Load switching device
The load switching device with two power thyristors and a control thyristor, combined with a transformer and voltage clipping circuit, addresses untimely re-triggering and control precision issues, offering efficient and precise load switching.
Patent Information
- Application Number
- FR2024001204
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-02-07
- Publication Date
- 2025-08-08
AI Technical Summary
Existing load switching devices using triacs in electrical circuits face issues with untimely re-triggering due to charge accumulation and require complex and costly galvanic isolation solutions, which also cause electromagnetic interference and low control precision.
A load switching device comprising two power thyristors coupled head-to-tail and a control thyristor, with a transformer providing galvanic isolation and a voltage clipping circuit, allowing for efficient control with a single control signal and improved zero-voltage switching.
The solution prevents untimely re-triggering, reduces power consumption, eliminates the need for bulky transformers, and enhances control precision, while integrating seamlessly into electrical circuits.
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Abstract
Description
Title of the invention: Load switching device Technical field
[0001] The present description relates generally to the field of load switching coupled to an electrical network. Prior art
[0002] To control the switching of a load in an electrical circuit coupled to an electrical network supplying, for example, an alternating electrical voltage, it is possible to use a power triac electrically coupled in series with the load within the electrical circuit. However, problems of untimely re-triggering of the triac may occur when the control is no longer applied to the triac trigger, these problems being linked to the maximum variation of the voltage in the off-state of the triac (corresponding to the dV / dt problem at the triac switching) and to the maximum variation of the intensity of the direct current passing through the triac (corresponding to the di / dt problem at the triac switching), in particular when the load whose controlled switching is inductive. These re-triggering problems are due to too large a quantity of electrical charges accumulated in the triac and which must be extracted when it opens.
[0003] To avoid these restart problems, it is possible to use, instead of the triac, two thyristors mounted head to tail, that is to say coupled to each other and such that the cathode of one is connected to the anode of the other. Indeed, unlike the triac, given that the thyristors used in this configuration are two separate components, the charges accumulated by one of the two thyristors are not seen by the other when they are blocked. In addition, when the current flowing in one of the thyristors is canceled to change polarity, the latter cannot restart because it is then reverse biased and the current will flow through the other thyristor. Another advantage provided by the use of two thyristors compared to the triac is the lower level of current required for their control. However, this latter advantage is offset by the fact that two separate control signals are required to drive these two thyristors.In fact, the reference of each control signal, connected to the cathode of the thyristor, is not identical, which makes it difficult to obtain these two signals.
[0004] A solution for having two control signals with two distinct references consists of providing galvanic isolation between the triggers of the two thyristors. This galvanic isolation is for example formed by using a pulse transformer with a primary on which only one control signal is applied, and two separate secondaries on which the control signals applied to the gates of the two thyristors are obtained. However, such a transformer has the disadvantage of being bulky and expensive due to the two secondaries required. In addition, this solution requires rectifier diodes coupled to the gates of the thyristors. In addition, this solution is a source of electromagnetic interference, is difficult to integrate and offers low control precision for zero-voltage switching (or ZVS for "Zero-Voltage Switching" in English) of the thyristors.
[0005] Another solution for forming this galvanic isolation consists of using an opto-triac comprising a triac, each of whose anodes is coupled to one of the gates of the two thyristors, and an opto-coupler. In this other solution, it is the current coming from the network which is used to form the control signals of the thyristors, limited by the load and the anode resistance of the opto-triac, which assumes the presence of a minimum network voltage to trigger the thyristors. Such an opto-triac also has the disadvantage of requiring a buffer and rectifier diodes coupled to the gates of the thyristors. In addition, this solution is difficult to integrate and offers low control precision for zero voltage switching of the thyristors. Summary of the invention
[0006] There is a need to propose a solution to address the problems encountered with existing solutions.
[0007] One embodiment overcomes all or part of the drawbacks of the known solutions and proposes a load switching device, comprising two power thyristors coupled head to tail to each other, and a control thyristor whose anode is coupled to the trigger of a first of the two power thyristors and whose cathode is coupled to the anode of the first of the two power thyristors.
[0008] According to a particular embodiment, the anode of the first of the two power thyristors is coupled to a reference electrical potential.
[0009] According to a particular embodiment, the trigger of a second of the two power thyristors is coupled to a first control input of the load switching device, and the trigger of the control thyristor is coupled to a second control input of the load switching device, distinct from the first control input.
