Applicant's own DE 19807654 A1 discloses an electromagnetic spring-loaded brake comprising an annular coil carrier, a coil and a friction lining coupled through an intermediate disc with the armature disc of the electromagnetic spring-loaded brake adapted to engage a rotating element radially from the outside, i.e. at a peripheral surface, or radially from the inside or at one of the end faces of said element so as to retard the latter. Also, it is stated (claim 4) that two such brakes, for example, may be used to engage the rotating disc. Further, it is pointed out in claim 9 that the rotating element 12 may be a cable drum of an elevator system or the rotor of an elevator motor.
It has been known by DE 3 400 675 C2 that the coil carrier for mounting the coil may be shaped to be rectangular, not just circular. Applicant's own WO 0159317 A1 shows in FIG. 5 that in an electromagnetic (solenoid-operated) spring-loaded brake the electromagnetic coil 12a, 12b may be a two-part kidney-shaped component—this because an additional two-part armature disc provides a dual-circuit (segmented) feature, with the available coil space being used in an optimum manner. Further, the possibility exists of introducing a so-called oval coil into the coil carrier.
Starting out from document DE 19807654 A1, it is the object of the present invention to provide for further improvement of a brake engaging an end face of a rotating element.
The desired optimization is obtained by not fixedly coupling the friction lining with the armature disc, which would result in the availability of a single friction face only, but by providing the rotating element with a pair of (right and left) friction linings, resulting in two friction faces, and by coupling the element axially through splines with a splined hub to be axially movable thereon. As a result, the brake's armature disc exerts pressure upon the rotating element, whereby an additional second friction face is provided to generate twice the original braking torque. In designing the coil carrier, two rectangular shapes were selected to accommodate an oval coil each; alternatively, two circular coils may be placed one above the other to save space.
As another possibility, a plurality of circularly shaped spring-loaded brakes were distributed along the periphery so as to exert pressure onto the rotor at its friction linings, resulting in a most diversely variable torque by varying the number of the brakes “active” at any one time.
The operation is shown in
The underlying device is a well-known spring-loaded brake, with magnetic coil 2, which is potted inside coil carrier 1, attracting (when energized) armature disc 4 across an air gap 13 against the pressure exerted by compression spring 3. As a result, rotor 5 and its two friction linings 6 are free to rotate via splined hub 7 (
A release monitor 11 (
In
As a consequence, failure of one brake—e.g. by the armature disc getting stuck—will result in the second brake still providing 50% of the total torque.
Number | Date | Country | Kind |
---|---|---|---|
10 2005 022 898 | May 2005 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP2006/004694 | 5/17/2006 | WO | 00 | 2/20/2009 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2006/136246 | 12/28/2006 | WO | A |
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3605958 | McCarthy | Sep 1971 | A |
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20090166136 | Eberle et al. | Jul 2009 | A1 |
Number | Date | Country |
---|---|---|
3400675 | Jul 1984 | DE |
4221983 | Jan 1994 | DE |
4225158 | Feb 1994 | DE |
19814042 | Jul 1999 | DE |
19807654 | Aug 1999 | DE |
10006255 | Aug 2001 | DE |
0961047 | Dec 1999 | EP |
1715564 | Oct 2006 | EP |
WO 0159317 | Aug 2001 | WO |
Number | Date | Country | |
---|---|---|---|
20090218182 A1 | Sep 2009 | US |