Current source contactor drive with economizers
11488798 ยท 2022-11-01
Assignee
Inventors
- Thomas P. Joyce (Rockford, IL, US)
- Jordan K. Vanevenhoven (Rockford, IL, US)
- Natalie Filipski (Saint Charles, IL, US)
Cpc classification
H01H2047/008
ELECTRICITY
H01H2009/544
ELECTRICITY
International classification
H01H9/54
ELECTRICITY
Abstract
A system includes a contactor operatively connected to a coil for actuating the contactor to open and close a circuit. A pass element includes a source, a drain, and a gate, wherein the drain is electrically connected to the coil, and wherein the coil is in series between the pass element and ground. A voltage source is connected to the source of the pass element to pass current into the coil when the pass element is in a pass state. A current source control circuit with economizer is operatively connected to the gate of the pass element. A delay circuit is operatively connected to the current source control circuit with economizer and to a command line to command a lower current for holding the contactor closed after a delay has expired for the contactor to transition.
Claims
1. A system comprising: a contactor including a contact operatively connected to a coil for actuating the contactor to open and close a circuit; a pass element including a source, a drain, and a gate, wherein the drain is electrically connected to the coil, wherein the coil is in series between the pass element and ground; a voltage source connected to the source of the pass element to pass current into the coil when the pass element is in a pass state; a current source control circuit with economizer operatively connected to the gate of the pass element, wherein the current source control circuit with economizer is configured to control the gate of the pass element to provide a first current to the coil to close the contactor, and to provide a second current lower than the first current to the coil after the contactor is closed to hold the contactor closed; a close command line operatively connected to the current source control circuit with economizer to signal the current source control circuit with economizer to close or open the contactor; and a delay circuit operatively connected to the current source control circuit with economizer and to the command line to command a lower current for holding the contactor closed after a delay has expired for the contactor to transition.
2. The system as recited in claim 1, wherein the close command line connects to a second line running from the voltage source to ground, wherein the second line includes in order running from the voltage source to ground, a Zener diode, a resistor, and a bipolar junction transistor (BJT), wherein the Zener diode has a Zener voltage configured to inhibit current flowing to the BJT below the Zener Voltage, wherein the close command line connects to a base of the BJT.
3. The system as recited in claim 1, wherein the delay circuit is connected to the current source control circuit with economizer through a control circuit connection that includes: a main line running from the voltage source to ground, wherein the main line includes a Zener diode connected in series with a resistor and a bipolar junction transistor (BJT), wherein the Zener diode is connected between the voltage source and the resistor and the resistor is connected between the Zener diode an the BJT, wherein the delay circuit is electrically connected to a base of the BJT, and wherein the Zener diode has a Zener voltage below which the Zener diode inhibits current flowing from the voltage source to the BJT; and a secondary pass element having a gate connected to a node between the Zener diode and the resistor and a source connected to the voltage source.
4. The system as recited in claim 3, wherein the current source control circuit includes a linear regulator based current source.
5. The system as recited in claim 4, wherein the linear regulator based current source includes an operational amplifier.
6. The system as recited in claim 5, wherein the operational amplifier includes a non-inverting input connected at a voltage divider node between a first resistor and a second resistor, wherein the first and second resistors connect in series between the voltage source and floating ground (operational amplifier negative rail), wherein the first resistor is connected between the voltage source and the voltage divider node, and wherein a third resistor is connected between the drain of the secondary pass element and the non-inverting input of the operational amplifier, and wherein the third resistor is connected in parallel with the first resistor when the secondary pass element is on.
7. The system as recited in claim 5, wherein the operational amplifier includes a non-inverting input connected at a voltage divider node between a first resistor and a second resistor, wherein the first and second resistors connect in series between the voltage source and floating ground (operational amplifier negative rail), wherein the first resistor is connected between the voltage source and the voltage divider node, and wherein the secondary pass element is connected in series between the voltage source and the first resistor.
8. The system as recited in claim 3, wherein the current source control circuit with economizer includes a bipolar junction transistor (BJT) based current source.
9. The system as recited in claim 8, wherein the delay circuit is connected to the close command line through an inverter gate.
