LAYOUT OF GATE DRIVER CIRCUIT FOR HIGH-SPEED SWITCHING DEVICES
20240178828 ยท 2024-05-30
Inventors
Cpc classification
International classification
Abstract
A switching circuit includes a first switch; a second switch connected in series with the first switch; a first isolated driver connected to a gate terminal of the first switch; a second isolated driver connected to a gate terminal of the second switch; and a transformer including a primary winding connected to an auxiliary power supply, a first secondary winding to supply a first voltage to the first isolated driver, and a second secondary winding to supply a second voltage to the second isolated driver.
Claims
1: A switching circuit comprising: a first switch; a second switch connected in series with the first switch; a first isolated driver connected to a gate terminal of the first switch; a second isolated driver connected to a gate terminal of the second switch; and a transformer including a primary winding connected to an auxiliary power supply, a first secondary winding to supply a first voltage to the first isolated driver, and a second secondary winding to supply a second voltage to the second isolated driver.
2: The switching circuit according to claim 1, further comprising: a first rectifier connected between the first secondary winding and the first isolated driver; and a second rectifier connected between the second secondary winding and the second isolated driver.
3: The switching circuit according to claim 1, wherein each of the first switch and the second switch is a GaN transistor.
4: The switching circuit according to claim 1, wherein a source terminal of the first switch is connected to a drain terminal of the second switch.
5: The switching circuit according to claim 1, further comprising a control circuit connected to each of the first isolated driver and the second isolated driver.
6: The switching circuit according to claim 1, wherein an output of the transformer to the first isolated driver is located on a different side of the transformer from an output of the transformer to the second isolated driver.
7: The switching circuit according to claim 1, wherein a size of the transformer is smaller than a size of either of the first isolated driver or the second isolated driver.
8: The switching circuit according to claim 1, wherein each of the first switch, the second switch, the first isolated driver, the second isolated driver, and the transformer is provided on a single circuit board or a single substrate.
9: The switching circuit according to claim 1, wherein a length of at least one of a first gate line connected between the first isolated driver and the gate terminal of the first switch and a second gate line connected between the second isolated driver and the gate terminal of the second switch is equal to or shorter than a width of at least one of the first switch and the second switch.
10: The switching circuit according to claim 1, wherein: a first gate-line current loop of the first switch is defined by a path from the first isolated driver to the gate terminal of the first switch and to a ground terminal of the first isolated driver; a second gate-line current loop of the second switch is defined by a path from the second isolated driver to the gate terminal of the second switch and to a ground terminal of the second isolated driver; and a length of at least one of the first gate-line current loop and the second gate-line current loop is equal to or shorter than a width of at least one of the first switch and the second switch.
11: A gate driver device comprising: a substrate including terminals to receive an auxiliary voltage from an auxiliary power supply that is not located on the substrate; a first switch and a second switch that are located on the substrate and that are connected in series; a first isolated driver that is located on the substrate, that is connected to the first switch, and that includes first input circuitry and first output circuitry that are isolated from each other; a second isolated driver that is located on the substrate, that is connected to the second switch, and that includes second input circuitry and second output circuitry that are isolated from each other; a transformer that is located on the substrate and that includes: a primary winding to receive the auxiliary voltage; a first secondary winding to supply a first voltage to the first output circuitry; and a second secondary winding to supply a second voltage to the second output circuitry.
12: The gate driver device according to claim 11, further comprising: a first rectifier connected between the first secondary winding and the first isolated driver; and a second rectifier connected between the second secondary winding and the second isolated driver.
13: The gate driver device according to claim 11, wherein each of the first switch and the second switch is a GaN transistor.
14: The gate driver device according to claim 11, wherein a source terminal of the first switch is connected to a drain terminal of the second switch.
15: The gate driver device according to claim 11, wherein a first line connecting the transformer to the first isolated driver is located on a different side of the transformer from a second line connecting the transformer to the second isolated driver.
16: The gate driver device according to claim 11, wherein a size of the transformer is smaller than a size of either of the first isolated driver or the second isolated driver.
17: The gate driver device according to claim 11, wherein the first isolated driver and the second isolated driver are located on a first side of the substrate; and the first switch, the second switch, and the transformer are located on a second side of the substrate opposite to the first side.
18: The gate driver device according to claim 11, wherein a length of at least one of a first gate line connected between the first isolated driver and a gate terminal of the first switch and a second gate line connected between the second isolated driver and a gate terminal of the second switch is equal to or shorter than a width of at least one of the first switch and the second switch.
19: The gate driver device according to claim 11, wherein: a first gate-line current loop of the first switch is defined by a path from the first isolated drivers to a gate terminal of the first switch and to a ground terminal of the first isolated driver; a second gate-line current loop of the second switch is defined by a path from the second isolated driver to the gate terminal of the second switch and to a ground terminal of the second isolated driver; and a length of at least one of the first gate-line current loop and the second gate-line current loop is equal to or shorter than a width of at least one of the first switch and the second switch.
20: A gate driver system comprising: the gate driver device of claim 11; and the auxiliary power supply that is not located on the substrate.
21: The gate driver system according to claim 20, further comprising a control circuit connected to each of the first isolated driver and the second isolated driver.
