Buckle assembly
11925241 ยท 2024-03-12
Assignee
Inventors
Cpc classification
A44B11/2519
HUMAN NECESSITIES
International classification
Abstract
A buckle assembly includes a first buckle component, a second buckle component and an operating component. The first buckle component includes a locked portion. The second buckle component includes a locking portion. The locking portion engages with the locked portion along a lateral direction of the buckle assembly when the second buckle component is mated with the first buckle component along a mating direction. The operating component is partially embedded in and partially exposed out of the second buckle component. The operating component is slidable relative to the second buckle component. The operating component drives the locking portion to move away from the locked portion for disengaging the locking portion from the locked portion during a sliding movement of the operating component relative to the second buckle component. The present invention has advantage of saving labor and easy operation.
Claims
1. A buckle assembly comprising: a first buckle component comprising a locked portion; a second buckle component including a locking portion configured to be engaged with the locked portion of the first buckle component, wherein the locking portion comprises a resilient arm and a locking head connected to the resilient arm, the locking head is configured to engage with the locked portion; an operating component partially embedded in the second buckle component and partially exposed out of the second buckle component, the operating component being slidable relative to the second buckle component such that sliding movement of the operating component relative to the second buckle component causes disengagement between the first buckle component and the second buckle component, wherein the resilient arm is connected to the operating component and biased to engage the locking head with the locked portion; and a first magnetic structure and a second magnetic structure, the first magnetic structure being disposed on the first buckle component, the second magnetic structure being disposed on the second buckle component, and the first magnetic structure magnetically attracting or repelling the second magnetic structure during a mating process of the first buckle component and the second buckle component.
2. The buckle assembly of claim 1, wherein the locked portion is located at a front surface of the first buckle component.
3. The buckle assembly of claim 1, wherein a first embedding chamber is formed on the first buckle component, a second embedding chamber is formed on the second buckle component, the first magnetic structure is embedded into the first embedding chamber, and the second magnetic structure is embedded into the second embedding chamber.
4. The buckle assembly of claim 3, wherein the first embedding chamber is aligned with the second embedding chamber along a mating direction.
5. The buckle assembly of claim 1, wherein a mating hole is formed on the second buckle component and is configured to allow the locked portion to pass therethrough.
6. The buckle assembly of claim 1, wherein the locking portion engages the locked portion along a lateral direction of the buckle assembly when the second buckle component is mated with the first buckle component along a mating direction, and the mating direction is substantially perpendicular to the lateral direction.
7. The buckle assembly of claim 1, wherein slidable movement of the operating component drives the locking portion to move away from the locked portion to disengage the locking portion from the locked portion.
8. The buckle assembly of claim 1, wherein the locking portion is a resilient structure.
9. The buckle assembly of claim 8, wherein slidable movement of the operating component resiliently deforms the locking portion to disengage from the locked portion.
10. The buckle assembly of claim 1, wherein slidable movement of the operating component deforms the resilient arm and causes the locking head to disengage from locked portion.
11. The buckle assembly of claim 10, wherein the operating component includes an abutting portion, the resilient arm includes a cooperating portion, and the abutting portion abuts against the cooperating portion to resiliently deform the resilient arm and disengage the locking head from the locked portion during the slidable movement of the operating component.
12. The buckle assembly of claim 1, wherein the locking portion comprises a first resilient arm connected to a first unitary locking head and a second resilient arm connected to a second unitary locking head, the first unitary locking head and the second unitary locking head are configured to engage with the locked portion.
13. The buckle assembly of claim 12, wherein the first unitary locking head protrudes from an inner wall of the first resilient arm along a lateral direction and the second unitary locking head protrudes from an inner wall of the second resilient arm along the lateral direction, and wherein the lateral direction is perpendicular to a direction of engagement between the first buckle component and the second buckle component.
14. The buckle assembly of claim 1, wherein the locking portion engages the locked portion along a lateral direction; the operating component is slidable along a sliding direction; and the sliding direction is one of substantially the same direction as the lateral direction or a substantially opposite direction to the lateral direction.
