LOCKING MODULE OF WIRE AUTO-WINDING DEVICE
20180072533 ยท 2018-03-15
Assignee
- BSE Co., Ltd. (Incheon, KR)
- Tianjin BSE Electronics Co., Ltd. (TEDA, Tianjin, CN)
- Dongguan Baoxing Electronics Co., Ltd. (Dongguan City, Guangdong, CN)
- Rongcheng Baoxing Electronic Co., Ltd. (Rongcheng City, Shandong, CN)
Inventors
Cpc classification
B65H75/4431
PERFORMING OPERATIONS; TRANSPORTING
B65H2701/3919
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A locking module of a wire auto-winding device includes a first case having a coupling projection formed thereon; a rotating piece inserted over the coupling projection of the first case in order to be rotated clockwise or counterclockwise; a button member coupled to the rotating piece and being slid in a first direction to rotate the rotating piece by means of a button operation; a stopper member coupled to the rotating piece to be slid in a second direction by means of the rotation of the rotating piece; a resilient spring for pushing and returning one of the button member or the stopper member in the opposite direction; and a second case fastened to the first case to form a component receiving space therein.
Claims
1. A locking module of a wire auto-winding device, comprising: a first case on which a coupling projection is formed; a rotating piece inserted to the coupling projection of the first case and rotated in a clockwise or counter-clockwise direction; a button member coupled to the rotating piece to rotate the rotating piece while slid in a first direction according to button manipulation; a stopper member coupled to the rotating piece and slid in a second direction according to the rotation of the rotating piece; a resilient spring pushing one of the button member or the stopper member in an opposite direction to return the same to an original position; and a second case coupled to the first case to define a component accommodation space therebetween.
2. A locking module of a wire auto-winding device, comprising: a first case on which a coupling projection is formed; a pinion inserted to the coupling projection of the first case; a button member having a tooth formed on one end thereof to serve as a rack coupled to the pinion and slid in a first direction according to button manipulation to rotate the pinion; a stopper member having a tooth formed on one end thereof to serve as a rack coupled to the pinion and slid in a second direction according to the rotation of he pinion; a resilient spring pushing one of the button member or the stopper member in an opposite direction to return the same to an original position; and a second case coupled to the first case to define a component accommodation space therebetween.
3. A locking module of a wire auto-winding device, comprising: a first case on which a coupling projection is formed; a cam inserted to the coupling projection of the first case; a button member coupled to the cam to rotate the cam while slid in a first direction according to button manipulation; a stopper member coupled to the cam and slid in a second direction according to the rotation of the cam; a resilient spring pushing one of the button member or the stopper member in an opposite direction to return the same to an original position; and a second case coupled to the first case to define a component accommodation space therebetween.
4. A locking module of a wire auto-winding device, comprising: a first case on which a coupling projection is formed; a rotating piece inserted to the coupling projection of the first case and on which a cam and a pinion are formed; a button member coupled to the cam or the pinion of the rotating piece to rotate the rotating piece while slid in a first direction according to button manipulation; a stopper member coupled to the cam or the pinion of the rotating piece and slid in a second direction according to the rotation of the rotating piece; a resilient spring pushing one of the button member or the stopper member in an opposite direction to return the same to an original position; and a second case coupled to the first case to define a component accommodation space therebetween.
5. The locking module of claim 1, wherein the resilient spring comprises: a first resilient spring pushing the button member in the opposite direction to return the same to the original position; and a second resilient spring pushing the stopper member in the opposite direction to return the same to the original position.
6. The locking module of claim 1, wherein the first direction and the second direction cross each other.
7. The locking module of claim 1, wherein a guide hole for accommodating the button member and a guide hole for accommodating the stopper member are defined in one of the first case or the second case to have a rail coupling structure for preventing the bottom member and the stopper member from being escaped.
8. A wire auto-winding device comprising: a housing: an auto-winding module accommodated in one side of the housing to unwind a wire wound around a retractable rotating plate when the wire is pulled, maintain a current length of the wire by being automatically locked when the wire is released, and automatically wind the wire when the locking is released; a locking plate rotated together with the auto-winding module; and a locking module communicated with the locking plate to allow rotation of the auto-winding module in one direction, lock the rotation thereof in the other direction, and allow the rotation thereof in the other direction when a release button is inputted, wherein the locking module comprises: a first case on which a coupling projection is formed; a rotating piece inserted to the coupling projection of the first case and rotated in a clockwise or counter-clockwise direction; a button member coupled to the orating piece to rotate the rotating piece while slid in a first direction according to button manipulation; a stopper member coupled to the rotating piece and slid in a second direction according to the rotation of the rotating piece; a resilient spring pushing one of the button member or the stopper member in an opposite direction to return the same to an original position; and a second case coupled to the first case to define a component accommodation space therebetween.
