DC-DC resonant converter and control method thereof
11652396 · 2023-05-16
Assignee
Inventors
- Chi ZHANG (Apex, NC, US)
- Zhiyu SHEN (Cary, NC, US)
- Ruxi WANG (Cary, NC, US)
- Peter Mantovanelli Barbosa (Cary, NC, US)
Cpc classification
H02M3/33573
ELECTRICITY
H02M1/0009
ELECTRICITY
Y02P80/10
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
H02M1/0058
ELECTRICITY
H02M3/33571
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
H02M3/33592
ELECTRICITY
International classification
Abstract
The present disclosure provides a series resonant converter and its corresponding control method. In one aspect, the series resonant converter includes m (m=1, 2, 3, . . . ) sets of primary side stages in parallel, wherein each primary side stage is identical and includes n (n=2, 3, . . . ) stacked element circuits, where the primary side stages receive an input voltage; n×m resonant networks coupled to the primary side stages; n×m transformers having n×m primary side windings and n×m secondary side windings, where the primary side windings are coupled to the n×m resonant networks; p (p=1, 2, 3, . . . ) sets of secondary side stages in parallel, wherein each secondary side stage is identical and includes q (q=n×m/p) stacked element circuits, where the secondary side stages are coupled to n×m secondary side windings; and a control block controlling the primary side switches according to the output voltage, input voltage and input capacitor voltages.
Claims
1. A DC-DC converter comprising: a primary side comprising a serial stack of at least two half-bridge inverter cells, each comprising two active switches in series in one leg and two input capacitors in series in a parallel leg, said one leg and said parallel leg being connected to form a loop wherein each half-bridge inverter cell is connected to a resonant tank circuit by connecting a first point between the active switches and a second point between the two input capacitors to a primary side winding wound on a transformer core, wherein an end of the loop connecting the legs of one of the inverter cells is connected to an opposite end of the loop connecting the legs of a neighboring one of the inverter cells on which said one of the inverter cells is stacked, and wherein a primary side voltage is applied or produced between two ends of the loops of the serial stack of inverter cells that are not connected to any inverter cell and wherein the transformer core is sharable among the inverter cells; a secondary side comprising at least two rectifier circuit elements, each being coupled to a secondary side winding wound on the transformer core sharable with a corresponding primary side winding and is configured to rectify current induced at the secondary side by current flowing in the corresponding primary side winding, and wherein a secondary side voltage is produced or applied; and control circuitry configured to activate the active switches in the converter to vary the pulse frequency or width or phase shift angle of voltage or current through said serial stack of at least two half-bridge inverter cells; wherein the control circuitry determines at least one of: (1) whether an average of capacitor voltages detected across the two input capacitors of each one of the half-bridge inverter cells is greater than a first reference voltage and, if so, adjusts duty cycles of the two active switches of said each one of the half-bridge inverter cells to balance capacitor voltages among the half-bridge inverter cells; and (2) whether any of the average voltages across the input capacitors of each inverter cell minus a reference voltage is greater than a threshold voltage and, if so, determines the greatest difference among the cells and adjusts the phase shift angle to each phase leg through the two switches (S1, S2) to balance capacitor voltages.
2. The DC-DC converter of claim 1, wherein the rectifier circuit elements are each a half-bridge rectifier comprising two diodes in series and oriented in the same direction, wherein between the two diodes is a connection point connected to a first end of a corresponding one of the secondary side windings, wherein second ends of the secondary side windings are connected together, wherein corresponding ends of the rectifier circuit elements form common connections with a parallel capacitor such that the secondary side voltage is produced between two ends of the parallel capacitor.
3. The DC-DC converter of claim 1, wherein the rectifier circuit elements are each an active half-bridge rectifier comprising two active switches in series, each being controlled by the control circuitry, wherein between the active switches is a connection point connected to a first end of a corresponding one of the secondary side windings, wherein second ends of the secondary side windings are connected together, wherein corresponding ends of the rectifier circuit elements form common connections with a parallel capacitor such that the secondary side voltage is produced or applied between two ends of the parallel capacitor.
4. The DC-DC converter of claim 1, wherein the rectifier circuit elements are each a full-bridge rectifier comprising two parallel legs of two diodes in series oriented in the same direction, wherein each one of the rectifier circuit elements is connected to a corresponding one of the secondary side windings wound on the transformer core, wherein a first point between the diodes of a first one of the parallel legs is connected to a first end of the corresponding one of the secondary side windings and a second point between the diodes of a second one of the parallel legs is connected to a second end of the corresponding one of the secondary side windings, wherein corresponding ends of the rectifier circuit elements form common connections with a parallel capacitor such that the secondary side voltage is produced between two ends of the parallel capacitor.
5. The DC-DC converter of claim 1, wherein the rectifier circuit elements are each a full-bridge rectifier comprising two parallel legs of two active switches in series, each being controlled by the control circuitry, wherein between the active switches in a first one of the parallel legs is a first connection point connected to a first end of a corresponding one of the secondary side windings, wherein between the active switches in a second one of the parallel legs is a second connection point connected to a second end of the corresponding one of the secondary side windings, and wherein corresponding ends of the rectifier circuit elements form common connections with a parallel capacitor such that the secondary side voltage is produced or applied between two ends of the parallel capacitor.
