INTEGRATED SWITCH MODE POWER SUPPLY DEVICE
20200373838 ยท 2020-11-26
Inventors
- Patrick Meehan (Pallaskenry, County Limerick, IE)
- Eamon O Malley (Claremorris, County Mayo, IE)
- Karl Rinne (Youghal, County Cork, IE)
Cpc classification
H02M3/158
ELECTRICITY
H02M3/156
ELECTRICITY
H02M1/14
ELECTRICITY
H03H7/1741
ELECTRICITY
Y02B70/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
H02M3/158
ELECTRICITY
H02M1/14
ELECTRICITY
H02M1/12
ELECTRICITY
Abstract
The invention describes an integrated switch mode power supply device comprising a switch mode regulator having a switching circuit coupled to an input voltage source to generate an output voltage from the input voltage and the switching circuit comprises at least two wide bandgap switches. An Nth order filter circuit is coupled to the switch mode regulator and configured to filter the output voltage to provide a supply voltage to a load, where N is greater than the integer two wherein the filter circuit comprises a LC or RC low pass filter comprising a plurality of LC or RC filter stages having a first filter stage and a last filter stage.
Claims
1. An integrated switch mode power supply device comprising: a switch mode regulator having a switching circuit coupled to an input voltage source to generate an output voltage from the input voltage and the switching circuit comprises at least two wide bandgap switches; and an Nth order filter circuit coupled to the switch mode regulator and configured to filter the output voltage to provide a supply voltage to a load, where N is greater than the integer two and the filter circuit comprises a LC or RC low pass filter comprising a plurality of LC or RC filter stages having a first filter stage and a last filter stage.
2. The integrated switch mode power supply device of claim 1, wherein at least one wide bandgap switch comprises a wide bandgap FET.
3. The integrated switch mode power supply device of claim 2 wherein the wide bandgap FET comprises a gallium nitride (GaN) device.
4. The integrated switch mode power supply device of claim 1, wherein at least one wide bandgap switch comprises a gallium nitride (GaN) device.
5. The integrated switch mode power supply device of claim 1, wherein at least one wide bandgap switch comprises a Silicon Carbide (SiC) device.
6. The integrated switch mode power supply device of claim 1, further comprising: a closed feedback loop configured to feed back an AC signal from a first LC filter stage and a DC signal from a higher ordered LC filter stage.
7. The integrated switch mode power supply device of claim 1, further comprising: a closed feedback loop configured to feed back a DC signal from a first LC filter stage and an AC signal from a higher ordered LC filter stage.
8. The integrated switch mode power supply device of claim 1, wherein the LC low pass filter comprises a three stage sixth order LC low pass filter.
9. The integrated switch mode power supply device of claim 1, wherein a closed feedback loop maintains a DC level at the output voltage independent of the load.
10. The integrated switch mode power supply device of claim 1, wherein a closed feedback loop is stabilized by feeding back a DC or AC signal from after the first filter stage and/or the DC or AC signal from a higher filter stage.
11. The integrated switch mode power supply device of claim 1, wherein the switching circuit is configured to operate at switching speeds of 1 MHz or higher.
12. The integrated switch mode power supply device of claim 1, wherein an integrated circuit comprises a module housing the switch mode regulator and the Nth order filter circuit.
13. The integrated switch mode power supply device of claim 1, wherein the filter circuit is mounted to a laminate layer dimensioned to support the switch mode regulator.
14. The integrated switch mode power supply device of claim 1, wherein the load comprises an analog or a mixed signal load.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0034] The invention will be more clearly understood from the following description of an embodiment thereof, given by way of example only, with reference to the accompanying drawings, in which:
[0035]
[0036]
[0037]
[0038]
DETAILED DESCRIPTION OF THE DRAWINGS
[0039] The present invention discloses an integrated switch mode power supply comprising a switch mode regulator using wide bandgap switches and a passive filter of higher order than two all of which is integrated in one common IC package.
[0040] A switch mode power supply device which is suitable for use with an analog or a mixed signal load is provided. A switch mode regulator having a switching circuit is coupled to an input voltage source is arranged to generate an output voltage from the input voltage and the switching circuit comprises at least two wide bandgap switches. An Nth order filter circuit coupled to the switch mode regulator and configured to filter the output voltage to provide a supply voltage to a load, where N is greater than the integer two.
[0041] Use of a switch mode supply necessitates the introduction of power-supply ripple by virtue of its operational characteristic. A single, two-pole LC low pass filter is used to reduce the switching ripple as shown in
[0042] The level of residual ripple tolerated by an analog load depends upon that load's AC Power Supply Rejection (AC PSRR) to the frequency in question. Generally, analog loads have little or no rejection to power-supply borne AC noise above 1 MHz.
[0043] Wide bandgap FETs, such as GaN devices, allows them to stand off higher voltages than the silicon devices ubiquitous in the industry today, for a given semiconductor area. However, these wide bandgap devices have not been effectively used as high speed, low voltage (<20V) devices. It is considered that silicon is more suitable in that zone. The wide bandgap switch devices also happen to offer lower gate capacitance and the potential for faster switching can be utilised, even though it is not what they are primarily designed for.
