METHOD FOR CLOSING A CONTACTOR, AND CONTACTOR HAVING TEMPERATURE COMPENSATION
20220157504 ยท 2022-05-19
Inventors
Cpc classification
H01H2047/025
ELECTRICITY
International classification
H01F7/18
ELECTRICITY
Abstract
Disclosed is a method for closing the contacts of an electrical switching device during a switch-on process, wherein for a fixed first time period, the first time period and the first voltage being selected in such a way that the armature is not set into motion during the first time period, or the first voltage is applied to the coil until a certain current value is reached, the first time period being the time period until said certain current value is reached, and the first voltage being selected in such a way that the armature is not set into motion during the first time period, wherein a suitable second voltage is defined, the second voltage being greater than the first voltage and being applied to the coil during a second time period in order to move the armature from the open position into the closed position.
Claims
1.-11. (canceled)
12. A method for closing the contacts (5, 6) of an electrical switching device (1) during a switch-on process, wherein the electrical switching device (1) has an electromechanical drive with a coil (2) and an armature (3) which can be moved between an open and a closed position, and wherein the coil (2) is energized in order to close the contacts (5, 6) of the electrical switching device (1), wherein first a first voltage U.sub.1 is applied to the coil (2) during a first time period T.sub.1, and a measurement value is determined, wherein a suitable second voltage U.sub.2 is defined in accordance with the measurement value which is greater than the first voltage U.sub.1 and is applied to the coil (2) during a second time period T.sub.2 in order to move the armature (3) from the open position into the closed position, characterized in that the first voltage U.sub.1 is constant, and wherein either the first time period T.sub.1 is fixed, and the measurement value is a current measurement value I.sub.Mess determined at the end of the first time period T.sub.1 by measuring the current flowing in the coil (2), the first time period T.sub.1 and the first voltage U.sub.1 being selected in such a way that the armature (3) is not set into motion during the first time period T.sub.1, or the first voltage U.sub.1 is applied to the coil (2) until a certain current value I.sub.Soll of the current flowing in the coil (2) is reached, the first time period T.sub.1 being the time period until said certain current value I.sub.Soll is reached, the first time period T.sub.1 being the measurement value, and the first voltage U.sub.1 being selected in such a way that the armature (3) is not set into motion during the first time period T.sub.1, wherein the first time period T.sub.1 is selected in such a way that the current increases during the total first time period T.sub.1 and no stationary final current appears in the coil during the first time period T.sub.1.
13. A method according to claim 12, characterized in that the first time period T.sub.1 is fixed, and the measurement value is a current measurement value I.sub.Mess determined at the end of the first time period T.sub.1 by measuring the current flowing in the coil (2), wherein the first time period T.sub.1 and the first voltage U.sub.1 are selected in such a way that the armature (3) is not set into motion during the first time period T.sub.1.
14. A method according to claim 12, characterized in that the second time period T.sub.2 directly follows the first time period T.sub.1.
15. A method according to claim 12, characterized in that the second voltage U.sub.2 is constant during the second time period T.sub.2.
16. A method according to claim 12, characterized in that the second voltage U.sub.2 is determined in accordance with the measurement value such that the armature (3) always reaches the same speed during the closing of the contacts (5, 6) independent of the temperature of the coil (2).
17. A method according to claim 12, characterized in that the second voltage U.sub.2 is determined in accordance with the measurement value such that the armature (3) is moved into the closed position always within the same time period during the closing of the contacts (5, 6) independent of the temperature of the coil (2).
18. A method according to claim 12, characterized in that the definition of the second voltage U.sub.2 by means of the measurement value is effected by reading out a default value from a table stored in a memory, or by applying a calculation specification for calculating the default value by means of the measurement value.
19. A method according to claim 12, characterized in that the second time period T.sub.2 is fixed.
20. A method according to claim 12, characterized in that the second time period T.sub.2 ends when a suited sensory mechanism or evaluation recognizes that the armature is in the closed position.
21. An electrical switching device (1) with contacts (5, 6) and an electromagnetic drive for closing the contacts (5, 6), wherein the electromechanical drive comprises a coil (2) and an armature (3) movable between an open position and a closed position, wherein the electrical switching device furthermore comprises a current measuring means (12) for measuring the current flowing in the coil (2), and wherein the electrical switching device (1) comprises a control unit, wherein the control unit is designed and configured to carry out the method according to claim 12.
22. An electrical switching device (1) according to claim 21, wherein in that the control unit comprises a microcontroller (11) in which a table with possible measurement values and corresponding default values, or a calculation specification for calculating the default values by means of the measurement values, is stored.
Description
[0037] The invention will be illustrated more in detail below with reference to drawings.
[0038] In the drawing:
[0039]
[0040]
[0041]
[0042] In the following illustrations, equal parts are designated by equal reference numerals. If a drawing contains reference numerals which are not explicitly discussed in the pertaining description of the figures, reference is made to previous or following descriptions of the figures.
[0043]
[0044]
[0045] The switching-on of the supply voltage is effected via the supply voltage switch 14.
[0046]
[0047] In accordance with the measured current value I.sub.Mess depending on the temperature of the coil, a suited second voltage U.sub.2 is defined thereupon which is larger than the first voltage U.sub.1 and which is applied to the coil 2 during a second time period T.sub.2 directly following the first time period T.sub.1 to move the armature 3 from the open position into the closed position and thereby close the contacts. The second time period T.sub.2 thus represents the second phase of the switch-on process. The second voltage U.sub.2 corresponding to a certain current measurement value I.sub.Mess is read out, for example, from a table stored in the microcontroller.
[0048] Upon completion of the switch-on process, the control unit of the contactor passes over into a holding mode. The holding mode is maintained during the third time period T.sub.3.
LIST OF REFERENCE NUMERALS
[0049] 1 electrical switching device [0050] 2 coil [0051] 3 armature [0052] 4 switch rod [0053] 5 fixed contact [0054] 6 contact bridge [0055] 7 contact pressure spring [0056] 8 yoke [0057] 9 contact support [0058] 10 housing [0059] 11 microcontroller [0060] 12 current measuring means [0061] 13 readjusting spring [0062] 14 supply voltage switch [0063] 15 voltage measuring means [0064] 16 power supply [0065] 17 circuit breaker [0066] 18 freewheeling diode [0067] t time [0068] T.sub.1 first time period [0069] T.sub.2 second time period [0070] T.sub.3 third time period [0071] U.sub.Vers supply voltage [0072] U.sub.1 first voltage [0073] U.sub.2 second voltage [0074] I current [0075] I.sub.Mess current measurement value [0076] I.sub.Soll predetermined current value [0077] R coil resistance