6. The DC-DC converter of claim 1, wherein the rectifier circuit elements form a serial stack of half-bridge rectifier cells, each comprising two diodes in series oriented in the same direction in a first leg and two capacitors in series in a second leg, said first and second legs being connected to form a loop, wherein each half-bridge rectifier cell is connected to a corresponding one of the secondary side windings wound on the transformer core by connecting a first point between the two diodes and a second point between the two capacitors respectively to two ends of said corresponding one of the secondary side windings wound on the transformer core, wherein one end of the loop connecting the first and second legs of one of the half-bridge rectifier cells is connected to one end of the loop connecting the first and second legs of a neighboring one of the half-bridge rectifier cells on which said one of the half-bridge rectifier cells is stacked, and wherein a secondary side voltage is produced between two ends of the loops of the serial stack of half-bridge rectifier cells that are not connected to any rectifier cell.
7. The DC-DC converter of claim 1, wherein the rectifier circuit elements form a serial stack of half-bridge rectifier cells, each comprising two active switches in series in a first leg, each being controlled by the control circuitry, and two capacitors in series in a second leg, said first and second legs being connected to form a loop, wherein each half-bridge rectifier cell is connected to a corresponding one of the secondary side windings wound on the transformer core by connecting a first point between the two diodes and a second point between the two capacitors respectively to two ends of said corresponding one of the secondary side windings wound on the transformer core, wherein one end of the loop connecting the first and second legs of one of the half-bridge rectifier cells is connected to one end of the loop connecting the first and second legs of a neighboring one of the half-bridge rectifier cells on which said one of the half-bridge rectifier cells is stacked, and wherein a secondary side voltage is produced between two ends of the loops of the serial stack of half-bridge rectifier cells that are not connected to any rectifier cell.
8. The DC-DC converter of claim 1, wherein the rectifier circuit elements form a serial stack of half-bridge rectifier cells, each comprising two diodes in series oriented in the same direction in a first leg and a capacitor in a second leg, said first and second legs being connected to form a loop, wherein each half-bridge rectifier cell is connected to a corresponding one of the secondary side windings wound on the transformer core by connecting a first point between the diodes through a blocking capacitor to a first end of the corresponding one of the secondary side windings, wherein second ends of the secondary side windings are connected together, wherein one end of the loop connecting the first and second legs of one of the half-bridge rectifier cells is connected to one end of the loop connecting the first and second legs of a neighboring one of the half-bridge rectifier cells on which said one of the half-bridge rectifier cells is stacked, and wherein a secondary side voltage is produced between two ends of the loops of the serial stack of half-bridge rectifier cells that are not connected to any rectifier cell.
9. The DC-DC converter of claim 1, wherein the rectifier circuit elements form a serial stack of half-bridge rectifier cells, each comprising two active switches in series in a first leg, each being controlled by the control circuitry, and a capacitor in a second leg, said first and second legs being connected to form a loop, wherein each half-bridge rectifier cell is connected to a corresponding one of the secondary side windings wound on the transformer core by connecting a first point between the active switches through a blocking capacitor to a first end of the corresponding one of the secondary side windings, wherein second ends of the secondary side windings are connected together, wherein one end of the loop connecting the first and second legs of one of the half-bridge rectifier cells is connected to one end of the loop connecting the first and second legs of a neighboring one of the half-bridge rectifier cells on which said one of the half-bridge rectifier cells is stacked, and wherein a secondary side voltage is produced between two ends of the loops of the serial stack of half-bridge rectifier cells that are not connected to any rectifier cell.
10. The DC-DC converter of claim 1, wherein the rectifier circuit elements are each a full-bridge rectifier comprising a first leg of two diodes in series oriented in the same direction, a second leg of two diodes in series oriented in the same direction and connected in parallel to the first leg, and a third leg of a capacitor connected in parallel to the first and second legs, wherein between the two diodes of the first leg is a first connection point connected to a first end of a corresponding one of the secondary side windings, wherein between the two diodes in the second leg is a second connection point connected to a second end of the corresponding one of the secondary side windings, wherein one end of one of the full-bridge rectifier cells connecting the first, second, and third legs is connected to an opposing end of a neighboring one of the full-bridge rectifier cells on which said one of the full-bridge rectifier cells is stacked, and wherein a secondary side voltage is produced between two ends of the serial stack of full-bridge rectifier cells that are not connected to any rectifier cell.
11. The DC-DC converter of claim 1, wherein the rectifier circuit elements are each a full-bridge rectifier comprising a first leg of two active switches in series, a second leg of two active switches in series and connected in parallel to the first leg, and a third leg of a capacitor connected in parallel to the first and second legs, each of the active switches in the first and second legs being controlled by the control circuitry, wherein between the two active switches of the first leg is a first connection point connected to a first end of a corresponding one of the secondary side windings, wherein between the two active switches in the second leg is a second connection point connected to a second end of the corresponding one of the secondary side windings, wherein one end of one of the full-bridge rectifier cells connecting the first, second, and third legs is connected to an opposing end of a neighboring one of the full-bridge rectifier cells on which said one of the full-bridge rectifier cells is stacked, and wherein a secondary side voltage is produced between two ends of the serial stack of full-bridge rectifier cells that are not connected to any rectifier cell.