9. The locking module of claim 2, wherein the resilient spring comprises: a first resilient spring pushing the button member in the opposite direction to return the same to the original position; and a second resilient spring pushing the stopper member in the opposite direction to return the same to the original position.
10. The locking module of claim 2, wherein the first direction and the second direction cross each other.
11. The locking module of claim 2, wherein a guide hole for accommodating the button member and a guide hole for accommodating the stopper member are defined in one of the first case or the second case to have a rail coupling structure for preventing the bottom member and the stopper member from being escaped.
12. The locking module of claim 3, wherein the resilient spring comprises: a first resilient spring pushing the button member in the opposite direction to return the same to the original position; and a second resilient spring pushing the stopper member in the opposite direction to return the same to the original position.
13. The locking module of claim 3, wherein the first direction and the second direction cross each other.
14. The locking module of claim 3, wherein a guide hole for accommodating the button member and a guide hole for accommodating the stopper member are defined in one of the first case or the second case to have a rail coupling structure for preventing the bottom member and the stopper member from being escaped.
15. The locking module of claim 4, wherein the resilient spring comprises: a first resilient spring pushing the button member in the opposite direction to return the same to the original position; and a second resilient spring pushing the stopper member in the opposite direction to return the same to the original position.
16. The locking module of claim 4, wherein the first direction and the second direction cross each other.
17. The locking module of claim 4, wherein a guide hole for accommodating the button member and a guide hole for accommodating the stopper member are defined in one of the first case or the second case to have a rail coupling structure for preventing the bottom member and the stopper member from being escaped.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
DETAILED DESCRIPTION
[0028] The present invention and the technical objects achieved by the embodiment of the present invention will be clear by the exemplary embodiments that are described below. Following embodiments give further detailed description to help understanding of the prevent invention, but do not limit the scope of the present invention.
[0029]
[0030] As illustrated in
[0031] Referring to
[0032] The auto-winding device 10 having the above-described structure may unwind the wound wire when a user pulls the wire in such a manner that the stopper 18a of the locking module is pushed along the inclined surface of the brake sawtooth 16a and the retractable rotating plate is rotated in one direction, and maintain the current length of the wire when the user releases the wire in such a manner that while the locking plate 16 is rotated in an opposite direction by a restoring force of the retractable rotating plate, the brake sawtooth 16a is caught by the stopper 18a of the locking module.
[0033] When the user finishes the usage of an earphone and pushes the release button of the locking module 18, the stopper 18a caught by the catching protrusion is pushed backward by an operation of the locking module 18 according to the present invention to release the locking, and accordingly, the retractable rotating plate is rotated in the other direction by the restoring force to automatically wind the wire.
[0034] Since the above operation of the wire auto-winding device is well known, further description will be omitted.
[0035]
[0036] As illustrated in
[0037] Referring to
[0038] The pinion 120 that is a partial piece in which a tooth is formed on a circumferential surface is inserted to the coupling projection 112, so that one side thereof is coupled to the button rack 130 and the other side is coupled to the stopper rack 140, thereby transferring an operation of the button rack 130 to the stopper rack 140. As illustrated in
[0039] As the bar-shaped button rack 130 has one end on which the tooth 132 is formed to serve as a rack coupled to the pinion 120, the button rack 130 is slid in a first direction (vertical direction) according to button manipulation to rotate the pinion 120, and as the stopper rack 140 has one end on which the tooth 142 is formed to serve as a rack coupled to the pinion 120, the stopper rack 140 is slid in a second direction (left and right direction) in accordance with rotation of the pinion 120 and caught by the catching protrusion of the brake sawtooth 16a to control the rotation of the auto-winding module 14.
[0040] Also, the resilient springs 152 and 154 for providing a restoring force are coupled to the button rack 130 or the stopper rack 140 to return the same to an original position when the button rack 130 is released after a push manipulation. As illustrated in
[0041] As illustrated in
[0042] As illustrated in
[0043] As illustrated in
[0044] Thereafter, when the user releases the button, the button rack 130 moves outward by the restoring force of the resilient springs 152 and 154, and accordingly, the pinion 120 is rotated in a counter-clockwise direction to push the stopper rack 140 to the outside again, and the head portion of the stopper rack 140 is caught by the catching protrusion of the braking saw tooth 16a to lock the rotation of the auto-winding module 14.