15. The buckle assembly of claim 1, wherein the locking portion is detachably connected to the second buckle component.
16. A buckle assembly comprising: a first buckle component comprising a locked portion formed as a protrusion on a front surface of the first buckle component; a second buckle component comprising a locking portion configured to be engaged with the locked portion of the first buckle component to mate the second buckle component with the first buckle component, wherein the locking portion comprises a resilient arm and a locking head connected to the resilient arm, the locking head is configured to engage with the locked portion; an operating component partially embedded in the second buckle component and partially exposed out of the second buckle component, wherein the operating component is configured to be slidable relative to the second buckle component, the operating component is configured to cause disengagement between the first buckle component and the second buckle component during a sliding movement of the operating component relative to the second buckle component; and the resilient arm is connected to the operating component and biased to engage the locking head with the locked portion; and a first magnetic structure and a second magnetic structure, the first magnetic structure being disposed on the first buckle component, the second magnetic structure being disposed on the second buckle component, and the first magnetic structure magnetically attracting or repelling the second magnetic structure during a mating process of the first buckle component and the second buckle component.
17. The buckle assembly of claim 16, wherein a first embedding chamber is formed on the first buckle component, a second embedding chamber is formed on the second buckle component, the first magnetic structure is embedded into the first embedding chamber, and the second magnetic structure is embedded into the second embedding chamber.
18. The buckle assembly of claim 17, wherein the first embedding chamber is aligned with the second embedding chamber along a mating direction.
19. The buckle assembly of claim 16, wherein slidable movement of the operating component drives the locking portion to move away from the locked portion to disengage the locking portion from the locked portion.
20. The buckle assembly of claim 16, wherein the locking portion is detachably connected to the second buckle component.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(17) In order to illustrate technical specifications and structural features as well as achieved purposes and effects of the present invention, relevant embodiments and figures are described as follows.
(18) Please refer to
(19) The operating component 3 is partially embedded into the second buckle component 2 and partially exposed out of a lateral wall of the second buckle component 2. The operating component 3 is configured to cooperate with the locking portion 4 and slidable relative to the second buckle component 2 along the lateral direction. It should be noticed that, in this embodiment, the lateral direction can be an arrow direction M1 or M2 shown in
(20) The locked portion 5 is located at a front surface of the first buckle component 1. A mating hole 21 is formed on the second buckle component 2 for allowing the locked portion 5 to pass therethrough, and the mating direction, which can be the arrow direction P shown in
(21) Specifically, as shown in
(22) As shown in
(23) Preferably, in this embodiment, the second operating component 3b can be configured to push the first resilient arm 41a to resiliently deform the first resilient arm 41a away from the locked portion 5, and the first operating component 3a can be configured to push the second resilient arm 41b to resiliently deform the second resilient arm 41b away from the locked portion 5, i.e., the force acting on the operating component 3 and provided by the user can be a pushing force. However, it is not limited to this embodiment. For example, in another embodiment, the first operating component can be configured to pull the first resilient arm to resiliently deform the first resilient arm away from the locked portion, and the second operating component can be configured to pull the second resilient arm to resiliently deform the second resilient arm away from the locked portion, i.e., the force acting on the operating component and provided by the user can be a pulling force. Therefore, it is understandable that the user can push or pull the operating component to resiliently deform the first resilient arm and the second resilient arm away from the locked portion.