12. The DC-DC converter of claim 1, wherein the rectifier circuit elements form a serial stack of serial-half-bridge rectifier cells, each of the serial-half-bridge rectifier cells comprising: two diodes oriented in the same direction in a first leg and a capacitor in a second leg, the first and second legs being connected in parallel to form a first loop, and two diodes oriented in the same direction in a third leg and a capacitor in a fourth leg, the third and fourth legs being connected in parallel to form a second loop, wherein the first and third legs are connected at a common point and the second and fourth legs are connected at the common point; wherein each of the serial-half-bridge rectifier cells is connected through a blocking capacitor to a corresponding one of the secondary side windings wound on the transformer core by connecting a first point between the two diodes in the first leg and a second point between the two diodes in the third leg respectively to two ends of said corresponding one of the secondary side windings; wherein a reverse end of one of the serial-half-bridge rectifier cells is connected to a forward end of a neighboring one of the serial-half-bridge rectifier cells on which said one of the serial-half-bridge rectifier cells is stacked; and wherein a secondary side voltage is produced between two ends of the serial stack of the serial-half-bridge rectifier cells that are not connected to any serial-half-bridge rectifier cell.
13. The DC-DC converter of claim 1, wherein the rectifier circuit elements form a serial stack of serial-half-bridge rectifier cells, each of the serial-half-bridge rectifier cells comprising: two active switches each being controlled by the control circuitry in a first leg and a capacitor in a second leg, the first and second legs being connected in parallel to form a first loop, and two active switches each being controlled by the control circuitry in a third leg and a capacitor in a fourth leg, the third and fourth legs being connected in parallel to form a second loop, wherein the first and third legs are connected at a common point and the second and fourth legs are connected at the common point; wherein each of the serial-half-bridge rectifier cells is connected through a blocking capacitor to a corresponding one of the secondary side windings wound on the transformer core by connecting a first point between the two active switches in the first leg and a second point between the active switches in the third leg respectively to two ends of said corresponding one of the secondary side windings; wherein a reverse end of one of the serial-half-bridge rectifier cells is connected to a forward end of a neighboring one of the serial-half-bridge rectifier cells on which said one of the serial-half-bridge rectifier cells is stacked; and wherein a secondary side voltage is produced between two ends of the serial stack of the serial-half-bridge rectifier cells that are not connected to any serial-half-bridge rectifier cell.
14. A DC-DC converter comprising: a primary side comprising a serial stack of at least two serial half-bridge inverter cells, each of the serial half-bridge inverter cells comprising: two active switches in a first leg and a capacitor in a second leg, the first and second legs being connected in parallel to form a first loop, and two active switches in a third leg and a capacitor in a fourth leg, the third and fourth legs being connected in parallel to form a second loop, wherein the first and third legs are connected at a common point and the second and fourth legs are connected at the common point; wherein each of the serial half-bridge inverter cells is connected through a resonant tank circuit to a corresponding one of a primary side winding wound on a transformer core by connecting by connecting a first point between the two active switches in the first leg and a second point between the active switches in the third leg respectively to two ends of said corresponding one of the primary side windings; wherein a reverse end of one of the serial half-bridge rectifier cells is connected to a forward end of a neighboring one of the serial half-bridge rectifier cells on which said one of the serial half-bridge rectifier cells is stacked; and wherein a primary side voltage is applied or produced between two ends of said serial stack of at least two serial half-bridge inverter cells that are not connected to any serial half-bridge inverter cell and the transformer core is sharable among the serial half-bridge inverter cells; a secondary side comprising at least two rectifier circuit elements each being coupled to a secondary side winding wound on the transformer core sharable with a corresponding primary side winding and is configured to rectify current induced at the secondary side by current flowing in the corresponding primary side winding, and wherein a secondary side voltage is produced or applied; and control circuitry configured to activate the active switches in the converter to vary the pulse frequency or width or phase shift angle of voltage or current through said serial stack of at least two half-bridge inverter cells; wherein the control circuitry determines at least one of: (1) for each of the serial half-bridge inverter cells whether a detected voltage difference across the capacitors in the second and fourth legs is greater than a threshold voltage, and if so, adjusts phase shift angles through the active switches in the first and third legs; and (2) for each of the serial half-bridge inverter cells whether an average voltage across the capacitors in the second and fourth legs is greater than a reference voltage, and if so, generates an extra duty cycle through the active switches in the first and third legs.
15. The DC-DC converter of claim 14, wherein the rectifier circuit elements are each a half-bridge rectifier comprising two diodes in series and oriented in the same direction, wherein between the two diodes is a connection point connected to a first end of a corresponding one of the secondary side windings, wherein second ends of the secondary side windings are connected together, wherein corresponding ends of the rectifier circuit elements form common connections with a parallel capacitor such that the secondary side voltage is produced between two ends of the parallel capacitor.
16. The DC-DC converter of claim 14, wherein the rectifier circuit elements are each an active half-bridge rectifier comprising two active switches in series, each being controlled by the control circuitry, wherein between the active switches is a connection point connected to a first end of a corresponding one of the secondary side windings, wherein second ends of the secondary side windings are connected together, wherein corresponding ends of the rectifier circuit elements form common connections with a parallel capacitor such that the secondary side voltage is produced or applied between two ends of the parallel capacitor.
17. The DC-DC converter of claim 14, wherein the rectifier circuit elements are each a full-bridge rectifier comprising two parallel legs of two diodes in series oriented in the same direction, wherein each one of the rectifier circuit elements is connected to a corresponding one of the secondary side windings wound on the transformer core, wherein a first point between the diodes of a first one of the parallel legs is connected to a first end of the corresponding one of the secondary side windings and a second point between the diodes of a second one of the parallel legs is connected to a second end of the corresponding one of the secondary side windings, wherein corresponding ends of the rectifier circuit elements form common connections with a parallel capacitor such that the secondary side voltage is produced between two ends of the parallel capacitor.
