 13 is an internal structure diagram of the magnetic buckle assembly 100b according to a third embodiment of the present invention. As shown in Figures 11 to 13, unlike the embodiments described above, the operating part 3 in this embodiment can be a rectangular button. Also, in this embodiment, the ribs can be omitted. Furthermore, the elastic member 7 in this embodiment abuts between the operating part 3 and the female buckle part 1 and can be misaligned with the first mounting chamber 13.

[0078] The other structural and operating principles of the magnetic buckle assembly 100b in this embodiment are the same as those of the magnetic buckle assembly 100a in the second embodiment. For simplicity, a detailed explanation is omitted here.

[0079] Please refer to Figures 14 to 22. Figure 14 is a schematic diagram of a magnetic buckle assembly 100c according to a fourth embodiment of the present invention. Figure 15 is a cross-sectional view of the magnetic buckle assembly 100c according to a fourth embodiment of the present invention. Figures 16 to 18 are schematic diagrams of the magnetic buckle assembly 100c in different states according to a fourth embodiment of the present invention. Figure 19 is a partial view of the magnetic buckle assembly 100c according to a fourth embodiment of the present invention. Figure 20 is an exploded view of the magnetic buckle assembly 100c according to a fourth embodiment of the present invention. Figure 21 is a partial view of the female buckle component 1 according to a fourth embodiment of the present invention. Figure 22 is a diagram of the male buckle component 2 according to a fourth embodiment of the present invention. As shown in Figures 14 to 22, unlike the embodiments described above, the magnetic buckle assembly 100c of this embodiment further includes a protective assembly 8. The protective assembly 8 includes a protective component 82 that is slidably positioned on the female buckle component 1 along a sliding direction intersecting the connection direction and is movable between a first position and a second position relative to the female buckle component 1. Preferably, in this embodiment, a sliding slot 65 is formed on the first surface of the outer cover 6, i.e., the upper surface of the outer cover 6, in a direction away from the second locking portion 2a, and the protective component 82 is slidably positioned inside the sliding slot 65 and can be slidably switched between a first position and a second position. The protective component 82 can prevent the operating component 3 from disengaging the first locking portion 1a from the second locking portion 2a when the protective component 82 is in the first position, and the operating component 3 can disengage the first locking portion 1a from the second locking portion 2a when the protective component 82 is in the second position. However, the present invention is not limited to this embodiment. For example, in another embodiment, the protective component may be rotatably positioned on the male buckle component, and the operating component may be able to move between a first position and a second position by rotation when positioned on the male buckle component.

[0080] In this embodiment, the protective component 82 includes a first end and a second end. The first end of the protective component 82 is an elastic structure such as an elastic arm or elastic leg and is connected to the female buckle component 1, thereby allowing the deformed first end of the protective component 82 to bias and restore the second end of the protective component 82. The second end of the protective component 82 is configured to cover the operating component 3 to prevent operation of the operating component 3 when the protective component 82 is in a first position. The second end of the protective component 82 is configured to expose the operating component 3 so that the operating component 3 can be operated when the protective component 82 is in a second position. However, the present invention is not limited to this embodiment. Any structure that can enable or prevent operation of the operating component 3 is included within the scope of the present invention. For example, in another embodiment, the protective component may be configured to engage with the operating component to prevent operation of the operating component when the protective component is in a first position. The protective component may be configured to disengage from the operating component so that the operating component can be operated when the protective component is in a second position.

[0081] Preferably, the protective assembly 8 of the magnetic buckle assembly 100c may further include a recovery element 81 for biasing the protective component 82 to slide to a first position. The recovery element 81 is positioned along an arrangement direction intersecting the connection direction. The recovery element 81 may be an elastic spring that abuts between the protective component 82 and the female buckle component 1. Specifically, the protective component 82 includes a cover portion 821 and a guide portion 822 connected to the cover portion 821. The cover portion 821 selectively covers or exposes the operating component 3. The guide portion 822 is movably positioned on the female buckle component 1, and the cover portion 821 and the guide portion 822 are offset from each other along the connection direction to form a stepped structure. The cover portion 821 can be moved to a first position to cover the operating component 3, guided by the guide portion 822. Preferably, in this embodiment, each of the guide portion 822 and the cover portion 821 can be a hollow structure including an opening facing the male buckle component 2, facilitating the cover portion 821 to cover the operating component 3 and improving the aesthetic appearance of the magnetic buckle assembly 100c. However, the present invention is not limited to this embodiment. For example, in another embodiment, when the protective component and the operating component may be positioned on the male buckle component, the recovery element may be positioned between the male buckle component and the guide portion of the protective component.