[0010] According to a particular embodiment, the trigger of the control thyristor and the trigger of a second of the two power thyristors are coupled to the same control input of the load switching device.
[0011] According to a particular embodiment, the load switching device further comprises a transformer comprising a primary coupled to the control input of the load switching device and a secondary coupled to the gates of the control thyristor and the second of the two power thyristors.
[0012] According to a particular embodiment, the load switching device further comprises a voltage clipping circuit coupled to the terminals of the primary of the transformer.
[0013] According to a particular embodiment, the voltage clipping circuit comprises a diode and a zener diode coupled to each other such that:
[0014] - the cathode of the diode is coupled to one of the terminals of the primary of the transformer
[0015] - the anode of the diode is coupled to the anode of the zener diode;
[0016] - the cathode of the zener diode is coupled to the other of the terminals of the primary of the trans trainer.
[0017] According to a particular embodiment, the load switching device further comprises a transistor comprising one of the source or drain electrodes coupled to the primary of the transformer, in which the other of the source or drain electrodes of the transistor and one of the terminals of the primary of the transformer are configured to form input terminals of a supply voltage, and in which the gate of the transistor is coupled to the control input of the load switching device.
[0018] According to a particular embodiment, the trigger of the control thyristor and the trigger of the second of the two power thyristors are each coupled to an electrical resistor.
[0019] An electrical circuit is also proposed comprising:
[0020] - two input terminals on which an alternating electric voltage is intended to be applied;
[0021] - an electrical load comprising a first electrode coupled to one of the two input terminals of the electrical circuit;
[0022] - a load switching device according to a particular embodiment, coupled between a second electrode of the electric load and the other of the two input terminals of the electric circuit. Brief description of the drawings
[0023] These characteristics and advantages, as well as others, will be explained in detail in the following description of particular embodiments given without limitation in relation to the attached figures among which:
[0024] [Fig.l] represents an electrical circuit comprising a first example of a load switching device according to a particular embodiment;
[0025] [Fig.2] represents voltages obtained in the electrical circuit of [Fig.l] during its operation;
[0026] [Fig.3] represents reverse currents obtained for two different control thyristors, as a function of the value of the current applied to their trigger;
[0027] [Fig.4] represents values of reverse current / gate current ratios obtained for two different control thyristors;
[0028] [Fig.5] and [Fig.6] represent voltage and current signals obtained in the electrical circuit of [Fig.l] when the switched electrical load is resistive;
[0029] [Fig.7] and [Fig.8] represent voltage and current signals obtained in the electrical circuit of [Fig.l] when the switched electrical load is inductive;
[0030] [Fig.9] represents an electrical circuit comprising a second example of a load switching device according to a particular embodiment;
[0031] [Fig. 10] represents an electrical circuit comprising a third example of a load switching device according to a particular embodiment. Description of the embodiments
[0032] The same elements have been designated by the same references in the different figures. In particular, the structural and / or functional elements common to the different embodiments may have the same references and may have identical structural, dimensional and material properties.
[0033] For the sake of clarity, only the steps and elements useful for understanding the embodiments described have been shown and are detailed. In particular, various elements (thyristor, control circuit, transformer, etc.) of the electrical circuit and of the load switching device are not detailed. Those skilled in the art will be able to produce these elements in detail from the description given here.
[0034] Unless otherwise specified, when referring to two elements connected to each other, this means directly connected without intermediate elements other than conductors, and when referring to two elements connected (in English "coupled") to each other, this means that these two elements can be connected or be connected by means of one or more other elements. In addition, the term "coupled" is used here to designate an electrical coupling between several electrical and / or electronic elements (components, circuits, etc.).
[0035] Unless otherwise specified, the expressions "about", "approximately", "substantially", and "of the order of" mean to within 10%, preferably to within 5%.
[0036] An electrical circuit 1000 comprising a first example of a load switching device 100 according to a particular embodiment is described below in connection with [Fig.l].
[0037] The circuit 1000 comprises two input terminals 1002, 1004 to which an alternating electrical voltage, called VAC in [Fig.l], is intended to be applied, this alternating electrical voltage corresponding for example to a domestic network voltage such as a single-phase voltage.