18. The DC-DC converter of claim 14, wherein the rectifier circuit elements are each a full-bridge rectifier comprising two parallel legs of two active switches in series, each being controlled by the control circuitry, wherein between the active switches in a first one of the parallel legs is a first connection point connected to a first end of a corresponding one of the secondary side windings, wherein between the active switches in a second one of the parallel legs is a second connection point connected to a second end of the corresponding one of the secondary side windings, and wherein corresponding ends of the rectifier circuit elements form common connections with a parallel capacitor such that the secondary side voltage is produced or applied between two ends of the parallel capacitor.
19. The DC-DC converter of claim 14, wherein the rectifier circuit elements form a serial stack of half-bridge rectifier cells, each comprising two diodes in series oriented in the same direction in a first leg and two capacitors in series in a second leg, said first and second legs being connected to form a loop, wherein each half-bridge rectifier cell is connected to a corresponding one of the secondary side windings wound on the transformer core by connecting a first point between the two diodes and a second point between the two capacitors respectively to two ends of said corresponding one of the secondary side windings wound on the transformer core, wherein one end of the loop connecting the first and second legs of one of the half-bridge rectifier cells is connected to one end of the loop connecting the first and second legs of a neighboring one of the half-bridge rectifier cells on which said one of the half-bridge rectifier cells is stacked, and wherein a secondary side voltage is produced between two ends of the loops of the serial stack of half-bridge rectifier cells that are not connected to any rectifier cell.
20. The DC-DC converter of claim 14, wherein the rectifier circuit elements form a serial stack of half-bridge rectifier cells, each comprising two active switches in series in a first leg, each being controlled by the control circuitry, and two capacitors in series in a second leg, said first and second legs being connected to form a loop, wherein each half-bridge rectifier cell is connected to a corresponding one of the secondary side windings wound on the transformer core by connecting a first point between the two diodes and a second point between the two capacitors respectively to two ends of said corresponding one of the secondary side windings wound on the transformer core, wherein one end of the loop connecting the first and second legs of one of the half-bridge rectifier cells is connected to one end of the loop connecting the first and second legs of a neighboring one of the half-bridge rectifier cells on which said one of the half-bridge rectifier cells is stacked, and wherein a secondary side voltage is produced between two ends of the loops of the serial stack of half-bridge rectifier cells that are not connected to any rectifier cell.
21. The DC-DC converter of claim 14, wherein the rectifier circuit elements form a serial stack of half-bridge rectifier cells, each comprising two diodes in series oriented in the same direction in a first leg and a capacitor in a second leg, said first and second legs being connected to form a loop, wherein each half-bridge rectifier cell is connected to a corresponding one of the secondary side windings wound on the transformer core by connecting a first point between the diodes through a blocking capacitor to a first end of the corresponding one of the secondary side windings, wherein second ends of the secondary side windings are connected together, wherein one end of the loop connecting the first and second legs of one of the half-bridge rectifier cells is connected to one end of the loop connecting the first and second legs of a neighboring one of the half-bridge rectifier cells on which said one of the half-bridge rectifier cells is stacked, and wherein a secondary side voltage is produced between two ends of the loops of the serial stack of half-bridge rectifier cells that are not connected to any rectifier cell.
22. The DC-DC converter of claim 14, wherein the rectifier circuit elements form a serial stack of half-bridge rectifier cells, each comprising two active switches in series in a first leg, each being controlled by the control circuitry, and a capacitor in a second leg, said first and second legs being connected to form a loop, wherein each half-bridge rectifier cell is connected to a corresponding one of the secondary side windings wound on the transformer core by connecting a first point between the active switches through a blocking capacitor to a first end of the corresponding one of the secondary side windings, wherein second ends of the secondary side windings are connected together, wherein one end of the loop connecting the first and second legs of one of the half-bridge rectifier cells is connected to one end of the loop connecting the first and second legs of a neighboring one of the half-bridge rectifier cells on which said one of the half-bridge rectifier cells is stacked, and wherein a secondary side voltage is produced between two ends of the loops of the serial stack of half-bridge rectifier cells that are not connected to any rectifier cell.
23. The DC-DC converter of claim 14, wherein the rectifier circuit elements are each a full-bridge rectifier comprising a first leg of two diodes in series oriented in the same direction, a second leg of two diodes in series oriented in the same direction and connected in parallel to the first leg, and a third leg of a capacitor connected in parallel to the first and second legs, wherein between the two diodes of the first leg is a first connection point connected to a first end of a corresponding one of the secondary side windings, wherein between the two diodes in the second leg is a second connection point connected to a second end of the corresponding one of the secondary side windings, wherein one end of one of the full-bridge rectifier cells connecting the first, second, and third legs is connected to an opposing end of a neighboring one of the full-bridge rectifier cells on which said one of the full-bridge rectifier cells is stacked, and wherein a secondary side voltage is produced between two ends of the serial stack of full-bridge rectifier cells that are not connected to any rectifier cell.
24. The DC-DC converter of claim 14, wherein the rectifier circuit elements are each a full-bridge rectifier comprising a first leg of two active switches in series, a second leg of two active switches in series and connected in parallel to the first leg, and a third leg of a capacitor connected in parallel to the first and second legs, each of the active switches in the first and second legs being controlled by the control circuitry, wherein between the two active switches of the first leg is a first connection point connected to a first end of a corresponding one of the secondary side windings, wherein between the two active switches in the second leg is a second connection point connected to a second end of the corresponding one of the secondary side windings, wherein one end of one of the full-bridge rectifier cells connecting the first, second, and third legs is connected to an opposing end of a neighboring one of the full-bridge rectifier cells on which said one of the full-bridge rectifier cells is stacked, and wherein a secondary side voltage is produced between two ends of the serial stack of full-bridge rectifier cells that are not connected to any rectifier cell.