[0082] The other structural and operating principles of the magnetic buckle assembly 100c in this embodiment are the same as those described in the previously mentioned embodiments. For simplicity, a detailed explanation is omitted here.

[0083] Please refer to Figures 23 to 32. Figures 23 and 24 are schematic diagrams of a magnetic buckle assembly 100d according to a fifth embodiment of the present invention from different viewpoints. Figures 25 and 26 are exploded views of a magnetic buckle assembly 100d according to a fifth embodiment of the present invention from different viewpoints. Figure 27 is a diagram of a male buckle component 2 according to a fifth embodiment of the present invention. Figure 28 is a diagram of an outer cover 6 according to a fifth embodiment of the present invention. Figure 29 is a partial view of a female buckle component 1 according to a fifth embodiment of the present invention. Figure 30 is a diagram of an operating component 3 according to a fifth embodiment of the present invention. Figures 31 and 32 are internal structure diagrams of a magnetic buckle assembly 100d according to a fifth embodiment of the present invention from different viewpoints. Unlike the embodiments described above, as shown in Figures 23 to 32, the female buckle component 1 of this embodiment further includes a support cover 15 positioned inside the first mounting chamber 13 to cover and support the first magnetic component 4. Furthermore, two first clearance structures 9a are formed on the second locking portion 2a. The female buckle component 1 includes a contact portion 16 that abuts against the second locking portion 2a to prevent separation of the male buckle component 2 and the female buckle component 1 when the second locking portion 2a is in an offset position. Preferably, in this embodiment, each first clearance structure 9a can be a clearance slot, and the two clearance slots may face each other and be spaced apart from each other along a direction parallel to the offset direction intersecting the connection direction. The second locking portion 2a may include two first partitions 2a1 and two second partitions 2a2. The two first partitions 2a1 may face each other and be spaced apart from each other along a direction perpendicular to the offset direction. The two second partitions 2a2 may face each other and be spaced apart from each other along a direction parallel to the offset direction. That is, each second partition portion 2a2 is adjacent and located between two second partition portions 2a1. The first partition portion 2a1 can engage with the first locking portion 1a. The contact portion 16 can contact one of the two second partition portions 2a2, saving time for aligning the male buckle component 2 and the female buckle component 1, and providing convenience in use.However, the number of clearance slots, the first partition 2a1, and the second partition 2a2 is not limited to this embodiment.

[0084] Furthermore, a second clearance structure 9b is formed on the outer cover 6 of the female buckle component 1. Preferably, in this embodiment, the second clearance structure 9b can be a clearance hole communicating with the connection hole 62, and the abutment portion 16 is formed on the outer cover 6 of the female buckle component 1. After the second locking portion 2a passes through the connection hole 62 and engages with the first locking portion 1a, the second locking portion 2a can slide to an offset position toward the clearance hole. Preferably, the abutment portion 16 is positioned on the inner surface of the outer cover 6 adjacent to the inner wall of the clearance hole, so that the abutment portion 16 can quickly come into contact with the corresponding second partition portion 2a2 during the offset process of the second locking portion 2a.

[0085] Furthermore, since the contact surfaces of the side walls of the two clearance slots and the contact surface of the inner wall of the relief hole can be flat, the relief surface of the inner wall of the relief hole can be attached to and abut against the contact surface of the corresponding side wall of the clearance slot when the second locking portion 2a is in the offset position, thereby effectively preventing accidental disengagement of the male buckle component 2 and the female buckle component 1. However, the present invention is not limited to this embodiment. For example, the contact surfaces of the side walls of the clearance slots and the contact surfaces of the inner wall of the relief hole may be curved. Also, the connecting hole may preferably be an arc-shaped hole, and the relief hole may preferably be a rectangular hole and be able to communicate with the arc-shaped hole.