(24) As shown in
(25) As shown in
(26) Specifically, the first cooperating portion 43a and the second cooperating portion 43b can be located at different levels along an up-down direction, which can be the arrow direction P shown in
(27) Preferably, the first cooperating portion 43a can be misaligned with the second cooperating portion 43b along the lateral direction, and the first abutting portion 31a can be misaligned with the second abutting portion 31b along the lateral direction, so that it can reduce an occupied space along the up-down direction and facilitate arrangement of the internal space of the buckle assembly 100. In this embodiment, the first abutting portion 31a and the second cooperating portion 43b can be located ahead the second abutting portion 31b and the first cooperating portion 43a along an extending direction, which can be an arrow direction Q shown in
(28) It is understandable that, in another embodiment, when there is only one locking portion located at one side of the locked portion and for engaging with the locked portion, there can be only one operating component located at another side of the locked portion opposite to the locking portion to resiliently push the locking portion away from the locked portion for disengaging the locking portion from the locked portion. In other words, the operating component and the locking portion can be located at two opposite sides of the locked portion to push the locking portion by the operating component for disengaging the locking portion from the locked portion. Alternatively, in another embodiment, the operating component and the locking portion can be located at a same side of the locked portion for pulling the locking portion by the operating component for disengaging the locking portion from the locked portion.
(29) As shown in
(30) As shown in
(31) Specifically, two C-shaped structures 24 are formed on the second buckle component 2 and for accommodating the two resilient components 6. The two resilient components 6 are respectively disposed between the first operating component 3a and the second buckle component 2 and between the second operating component 3b and the second buckle component 2.
(32) As shown in
(33) As shown in
(34) However, the numbers of the engaged rod and the step-shaped structure are not limited to this embodiment. For example, in another embodiment, the engaged structure can include one, three or more engaged rods, and the engaging bracket can include one, three or more step-shaped structures accordingly.
(35) As shown in
(36) Specifically, a first embedding chamber 11 is formed on the first buckle component 1. A second embedding chamber 23 is formed on the second buckle component 2. The first magnetic structure 7 is embedded into the first embedding chamber 11. The second magnetic structure 8 is embedded into the second embedding chamber 23. Preferably, the first embedding chamber 11 can be aligned with the second embedding chamber 23 along the mating direction for enhancing the magnetic attraction of the first magnetic structure 7 and the second magnetic structure 8. However, it is not limited to this embodiment. Specifically, the second embedding chamber 23 can be aligned with a space between the first locking head 42a and the second locking head 42b along the mating direction, as shown in
(37) As shown in
(38) When it is desired to engage the first buckle component 1 with the second buckle component 2, the locked portion 5 can be inserted into the mating hole 21 so as to abut against the first locking head 42a and the second locking head 42b by the abutting structure 51 to resiliently deform the first resilient arm 41a and the second resilient arm 41b for allowing the abutting structure 51 to pass across the first locking head 42a and the second locking head 42b. When the abutting structure 51 passes across the first locking head 42a and the second locking head 42b to align the locked structure 52 with the first locking head 42a and the second locking head 42b, the first locking head 42a and the second locking head 42b can be driven by the first resilient arm 41a and the second resilient arm 41b to engage with the locked structure 52.
(39) Please refer to
(40) Specifically, the first locking portion 4a includes a first rotating arm 41a and a first locking head 42a. The first locking head 42a is configured to engage with the locked portion 5. The first rotating arm 41a is pivotally connected to the second buckle component 2 by a first pivoting portion 411a. A first cooperating portion 43a is formed on the first rotating arm 41a and for cooperating with the second abutting portion 31b of the second operating component 3b. The first cooperating portion 43a is aligned with the second abutting portion 31b along the lateral direction. The first locking head 42a is connected to the first rotating arm 41a and protrudes from an inner wall of the first rotating arm 41a along the lateral direction. The second locking portion 4b includes a second rotating arm 41b and a second locking head 42b. The second locking head 42b is configured to engage with the locked portion 5. The second rotating arm 41b is pivotally connected to the second buckle component 2 by a second pivoting portion 411b. A second cooperating portion 43b is formed on the second rotating arm 41b and for cooperating with the first abutting portion 31a of the first operating component 3a. The second cooperating portion 43b is aligned with the first abutting portion 31a along the lateral direction. The second locking head 42b is connected to the second rotating arm 41b and protrudes from an inner wall of the second rotating arm 41b along the lateral direction.