25. The DC-DC converter of claim 14, wherein the rectifier circuit elements form a serial stack of serial-half-bridge rectifier cells, each of the serial-half-bridge rectifier cells comprising: two diodes oriented in the same direction in a first leg and a capacitor in a second leg, the first and second legs being connected in parallel to form a first loop, and two diodes oriented in the same direction in a third leg and a capacitor in a fourth leg, the third and fourth legs being connected in parallel to form a second loop, wherein the first and third legs are connected at a common point and the second and fourth legs are connected at the common point; wherein each of the serial-half-bridge rectifier cells is connected through a blocking capacitor to a corresponding one of the secondary side windings wound on the transformer core by connecting a first point between the two diodes in the first leg and a second point between the two diodes in the third leg respectively to two ends of said corresponding one of the secondary side windings; wherein a reverse end of one of the serial-half-bridge rectifier cells is connected to a forward end of a neighboring one of the serial-half-bridge rectifier cells on which said one of the serial-half-bridge rectifier cells is stacked; and wherein a secondary side voltage is produced between two ends of the serial stack of the serial-half-bridge rectifier cells that are not connected to any serial-half-bridge rectifier cell.
26. The DC-DC converter of claim 14, wherein the rectifier circuit elements form a serial stack of serial-half-bridge rectifier cells, each of the serial-half-bridge rectifier cells comprising: two active switches each being controlled by the control circuitry in a first leg and a capacitor in a second leg, the first and second legs being connected in parallel to form a first loop, and two active switches each being controlled by the control circuitry in a third leg and a capacitor in a fourth leg, the third and fourth legs being connected in parallel to form a second loop, wherein the first and third legs are connected at a common point and the second and fourth legs are connected at the common point; wherein each of the serial-half-bridge rectifier cells is connected through a blocking capacitor to a corresponding one of the secondary side windings wound on the transformer core by connecting a first point between the two active switches in the first leg and a second point between the active switches in the third leg respectively to two ends of said corresponding one of the secondary side windings; wherein a reverse end of one of the serial-half-bridge rectifier cells is connected to a forward end of a neighboring one of the serial-half-bridge rectifier cells on which said one of the serial-half-bridge rectifier cells is stacked; and wherein a secondary side voltage is produced between two ends of the serial stack of the serial-half-bridge rectifier cells that are not connected to any serial-half-bridge rectifier cell.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure is better understood upon consideration of the following detailed description and the accompanying drawings.
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DETAILED DESCRIPTION
(51) The present invention will now be described more specifically with reference to the following embodiments. It is to be noted that the following descriptions of preferred embodiments of this invention are presented herein for purpose of illustration and description only; it is not intended to be exhaustive or to be limited to the precise form disclosed. For example, the formation of a first feature over or on a second feature in the description that follows may include embodiments in which the first and second features are formed in direct contact, and may also include embodiments in which additional features may be formed between the first and second features, such that the first and second features may not be in direct contact. In addition, the present disclosure may repeat reference numerals and/or letters in the various examples. This repetition is for the purpose of simplicity and clarity and does not in itself dictate a relationship between the various embodiments and/or configurations discussed. Further, spatially relative terms, such as “beneath,” “below,” “lower,” “above,” “upper” and the like, may be used herein for ease of description to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the figures. The spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. The apparatus may be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein may likewise be interpreted accordingly. When an element is referred to as being “connected,” or “coupled,” to another element, it can be directly connected or coupled to the other element or intervening elements may be present. Although the wide numerical ranges and parameters of the present disclosure are approximations, numerical values are set forth in the specific examples as precisely as possible. In addition, although the “first,” “second,” “third,” and the like terms in the claims be used to describe the various elements can be appreciated, these elements should not be limited by these terms, and these elements are described in the respective embodiments are used to express the different reference numerals, these terms are only used to distinguish one element from another element. For example, a first element could be termed a second element, and, similarly, a second element could be termed a first element, without departing from the scope of example embodiments. Besides, “and/or” and the like may be used herein for including any or all combinations of one or more of the associated listed items. While the numerical ranges and parameters set forth for the broad scope of the present invention are approximations, the numerical value reported in the specific examples set forth as accurately as possible. However, any numerical values inherently contain certain errors necessarily the standard deviation found in the respective testing measurements caused. Also, as used herein, the term “about” generally means away from a given value or a range of 10%, 5%, 1% or 0.5%. Alternatively, the word “about” means within an acceptable standard error of ordinary skill in the art-recognized average. In addition to the operation/working examples, or unless otherwise specifically stated otherwise, in all cases, all of the numerical ranges, amounts, values and percentages, such as the number for the herein disclosed materials, time duration, temperature, operating conditions, the ratio of the amount, and the like, should be understood as the word “about” decorator. Accordingly, unless otherwise indicated, the numerical parameters of the present invention and scope of the appended patent proposed is to follow changes in the desired approximations. At least, the number of significant digits for each numerical parameter should at least be reported and explained by conventional rounding technique is applied. Herein, it can be expressed as a range between from one endpoint to the other or both endpoints. Unless otherwise specified, all ranges disclosed herein are inclusive.
