SELF-LOCKING LOCK DEVICE WITH MULTIPOINT LOCK DRIVE
20210363799 · 2021-11-25
Assignee
Inventors
Cpc classification
E05C9/047
FIXED CONSTRUCTIONS
E05B63/20
FIXED CONSTRUCTIONS
International classification
Abstract
A self-locking lock device has a main latch element which automatically moves into a locking position when the activation is on the closing plate side. The main latch element comprises a drive element for a multipoint lock, which drives at least two additional latch elements of at least one additional latch device at a spatial distance from the main latch element. The drive element is connected to a drive device for at least one additional latch element. The drive device comprises a first drive part and a second drive part. The drive element interacts with the first drive part for a first additional latch element and with the second drive part for a second additional latch element. A movement of the first drive part and of the second drive part is synchronized with a movement of the main latch element.
Claims
1.-14. (canceled)
15. A self-locking lock device (1), comprising: a main latch element (5) which automatically moves into a closing position upon activation on a closing plate side, wherein the main latch element (5) comprises a drive element (17) for a multiport lock drive (2) which drives at least two additional latch elements (11.1; 11.2) of at least one additional latch device (11) at a spatial distance from the main latch element (5), wherein the drive element (17) interacts with a drive device (17.1, 17.2) for at least one additional latch element (11.1; 11.2), wherein the drive device comprises a first drive part (17.1) and a second drive part (17.2), wherein the drive element (17) interacts with the first drive part (17.1) for a first additional latch element (11.1) and with the second drive part (17.2) for a second additional latch element (11.2), and wherein a movement of the first drive part (17.1) and the second drive part (17.2) is synchronized with a movement of the main latch element (5).
16. The self-locking lock device (1) according to claim 15, wherein the first drive part (17.1) comprises a first locking bar (15.1) and the second drive part (17.2) comprises a second locking bar (15.2), and wherein as the main latch element (5) moves in a latching direction (RR) the first locking bar (15.1) moves in a first direction (ER) different than the latching direction (RR), and the second locking bar (15.2) moves in a second direction (ZR) different from the latching direction (RR).
17. The self-locking lock device (1) according to claim 16, wherein the first locking bar (15.1) comprises a first guide device (19.1) and the second locking bar (15.2) comprises a second guide device (19.2), and wherein the drive element (17) engages into the first guide device (19.1) and into the second guide device (19.2).
18. The self-locking lock device (1) according to claim 17, wherein the first locking bar (15.1) has a first longitudinal axis (L1) and the first guide device (19.1) is aligned inclined to the first longitudinal axis (L1).
19. The self-locking lock device (1) according to claim 17, wherein the second locking bar (15.2) has a second longitudinal axis (L2) and the second guide device (19.2) is aligned inclined to the second longitudinal axis (L2).
20. The self-locking lock device (1) according to claim 17, wherein the first guide device (19.1) has a first slope and the second guide device (19.2) has a second slope, and wherein the first slope is opposite the second slope.
21. The self-locking lock device (1) according to claim 17, wherein the first guide device (19.1) and second guide device (19.2) are each designed as a longitudinal slit with two parallel longitudinal edges (19.3, 19.4).
22. The self-locking lock device (1) according to claim 21, wherein the drive element (17) is guided on both parallel longitudinal edges (19.3, 19.4) as it moves in the longitudinal slit.
23. The self-locking lock device (1) according to claim 16, wherein the drive element (17) comprises a roller which has a rotational axis (17.3) perpendicular to the main plane (H).
24. The self-locking lock device (1) according to claim 15, wherein the multipoint lock drive (2) is connected with the at least one additional latch element (11.1) via a first actuator strap (13.1).
25. The self-locking lock device (1) according to claim 24, wherein the multipoint lock drive (2) is connected with the at least one additional latch element (11.2) via a second actuator strap (13.2).