(41) In this embodiment, the first cooperating portion 43a and the second cooperating portion 43b can be located at different levels along the up-down direction, and the first cooperating portion 43a can be misaligned with the second cooperating portion 43b along the lateral direction, which prevents any structural interface during a release operation of the buckle assembly 100 to ensure reliability of the release operation of the buckle assembly 100 and allows a reasonable use of an internal space of the buckle assembly 100. Preferably, in this embodiment, the first pivoting portion 411a and the second pivoting portion 411b can be two slot structures for allowing two pivoting shafts of the second buckle component 2 to pass there through.
(42) Furthermore, the first locking portion 4a further includes a first recovering component 44a. The second locking portion 4b further includes a second recovering component 44b. The first recovering component 44a is disposed between the first rotating arm 41a and the second buckle component 2 and for biasing the first rotating arm 41a to rotate to engage the first locking head 42a with the locked portion 5 along the lateral direction. The second recovering component 44b is disposed between the second rotating arm 41b and the second buckle component 2 and for biasing the second rotating arm 41b to rotate to engage the second locking head 42b with the locked portion 5 along the lateral direction. Preferably, in this embodiment, the first recovering component 44a and the second recovering component 44b can be two compressed springs. However, it is not limited thereto. For example, in another embodiment, the first recovering component and the second recovering component can be two torsional springs.
(43) When it is desired to release the buckle assembly 100, the first operating component 3a and the second operating component 3b of the operating component 3 can be pressed or operated to respectively drive the second rotating arm 41b and the first rotating arm 41a by abutment of the first abutting portion 31a of the first operating component 3a and the second cooperating portion 43b of the second locking portion 4b and abutment of the second abutting portion 31b of the second operating component 3b and the first cooperating portion 43a of the first locking arm 4a, so as to resiliently compress the second recovering component 44b and the first recovering component 44a for disengaging the second locking head 42b and the first locking head 42a from the locked portion 5. When the second locking head 42b and the first locking head 42a are disengaged from the locked portion 5, i.e., the buckle assembly 100 is in the releasing state, the first buckle component 1 can be separated from the second buckle component 2 to locate the buckle assembly 100 in a separation state. Afterwards, when the first operating component 3a and the second operating component 3b are released, the two resilient components 6 drive the first operating component 3a and the second operating component 3b to recover.
(44) When it is desired to engage the first buckle component 1 with the second buckle component 2, the locked portion 5 can be inserted into a mating hole of the second buckle component 2 so as to abut against the first locking head 42a and the second locking head 42b by the abutting structure 51 to drive the first rotating arm 41a and the second rotating arm 41b to rotate to resiliently compress the first recovering component 44a and the second recovering component 44b for allowing the abutting structure 51 to pass across the first locking head 42a and the second locking head 42b. When the abutting structure 51 passes across the first locking head 42a and the second locking head 42b to align the locked structure 52 with the first locking head 42a and the second locking head 42b, the first locking head 42a and the second locking head 42b can be driven by the first recovering component 44a and the second recovering component 44b to engage with the locked structure 52.
(45) It is understandable that, in another embodiment, when there is only one locking portion located at one side of the locked portion and for engaging with the locked portion, there can be only one operating component located at another side of the locked portion opposite to the locking portion to resiliently push the locking portion away from the locked portion for disengaging the locking portion from the locked portion. In other words, the operating component and the locking portion can be located at two opposite sides of the locked portion to push the locking portion by the operating component for disengaging the locking portion from the locked portion. Alternatively, in another embodiment, the operating component and the locking portion can be located at a same side of the locked portion for pulling the locking portion by the operating component for disengaging the locking portion from the locked portion.