[0086] However, the present invention is not limited to this embodiment. Any structure or configuration that allows the second locking portion 2a to slide to an offset position along an offset direction intersecting the connection direction in order to prevent disengagement of the male buckle component 2 and the female buckle component 1 after the first locking portion 1a has engaged with the second locking portion 2a is included within the scope of the present invention. For example, in another embodiment, at least one clearance structure is formed on at least one of the second locking portion and the female buckle component so that the second locking portion can slide to an offset position along an offset direction intersecting the connection direction after the first locking portion has engaged with the second locking portion. Alternatively, if the second locking portion is located on the female buckle component, at least one clearance structure can be formed on the male buckle component.

[0087] Preferably, in this embodiment, the notch 17 is formed in the buckle body 1b and can correspond to a relief hole. The notch 17 is parallel to the connection direction. The second partition 2a2 of the second locking portion 2a can slide within the notch 17 during the offset process of the second locking portion 2a. In other words, the notch 17 allows the second partition 2a2 to slide without obstruction during the offset process of the second locking portion.

[0088] The other structural and operating principles of the magnetic buckle assembly 100d in this embodiment are the same as those described in the previously mentioned embodiments. For simplicity, a detailed explanation is omitted here.

[0089] In contrast to the prior art, the present invention utilizes the engagement of a first locking portion and a second locking portion to connect a male buckle component to a female buckle component. Furthermore, the present invention further utilizes the magnetic cooperation of a first magnetic component and a second magnetic component to ensure a secure connection between the male buckle component and the female buckle component. Thus, the connection between the male buckle component and the female buckle component becomes more reliable. When the first magnetic component is configured to magnetically attract the second magnetic component, the male buckle component can still be connected to the female buckle component even if the first and second locking portions are disengaged by accidental operation of the operating component. This improves safety during use and prevents the male or female buckle component from falling off and being lost due to disengagement of the male or female buckle component. On the other hand, when the first magnetic component is configured to magnetically repel the second magnetic component, the first and second locking portions can be driven to come into contact with each other by the magnetic repulsive force between the first and second magnetic components, thereby enabling the connection of the male buckle component to the female buckle component, and thus making the connection between the male and female buckle components more secure. Furthermore, when the first and second locking portions are disengaged from each other by the operating component, the magnetic repulsive force between the first and second magnetic components can be driven to separate the male buckle component from the female buckle component, which provides convenience in use. Moreover, the magnetic buckle assembly of the present invention also has the advantage of being compact in structure.

[0090] Those skilled in the art will readily understand that numerous modifications and changes to the apparatus and method can be made while maintaining the teachings of the present invention. Accordingly, the above disclosure should be construed as being limited only by the boundaries and scope of the appended claims.