26. A system, comprising: the self-locking lock device (1) according to claim 15; and the at least one additional latch element, wherein the at least one additional latch element (11.1; 11.2) comprises an additional latch drive element (14) which interacts with an additional latch guide device (16.1) of an additional latch drive part (25) and synchronizes a movement of the additional latch drive part (25) with a movement of the additional latch drive element (14).
27. The system according to claim 26, wherein the additional latch guide device (16.1; 16.2) forms a slope for the additional latch drive element (14) when the additional latch drive part (25) moves.
28. The system according to claim 26, wherein the additional latch guide device (16.1; 16.2) is designed as a longitudinal slit with two parallel longitudinal edges, and wherein the additional latch drive element (21) is guided on both parallel longitudinal edges as it moves in the longitudinal slit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] An embodiment of the present invention will be described in more detail below based on the drawings.
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION
[0032] Shown on
[0033] The lock device 1 has a lock cylinder 9, which can be used to manually trigger the lock device, for example to move the main latch element 5 out of the closed position into the open position, or vice versa out of the open position into the closed position. In an alternative not shown, the lock device 1 can also be provided with an electromagnetic door opener, which automatically triggers a closing process and/or an opening process, without the lock cylinder 9 having to be activated.
[0034] In an activation step, the main latch element 5 biased by a first compression spring 12 is moved through its opening 7 into the closed position and blocked therein.
[0035] In many situations, it is desired that a door, a window or some other component that locks a wall opening be locked not with a single main latch element 5, but instead that use also be made of at least one other additional lock device 11 with at least one additional latch element 11.1, 11.2. The locking mechanisms for additional latch elements 11.1 and 11.2 can be designed however desired.
[0036] The first locking bar 15.1 has a first longitudinal axis L1 and a main plane H that coincides with the leaf level on
[0037] The respective actuator straps can also each be connected with more than a single additional latch element 11.1, 11.2. The first locking bar 15.1 and the second locking bar 15.2 can be moved toward the top and toward the bottom on
[0038] The main latch element 5 moves behind the main plane transverse to the first and second locking bar 15.1 and 15.2. In the built-in state, the main latch element 5 performs a roughly horizontal latching movement in a latching direction RR, which on the figures means a movement toward the left during a closing process and a movement toward the right during an opening process. A drive element 17 in the form of an attachment or pin is formed on the side of the main latch element 5 facing the observer.
[0039] The lock device 1 comprises a drive device for a respective additional latch lock device 11. In the present embodiment, the drive device comprises a first drive part 17.1 with the first locking bar 15.1 and a second drive part 17.2 with the second locking bar 17.2.
[0040]
[0041] The first drive part 17.1 comprises the first locking bar 15.1 with the main plane H, and the second drive part 17.2 comprises the second locking bar 15.2 with the main plane H. The two drive parts on
[0042] The drive element 17 connected with the latch 5 can also be designed as a roller with a rotational axis perpendicular to the main plane H. The drive element 17 engages into a first guide device 19.1 of the first locking bar 15.1 and into a second guide device 19.2 of the second locking bar 15.2. In the present embodiment, the first and the second guide device 19.1 and 19.2 are each a recess and in particular each a longitudinal slit, which runs in the main plane H inclined to the first and second longitudinal axis L1, L2. The angle between the first guide device 19.1 and the first longitudinal axis L1 and the second guide device 19.2 and the second longitudinal axis L2 need not be fixed but lies within a range of approx. 30° to approx. 50°. The angles for the first guide device 19.1 in relation to the first longitudinal axis L1 can differ from the angle for the second guide device 19.2 in relation to the second longitudinal axis L2. The angle is identical in the embodiment shown on the figures.
[0043] The alignment of the first guide device 19.1 and second guide device 19.2 in relation to their longitudinal axes L1 and L2 is mirror inverted, however. In the embodiment shown, the slope of the first guide device 19.1 for the drive element 17 is positive during a closing motion (main latch element 5 to the left) and negative during an opening motion (main latch element 5 to the right). By contrast, the slope of the second guide device 19.2 for the drive element 17 is negative during a closing motion (main latch element 5 to the left) and positive during an opening motion (main latch element 5 to the right).
