The invention relates to a method for operating a building closure, preferably having the shape of an overhead sectional door or of a garage door including a spring-loaded counterweight device and an electrical drive device, which is charged by a control apparatus.
Such a door is revealed for example in the document DE 10 2006 1011 305 B4 as well as in U.S. Pat. No. 5,016,391.
Generally, building closure of the aforementioned species require a counterweight force which allows for moving the door leaf, either manually or by means of an electrical drive device, more easily between the open position and the closed position without any problems. Overhead door systems very often depend on one or more torsion springs to provide said counterweight force.
As the forces, developed by the torsion spring, vary depending on the execution of the door and as a result of tolerances, it is difficult to precisely maintain the open position of a door. A maximum open position of the door is desired in order to have the entire passage opening available. However, in this open position, the torsion spring counteracts the strongest the force developed by the drive unit, which may result in failure to achieve a maximum opening width.
Another arising problem is that, when in the closed position, such a building closure should absolutely not be manually pushed open without authorization. Currently utilized motors usually have a gear, which includes a self-locking device. However, this self-locking device can be overcome when applying sufficient force. Separate push-open security devices and additional locks are often too expensive.
Therefore, it is the object of the invention, on the one hand to find a solution for the shortfalls of the state-of-the-art in the open position, respectively to likewise provide a solution when the door is in the closed position. In this case, expensive solutions, such as equipping the motor with an auxiliary winding and energizing the latter in the terminal positions should be foregone. Furthermore, mechanical interlocking units are not desired either, because they would increase the cost for such a building closure.
In a first preferred embodiment, a method for operating a building closure is proposed, preferably including at least one program, which, depending on the type and dimension of the door, is variable or automatically adaptable to operate a building closure in the shape of an overhead sectional door or of a garage door or the like including a spring-loaded counterweight device and an electrical drive device, which is charged by a control apparatus, in that the measured parameters of the building closure and of the installation situation thereof are stored in the control apparatus after a completed learning run, and then serve as the reference for the following operation of such a building closure. Based on the provided reference information, and in conjunction with a position detection unit, it is possible to always determine the exact position of the door leaf. In this case, the position detection unit may be directly connected to the electrical motor, respectively to a gear which is connected thereto, i.e. a direct or indirect movement of the building closure is detected. Such a position detection device is preferably configured as an absolute position detection device. At the same time, depending on the position of the building closure, at least one program in the control apparatus performs monitoring and changing the motor current along the entire travel path and in the terminal positions of the building closure.
When the building closure reaches for example the open position, the gear motor needs to compensate for the largest force resulting from the counteracting torsion spring and the counterweight. So that the building closure does not accidentally leave the open position on account of the counteracting forces, energizing the drive device is not suspended by at least one program or by program steps, instead residual energizing of the control apparatus is maintained. This amount of residual current generates a counteracting force, such that the building closure does not move into the non-desired opposite direction, and this in both the open position and the closed position. So to speak, in this position, the motor forces need to be brought to equilibrium with the prevailing counteracting forces, for example by means of the counterweight or the like. This represents a permanent process, which is likewise permanently monitored and maintained by the control apparatus. It is thereby possible to always and reliably maintain the building closure in the open position, also in spite of aging and modifications.
In another preferred embodiment, it is desired the above described building closure be kept in the closed position while withstanding violent external forces. This is achieved in that, after having closed the door, a low residual current is continued to be applied to the motor. The residual energizing is so important that manually opening the building closure by force is not possible, because the motor permanently pushes the building closure into the closed position. In this case again, on account of permanent monitoring and thus likewise permanent corrective controlling of the energizing by the control apparatus, for example in the event of opening the building closure by force, the control apparatus will proceed to modify, respectively to maintain the residual energizing of the drive device such that in each case, in its closed position, the building closure device is kept closed. Therefore the building closure is thus reliably prevented from being forcibly opened.
In another preferred embodiment of the above described building closure, both the open position and the closed position may be charged in the same way by residually energizing the drive device, such that the door is reliably maintained in both the open position and the closed position.
For the above described methods, the control apparatus is configured to include a microprocessor and appropriate memories for the different programs in that a programmed automatic adaptation to the necessary power requirement of the drive device in the terminal positions is automatically adapted or controlled, likewise if the parameters of the building closure are modified.
Therefore, each time the building closure stands still, the control apparatus maintains a permanent residual energizing of the drive device.
Now, if the motor receives a start instruction from a remote control or the like, the implemented programs deliver a soft-start-current with increasing intensity to the motor. This makes the motor start softly and therefore likewise the building closure starts softly to move. When reaching a maximum energizing of the motor, this soft-start-current changes to a traction current, such that the door moves at a greater speed than at the soft-start. Prior to reaching the open position, the program control issues a soft-stop instruction, which has the effect to reduce the motor current along the traveling path. In this case, the motor current is not abruptly reduced, instead it is slowly scaled down following a curve. This means, the motor travels slowly to a terminal position and thus into the open position or the closed position. Reaching the terminal position is communicated to the control apparatus by the position detection device and the required residual energizing of the drive motor is effected by a program step or individual programs. The residual energizing of the motor in the open position is maintained until the subsequent closing procedure of the building closure is performed. As the intensity of the residual energizing is very low, when compared to the traction current, heating of the drive device when permanently operated is excluded.
During a closing procedure, the above described different energizing of the drive motor along the traveling path is likewise performed in analogous manner, and likewise in the closed position, a residual current is applied to the drive motor.
In order to realize such an electrical drive device for operating a building closure of the aforementioned type according to the above described methods, in this case a pulse-width modulation may be used for example. By means of different pulse/spacing intervals of the current directed to the electrical motor of the drive device, such a pulse-width modulation determines the number of revolutions of the electrical motor. In this case, current is supplied to the electrical motor during a pulse, whereas the flow of the current to the electrical motor is inhibited during the spacing preset by the pulse-width modulator.
Another preferred mode to realize the above described methods for different energizing by means of a program, consists for example in utilizing a phase angle control for the drive motor.
In the following, the invention will be described in more detail based on the Figures, reference being made to the embodiment examples; in which:
In
Should the building closure be manipulated in the closed position, an opening force is produced, which acts against the residual current 7. This manipulation to attempt unauthorized opening of the building closure inevitably results in a rotational movement of the motor and thus to a detection at the position measuring device. This entails at the same time an increase of the motor current, namely in the direction of the closed position, because the utilized programs have not given any instruction to have the motor start moving in the open direction.
No mechanical limit switches are provided in such a system.
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10 2010 052 623 | Nov 2010 | DE | national |
10 2011 107 867 | Jul 2011 | DE | national |
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