[0091] The following is an example of the claims as originally filed. [Example 1] A magnetic buckle assembly, wherein the magnetic buckle assembly is Male buckle component, Female buckle component, A first locking portion is provided on one of the male buckle component and the female buckle component, A second locking portion is provided on the other side of the male buckle component and the female buckle component, and engages with the first locking portion. An operating component movably disposed on the other side of the male buckle component and the female buckle component, A first magnetic component is disposed in the female buckle component, The male buckle component is positioned and has a second magnetic component that magnetically cooperates with the first magnetic component. The male buckle component is connected to the female buckle component along the connection direction due to the engagement of the first locking portion and the second locking portion. The first magnetic component magnetically attracts or repels the second magnetic component during the connection process between the male buckle component and the female buckle component along the connection direction. The first magnetic component magnetically attracts the second magnetic component to prevent separation of the male buckle component and the female buckle component, or magnetically repels the second magnetic component to facilitate separation of the male buckle component and the female buckle component when the operating component is operated to disengage the first locking portion from the second locking portion, thereby enabling separation of the male buckle component and the female buckle component. Magnetic buckle assembly. [Example 2] The magnetic buckle assembly according to Embodiment 1, wherein the first locking portion is an elastic structure, and the second locking portion includes a contact structure and an engagement structure, the contact structure presses and elastically deforms the first locking portion during the connection process between the male buckle component and the female buckle component along the connection direction, thereby causing the first locking portion to slide and engage with the engagement structure, and the operating component is operated to elastically deform the first locking portion, thereby disengaging the first locking portion from the engagement structure. [Example 3] The magnetic buckle assembly according to Embodiment 2, wherein the first locking portion includes at least one elastic arm and at least one engaging head for engaging with the engagement structure, the at least one engaging head being connected to the at least one elastic arm, the at least one elastic arm biasing the at least one engaging head to engage with the engagement structure, the contact structure pressing the at least one engaging head during the connection process between the male buckle component and the female buckle component along the connection direction to elastically deform the at least one elastic arm, thereby causing the at least one engaging head to slide and engage with the engagement structure, and the operating component being operated to elastically deform the at least one elastic arm, thereby disengaging the at least one engaging head from the engagement structure. [Example 4] The magnetic buckle assembly according to Embodiment 3, wherein the operating component is operated to push the at least one elastic arm along an operating direction parallel to the connection direction, causing the at least one elastic arm to elastically deform along a deformation direction intersecting the connection direction, and disengaging the at least one engaging head from the engaging structure. [Example 5] The magnetic buckle assembly according to Embodiment 4, wherein the operating component includes at least one contact inclined surface inclined with respect to the connection direction, and the operating component is operated to press the at least one elastic arm against the at least one contact inclined surface, causing elastic deformation. [Example 6] The magnetic buckle assembly according to Embodiment 5, wherein the at least one engaging head surrounds the engaging structure, the at least one contact inclined surface is inclined from the inside outward toward the away from the contact structure, and the operating component is operated by the at least one contact inclined surface to push the at least one elastic arm outward and elastically expand it. [Example 7] The magnetic buckle assembly according to Embodiment 6, wherein the first locking portion includes at least two elastic arms surrounding the second locking portion and at least two engaging heads, each of the at least two elastic arms being connected to a corresponding one of the at least two engaging heads. [Example 8] The magnetic buckle assembly according to Embodiment 6, wherein at least one extension leg extends from the operating component along the connection direction, and the at least one contact inclined surface is formed on the at least one extension leg. [Example 9] The magnetic buckle assembly according to Embodiment 8, wherein the first locking portion includes at least one driven inclined surface located at the base end of the at least one elastic arm connected to the at least one engaging head in cooperation with the at least one contact inclined surface, and the operating component is operated to push and elastically deform the at least one elastic arm by the cooperation of the at least one