[0044] The first guide device 19.1 designed as a longitudinal slit has two parallel first longitudinal edges, and the second guide device 19.2 designed as a longitudinal slit has two parallel second longitudinal edges. The drive element 17 is guided on the respective first longitudinal edges and second longitudinal edges of the longitudinal slits 19.1 and 19.2. In other embodiments, the first guide device 19.1 and second guide device 19.2 can also be configured otherwise, or even entirely differently. It is also possible that the first and second guide device 19.1 and 19.2 be unequally designed and assume various angles in relation to their longitudinal axes.
[0045] In the embodiment shown, the first guide device 19.1 for the drive element 17 produces a positive slope on a path out of the depicted closed position into an open position (direction of arrow) (the drive element is retracted, moved downward), which the drive element 17 overcomes on this path, and the second drive device 19.2 for the drive element 17 produces a negative slope on a path out of the depicted closed position into an open position (direction of arrow) (the drive element is retracted, moved upward), which the drive element 17 overcomes on this path. On the path from the closed position into the open position, a relative movement takes place between the drive element 17 and the respective first guide device 19.1 and second guide device 19.2 due to the prescribed guiding paths. The positive and negative slope of the first and second guide device 19.1, 19.2 is overcome based on the horizontal movement (latch direction RR) of the main latch element 5, which forces the respective first locking bar 15.1 to escape downwardly in a vertical direction (direction of arrow), and forces the second locking bar 15.2 to escape upwardly in a vertical direction (direction of arrow). The escaping maneuver is enabled by the guide device 19.1 or 19.2.
[0046]
[0047]
[0048]
[0049] One free end of the additional latch drive part 25 once again has the actuator strap 13.1 for mechanical connection with the first free end 15.3 of the drive part 15.1. The first additional latch guide device 16.1 is also a longitudinal slit, which is aligned according to the first guide device 19.1. In the present embodiment, the angle relative to a vertical is also identical to the corresponding angle of the first guide device 19.1. However, this need not be the case in other embodiments. The angle can be adjusted to the path of the additional latch lock element 11.1. In order for everything to function, the additional latch drive element 14 engages at the top into the first additional latch guide device 16.1, and at the bottom into a horizontal second additional latch guide device 16.2, which is formed in the housing floor.
[0050] In this way, the additional latch part 25 moves downwardly, connected to 15.3 and driven by means of a connecting element with drive part 15.1 into the open position shown on
[0051] During a horizontal opening motion, the additional latch drive part 25 must escape downwardly into the open position shown on
[0052] In other embodiments, the closing motion or opening motion need not necessarily take place horizontally. The respective lock elements can have other (e.g., greater or less than 90° to the vertical) directions of movement, even ones that differ from each other. However, the principle always remains the same.
REFERENCE LIST
[0053] 1 Lock device [0054] 2 Multipoint lock drive [0055] 3 Cuff rail [0056] 5 Main latch element [0057] 7 Opening [0058] 9 Lock cylinder [0059] 11 Additional latch lock device [0060] 11.1 First additional lock element [0061] 11.2 Second additional lock element [0062] 12 Compression spring [0063] 13.1 Actuator strap [0064] 13.2 Actuator strap [0065] 14 Additional latch drive element [0066] 15.1 First locking bar [0067] 15.2 Second locking bar [0068] 15.3 First free end [0069] 15.4 Second free end [0070] 16.1 First additional latch guide device [0071] 16.2 Second additional latch guide device [0072] 17 Drive element/attachment [0073] 17.1 First drive part [0074] 17.2 Second drive part [0075] 17.3 Rotational axis, roller [0076] 19.1 First guide device [0077] 19.2 Second guide device [0078] 25 Additional latch drive part [0079] L1 First longitudinal axis [0080] L2 Second longitudinal axis [0081] H Main plane [0082] RR Latch direction [0083] ER First direction [0084] ZR Second direction