[0044] According to one aspect the invention is to increase the filter order of the power supply architecture from 2.sup.nd order to a higher order, for example 6th or any Nth order in an integrated solution. The silicon FET switches (S1, S2) in
[0045] According to a preferred embodiment the invention is to combine wide bandgap FETs with higher order filters than the second order type used in power supplies today. This will solve the problem of excessive voltage drop associated with linear regulator use and excessive size associated with multi-stage low pass filters. The result will be a fully surface-mount integrated power supply filtered to the extent it is suitable for directly powering sensitive analog or mixed signal loads. The multi-stage filter can be stabilized by feeding back the AC signal from the first filter stage and the DC signal from the last filter stage.
[0046] In
EXAMPLE EMBODIMENT
[0047]
[0048] Each of the first switch 65 and the second switch 70 comprise a wide bandgap FET. In the embodiment of the invention shown in
[0049] The first switch 65 and the second switch 70 are connected in series such that the source of switch 65 and the drain of switch 70 share a common node 75. The drain of switch 65 is connected to the input voltage source 45 while the source of switch 70 is connected to ground.
[0050] The three stage sixth order low pass filter 55 comprises a LC low pass filter having a first LC stage 80, a second LC stage 85 and a third LC stage 90, such that each LC each stage comprises a second order low pass LC filter. The input of the first stage 80 is coupled to the common node 75 of the switching circuit 50 of the switch mode regulator, while the output of the first stage 80 is coupled to the input of the second stage 85. The output of the second stage 85 is coupled to the input of the third stage 90. The output of the third stage 90 is then coupled to a load 60 in order to provide the desired output voltage to the load 60. A closed feedback loop maintains the DC level at this output voltage independent of the load.
[0051] In order to ensure that the switch mode power supply device remains stable, the closed loop is stabilised by feeding back the AC signal from the first filter stage and the DC signal from the final filter stage.
[0052] The wide energy band of the switches 65 and 70 allows the switches to stand off higher voltages for a given semiconductor area and have a lower gate capacitance than the silicon switches used in conventional power supply devices. Furthermore, due to the fact that the switches 65 and 70 are wide bandgap FETs, the switching circuit 50 can be configured to achieve very high switching speeds, for example 1 MHz or higher. This represents a significant increase over the switching speeds of around 600 kHz achievable by the silicon switching elements used in the conventional switch-mode regulators previously described. The value of the switching speed for a particular device can be determined by the designer of the device. This increased switching speed allows the inductors and capacitors used to construct the low pass filter 55 to be reduced in value and size by the same ratio. As a result, the dimensions of the components of the filter 55 of the power supply device are below the threshold of acceptability for surface mount integration.
[0053] It should be appreciated that while in the described embodiment of the invention the switching circuit comprises two switching elements, in an alternative embodiment of the invention, the switching circuit may comprise a single switch. This can be achieved by replacing the bottom switch with a diode. Aa anode is connected to ground. When the top switch is turned off, the back-emf from the inductor will turn on the diode.
[0054] As noted above, the components of the switch mode power supply device of the present invention are housed as an integrated circuit. The housing can be any form of integrated, self-contained package. For example, in one embodiment, the integrated circuit is configured such that the filter circuitry is mounted to a laminate which also supports the switch mode regulator die. The laminate is then encapsulated within, for example, a mold cap. Wire bonds connect the circuitry to the package's leads. Alternatively, the integrated circuit may comprise a module-type package, where the switch mode regulator die and the filter circuitry are housed within a module.
[0055] In another alternate embodiment of the device, the filter circuitry is mounted to the lead frame of the integrated circuit package, which may be specifically designed or modified to accommodate the circuitry.
[0056] The operation of the switch mode power supply device of
[0057]
[0058] The switch mode power supply device of the present invention provides a number of advantages over conventional switch mode power supplies. Firstly, due to the fact that the switching speed achievable by the device is much larger than that achievable by conventional power supplies, it enables the dimensions of the filter circuitry to be reduced to a size which is compatible with fabricating the power supply circuit as a surface-mount integrated circuit which is suitable for directly powering sensitive analog or mixed signal loads.
[0059] Furthermore, due to the fact that the power supply circuit of the present invention is integrated, the designer of the power supply circuit can now account for all phase and gain changes, and thus design the entire loop to be stable.
[0060] In addition, as a result of the power supply circuit of the present invention being smaller and integrated, the circuit is suitable for placement in a screened outer-shield, in order to prevent both inward and outward harmful electromagnetic interference (EMI).
[0061] The present invention also provides a more efficient power supply device than conventional devices. This is due to the fact that inductors of smaller inductance values can be used in this device, which leads to a corresponding decrease in the series resistance of such inductors. As a result, the power loss associated with the device of the present invention is less than the power loss associated with conventional power supply devices.
[0062] In the context of the present invention the terms Integrated to mean housed within a common IC package with the switching-regulator circuitry, as hereinbefore described with reference to the description and/or figures.
[0063] In the specification the terms comprise, comprises, comprised and comprising or any variation thereof and the terms include, includes, included and including or any variation thereof are considered to be totally interchangeable and they should all be afforded the widest possible interpretation and vice versa.
[0064] The invention is not limited to the embodiments hereinbefore described but may be varied in both construction and detail.