This invention relates to damped closure mechanisms for use in particular, though not exclusively, on oven doors.
The invention provides a damped closure mechanism for controlling movement of a first member relative to a second member, the mechanism comprising a housing having first spring biassing means engagable with the first member in use for urging it in a first direction, damping means for providing damped resistance to said movement of the first member in the first direction, and second spring biassing means engagable with the first member for urging it in the first direction, the second spring biassing means being arranged to act on the first member in parallel with the first spring biassing means.
By way of example, embodiments of the invention will now be described with reference to the accompanying drawings, in which:
Illustrated in
The oven door 12 here is one that is mounted via a vertically extending hinge (not shown) on one side of the cooker 10. The door 12 thus swings in a horizontal plane, with the mechanism 13 serving to control its closure on the opposite side of the cooker, spaced remotely from the hinge.
The mechanism 13 comprises an elongate housing 14 in which the various component parts are contained, and which is closed off by a cover 15 (with the cover shown here in exploded view). The mechanism 13 is mounted by the front edge of its housing 14 to a flange 16 at the front of the oven 11 by means of suitable fasteners. The mechanism 13 is arranged to extend back from the flange 16 and lie in the void between the outer sidewall of the oven 11 and the cooker side panel.
The mechanism 13 is designed to be operatively engagable by a trigger 17 mounted on the inside surface of the oven door 12, via a hole 18 in the flange 16. The mechanism 13 is designed to transmit a damped pulling force to the oven door 12 to assist its closing movement. It is also designed to exert a pulling force on the door 12 in its closed position in order to hold it shut and prevent heat escaping from the oven 11 in use.
The component parts of the mechanism 13 are seen more clearly in
One end of a tension spring 24 is attached to the actuator 19 at its lower corner. The other end of this spring 24 is attached to the housing 14. The spring 24 exerts a continuous force on the actuator 19 in the direction of arrow A.
A linear piston and cylinder type damping device 25 is mounted by its cylinder to the housing 14. The damping device 25 is aligned with the direction of sliding travel of the actuator 19 (arrow A), with the end of its piston rod 26 being attached to the actuator by a pivotable connection. The damping device 25 imparts a damped resistive force to the actuator 19 in a direction opposite to arrow A.
The mechanism 13 is seen in its pre-loaded condition in
As the oven door 12 closes, the trigger 17 will move in the direction of arrow A and come into contact with the actuator 19. The initial effect of this will be to cause the actuator 19 to pivot as its first pin 20 rides up the angled section 22a of its guide track 22. This unlatches the actuator 19 and frees it for sliding movement in the direction of arrow A under the influence of the spring 24. As the actuator 19 pivots, a hook 28 on it engages with a hook 27 on the trigger 17, so that the trigger, and hence also the oven door 12, will be carried along with the actuator as it is drawn by the force of the spring 24.
The actuator 19 continues in its sliding movement in the direction of arrow A until its second pin 21 reaches the end of its guide track 23. This is the position seen in
It will be seen that the mechanism 13 incorporates a second tension spring 29. This spring 29 is selectively engagable with the actuator 19 via a tumbler 30. The tumbler 30 is designed to act as a camming device and toggles between two positions: one in which it is operatively engaged with the actuator 19 and the other in which it is disconnected from it.
The tumbler 30 is rotatably mounted on an axle 31 fitted to the housing 14. The spring 29 is connected at one end to the tumbler 30 via a pin 32. At its other end, the spring 29 is attached to the housing 14. The housing 14 incorporates a stop 33 for the tumbler 30 to abut against. The arrangement is such that the spring 29 will exert a torque on the tumbler 30 in a sense to hold it against the stop 33 (clockwise as viewed in
On one side of its pivot point, the tumbler 30 has a finger 34 which extends into the path of movement of the actuator 19. The actuator 19 is designed to make contact with the finger 34 in the course of its sliding movement in the direction of arrow A and cause the tumbler 30 to rotate (anti-clockwise as viewed in
When the spring 29 is exerting a torque on the tumbler 30 in an anti-clockwise sense (as viewed in
The mechanism 13 is intended to return automatically to its pre-loaded condition upon opening of the oven door 12. As the door 12 is opened, the trigger 17 will move in a direction opposite to arrow A, pulling the actuator 19 along with it. This sliding movement of the actuator 19 takes place initially against the biassing action of both the return spring 24 and the door spring 29, although the damping device 25 offers little or no damping resistance. Movement of the actuator 19 in a direction opposite to arrow A will cause the tumbler 30 to rotate (clockwise as viewed in
The sliding movement of the actuator 19 will continue in a direction opposite to arrow A until its first pin 20 enters into the angled section 22a of its guide track 22. This causes the actuator 19 to pivot (anti-clockwise as viewed in
It can sometimes happen with mechanisms of this nature that they get out of sequence and need re-setting. The mechanism 13 here is designed to be capable of being re-set automatically. The re-setting procedure involves simply closing the oven door 12.
Number | Date | Country | Kind |
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1710092.6 | Jun 2017 | GB | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2018/066660 | 6/21/2018 | WO | 00 |