This invention relates generally to push-push locking assemblies. More particularly, this invention relates to a push-push assembly having a heart cam with a breakaway feature.
It is commonly known in the art to provide for push-push closing and locking mechanisms within a vehicle. These mechanisms are opened by pushing on the front of a planar structure and allowing the tray, cover, or other apparatus to move to an open position. The apparatus is pushed a second time to achieve a closed position. Such push-push configurations require the use of a heart shaped cam, track, and pin to open and close the assembly. Typical assemblies include a molded track having a one piece heart shaped cam allowing a pin to move through the track and around the heart shaped cam.
Push-push assemblies do not provide for accidental or intentional pulling of the sliding mechanism. By way of example, a push-push mechanism for a tray wherein the tray includes a slightly turned up handle may entice a user to pull the handle rather than push the handle to release the push-push lock on the heart cam. In the event that a user pulls the assembly (rather than push the assembly), the pin, cam, and/or track may be broken by the user. In this event, the pin may be drug over the top surface of the heart cam or alternatively the pin will be broken. Accordingly, there exists a need in the art to provide a push-push mechanism which prevents breakage of the system when a mechanism is pulled by the user.
The present invention relates to a push-push heart cam lock assembly for use in connection with a slidable tray within a vehicle. The push-push heart cam includes a breakaway feature to prevent breakage of the pin if a user pulls the assembly rather than pushes the assembly when attempting to close the assembly. The assembly includes a base, a track formed in the base, and a pin slidable within the track which is formed on the base. The assembly further includes a heart shaped cam having a fixed piece and a movable piece wherein the fixed piece and the movable piece of the heart shaped cam are mounted within the track of the base. The assembly further includes the fixed piece and the movable piece are positioned adjacent one another allowing the pin to slide within the track to a locked resting position. In the event that the user pulls the slidable mechanism, the pin moves between the fixed piece and the movable piece of the heart shaped cam. The movable piece of the heart shaped cam is mounted to a biasing member to return the movable piece to a resting position. After the pin moves between the fixed piece and the movable piece of the heart shaped cam, the pin continues to slide down the track to achieve a closed position. The user may then push the sliding mechanism to an open, locked position without the worry of any breakage of the pin.
The present assembly is for use with a slidable mechanism having a breakaway feature to prevent breakage of a pin in a heart shaped cam assembly. The heart shaped cam is comprised of two pieces: a fixed piece and a movable piece. Both pieces of the heart shaped cam are mounted within a slidable track molded into a housing. The movable piece of the heart shaped cam is attached to a biasing member. As the pin moves up the track and into the resting portion at the top of the heart shaped cam, and the user decides to pull, rather than push, the slidable assembly, the pin travels between the fixed piece and the movable piece moving the fixed piece and the movable piece apart to accommodate the pin allowing the pin to continue movement down the track.
FIGS. 3 and 6-10 illustrate the movement of the pin 52 through the track 56. The movable piece 62 is attached to a base portion 92. The base portion 92 is mounted within a housing 88. The housing 88 includes a biasing member 84 and a cylindrical member 86. The biasing member 84 and the cylindrical member 86 are attached to the base member 92 which is in turn attached to the movable piece 62 of the heart cam assembly. When the pin is in a locked position at the top of the heart cam shown at 90, and the user pulls the slidable tray to a closed position, the pin forces the movable piece 62 away from the fixed piece 60 and the biasing member is engaged. In the present embodiment, the biasing member is a linear spring. The linear spring or biasing member 84 is compressed allowing the movable piece 62 to move out of the way allowing sufficient room for the pin 52 to travel between the fixed piece 60 and the movable piece 62.
In normal circumstances, the pin 56 continues through the track after the user pushes the slidable tray. In normal circumstances, the pin 52 moves up into the second upper track portion 76 as shown by directional arrows 230, 260 in
When the pin is in the resting position, it is located at the upper portion of the heart shaped cam pieces 60, 62. The fixed piece 60 and the movable piece 62 of the heart cam assembly are positioned adjacent one another. As the pin is forced between the fixed piece 60 and the movable piece 62, a space between the fixed piece 60 and the movable piece 62 is formed. The space is illustrated at reference numeral 210.
The invention is not restricted to the illustrative examples and embodiments described above. The embodiments are not intended as limitations on the scope of the invention. Methods, apparatus, compositions, and the like described herein are exemplary and not intended as limitations on the scope of the invention. Changes therein and other uses will occur to those skilled in the art. The scope of the invention is defined by the scope of the appended claims.
Number | Name | Date | Kind |
---|---|---|---|
4331355 | Okuno | May 1982 | A |
4616861 | Kurosaki | Oct 1986 | A |
4820093 | Hirakui et al. | Apr 1989 | A |
5539169 | Sekita | Jul 1996 | A |
6207915 | Kimura | Mar 2001 | B1 |
7017956 | Kogami | Mar 2006 | B2 |
20070024065 | Hisatomi et al. | Feb 2007 | A1 |
Number | Date | Country | |
---|---|---|---|
20130257064 A1 | Oct 2013 | US |