[0038] The circuit 1000 also comprises an electrical load 1006 comprising a first electrode 1008 coupled to one of the two input terminals of the circuit 1000 (to terminal 1002 in the example of [Fig.l]). The load 1006 also comprises a second electrode 1010 intended to be intermittently coupled to the other of the two input terminals (to terminal 1004 in the example of [Fig.l]) of the circuit 1000. To obtain this intermittent coupling, the circuit 1000 comprises a load switching device 100 coupled between the second electrode 1010 of the electrical load 1006 and the other input terminal 1004 of the circuit 1000.
[0039] The device 100 comprises two power thyristors 102, 104 coupled head-to-tail to each other. In the example of [Fig.l], the first power thyristor 102 has its anode coupled to a reference electrical potential, for example ground, and to the second electrode 1010 of the load 1006. In the example of [Fig.l], the cathode of the first power thyristor 102 is coupled to the input terminal 1004 of the circuit 1000. Furthermore, in the example of [Fig.l], the second power thyristor 104 has its anode coupled to the input terminal 1004 of the circuit 1000 (and therefore also to the cathode of the first power thyristor 102) and its cathode coupled to the reference electrical potential (and therefore also to the anode of the first power thyristor 102 and to the second electrode 1010 of the load 1006).
[0040] The device 100 further comprises a control thyristor 106 whose anode is coupled to the gate of the first power thyristor 102 and whose cathode is coupled to the anode of the first power thyristor 102.
[0041] In the first example of device 100 shown in [Fig.l], the trigger of the control thyristor 106 and the trigger of the second power thyristor 104 are coupled to the same control input 108 of the device 100.
[0042] Furthermore, in the first example of device 100 shown in [Fig.l], the gate of the control thyristor 106 and the gate of the second power thyristor 104 are each coupled to a separate electrical resistor 110, 112 for each of the gates.
[0043] [Fig.2] represents voltage curves obtained in the circuit 1000 of [Fig.l] during its operation, with an electrical load 1006 corresponding to a resistive load.
[0044] The voltage VAC corresponds to the alternating voltage applied to the input terminals 1002, 1004 of the circuit 1000. The signal CNTRL corresponds to the control signal applied to the control input 108 of the device 100. The voltage VT corresponds to the voltage obtained at the terminals of the first and second power thyristors 102, 104.
[0045] In [Fig.2], between times t0 and tl, the control signal CNTRL is zero and the power thyristors 102, 104 are blocked. The voltage VT obtained therefore corresponds to an alternating voltage in phase with the voltage VAC.
[0046] At time t1, the value of the control signal CNTRL becomes positive and causes a triggering current to flow through the gates of the second power thyristor 104 and the control thyristor 106. In the example of [Fig.l], time t1 also corresponds to the zero crossing, from a negative value to a positive value, of the voltage VT. When the voltage VAC is positive, a reverse current flowing through the control thyristor 106 is sent to the gate of the first power thyristor 102, which causes the first power thyristor 102 to trigger and turn on. When the voltage VAC then becomes negative, the second power thyristor 104 triggers and turns on.
[0047] Between times t1 and t2, the control signal CNTRL remains at a positive value and the power thyristors 102, 104 are conducting. The voltage VT is therefore substantially zero, and each of the power thyristors 102, 104 conducts the current flowing through the load 1006 and the device 100, one conducting the current when its value is positive (the first power thyristor 102 in the example of [Fig.l]) and the other conducting the current when its value is negative (the second power thyristor 104 in the example of [Fig.l]).
[0048] From time t2, the control signal CNTRL becomes zero again. As soon as the voltage VT passes through zero, the thyristors 102, 104 return to the blocked state, and the voltage VT becomes an alternating voltage in phase with the voltage VAC again.
[0049] Thus, the control thyristor 106 forms a control component, i.e. a driver, controlling the first power thyristor 102 in reverse, because it forms a current source controlling the gate current of the first power thyristor 102. The value of the reverse current of the control thyristor 106 depends on the value of the current flowing in the gate of the control thyristor 106.
[0050] By way of example, the power thyristors 102, 104 can be sized to be able to conduct power currents of several amperes or several tens or hundreds of amperes, while the control thyristor 106 can be sized to conduct a control current of maximum value less than 1 A, for example less than or equal to 200 mA.