(52) A. Stacked Half Bridge Resonant Converter
(53) Three Stacked Half Bridge Resonant Converter
(54)
(55) In the embodiment, the DC-DC converter 500 includes a primary side, a secondary side, a control circuitry, a transformer stage electrically connected to the primary side and the secondary side, and at least one resonant tank circuit electrically connected between the primary side and the at least one transformer TR. The primary side includes a serial stack of at least two half-bridge inverter cells 501, 502, and 503. The inverter cells 501 includes two active switches S1 and S2 in series in one leg and two input capacitors C1 and C2 in series in a parallel leg. The inverter cells 502 includes two active switches S3 and S4 in series in one leg and two input capacitors C3 and C4 in series in a parallel leg. The inverter cells 503 includes two active switches S5 and S6 in series in one leg and two input capacitors C5 and C6 in series in a parallel leg. In the embodiment, the transformer stage includes a first transformer TR1, a second transformer TR2, and a third transformer TR3, and the at least one resonant tank circuit includes a first resonant tank circuit, a second resonant tank circuit, and a third resonant tank circuit. In the embodiment, each of the transformers TR1, TR2, and TR3 includes a transformer core, a primary side winding wound on the transformer core, and a secondary side winding wound on the transformer core. The control circuitry is configured to activate the active switches S1, S2, S3, S4, S5, and S6 to vary the pulse frequency or width or phase shift angle of voltage or current through the inverter cells or the rectifier circuit elements.
(56) It should be noted that the terms “rectifier,” “rectifier circuit element,” “rectifier cell,” and the like in the disclosure may mean the same in some embodiments and may be used herein for ease of description to describe one element or feature utilized for providing rectification function.
(57) Converter 500 employs three half bridges 501, 502, and 503 in stack on the primary side including switches S1 to S6 and also includes six input capacitors C.sub.1, C.sub.2, C.sub.3, C.sub.4, C.sub.5, and C.sub.6 in stack. As shown in
(58) Likewise, as shown in
(59) Further, as shown in
(60) In sum, in this embodiment, three separated transformers TR.sub.1, TR.sub.2, and TR.sub.3 are used where one end of each transformer's primary side winding is connected to a resonant tank which in turn is connected to the middle point of the corresponding switches, while the other end of each transformer's primary side winding is coupled to the middle point of the corresponding input capacitors.
(61) In one embodiment, a first terminal (between switch S1 and input capacitor C.sub.1) of first half bridge 501 is connected to a positive electrode of input voltage V.sub.in and a second terminal (between switch S2 and input capacitor C.sub.2) of first half bridge 501 is connected to a first terminal (between switch S3 and input capacitor C.sub.3) of second half bridge 502. A second terminal (between switch S4 and input capacitor C.sub.4) of second half bridge 502 is connected to a first terminal (between switch S5 and input capacitor C.sub.5) of third half bridge 503. A second terminal (between switch S6 and input capacitor C.sub.6) of third half bridge 503 is connected to a negative electrode of input voltage V.sub.in. In other words, first, second, and third half bridges 501, 502, 503, each forming a circuit loop, are “stacked” vertically to form a stacked half bridge.
(62) In one embodiment, the secondary side includes at least two sets of rectifier circuit elements each coupled to a secondary side winding wound on the transformer core shared with a corresponding primary side winding and is configured to rectify current induced at the secondary side by current flowing in the corresponding primary side winding, and wherein a secondary side voltage V.sub.o is produced or applied. In the embodiment, conventional three phase diode bridges (including diodes D.sub.1, D.sub.2, D.sub.3, D.sub.4, D.sub.5, and D.sub.6) are used in secondary side to provide rectification function.
(63) Variable Switching Frequency Control for Three Stacked Half Bridge Resonant Converter
(64)
(65) As shown in
(66) Pulse Width Modulation (PWM) for Stacked Half Bridge Resonant Converter
(67) If wide input and/or output voltage range is required in specific applications, such as in battery charging applications, implementing only the variable switching frequency control may not be able to achieve the required gain range. Pulse width modulation (PWM) or variable duty cycle control is proposed to regulate the gain of the resonant circuit in this situation, when switching frequency control reaches its upper limit.
(68)
(69) Phase Shift Modulation for Stacked Half Bridge Resonant Converter
(70)
(71)
(72) Variable switching frequency control is normally used to regulate the output voltage and output power in resonant converter. If wide input and/or output voltage range is required in specific applications, such as battery charging applications, implementing only the variable switching frequency control may not be able to achieve the required gain range. Phase shift modulation can be used to achieve wide input and/or output voltage range as well as bidirectional operation. As shown in
(73) On the primary side, the switch control signals of each half bridge are interleaved with each other with a phase shift of about 120°. On the secondary side, the switch control signals of each half bridge are also interleaved with each other with a phase shift of about 120°. In addition, in one embodiment, the control signals of the first bridge on the primary side may be phase shifted with the control signals of the first bridge on the secondary side. Such a phase shift angle becomes another critical control variable besides the switching frequency. In other words, the output voltage and power are controlled by both the switching frequency and the phase shift angle. In this embodiment, resonant capacitor voltages V.sub.cr1 to V.sub.cr3 have no DC-bias voltage due to the primary side circuit structure. Resonant currents i.sub.r1 to i.sub.r3 are interleaved with each other for 120° due to the interleaved switch control signals. These interleaved currents can provide minimal ripple on the components to further improve the converter performance.
