This non-provisional application claims priority under 35 U.S.C. ยง119(a) on Patent Application No. 201020148217.4 filed in People's Republic of China on Mar. 19, 2010, the entire contents of which are hereby incorporated by reference.
The present invention relates generally to a joint structure for a foldable playpen, especially to a joint structure that includes a pushing element for preventing a pair of lock pins from returning to its locked position after a release actuator thereof being manipulated.
The deploying and folding of a foldable playpen, are necessarily controlled by locking and unlocking the joints thereof. For example, U.S. Pat. No. 6,250,837 discloses a rail joint that can be manipulated to lock a pair of upper rails of play yard for deploying in a use position, and unlock the pair of upper rails by pressing an actuator.
The rail joint of U.S. Pat. No. 6,250,837 pivotally connects a pair of rail members each having a notch latch, and has a pair of hinge arms each having a finger for removably engaging with the notch latch for locking the pair of rail member in a use position, and an actuator having a elliptical-shaped shaft for drive the hinge arms away from each other, so as to unlock the pair of upper rails by rotation. The lower end of the hinge arms formed with a pair of gear teeth for meshing with each other, this could force the hinge arms to rotate in opposite direction simultaneously.
However, sometime, when unlocking the rail members, the gaps inside the rail joint may cause only one finger of the hinge arm disengaged from the notch latch, and another one may still engaged with the notch latch; at this moment, the finger of the hinge arm may become permanently deformed or be broken, if the user suddenly impose a large force onto the rail members.
To avoid such a problem, the present invention provides a joint structure with a stable unlocked state for a foldable playpen, comprising a pair of upper rails, a rigid shroud, a pair of lock pins, a pair of spring biased pin-carriers, and a release actuator. The pair of upper rails each have a necked portion and a pushing element; the rigid shroud is pivotally connected between the pair of upper rails; the pair of spring biased pin-carriers is installed within the rigid shroud for carrying the pair of lock pins to engage with the necked portion, thereby locking the pair of upper rails in a use position and to leave the necked portion to release the pair of upper rails from the use position. The pair of spring biased pin-carriers are featuring with a side extension flap for abutting against the pushing element, and an associating short arm for keeping the pair of spring biased pin-carriers to rotate in an opposite directions simultaneously. The release actuator is operatively mounted on outside of the rigid shroud for driving the pair of spring biased pin-carriers to drive the pair of lock pins to disengage from the necked portion thereby releasing the pair of upper rails from the use position to rotate to a folded position.
The accompanying drawings, which are included to provide a further understanding of the invention are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and together with the description serve to explain the principles of the invention. In the drawings:
Reference will now be made in detail to the preferred embodiments of the present invention; examples of which are illustrated in the accompanying drawings.
Referring to
Referring to
The pair of upper rails 21 each has a necked portion 22 and a pushing element 8. The pair of upper rails 21 can be locked in a use position 20 by the pair of lock pins 57 and be released into a folded position 30 by pressing the release actuator 7.
The rigid shroud 51 includes two parallel side walls 52 and formed a receiving space 53 therebetween. The side walls 52 each has a plurality of pivot points 56 for pivoting the pair of upper rails 21, a pair of pushing elements 8, and the pair of spring biased pin-carriers 6 within the receiving space 53.
Preferably, the side walls 52 may further be formed with a pair of guiding slots 54 for guiding moving of the pair of lock pins 57. The pair of lock pins 57 each has two ends penetrate the pair of guiding slots 54, and a middle portion held in two pin holes 61 formed on the pair of spring biased pin-carriers 6.
The pair of lock pins 57 each has a locked position 40 to engage within the necked portion 22, and an unlocked position 50 while the joint structure 5 is released into an unlocked state.
When the spring biased pin-carriers 6 are driven by the release actuator 7 and rotated to close to each other, the pin holes 61 would carry the pair of lock pins 57 moving along the pair of guiding slots 54, so as to disengage from the necked portions 22 of the pair of upper rails 21.
As shown in
The pair of spring biased pin-carriers 6 are installed within the rigid shroud 51 and biased by a spring 64 to rotate close to each other thereby carrying the pair of lock pins 57 to engage with the necked portion 22 in the locked position 40 automatically, thereby locking the pair of upper rails 21 into a use position 20.
The pair of spring biased pin-carriers 6 can be driven by manipulating the release actuator 7 to depart from each other, so as to carry the pair of lock pins 57 to disengage from the necked portion 22 thereby releasing the pair of upper rails 21 from the use position 20.
The release actuator 7 is operatively mounted on outside of the rigid shroud 51 for driving the pair of spring biased pin-carriers 6 to drive the pair of lock pins 57 to disengage from the necked portion 22 thereby releasing the pair of upper rails 21 from the use position 20 to rotate to a folded position 30. Referring to
The pair of spring biased pin-carriers 6 are featuring with having a side extension flap 63 for abutting against the pushing element 8, and an associating short arm 62 for associating and keeping the pair of spring biased pin-carriers 6 to rotate in an opposite directions simultaneously. When the lock pins 57 disengaged from the necked portion 22, the pushing element 8 would follows the upper rails 21 to rotate and push the side extension flap 63, this can force the pair of spring biased pin-carriers 6 to rotate, thereby preventing the lock pins 57 from returning to the necked portion 22. By this way, the joint structure 5 can be kept in a stable unlocked state.
The associating short arms 62 are formed on the lower end of the pair of spring biased pin-carriers 6 and associated with each other, thereby keeping the pair of spring biased pin-carriers 6 to rotate in an opposite directions simultaneously.
Preferably, the pushing element 8 may be formed in a cam-like configuration 81 for abutting and pushing the side extension flap 63 by rotating the pair of upper rails 21. When rotate the pair of upper rails 21, the cam-like configuration 81 would push the side extension flap 63 and the pair of spring biased pin-carriers 6 to rotate, this would help to prevent the lock pins 57 from returning to the necked portion 22 and thereby keeping the joint structure in a stable unlocked state.
Referring to
While particular embodiments of the invention have been described, those skilled in the art will recognize that many modifications are possible that will achieve the same goals by substantially the same system, device or method, and where those systems, devices or methods still fall within the true spirit and scope of the invention disclosed.
Number | Date | Country | Kind |
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201020148217.4 | Mar 2010 | CN | national |