[0051] Curves 10 and 12 visible in [Fig.3] represent reverse current values obtained for two different control thyristors, as a function of the value of the current applied to their trigger. Curves 20 and 22 visible in [Fig.4] represent values of the reverse current / trigger current ratios obtained for these control thyristors.
[0052] In the circuit 1000, the value of the power current intended to flow through the load 1006 and the power thyristors 102, 104 depends on the impedance value of the electrical load 1006 and the voltage VAC. The power thyristors 102, 104 can therefore be sized and chosen according to the value of this power current. The control thyristor 106 can then be chosen and sized according to the control current required for controlling the first power thyristor 102, i.e. such that the control thyristor 106 can generate a reverse current sufficient to serve as control current for the first power thyristor 102.
[0053] In Figures 5 and 6, reference 16 designates the value of the current flowing in a resistive electrical load 1006 and the device 100, reference 18 designates the voltage VAC and reference 20 designates the control signal CNTRL. As can be seen in [Fig.5], the current in the electrical load 1006 is zero as long as the value of the control signal CNTRL is zero. When the value of the control signal CNTRL becomes positive, a non-zero current then flows in the electrical load 1006 and the device 100, in phase with the voltage VAC. Then, as can be seen in [Fig.6], when the value of the control signal CNTRL becomes zero again, the value of the current flowing through the electrical load 1006 and the device 100 becomes zero again as soon as the voltage VAC passes through a zero value.
[0054] The signals 16, 18 and 20 shown in Figures 7 and 8 are similar to those previously described in connection with Figures 5 and 6, but in the case where the electrical load 1006 is inductive. In this configuration, when a non-zero current flows in the electrical load 1006 and the device 100, this current is out of phase with respect to the voltage VAC.
[0055] A second example of an electrical circuit 1000 comprising a load switching device 100 according to a particular embodiment is described below in connection with [Fig.9].
[0056] The electrical circuit 1000 according to this second exemplary embodiment comprises the same elements as those of the first example previously described. However, unlike the first example in which the triggers of the control thyristor 106 and of the second power thyristor 104 are coupled to the same control input 108 of the device 100, the trigger of the second power thyristor 104 is coupled to a first control input 114 of the device 100, and the trigger of the control thyristor 106 is coupled to a second control input 116 of the device 100, distinct from the first control input 114. Distinct control signals, for example called C1 and C2 in [Fig. 9], are applied to these control inputs 114, 116. The operation of the device 100 in this second example is similar to that of the device 100 according to the first example previously described, the signals C1 and C2 being for example similar to the control signal CNTRL previously described in connection with the first example.
[0057] A third example of an electrical circuit 1000 comprising a load switching device 100 according to a particular embodiment is described below in connection with [Fig. 10].
[0058] The electrical circuit 1000 according to this third exemplary embodiment comprises the same elements as those of the first example previously described. On the other hand, in this third example, the device 100 further comprises galvanic isolation provided between the control part of the device 100 and the power part of the device 100. According to an exemplary embodiment corresponding to that shown in [Fig. 10], this galvanic isolation can be obtained by a transformer 118 comprising a primary 120 coupled to the control input 108 of the device 100 and a secondary 122 coupled to the triggers of the control thyristor 106 and the second power thyristor 104.
[0059] In the example of [Fig. 10], the device 100 further comprises a diode 124 coupled between the electrical resistors 110, 112 and a first terminal of the secondary 122 of the transformer 118. A second terminal of the secondary 122 of the transformer 118 is coupled to the reference electrical potential of the circuit 1000.
[0060] In the example of [Fig. 10], the device 100 further comprises a voltage clipping circuit coupled to the terminals of the primary 120 of the transformer 118. According to an exemplary embodiment, this voltage clipping circuit comprises a diode 126 and a zener diode 128 coupled to each other such that:
[0061] - the cathode of the diode 126 is coupled to one of the terminals of the primary 120 of the trans trainer 118 and to an electrical supply potential (VCC) of the device 100;
[0062] - the anode of the diode 126 is coupled to the anode of the zener diode 128;
[0063] - the cathode of the zener diode 128 is coupled to the other of the terminals of the primary 120 of the transformer 118.
[0064] Alternatively, the voltage clipping circuit could be implemented differently from the circuit shown in [Fig. 10].