contact inclined surface and the at least one driven inclined surface. [Example 10] A magnetic buckle assembly according to Embodiment 9, wherein a recess is formed at the base end of the at least one elastic arm connected to the at least one engaging head, the at least one extension leg extends into the recess, the at least one driven inclined surface is formed on the wall of the recess, and the at least one contact inclined surface is formed at the end of the at least one extension leg. [Example 11] The magnetic buckle assembly according to Embodiment 8, wherein the at least one contact inclined surface is formed at the end of the at least one extension leg and cooperates with the tip of the at least one elastic arm in a direction away from the at least one engaging head. [Example 12] The magnetic buckle assembly according to Example 11, further comprising an elastic component that provides an elastic restorative force for returning the operating component to its original position. [Example 13] The magnetic buckle assembly according to Embodiment 3, wherein the end of the contact structure includes a first inclined structure inclined with respect to the connection direction, the at least one engaging head includes a second inclined structure cooperating with the first inclined structure, the contact structure slides across the at least one engaging head, and the cooperation of the first and second inclined structures causes the engaging structure to engage with the at least one engaging head. [Example 14] The magnetic buckle assembly according to Embodiment 3, wherein the at least one engaging head is a hook, and the engaging structure is a hook slot corresponding to the hook. [Example 15] A magnetic buckle assembly according to Embodiment 1, wherein a first mounting chamber is formed in the female buckle component, a second mounting chamber is formed in the male buckle component, a first magnetic component is installed in the first mounting chamber, and a second magnetic component is installed in the second mounting chamber. [Example 16] The magnetic buckle assembly according to Embodiment 15, wherein the first mounting chamber is aligned with the second mounting chamber along the connection direction. [Example 17] The magnetic buckle assembly according to Embodiment 15, wherein the first or second mounting chamber is formed inside the second locking portion. [Example 18] The magnetic buckle assembly according to Example 1, wherein at least one of the first magnetic component and the second magnetic component is a permanent magnetic component. [Example 19] The magnetic buckle assembly according to Embodiment 1, wherein the operating component is a circular button or a rectangular button. [Example 20] The magnetic buckle assembly according to Embodiment 1, wherein one of the male buckle component and the female buckle component includes an outer cover and a buckle body disposed inside the outer cover, and the operating component is movably passed through the outer cover along the connection direction. [Example 21] The magnetic buckle assembly according to Embodiment 20, wherein each of the male buckle component, the other of the female buckle component, and the outer cover each includes at least one assembly portion for attaching at least one strap, and a through hole is formed in the at least one assembly portion, allowing the at least one strap to pass through the through hole. [Example 22] A magnetic buckle assembly according to Embodiment 21, wherein the second locking portion is a columnar structure, the male buckle component is rotatable around the second locking portion relative to the female buckle component, the male buckle component and the other of the female buckle component include two opposing assembly portions, the position of the two assembly portions relative to the outer cover is adjustable by the rotation of the male buckle component relative to the female buckle component. [Example 23] A magnetic buckle assembly according to Embodiment 21, wherein a placement hole is formed on the first surface of the outer cover in a direction away from the second locking portion, the operating component is positioned inside the placement hole, and a connection hole is formed on the second surface of the outer cover adjacent to the second locking portion, allowing the second locking portion to pass through the connection hole. [Example 24] The magnetic buckle assembly according to Embodiment 21, wherein at least one rib protrudes from the outer cover and is adjacent to the side wall of the outer cover. [Example 25] The magnetic buckle assembly according to Embodiment 1, further comprising a protective component positioned on one of the male buckle component and the female buckle component, and movable between a first position and a second position relative to one of the male buckle component and the female buckle component, wherein when the protective component is in the first position, the operating component is prevented from disengaging the first locking portion from the second locking portion, and when the protective component is in the second position, the operating component is permitted to disengage the first locking portion from the second locking portion. [Example 26] A magnetic buckle assembly according to Embodiment 25, wherein when the protective component is in a first position, the protective component engages with the operating component, and when the protective component is in a second position, the protective component disengages from the