The present disclosure relates to a cord winding module for receiving a cord or a signal wire of an electronic device.
Auxiliary devices having cords, such as earphones, mice, keyboards, etc., are used in many electronic devices. In order to use more conveniently, cord winding modules have been increasingly provided in these auxiliary devices for receiving cords or signal wires. The cord winding module typically comprises a rotary wheel, a coil spring and a stopper structure. The cord is wound on the rotary wheel, and can be automatically retracted under the elastic restoring force of the coil spring. In the retracting process, the stopper structure can prevent the rotary wheel from rotating and stop the retracting of the cord, so that a suitable length of the cord that has not been retracted can be reserved.
The stopper structure comprises a stop button and an elastic support device. The elastic support device can provide an elastic force to the stop button, and the stopper structure automatically brakes the rotary wheel under the action of the elastic force. If the stop button is pressed, the rotary wheel will be released, and the retraction of the cord will be started again.
The stopper structures of the cord winding modules on the market are elastically supported by a compression spring or a torsion spring structure. Such a structure occupies a lot of space, which limits the miniaturization of the products.
For example, a Chinese invention patent titled “Accommodation Device” (Application No.: 201110267313.X) discloses a stopper structure of a cord winding module, in which a spring 415 is an elastic support device of a locking device 400. As shown in
A Chinese invention patent titled “Accommodation Device” (Application No. 201110417406.6) discloses a stopper structure of a cord winding module, in which an elastic member 420 is an elastic support device of a lock assembly 400. As shown in
A Chinese utility model patent “Headphone Cord Winding-up Device, Headphone Assembly and Mobile Terminal” (Application No. 200920108072.2) discloses a stopper structure of a cord winding module, in which a hook spring 13 is an elastic support device of a hook plate 12. As shown in
In view of the above problems, the present disclosure provides a cord winding module, comprising a stopper structure in which a spring wire works cooperatively with a stop button, thereby reducing the size of the cord winding module.
The technical solutions of the present disclosure are as follows.
A cord winding module, comprising a rotary wheel on which a cord is wound and a stop button working cooperatively with the rotary wheel, wherein the cord winding module further comprises a spring wire working cooperatively with the stop button as an elastic support device, and the stop button automatically brakes the rotary wheel under the action of the elastic force of the spring wire and prevents the rotary wheel from retracting the cord; and
Preferably, the cord winding module further comprises a fixing cover,
Preferably, the stop button is a lever structure, a mounting hole is arranged in the middle of the stop button, the mounting hole is engaged with a pin to mount the stop button at a side of the fixing cover, and the stop button rotates around the pin; and
Preferably, a ratchet to cooperate with the stop button is mounted on an upper end of the rotary wheel, a shaft hole is arranged in the middle of the rotary wheel, and a rotating shaft is fixed on the fixing cover; and
Preferably, a mounting slot is provided at the upper end of the rotary wheel;
Preferably, the FPC connection terminal has a ring shape and is connected with an external flexible printed circuit board;
Preferably, the end of the circuit connection elastic piece which is in contact with the FPC connection terminal has a fork structure with an arc segment, and the circuit connection elastic piece is connected to the FPC connection terminal through the arc segment.
Preferably, an energy storage chamber is provided at the lower end of the rotary wheel;
Preferably, a rotary wheel cover is installed on the energy storage chamber;
Preferably, a clamping hole is provided at a sidewall of the rotary wheel cover;
The advantageous effects of the present disclosure are as follows.
The cord winding module of the present disclosure adopts a stopper structure in which a spring wire works cooperatively with a stop button, so the space to be occupied is reduced and the cord winding module is smaller.
The damping grease is provided in the energy storage chamber in which the coil spring is disposed. The damping grease can adjust the unwinding speed of the coil spring so that the cord is slowly retracted to avoid damage to the cord.
The connection between the cord and the external circuit is realized through the contact type FPC connection terminal and the circuit connection elastic piece, both of which are always elastically contact without being influenced by the rotation of the rotary wheel, and do not affect the circuit signal at all.
In the drawings: 1: rotating shaft; 2: pin; 3: plastic sleeve; 4: stop button; 5: spring wire; 6: fixing cover; 7: FPC connection terminal; 8: circuit connection elastic piece; 8-1: upper connection terminal; 8-2: lower connection terminal; 8-3: fixing hole; 9: rotary wheel; 9-1: ratchet; 9-2: mounting slot; 9-3: cord spool; 9-4: energy storage chamber; 9-5: clamping claw; 10: seal ring; 11: cord; 12: coil spring; 13: rotating shaft sleeve; 14: snap ring; 15: seal ring; 16: rotary wheel cover; and 17: cord.
In order to make the objectives, technical solutions and advantages of the present disclosure clearer, the present disclosure is further described in detail with reference to the accompanying drawings and the embodiments.
First Embodiment
The stop button 4 automatically stops the rotating of the rotary wheel 9 for retracting the cord 11, but it cannot stop the rotating of the rotary wheel 9 for unwinding the cord 11. That is a structural requirement on the engagement between a ratchet 9-1 and a ratchet pawl. The stop button 4 may employ a metal bottom.
As shown in
As shown in
The both ends of the spring wire 5 may not be bent, but it will be easier to cooperate with other parts after bending.