10. The system as recited in claim 8, wherein the BJT based current source includes a BJT connected between the voltage source and the gate of the pass element, wherein a base of the BJT connects to a voltage divider node between a first resistor and a second resistor connected in series with one another between the voltage source and the gate of the pass element, wherein a drain of the secondary pass element connects to the voltage divider node through a third resistor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) So that those skilled in the art to which the subject disclosure appertains will readily understand how to make and use the devices and methods of the subject disclosure without undue experimentation, preferred embodiments thereof will be described in detail herein below with reference to certain figures, wherein:
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(5) Reference will now be made to the drawings wherein like reference numerals identify similar structural features or aspects of the subject disclosure. For purposes of explanation and illustration, and not limitation, a partial view of an embodiment of a system in accordance with the disclosure is shown in
(6) The system 100 includes a contactor 102 that includes a contact 104 operatively connected to a coil 106 for actuating the contactor 102 to open and close a circuit 108. A pass element 110 includes a source 112, a drain 114, and a gate 116. The drain 114 is electrically connected to the coil 106, and wherein the coil 106 is in series between the pass element 110 and ground 118. A voltage source 120 is connected to the source 112 (through the resistor Rsns) to pass current into the coil 106 when the pass element 110 is in a pass state. A current source control circuit 122 is operatively connected to the gate 116 of the pass element 110. The current source control circuit 122 is configured to control the gate 116 of the pass element to provide a first current to the coil 106 to close the contactor 102 and to provide a second current lower than the first current to the coil 106 after the contactor 102 is closed to hold the contactor 102 closed. A close command line 124 is operatively connected (through resistors 126, 128 and bipolar junction transistor (BJT) 130 arranged as shown in
(7) The delay circuit 132 is connected to the current source control circuit 122 through an economizer 134 that includes a main line 136 running from the voltage source 120 to ground 118. The main line 136 includes a Zener diode 138 connected in series with a resistor 142 and a bipolar junction transistor (BJT) 140 with the Zener diode 138 connected between the voltage source 120 and the resistor 142, as shown in
(8) The current source control circuit 122 includes a linear regulator based current source. The linear regulator based current source includes an operational amplifier 156. The operational amplifier 156 includes a non-inverting input 158 connected at a voltage divider node 160 between a first resistor R1A and a second resistor R2. The first and second resistors R1A, R2 connect in series between the voltage source 120 and a floating ground 119 (which is at a voltage of the voltage source 120 minus the Zener voltage of the Zener diode 121), with the first resistor R1A between the voltage source 120 and the voltage divider node 160. When transistor 130 switches on, it provides a path to reverse-bias the Zener diode 121 through resistor 126, and the resistor 126 drops the rest of the voltage. A third resistor R1B is connected between the drain 162 of the secondary pass element 148 and the non-inverting input 158 of the operational amplifier 156. The third resistor R1B is connected in parallel with the first resistor R1A when the secondary pass element 148 is closed, but R1B is disconnected from the circuit when the secondary pass element 148 is open.
(9) The operational amplifier includes an inverting input 164 connected to a node 165 between the current sense resistor Rsns and the source 112 of the pass element 110. The operational amplifier also has a positive power supply 166 connected to the power supply 120, a negative power supply 168 connected to the floating ground 119, and a voltage output connected to the gate 116 of the pass element as shown in
(10) With reference now to
(11) In the configuration of
(12) In another configuration shown in
(13) A method includes signaling a current source control circuit (e.g. current source control circuit 122) to close a contactor (e.g. contactor 102). The method includes signaling a delay circuit (e.g. delay circuit 132) to start a countdown, supplying a first current to the contactor while the contactor is transitioning from open to closed in a pull-in mode of the contactor, and supplying a second current to the contactor after the contactor is closed in a hold mode of the contactor. The second current is lower than the first current, and supplying the second current is in response to the delay circuit completing the count down.
(14) Supplying the second current can include reversing current through a Zener diode, e,g, Zener diode 138, in order to provide a fixed gate-source voltage to turn on pass element 154. When the pass element turns on, it manipulates the resistor network (e.g. R1, R1A, RIB, and/or R2 of
(15) The methods and systems of the present disclosure, as described above and shown in the drawings, provide for contactor control with improved economizer operations using a current source rather than an on/off switch to guarantee coil current. This can allow for avoidance of de-energizing the contactor due to a trip in the drive circuitry, for example. While the apparatus and methods of the subject disclosure have been shown and described with reference to preferred embodiments, those skilled in the art will readily appreciate that changes and/or modifications may be made thereto without departing from the scope of the subject disclosure.