(46) Please refer to
(47) Specifically, the first locking portion 4a includes a first rotating arm 41a and a first locking head 42a. The first locking head 42a is configured to engage with the locked portion 5. The first rotating arm 41a is pivotally connected to the second buckle component 2 by a first pivoting portion 411a. A first cooperating portion 43a is formed on the first rotating arm 41a and for cooperating with the second abutting portion 31b. The first cooperating portion 43a is aligned with the second abutting portion 31b along the extending direction. The first locking head 42a is connected to the first rotating arm 41a and protrudes from an inner wall of the first rotating arm 41a along the lateral direction. The second locking portion 4b includes a second rotating arm 41b and a second locking head 42b. The second locking head 42b is configured to engage with the locked portion 5. The second rotating arm 41b is pivotally connected to the second buckle component 2 by a second pivoting portion 411b. A second cooperating portion 43b is formed on the second rotating arm 41b and for cooperating with the first abutting portion 31a. The second cooperating portion 43b is aligned with the first abutting portion 31a along the extending direction. The second locking head 42b is connected to the second rotating arm 41b and protrudes from an inner wall of the second rotating arm 41b along the lateral direction. Preferably, in this embodiment, the first pivoting portion 411a and the second pivoting portion 411b can be two slot structures for allowing two pivoting shafts to pass there through.
(48) Furthermore, the first locking portion 4a further includes a first recovering component 44a. The second locking portion 4b further includes a second recovering component 44b. The first recovering component 44a is disposed between the first rotating arm 41a and the second buckle component 2 and for biasing the first rotating arm 41a to rotate to engage the first locking head 42a with the locked portion 5 along the lateral direction. The second recovering component 44b is disposed between the second rotating arm 41b and the second buckle component 2 and for biasing the second rotating arm 41b to rotate to engage the second locking head 42b with the locked portion 5 along the lateral direction. Preferably, in this embodiment, the first recovering component 44a and the second recovering component 44b can be two compressed springs. However, it is not limited thereto. For example, in another embodiment, the first recovering component and the second recovering component can be two torsional springs.
(49) When it is desired to release the buckle assembly 100, the operating component 3 can be pressed or operated to respectively drive the first rotating arm 41a and the second rotating arm 41b by abutment of the second abutting portion 31b and the first cooperation portion 43a of the first locking portion 4a and abutment of the first abutting portion 31a and the second cooperating portion 43b of the second locking portion 4b, so as to resiliently compress the first recovering component 44a and the second recovering component 44b for disengaging the first locking head 42a and the second locking head 42b from the locked portion 5. When the first locking head 42a and the second locking head 42b are disengaged from the locked portion 5, i.e., the buckle assembly 100 is in the releasing state, the first buckle component 1 can be separated from the second buckle component 2 to locate the buckle assembly 100 in a separation state. Afterwards, when the operating component 3 is released, the resilient component 6 drives the operating component 3 to recover.
(50) When it is desired to engage the first buckle component 1 with the second buckle component 2, the locked portion 5 can be inserted into a mating hole of the second buckle component 2 so as to abut against the first locking head 42a and the second locking head 42b by the abutting structure 51 to drive the first rotating arm 41a and the second rotating arm 41b to rotate to resiliently compress the first recovering component 44a and the second recovering component 44b for allowing the abutting structure 51 to pass across the first locking head 42a and the second locking head 42b. When the abutting structure 51 passes across the first locking head 42a and the second locking head 42b to align the locked structure 52 with the first locking head 42a and the second locking head 42b, the first locking head 42a and the second locking head 42b can be driven by the first recovering component 44a and the second recovering component 44b to engage with the locked structure 52.
(51) It is understandable that, in another embodiment, when there is only one locking portion located at one side of the locked portion and for engaging with the locked portion, there can be only one abutting portion for pushing the rotating arm to rotate to resiliently deform the recovering component for disengaging the locking portion from the locked portion. Alternatively, in another embodiment, the operating component can be configured to pull the rotating arm to rotate for disengaging the locking portion from the locked portion.