(74) n-Stacked Half Bridge Resonant Converter
(75)
(76) Variable switching frequency control can be used to regulate the output voltage and output power of resonant converter 700. All switches S.sub.1 to S.sub.(2n) operate with the same switching frequency and have identical duty cycles of approximately 50%. To achieve zero-voltage-switching of the complementary-operated primary side switches of the same half bridge, a small dead time is provided between the turn-on and turn-off instants of these complementary-operated switches. The switch control signals of each half bridge are interleaved with each other with a phase shift of 360°/n, where n stands for the number of phases in converter 700. The resonant currents for all resonant tanks are sinusoid if the magnetizing current is negligible when resonant converter 700 operates at its resonant frequency. Each resonant current is interleaved with each other with 360°/n phase shift angle due to the interleaved switch control signals. This interleaved current can provide the minimal ripple on the components to further improve the converter performance.
(77) The total n number of the separated transformer can be integrated to less than n number of transformers. For example,
(78)
(79) All of the control methods disclosed herein can be implemented in the n-stacked half bridge resonant converter.
(80) B. Stacked Serial-Half-Bridge Resonant Converter
(81) Three-Stacked Serial-Half-Bridge Resonant Converter
(82)
(83) As shown in
(84) As shown in
(85) In this embodiment, three separated transformers TR.sub.1, TR.sub.2, and TR.sub.3 are used. Each transformer has one primary side winding and one secondary side winding. A first end of each transformer's primary side winding is connected to a middle point (points B, D and F) of the lower half bridge of each serial-half-bridge. A second end of each transformer's primary side winding is coupled to the other side of each resonant tank. Three phase diode bridges 820 in parallel perform the secondary side rectification.
(86) Variable switching frequency control can be used to regulate the output voltage and output power of the stacked serial half bridge resonant converter 800.
(87)
(88) n-Stacked Serial-Half-Bridge Resonant Converter
(89)
(90) Variable switching frequency control can be used to regulate the output voltage and output power of the stacked serial half bridge resonant converter 900. All switches operate with the same switching frequency and have identical duty cycles of approximately 50%. To achieve zero-voltage-switching of the complementary-operated primary side switches of the same leg, a small dead time is provided between the turn-on and turn-off instants of these complementary-operated switches. The switch control signals of each serial half bridge are interleaved with each other with a phase shift of 360°/n. For example, the four control signals of the first serial half bridge have 360°/n degree phase shift angle with the four control signals of the second serial half bridge. The resonant currents for all n resonant tanks are sinusoid if the magnetizing current is negligible, when the resonant converter operates at its resonant frequency. Due to the interleaved switch control signals, each resonant current is interleaved with each other with a phase shift angle of 360°/n. The interleaved currents provide the minimal ripple on the components to further improve the converter performance.
(91) The total n number of separated transformers can be integrated to less than n transformers. For example,
(92) All of the secondary side diodes in
(93)
(94) C. Input Capacitor Voltage Balancing Control Method
(95) Voltage Balancing Control Method for Stacked Half Bridge Resonant Converter
(96) One challenge to operate a stacked half bridge resonant converter is to balance the input capacitor voltages when mismatches exist in the practical circuit, like capacitor equivalent series resistances (ESR) mismatch, timing mismatch of gate signals for the switches and the resonant parameters mismatch under practical tolerance.
(97) Various approaches are possible to balance the input capacitor voltages for different primary stacking structures. The first one is to adjust the duty cycle of the control signals of the switches.
(98) Another approach is to adjust the phase shift angle between the control signals of each half bridge cell. Ideally, 360°/n phase shift angle is implemented between the control signals of each half bridge cell. When detected voltage imbalance by the sensing circuit is greater than a predefined threshold voltage Vth, a proper modified phase shift angle is then implemented to each phase leg to balance the capacitor voltage by changing the power delivered from each phase capacitor to the resonant tank.
(99)
(100)
(101) Voltage Balancing Control Method for Stacked Serial-Half-Bridge Resonant Converter
(102) A hybrid control scheme including two control loops can balance the input capacitor voltages in stacked serial-half-bridge resonant converter.
(103) The second loop of the control scheme is the external voltage balancing loop between all serial-half-bridge cells aiming to balance the average capacitor voltage of each cell. The voltages of the two capacitors in each serial-half-bridge cell are sensed and the average voltage of each cell is then calculated. The average voltage in then compared with the reference voltage. If the voltage difference is greater than the predefined threshold voltage, an extra duty cycle is generated by a dedicated controller. The extra duty cycle is implemented to all four switch control signals in a corresponding serial-half-bridge cell. In other words, each-serial-half bridge cell has its own extra duty cycle, where the extra duty cycle is calculated based on the voltage difference between its average capacitor voltage and the reference voltage. It is appreciated that the extra duty cycle can have a positive value or negative value with respect to the original duty cycle.
(104) D. Stacked Full Bridge Resonant Converter
(105) Three Stacked Full Bridge Resonant Converter
(106)
(107) As shown in
(108) Likewise, second full bridge inverter cell 1102 includes four switches S.sub.5, S.sub.6, S.sub.7, and S.sub.8. Point C between switches S.sub.5 and S.sub.7 is connected to one end of a resonant tank including a resonant capacitor C.sub.r2 and a resonant inductor L.sub.r2 in series. A first end of the primary side winding of transformer TR.sub.2 is connected to the other side of the resonant tank. A second end of the primary side winding of transformer TR.sub.2 is connected to point D between switches SG and S.sub.8.