[0065] In the described embodiment, the device 100 further comprises a transistor 130 comprising one of its source or drain electrodes coupled to one of the terminals of the primary 120 of the transformer 118. The other source or drain electrode of the transistor 130 is coupled to the reference electrical potential of the device 100. Furthermore, the gate of the transistor 130 is coupled to the control input 108 of the device 100 through another electrical resistor 132.
[0066] Alternatively, a voltage clipping circuit, similar or different from that previously described in connection with the device of [Fig. 10], could be coupled to each of the control inputs 114, 116 of the device 100 previously described in connection with [Fig.9].
[0067] Among the advantages provided by the device 100, for all the exemplary embodiments, it is possible to mention those below:
[0068] - no problem of untimely reboot if the command is no longer applied when the power current cancels out, as is the case when a triac is used for switching the load in the electrical circuit;
[0069] - possibility of having only one control signal to carry out the switching dump ;
[0070] - absence of the disadvantages presented by a pulse transformer or an opto- triac;
[0071] - reduced power consumption thanks to the use of the control thyristor;
[0072] - improved control accuracy for zero voltage switching of thyristors versus a pulse transformer or opto-triac;
[0073] - better integration of the device.
[0074] The device 100 can be used in an electrical circuit 1000 of an appliance in the industrial field, in a household appliance, in an electric vehicle, etc.
[0075] Various embodiments and variations have been described. Those skilled in the art will understand that certain features of these various embodiments and variations could be combined, and other variations will occur to those skilled in the art.
[0076] Finally, the practical implementation of the embodiments and variants described is within the reach of those skilled in the art from the functional indications given above.
Claims
Claims
1. Device (100) for switching a load (1006), comprising two power thyristors (102, 104) coupled head-to-tail to each other, and a control thyristor (106) whose anode is coupled to the gate of a first of the two power thyristors (102) and whose cathode is coupled to the anode of the first of the two power thyristors (102).
2. A load switching device (100) (1006) according to claim 1, wherein the anode of the first of the two power thyristors (102) is coupled to a reference electrical potential.
3. A load switching device (100) (1006) according to one of the preceding claims, wherein the trigger of a second of the two power thyristors (104) is coupled to a first control input (114) of the load switching device (100) (1006), and the trigger of the control thyristor (106) is coupled to a second control input (116) of the load switching device (100) (1006), separate from the first control input (114).
4. Load switching device (100) (1006) according to one of claims 1 or 2, in which the trigger of the control thyristor (106) and the trigger of a second of the two power thyristors (104) are coupled to the same control input (108) of the load switching device (100) (1006).
5. The load switching device (100) (1006) of claim 4, further comprising a transformer (118) including a primary (120) coupled to the control input (108) of the load switching device (100) (1006) and a secondary (122) coupled to the gates of the control thyristor (106) and the second of the two power thyristors (104).
6. A load switching device (100) (1006) according to claim 5, further comprising a voltage clipping circuit coupled across the primary (120) of the transformer (118).
7. A load switching device (100) (1006) according to claim 6, wherein the voltage clipping circuit comprises a diode (126) and a zener diode (128) coupled to each other such that: - the cathode of the diode (126) is coupled to one of the terminals of the primary (120) of the transformer (118); - the anode of the diode (126) is coupled to the anode of the diode zener (128); - the cathode of the zener diode (128) is coupled to the other of the terminals of the primary (120) of the transformer (118).
8. The load switching device (100) (1006) of one of claims 5 to 7, further comprising a transistor (130) comprising one of the source or drain electrodes coupled to the primary (120) of the transformer (118), wherein the other of the source or drain electrodes of the transistor (130) and one of the terminals of the primary (120) of the transformer (118) are configured to form input terminals of a supply voltage, and wherein the gate of the transistor (130) is coupled to the control input (108) of the load switching device (100) (1006).
9. A load switching device (100) (1006) according to one of the preceding claims, wherein the gate of the control thyristor (106) and the gate of the second of the two power thyristors (104) are each coupled to an electrical resistor (110, 112).
10. An electrical circuit (1000) comprising: - two input terminals (1002, 1004) to which an alternating electric voltage is intended to be applied; - an electrical load (1006) comprising a first electrode (1008) coupled to one of the two input terminals (1002) of the electrical circuit (1000); - a load switching device (100) (1006) according to one of the preceding claims, coupled between a second electrode (1010) of the electrical load (1006) and the other of the two input terminals (1004) of the electrical circuit (1000).
Citation Information
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