operating component. [Example 27] A magnetic buckle assembly according to Embodiment 25, wherein when the protective component is in a first position, the protective component covers the operating component, and when the protective component is in a second position, the operating component is exposed. [Example 28] The magnetic buckle assembly according to Embodiment 25, wherein the operating component is slidably disposed on one of the male buckle component and the female buckle component along an operating direction parallel to the connection direction, and the protective component is slidably disposed on one of the male buckle component and the female buckle component along a sliding direction intersecting the connection direction. [Example 29] The magnetic buckle assembly according to Embodiment 25, wherein the protective component is positioned on one of the male buckle component and the female buckle component, and is slidable or rotatable between a first position and a second position with respect to one of the male buckle component and the female buckle component. [Example 30] The magnetic buckle assembly according to Embodiment 29, further comprising a recovery element that biases the protective component to slide or rotate it to a first position. [Example 31] The magnetic buckle assembly according to Embodiment 27, wherein the protective component includes a cover portion and a guide portion connected to the cover portion, the cover portion selectively covers or exposes the operating component, the guide portion is movably positioned on one of the male buckle component and the female buckle component, and the cover portion and the guide portion are offset from each other along the connection direction. [Example 32] The magnetic buckle assembly according to Embodiment 31, wherein at least one of the guide portion and the cover portion is a hollow structure that opens toward the other of the male buckle component and the female buckle component. [Example 33] The magnetic buckle assembly according to Embodiment 25, wherein the protective component includes a first end and a second end, the first end of the protective component being an elastic structure and connected to one of the male buckle component and the female buckle component, and the second end of the protective component being configured to cover or expose the operating component. [Example 34] A magnetic buckle assembly according to Embodiment 1, wherein at least one clearance structure is formed in the second locking portion and at least one of the male buckle component and the female buckle component, allowing the second locking portion to slide to an offset position along an offset direction intersecting the connection direction after the first locking portion has engaged with the second locking portion, and the male buckle component and the female buckle component include a contact portion that contacts the second locking portion to prevent separation of the male buckle component and the female buckle component when the second locking portion is in the offset position. [Example 35] The magnetic buckle assembly according to Embodiment 34, wherein the second locking portion includes at least one first partition that engages with the first locking portion and at least one second partition that abuts against the abutment portion, and the at least one clearance structure includes a first clearance structure formed in the second locking portion, the first clearance structure being a clearance slot. [Example 36] The magnetic buckle assembly according to Embodiment 35, wherein one of the male buckle component and the female buckle component includes an outer cover and a buckle body disposed inside the outer cover, the first locking portion being disposed on the buckle body and having a connecting hole formed on the side of the outer cover, allowing a second locking portion to pass through the connecting hole, the at least one clearance structure further includes a second clearance structure formed in the outer cover, the second clearance structure being a relief hole communicating with the connecting hole, and the contact portion being formed in the outer cover. [Example 37] The magnetic buckle assembly according to Embodiment 36, wherein the side wall of the clearance slot abuts against the inner wall of the relief hole when the second locking portion is in the offset position. [Example 38] The magnetic buckle assembly according to Embodiment 37, wherein the contact surface of the side wall of the clearance slot and the contact surface of the inner wall of the relief hole are flat surfaces. [Example 39] The magnetic buckle assembly according to Embodiment 36, wherein the connecting hole is an arc-shaped hole, and the relief hole is a rectangular hole that communicates with the arc-shaped hole. [Example 40] The magnetic buckle assembly according to Embodiment 36, wherein the contact portion is located on the inner surface of the outer cover adjacent to the inner wall of the relief hole. [Example 41] The magnetic buckle assembly according to Embodiment 36, wherein the buckle body has a notch formed therein corresponding to the relief hole, the notch is parallel to the connection direction, and the at least one second partition of the second locking portion slides within the notch during the offset process of the second locking portion. [Example 42] A magnetic buckle assembly according to Embodiment 34, wherein two clearance structures are formed opposite each other on the second locking portion.

