Electromagnetic contactor provided with means for detecting the open or closed position of controlled switches
10734178 ยท 2020-08-04
Assignee
Inventors
Cpc classification
H01H1/0015
ELECTRICITY
International classification
H01H47/00
ELECTRICITY
Abstract
This electromagnetic contactor comprises a set of controlled switches (C1, C2, C3), at least one electromagnetic field generator (L; L1, L2), for example a coil, associated with an adjustable core (P) controlling the state of the controlled switches and a unit (UC) controlling the power supply of the electromagnetic field generator. It comprises means for detecting the position of the adjustable core to detect the state of the controlled switches.
Claims
1. An electromagnetic contactor, comprising a set of controlled switches, at least one electromagnetic field generator associated with an adjustable core controlling the state of the controlled switches, a unit controlling a power supply of the electromagnetic field generator and means for detecting the position of the adjustable core to detect the state of the controlled switches and to determine inductance of the electromagnetic field generator and compare the determined inductance with a threshold value to detect an open or closed state of the contactor, wherein the inductance is determined based on the following formula:
2. The electromagnetic contactor of claim 1, in which the means for detecting a position of the adjustable core comprises means for comparing the value of the inductance of the electromagnetic field generator with inductance values as the threshold values corresponding respectively to an open and closed state of the contactor.
3. The electromagnetic contactor of claim 1, in which the contactor comprises a single electromagnetic field generator.
4. The electromagnetic contactor of claim 1, comprising two electromagnetic field generators acting on a common adjustable core and each driven by a switch, a first electromagnetic field generator ensuring the closure of the contactor, and a second electromagnetic field generator ensuring the maintained closure of the contactor.
5. A method for determining the open or closed state of an electromagnetic contactor of claim 1, in which: the contactor is powered for a predetermined duration with a power supply voltage; the current circulating in the generator is measured; the value of the inductance of the generator is computed; and the computed inductance value is compared with a set of at least one threshold value for detecting the open or closed state of the contactor.
6. The method of claim 5, wherein the inductance value is computed from a measurement of a current circulating in the generator.
7. The method of claim 5, wherein said contactor has a single electromagnetic field generator, a detection current is superimposed on a maintaining current, the current circulating in the generator is measured, the value of the maintaining current is subtracted from the measured current value and the value of the inductance is computed.
8. The electromagnetic contactor of claim 1, wherein the at least one electromagnetic field generator comprises a coil.
Description
DESCRIPTION OF THE DRAWINGS
(1) The foregoing aspects and many of the attendant advantages of this invention will become more readily appreciated as the same become better understood by reference to the following detailed description, when taken in conjunction with the accompanying drawings, wherein:
(2) Other aims, features and advantages of the invention will emerge on reading the following description, given purely as a nonlimiting example and with reference to the attached drawings in which:
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8) Reference is first of all made to
(9) This embodiment corresponds to an arrangement of the contactor having a single electromagnetic field generator associated with an adjustable core (also referred to as a solenoid plunger) P linked mechanically to the three switches C1, C2 and C3 of a power supply line.
(10) As can be seen, the generator here consists of a coil L associated with the adjustable core (also referred to as a solenoid plunger) P.
(11) The contactor comprises a central unit UC consisting of a microcontroller or of another programmable logic element, an input circuit 1 DSI receiving a control signal CMD and an output circuit 2 DSO comprising open collector stages serving to emulate the auxiliary contacts. The output circuit delivers two outputs DSO_OL1 and DSO_OL2, corresponding to the normally open auxiliary contacts, and two outputs DSO_CL1 and DSO_CL2, corresponding to the normally closed auxiliary contacts of the electromagnetic switches according to the prior art, which supply an indication relating to the opening and to the closing of the contactor as well as a signal DSO_VALID representative of the validity of the output signals DSO_OL1, . . . , DSO_CL2.
(12) The contactor also comprises a power supply circuit comprising two power supply inputs 28 VDC and 0 VDC of contactor at 28 volts direct current. This circuit comprises an electromagnetic interference filtering stage 3 produced from two inductances and two capacitors and supplied with direct voltage via a diode D1 and a DC-DC converter 4 here delivering a DC voltage at approximately 5 volts for supplying various constituent elements of the contactor, and in particular of the microcontroller UC of the contactor.
(13) The coil L is supplied from the output of the filtering stage 3 under the control of two controlled switches T1 and T2, made up of the transistors driven by the microcontroller.
(14) The first transistor T1 is driven by a control signal PCOIL_CMD, via a voltage converter 5, whereas the second switch T2 is driven by an output MCOIL_CMD supplied by the microcontroller. The two control signals PCOIL_CMD and MCOIL_CMD are generated in response to the reception of a control signal CMD by the input circuit 1.
(15) As can be seen, the second switch T2 is connected to the ground via a resistor R and the midpoint between the switch T2 and the resistor R is connected to an input MCOIL_CURRENT of the microcontroller to supply a measurement of the current I circulating through the coil L.
(16) The circuit of the electromagnetic contactor is completed by an oscillator 6 ensuring the clocking of the microcontroller.