As shown in
The stop button 4 is a lever structure, a mounting hole is arranged in the middle of the stop button, and the mounting hole is engaged with a pin 2 to fix the stop button at a side of the fixing cover. The stop button 4 rotates around the pin 2. A ratchet pawl is provided at the end of the stop button 4 which cooperates with the rotary wheel 9. The ratchet pawl has a plastic sleeve 3. When the rotary wheel 9 rotates to unwind the cord 11, the plastic sleeve 3 acts as a lubricant between the ratchet pawl and the rotary wheel 9.
A ratchet 9-1 to cooperate with the stop button 4 is mounted on the upper end of the rotary wheel 9, a shaft hole is arranged in the middle of the rotary wheel 9, and a rotating shaft 1 is fixed on the fixing cover 6. The rotary wheel 9 rotates around the rotating shaft 1. A snap ring 14 is arranged at the lower end of the rotating shaft 1, and the rotary wheel 9 is limited on the rotating shaft 1 by the snap ring 14.
As shown in
The FPC connection terminal 7 has a ring shape and is connected with an external flexible printed circuit board (i.e. FPC). The circuit connection elastic piece 8 is two circuit connection elastic pieces 8, and they are symmetrically arranged and in contact with the FPC connection terminal 7. The rotary wheel 9 applies a preload to the FPC connection terminal 7 through the circuit connection elastic pieces 8, so that the reliability of the circuit connection can be fully guaranteed. Both the FPC connection terminal 7 and the circuit connection elastic pieces 8 are made of a material with good electrical conductivity, such as copper alloy.
A cord 17 is connected between the two circuit connection elastic pieces 8 (connected with the lower connection terminal 8-2 in
As shown in
A fixing hole 8-3 is arranged in the middle of the circuit connection elastic piece 8. Correspondingly, a pin is arranged in the mounting slot 9-2 to cooperate with the fixing hole 8-3. With this design, the circuit connection elastic piece 8 can more stably rotate with respect to the FPC connection terminal 7.
An energy storage chamber 9-4 is provided at the lower end of the rotary wheel 9. A coil spring 12 is installed in the energy storage chamber 9-4. One end of the coil spring 12 is fixed on the rotating shaft 1, and the other end is fixed on the sidewall of the energy storage chamber. When the cord 11 is pulled out, the rotary wheel 9 rotates, and the coil spring 12 is tightened to store energy and provides power for retracting the cord 11 afterwards.
A rotary wheel cover 16 is installed on the energy storage chamber 9-4.
A clamping hole is provided at a sidewall of the rotary wheel cover 16; a clamping claw 9-5 is provided on the sidewall of the energy storage chamber 9-4. The energy storage chamber 9-4 is clamped fitted to the rotary wheel cover 16. The sidewall of the rotary wheel cover 16 is provided with cracks at both sides of the clamping hole, to allow the sidewall to expand outwardly and deform at these positions to fit the clamping claw 9-5.
When the cord winding module is used, the lower end of the spring wire 5 is in contact with the upper end of the stop button 4 and maintains a certain amount of preload of the spring wire 5, so the stop button 4 is always subjected to a pushing force from the spring wire 5 in the opposite direction to the pressing force F, so that the plastic sleeve 3 keeps the trend of inserting into the ratchet teeth at the end of the rotary wheel 9.
The angle between the ratchet teeth of the end face of the rotary wheel 9 and the tangent of the outer contour is an acute angle on the left side and a right angle on the right side. In a normal state, the rotary wheel 9 can rotate clockwise in the direction of the arrow B, and cannot rotate anticlockwise in the direction of the arrow A due to the braking of the plastic sleeve 3.
When the cord 11 is pulled in the direction of the arrow C in
Second Embodiment
The present embodiment makes a further improvement on the energy storage chamber 9-4 on the basis of the first embodiment. As shown in
Preferably, a rotating shaft sleeve 13 is provided in the energy storage chamber 9-4, the position of the rotating shaft sleeve 13 is limited by the snap ring 14, and the upper end of the rotating shaft sleeve 13 tightly presses the seal ring 10, so that the sealing effect can be improved. The seal ring 15 is tightly pressed by the energy storage chamber 9-4.
The damping grease can adjust the unwinding speed of the coil spring so that the cord 11 is slowly retracted to avoid damage to the cord 11.
Third Embodiment
The present embodiment makes a further improvement on the circuit connection elastic piece on the basis of the first embodiment. In the present embodiment, the number of the circuit connection elastic piece is one (not shown), and actually it is obtained by integrally forming the two circuit connection elastic pieces 8 in the first embodiment into one piece. The other structures such as the fork structure are the same except that they are integrally punched and are connected to the cord 11 in the middle of it. This design can simplify the assembling process of the circuit connection portion.
The above description is merely preferable embodiments of the present disclosure. Based on the above teachings of the present disclosure, those skilled in the art may make other improvements or modifications on the basis of the foregoing embodiments. It should be understood by those skilled in the art that the above specific description is only for better explaining the present disclosure, and the protection scope of the present disclosure should be determined by the protection scope of the claims.
Number | Date | Country | Kind |
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201610151003.4 | Mar 2016 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2016/092695 | 8/1/2016 | WO | 00 |