Claims

1. A magnetic buckle assembly, wherein the magnetic buckle assembly is Male buckle component, Female buckle component, The first locking portion is positioned on the female buckle component, A second locking portion is positioned on the male buckle component and engages with the first locking portion, An operating component is movably disposed on the female buckle component, A first magnetic component is disposed in the female buckle component, The male buckle component is arranged and has a second magnetic component that is magnetically attracted to the first magnetic component. The male buckle component is connected to the female buckle component along the connection direction due to the engagement of the first locking portion and the second locking portion. The first locking portion includes an engaging head, The second locking portion includes a contact structure and an engagement structure, The contact structure pushes the engaging head during the connection process between the male buckle component and the female buckle component along the connection direction, thereby causing the engaging head to slide and engage with the engaging structure. The operating component includes at least one extendable leg, and when the operating component is operated during the separation of the male buckle component and the female buckle component, the at least one extendable leg pushes the engaging head, driving the engaging head outward in a direction intersecting the connection direction. A magnetic buckle assembly in which, during a connection process along the connection direction between the male buckle component and the female buckle component, the first magnetic component magnetically attracts the second magnetic component.

2. A magnetic buckle assembly, wherein the magnetic buckle assembly is Male buckle component, Female buckle component, The first locking portion is positioned on the female buckle component, A second locking portion is positioned on the male buckle component and engages with the first locking portion, An operating component is movably disposed on the female buckle component, A first magnetic component is disposed in the female buckle component, The male buckle component is arranged and has a second magnetic component that is magnetically attracted to the first magnetic component. The male buckle component is connected to the female buckle component along the connection direction due to the engagement of the first locking portion and the second locking portion. The first locking portion includes an engaging head, The second locking portion includes a contact structure and an engagement structure, The contact structure pushes the engaging head during the connection process between the male buckle component and the female buckle component along the connection direction, thereby causing the engaging head to slide and engage with the engaging structure. The operating component includes at least one extendable leg, and when the operating component is operated during the separation of the male buckle component and the female buckle component, the at least one extendable leg pushes the engaging head, driving the engaging head outward in a direction intersecting the connection direction. A magnetic buckle assembly in which, in order to enable separation of the male buckle component and the female buckle component, the operating component is operated to disengage the first locking portion from the second locking portion, and the first magnetic component magnetically attracts the second magnetic component, thereby still connecting the male buckle component to the female buckle component.

3. The magnetic buckle assembly according to claim 1 or 2, wherein the first locking portion has an elastic structure.

4. The magnetic buckle assembly according to claim 3, wherein the operating component is operated to deform the first locking portion in order to disengage the first locking portion from the male buckle component.

5. The magnetic buckle assembly according to claim 1 or 2, wherein the female buckle component has an elastic structure, and the operating component is operated to deform the elastic structure to separate the male buckle component and the female buckle component.

6. The magnetic buckle assembly according to claim 1 or 2, wherein the contact structure is connected to the male buckle component along the connection direction.

7. The magnetic buckle assembly according to claim 1 or 2, wherein the contact structure includes an inclined structure.

8. The magnetic buckle assembly according to claim 1 or 2, wherein at least one of the extension legs has a contact inclined surface, and the operating component is operated to press the first locking portion by the contact inclined surface.

9. The magnetic buckle assembly according to claim 8, wherein the first locking portion includes a driven inclined surface that cooperates with the contact inclined surface.

10. The magnetic buckle assembly according to claim 1 or 2, wherein the first locking portion further comprises at least one elastic arm, and the operating component is operated to press the at least one elastic arm.

11. The magnetic buckle assembly according to claim 9, wherein the contact inclined surface is positioned adjacent to the driven inclined surface, away from the engaging head, in order to cooperate with the first locking portion.

12. The magnetic buckle assembly according to claim 11, wherein the at least one elastic arm is configured to drive and move the engaging head when the at least one elastic arm is pressed.

13. The magnetic buckle assembly according to claim 1 or 2, wherein the female buckle component further includes a support arm located in the middle portion of the buckle body of the female buckle component, the support arm being configured to engage with the gap between two extension legs that are spaced apart from each other.

14. The magnetic buckle assembly according to claim 1 or 2, wherein the female buckle component comprises an outer cover and a buckle body disposed inside the outer cover, and the operating component movably penetrates the outer cover.

15. The magnetic buckle assembly according to claim 1 or 2, wherein each of the male buckle component and the female buckle component comprises at least one assembly portion for attaching at least one strap, and the at least one assembly portion is formed in a through hole for passing the at least one strap through.

16. The magnetic buckle assembly according to claim 1 or 2, wherein the second locking portion has a columnar structure, and the male buckle component is rotatable around the second locking portion relative to the female buckle component.

17. A magnetic buckle assembly according to claim 1 or 2, wherein a first mounting chamber is formed in the female buckle component, a second mounting chamber is formed in the male buckle component, the first magnetic component is placed in the first mounting chamber, and the second magnetic component is placed in the second mounting chamber.

18. The magnetic buckle assembly according to claim 1, wherein the first magnetic component is aligned with the second magnetic component along the connection direction.

19. The magnetic buckle assembly according to claim 17, wherein the second mounting chamber is formed inside the second locking portion.