(52) Please refer to
(53) Specifically, the first locking portion 4a includes a first rotating arm 41a and a first locking head 42a. The first locking head 42a is configured to engage with the locked portion 5. The first rotating arm 41a is pivotally connected to the second buckle component 2 by a first pivoting portion 411a. A first cooperating portion 43a is formed on the first rotating arm 41a and for cooperating with the second abutting portion 31b. The first cooperating portion 43a is aligned with the second abutting portion 31b along the mating direction. The first locking head 42a is connected to the first rotating arm 41a and protrudes from an inner wall of the first rotating arm 41a along the lateral direction. The second locking portion 4b includes a second rotating arm 41b and a second locking head 42b. The second locking head 42b is configured to engage with the locked portion 5. The second rotating arm 41b is pivotally connected to the second buckle component 2 by a second pivoting portion 411b. A second cooperating portion 43b is formed on the second rotating arm 41b and for cooperating with the first abutting portion 31a. The second cooperating portion 43b is aligned with the first abutting portion 31a along the mating direction. The second locking head 42b is connected to the second rotating arm 41b and protrudes from an inner wall of the second rotating arm 41b along the lateral direction. Preferably, in this embodiment, the first pivoting portion 411a and the second pivoting portion 411b can be two pivoting shafts for passing through two slot structures formed on the second buckle component 2.
(54) Furthermore, the first locking portion 4a further includes a first recovering component 44a. The second locking portion 4b further includes a second recovering component 44b. The first recovering component 44a is disposed between the first rotating arm 41a and the second buckle component 2 and for biasing the first rotating arm 41a to rotate to engage the first locking head 42a with the locked portion 5 along the lateral direction. The second recovering component 44b is disposed between the second rotating arm 41b and the second buckle component 2 and for biasing the second rotating arm 41b to rotate to engage the second locking head 42b with the locked portion 5 along the lateral direction.
(55) When it is desired to release the buckle assembly 100, the operating component 3 can be pressed or operated to respectively drive the first rotating arm 41a and the second rotating arm 41b by abutment of the second abutting portion 31b and the first cooperating portion 43a of the first locking portion 4a and abutment of the first abutting portion 31a and the second cooperating portion 43b of the second locking portion 4b, so as to resiliently compress the first recovering component 44a and the second recovering component 44b for disengaging the first locking head 42a and the second locking head 42b from the locked portion 5. When the first locking head 42a and the second locking head 42b are disengaged from the locked portion 5, i.e., the buckle assembly 100 is in the releasing state, the first buckle component 1 can be separated from the second buckle component 2 to locate the buckle assembly 100 in a separation state. Afterwards, when the operating component 3 is released, the resilient component drives the operating component 3 to recover.
(56) When it is desired to engage the first buckle component 1 with the second buckle component 2, the locked portion 5 can be inserted into a mating hole of the second buckle component 2 so as to abut against the first locking head 42a and the second locking head 42b by the abutting structure 51 to drive the first rotating arm 41a and the second rotating arm 41b to rotate to resiliently compress the first recovering component 44a and the second recovering component 44b for allowing the abutting structure 51 to pass across the first locking head 42a and the second locking head 42b. When the abutting structure 51 passes across the first locking head 42a and the second locking head 42b to align the locked structure 52 with the first locking head 42a and the second locking head 42b, the first locking head 42a and the second locking head 42b can be driven by the first recovering component 44a and the second recovering component 44b to engage with the locked structure 52.
(57) It is understandable that, in another embodiment, when there is only one locking portion located at one side of the locked portion and for engaging with the locked portion, there can be only one abutting portion for pushing the rotating arm to rotate to resiliently deform the recovering component for disengaging the locking portion from the locked portion. Alternatively, in another embodiment, the operating component can be configured to pull the rotating arm to rotate for disengaging the locking portion from the locked portion.
(58) In contrast to the prior art, in the present invention, the operating component is disposed on the second buckle component including the locking portion which cooperates with the locked portion of the first buckle component. The operating component drives the locking portion to disengage the locking portion from the locked portion when the operating component is operated. Therefore, the present invention has advantages of simple structure and labor-saving and easy operation.
(59) Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.