[0045]
[0046] As illustrated in
[0047] Referring to
[0048] The cam 220 that is a partial rotating piece without a tooth is inserted to the coupling projection 212 of the bottom case. The cam 220 has one side coupled to the button member 230 and the other side coupled to the stopper member 240 to transmit a movement of the button member 230 to the stopper member 240.
[0049] As a coupling portion for being coupled to the cam 220 is provided on one end of the button member 230, the bar-shaped button member 230 is slid in a first direction (vertical direction) to rotate the cam 220 according to button manipulation. As a coupling stepped portion is provided on one end of the stopper member 240, the stopper member 240 is slid in a second direction (left and right direction) according to the rotation of the cam 220 and caught by the catching protrusion of the brake sawtooth 16a to control the rotation of the auto-winding module 14.
[0050] Also, the resilient springs 252 and 254 for providing a restoring force are coupled to the button member 230 or the stopper member 240 to return the same to an original position when the button member 230 is released after a push manipulation of the button member 230. As illustrated in
[0051] As illustrated in
[0052] As the button member 230 and the stopper member 240 are in a protruding state by the resilient force of the springs 152 and 154 when the button is released, the locking module 200 having the above-described configuration according to the second embodiment of the present invention maintains a locking state in which a head portion of the stopper member 240 is caught by the catching protrusion of the brake sawtooth 16a to prevent the rotation of the auto-winding module 14.
[0053] As illustrated in
[0054] Thereafter, when the user releases the button, the button member 230 moves outward by the restoring force of the resilient springs 252 and 254. Accordingly, the cam 220 is rotated in a counter-clockwise direction to push the stopper rack 240 outward again, and the head portion of the stopper member 240 is caught by the catching protrusion of the brake sawtooth 16a to lock the rotation of the auto-winding module 14.
[0055]
[0056] As illustrated in
[0057] Referring to
[0058] The rotating piece 320 including the cam portion 322 without a tooth and a pinion portion 324 in which a tooth is formed is inserted to a coupling projection 312 of the bottom case and coupled to the button member 330. Although the cam portion 322 is coupled to the button member 330, and the pinion portion 324 is coupled to the stopper member 340 in an embodiment of the present invention, alternatively, the cam portion may be coupled to the stopper member 340, and the pinion portion may be coupled to the button member 330.
[0059] As a coupling portion for being coupled to the cam portion 322 is formed on one end of the button member 330, the bar-shaped button member 330 is slid in a first direction (vertical direction) according to button manipulation to rotate the rotating piece 320. As the stopper member 340 serves as a rack having a tooth formed on one end thereof, the stopper member 340 is slid in a second direction (left and right direction) according to the rotation of the pinion portion 324 and caught by the catching protrusion of the brake sawtooth 16a to control the rotation of the auto-winding module 14.
[0060] Also, the resilient springs 252 and 254 for providing a restoring force are coupled to the button member 330 or the stopper member 340 to return the same to an original position when the button member 130 is released after a push manipulation.
[0061] As the button member 330 and the stopper member 340 are in a protruding state by the resilient force of the springs 352 and 354 when the button is released, the locking module 300 having the above-described configuration according to the third embodiment of the present invention maintains a locking state in which a head portion of the stopper member 340 is caught by the catching protrusion of the brake sawtooth 16a to prevent the rotation of the auto-winding module 14.
[0062] When the user pushes the button to release the locking, the button member 330 moves inward to rotate the rotating piece 320 in a clockwise direction, and accordingly, the stopper member 340 moves inside the case to release the locking of the auto-winding module 14. As the locking is released, the retractable rotating plate is rotated by the restoring force to automatically wind the wire.
[0063] Thereafter, when the user releases the button, the button member 330 moves outward by the restoring force of the resilient spring 352. Accordingly, the rotating piece 320 is rotated in a counter-clockwise direction to push the stopper member 340 outward again, and a head portion of the stopper member 340 is caught by a catching protrusion of the brake sawtooth 16a to lock the rotation of the auto-winding module 14.
[0064] Although the exemplary embodiments of the present invention have been described, it is understood that the present invention should not be limited to these exemplary embodiments but various changes and modifications can be made by one ordinary skilled in the art within the spirit and scope of the present invention as hereinafter claimed.