(17) Furthermore, a freewheeling diode D2 is connected in parallel to the coil L and, in particular, between the mid-point between the second switch T2 and the inductance L, on the one hand, and the mid-point between the first switch T1 and the output of the filtering stage 3, in order to avoid overvoltages that can destroy the transistors on opening. Finally, a Zener diode D3 is connected in parallel to the first switch T1 to improve the discharging upon the opening of the switch, by forming the discharge at a higher voltage. In this embodiment, the control of the closing of the switches C1, C2 and C3 is performed under the control of the output PCOIL_CMD which drives the first switch T1.
(18) The maintaining of the controlled switches C1, C2 and C3 in the closed state is formed controlling the second switch T2 by pulsed width modulation from a measurement of the current I circulating in the coil L.
(19) In the embodiment illustrated in
(20) These various elements are identical to those described previously with reference to
(21) Also to be recognized, the two switches T1 and T2 respectively ensure the control of the closing of the switches C1, C2 and C3 and the maintaining of these switches in the controlled state.
(22) The first switch T1 is controlled by a signal PCOIL_CMD delivered by the microcontroller whereas the second switch T2 is driven by an output HCOIL_CMD of the microcontroller.
(23) As in the embodiment described previously, a freewheeling diode D4 and D5 is connected in parallel to each coil to avoid the appearance of overvoltage upon the opening of the switches. A Zener diode, not represented, can also be provided to facilitate the discharging of the inductances upon the opening of the switches.
(24) In this embodiment, when the power line needs to be closed, in response to a control signal CMD received as input of the input circuit 1, the first and second switches T1 and T2 are closed to provoke the simultaneous powering of the coils L1 and L2 and the consequent displacement of the adjustable core.
(25) The closed state of the switches C1, C2 and C3 is maintained by maintaining the second switch T2 closed and a maintained power supply to the second coil L2. In this embodiment, the switch T1 is open and the power supply of the coil L1 is interrupted.
(26) As in the embodiment described with reference to
(27) As indicated previously, in the embodiment of
(28) The microcontroller in fact incorporates means, notably software, for detecting the position of the adjustable core to detect the state of the controlled switches.
(29) In one embodiment, these detection means comprise means for computing the value of the impedance of the electromagnetic field generator or generators. In the embodiment of
(30) In effect, the inductance of the control coil is different depending on the position of the core and, consequently, of the controlled switches. This value can vary by 30% to 40% depending on the position of the core which actuates the switches.
(31) Thus, the microcontroller is provided with comparison means which ensure the comparison of the value of the inductance of the coil with threshold values for detecting the opening and closing of the switches, in order to detect the open or closed state of the switches.
(32) The value of the inductance of the coil L of the embodiment of
(33)
(34) in which: V designates the power supply voltage of the coil; t designates the coil power supply duration; I designates the current passing through the coil at the end of the duration t; and R designates the resistance of the coil.
(35) Thus, by supplying the coil with a voltage V for a time t, and by measuring the current I passing through the coil at the end of the time t, the value of the coil can be computed and compared with threshold values to detect the open or closed state of the switches.
(36) However, the value of the resistance of the coil varies as the function of the temperature. Thus, the microcontroller incorporates, preferably, stored in memory, a table of resistance values, previously measured as a function of the temperature. The value of the resistance, used for the computation of the value of the inductance, is then extracted from the table, based on a measurement of temperature of the coil.
(37) Referring to
(38) Thus, the microcontroller supplies a first information item, contactor correctly opened by provoking the powering of the coil for a relatively short duration, that is to say less than the duration needed to provoke the effective closing of the contactor, for example for a duration of 250 microseconds and by evaluating the slope of the current as a function of time, which reflects the value of the inductance. The information item corresponding to the correct opening of the contactor is supplied on the OPEN_LOCK output.
(39) With respect to the detection of the closed state, in the embodiment of
(40) The value of the maintaining current is then subtracted from the value of the measured current, which corresponds to the parameter I of the relationship (1), and the value of the inductance is computed from said relationship (1).
(41) In an embodiment of
(42) As is understood, the invention which has just been described makes it possible to determine the position of the adjustable core of a coil controlling the open or closed state of switches from the modification of the inductance. Such a modification is a function of the position of the core or, in other words, that the value of the air gap of the core, and of the current passing through said core.
(43) It can be seen in fact in
(44) It will finally be noted that the invention is not limited to the embodiments described.
(45) In effect, in the exemplary embodiments described with reference to
(46) In other embodiments, the detection of the position of the adjustable core is performed by using a capacitor having two armatures, one secured to the adjustable core and the other fixed, by computing the value of the capacitor and by comparing the computed value with threshold values for detecting the opening and closing of the switches.
(47) According to another embodiment, a secondary inductance is used, magnetically coupled to the core and whose value is computed as a function of the displacement of the core.
(48) It is also possible to use, in a variant, a Hall effect sensor, which directly supplies a measurement of the position of the adjustable core by measuring the magnetic field differences induced by the adjustable core or even an optical sensor detecting a radius masked or not masked by a part secured to the adjustable core.
(49) While illustrative embodiments have been illustrated and described, it will be appreciated that various changes can be made therein without departing from the spirit and scope of the invention.