22: The gate driver system of claim 20, wherein the auxiliary power supply is a pulse voltage power supply.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0025]
[0026] Isolated drivers such as isolated drivers IC.sub.1 and IC.sub.2 can be used in applications in which a controller, such as controller 10, is located on a different side of an isolation barrier as the devices to be driven, such as switches Q.sub.1 and Q.sub.2. For example, in a converter with a transformer that provides isolation between a primary side and a secondary side of the transformer, if the controller is located on the primary side of the transformer, then an isolated driver can be used to drive devices on the secondary side of the transformer, while maintaining the isolation barrier between the primary and secondary sides of the transformer. Conversely, if the controller is located on the secondary side of the transformer, then an isolated driver can be used to drive devices on the primary side of the transformer, while maintaining the isolation barrier between the primary and secondary sides of the transformer.
[0027] Because of the isolation between the inputs and the outputs of the isolated driver, each of the input circuitry and the output circuitry of the isolated driver must be independently supplied with power. The output circuitry of the isolated drivers can be powered by an auxiliary power supply that is separate from the power supply circuitry that powers the input circuitry of the isolated drivers. The input circuitry of the isolated drivers can be powered by the same power supply circuitry as the controller (not shown). For example, the power supply that supplies voltage to the controller 10 can also supply power and ground of the isolated drivers IC.sub.1 and IC.sub.2. The isolation in the isolated drivers can be provided by any suitable device, including, for example, a transformer, an opto-isolator, etc.
[0028] In the gate driver circuit of
[0029] The controller 10 can be any suitable controller. The controller 10 can be an IC chip or suitable device that provides control signals to turn on and off switching devices, such as GaN HEMTs. For example, the controller 10 can provide pulse-width modulation (PWM) signals to control the switches Q.sub.1 and Q.sub.2 based on the output of a converter in which the switches Q.sub.1 and Q.sub.2 are included.
[0030] As shown in
[0031] Rectifier REC.sub.1 is a high-side rectifier that provides a high-side voltage V.sub.ccH to the isolated driver IC.sub.1, and rectifier REC.sub.2 is a low-side rectifier that provides a low-side voltage V.sub.ccL to the isolated driver IC.sub.2. Rectifier REC.sub.1 is also connected to a low-side ground terminal GND.sub.H of the isolated driver IC.sub.1, and rectifier REC.sub.2 is also connected to a low-side ground terminal GND.sub.L of the isolated driver IC.sub.2. The low-side ground terminal GND.sub.H of the isolated driver IC.sub.1 is connected to a source terminal S.sub.1 of the switch Q.sub.1, and the low-side ground terminal GND.sub.L of the isolated driver IC.sub.2 is connected to a source terminal S.sub.2 of the switch Q.sub.2.
[0032] A gate-line current loop (Gate loop H/Gate loop L) of each of the switches Q.sub.1 and Q.sub.2 is defined by a path from the isolated drivers IC.sub.1 and IC.sub.2 to the corresponding gate terminal G1 and G.sub.2 and to ground GND.sub.H and GND.sub.L of the isolated drivers IC.sub.1 and IC.sub.2. A power-supply current loop (Supply loop H/Supply loop L) of the power supplied to each of the isolated drivers IC.sub.1 and IC.sub.2 is defined by a path from the low-side voltages ?V.sub.ccH and ?V.sub.ccL of the isolated drivers IC.sub.1 and IC.sub.2, through the rectifiers REC.sub.1 and REC.sub.2 and secondary windings of the transformer T.sub.1, and to the high-side voltages +V.sub.ccH and +V.sub.ccL of the isolated drivers IC.sub.1 and IC.sub.2. Accordingly, by including the transformer T.sub.1 between the auxiliary power supply AUX and the isolated drivers IC.sub.1 and IC.sub.2, a length of the gate-line current loop (Gate loop H/Gate loop L) of each of the switches Q.sub.1 and Q.sub.2 and a length of the power-supply current loop (Supply loop H/Supply loop L) to each of the isolated drivers IC.sub.1 and IC.sub.2 can be significantly reduced. Therefore, clean switching can be provided due to the power-supply current loops (Supply loop H/Supply loop L) being less susceptible to EMI and noise caused by large voltage spikes, which provides more ideal switching waveforms with significantly reduced voltage spikes and dips.
[0033]
[0034] However, component arrangements other than those described above and shown in
[0035] The auxiliary power supply AUX is not shown in
[0036] As shown in
[0037] A line from the transformer T.sub.1 to the rectifier REC.sub.1 can be on a different side of the transformer T.sub.1 than a line from the transformer T.sub.1 to the rectifier REC.sub.2, for example. By providing the lines from the transformer T.sub.1 to the rectifiers REC.sub.1 and REC.sub.2 on different sides of the transformer T.sub.1, the component placement and layout design of the gate driver circuitry and GaN HEMTs connected to the transformer can be simplified. This implementation is particularly advantageous if only the components provided for GaN HEMTs are mounted on a sub-board, and the sub-board is then connected to a main board.
[0038] It should be understood that the foregoing description is only illustrative of the present invention. Various alternatives and modifications can be devised by those skilled in the art without departing from the present invention. Accordingly, the present invention is intended to embrace all such alternatives, modifications, and variances that fall within the scope of the appended claims.