(109) Moreover, third full bridge inverter cell 1103 includes four switches S.sub.9, S.sub.10, S.sub.11, and S.sub.12. Point E between switches S.sub.9 and S.sub.11 is connected to one end of a resonant tank including a resonant capacitor C.sub.r3 and a resonant inductor L.sub.r3 in series. A first end of the primary side winding of transformer TR.sub.3 is connected to the other side of the resonant tank. A second end of the primary side winding of transformer TR.sub.3 is connected to point F between switches S.sub.10 and S.sub.12.
(110) Three phase diode bridges 1120 in parallel perform the secondary side rectification, which is coupled with the secondary side windings of the three transformers TR.sub.1, TR.sub.2, and TR.sub.3.
(111) Variable switching frequency control can be used to regulate the output voltage and output power of three-stacked full bridge resonant converter.
(112) n-Stacked Full Bridge Resonant Converter
(113)
(114) Variable switching frequency control can be used to regulate the output voltage and output power of n-stacked full bridge resonant converter. All switches operate with the same switching frequency and have identical duty cycles of approximately 50%. To achieve zero-voltage-switching of the complementary-operated primary side switches of the same leg, a small dead time is provided between the turn-on and turn-off instants of these complementary-operated switches. The switches control signals of each full bridge are interleaved with each other full bridge control signals with a phase shift of 360°/n. The resonant currents for all n resonant tanks are sinusoid if the magnetizing current is negligible when the resonant converter operates at its resonant frequency. Each resonant current is interleaved with each other with a phase shift of 360°/n due to the interleaved switch control signals. The interleaved currents provide the minimal ripple on the components to further improve the converter performance.
(115) The total n number of the separated transformer can be integrated to less than n number of transformers to reduce the complexity of the system. For example,
(116)
(117) Stacked Half Bridge Rectifier with Transformer Star Connection
(118)
(119) This resonant rectifier employs three half bridges D.sub.1 to D.sub.6 in stack in the secondary side. First diode bridge D.sub.1 and D.sub.2 is connected in parallel with a first output capacitor C.sub.O1. Second diode bridge D.sub.3 and D.sub.4 is connected in parallel with a second output capacitor C.sub.O2. Third diode bridge D.sub.5 and D.sub.6 is connected in parallel with a third output capacitor C.sub.O3. Output capacitors C.sub.O1, C.sub.O2, and C.sub.O3 are connected in series to provide the output voltage V.sub.O to a load R. The middle point of first diode bridge D.sub.1 and D.sub.2 is connected to one end of the secondary side winding of first transformer TR.sub.2 through a DC-blocking capacitor C.sub.s1. The middle point of second diode bridge D.sub.3 and D.sub.4 is connected to one end of the secondary side winding of second transformer TR.sub.2 through a DC-blocking capacitor C.sub.s2. The middle point of third diode bridge D.sub.5 and D.sub.6 is connected to one end of the secondary side winding of third transformer TR.sub.3 through a DC-blocking capacitor C.sub.s3. The other end of the secondary side winding of each transformer is connected together as point P, which is also defined as transformer star connection. The DC-blocking capacitors C.sub.s1, C.sub.s2, and C.sub.s3 establish the required DC bias voltage for the proper operation of the rectifier.
(120) Variable switching frequency control may be applied to regulate the output voltage and output power of the stacked half bridge resonant converter with the three-stacked half bridge rectifier of one embodiment of the present disclosure.
(121)
(122) The total n number of the separated transformer can be integrated to less than n number of transformers. For example,
(123)
(124) Stacked Half Bridge Rectifier
(125)
(126) The middle point of first diode bridge D.sub.1 and D.sub.2 is connected to one end of the secondary side winding of first transformer TR.sub.1. The middle point of second diode bridge D.sub.3 and D.sub.4 is connected to one end of the secondary side winding of second transformer TR.sub.2. The middle point of third diode bridge D.sub.5 and D.sub.6 is connected to one end of the secondary side winding of third transformer TR.sub.3. The other end of the secondary side winding of first transformer TR.sub.1 is connected to the middle point of output capacitors C.sub.O1 and C.sub.O2. The other end of the secondary side winding of second transformer TR.sub.2 is connected to the middle point of output capacitors C.sub.O3 and C.sub.O4. The other end of the secondary side winding of third transformer TR.sub.3 is connected to the middle point of output capacitors C.sub.O5 and C.sub.O6.
(127) Variable switching frequency control can be applied to regulate the output voltage and output power of the three phase resonant converter with the three-stacked half bridge rectifier of one embodiment of the present disclosure.
(128)
(129) The total n number of the separated transformers as shown in
(130)
(131) Stacked Full Bridge Rectifier
(132)
(133) One end of the secondary side winding of first transformer TR.sub.1 is connected to the middle point between diodes D.sub.1 and D.sub.3, while the other end of the secondary side winding of first transformer TR.sub.1 is connected to the middle point between diodes D.sub.2 and D.sub.4. One end of the secondary side winding of second transformer TR.sub.2 is connected to the middle point between diodes D.sub.5 and D.sub.7, while the other end of the secondary side winding of second transformer TR.sub.2 is connected to the middle point between diodes D.sub.6 and D.sub.8. One end of the secondary side winding of third transformer TR.sub.3 is connected to the middle point between diodes D.sub.9 and D.sub.11, while the other end of the secondary side winding of third transformer TR.sub.2 is connected to the middle point between diodes D.sub.10 and D.sub.12. Variable switching frequency control can be applied to regulate the output voltage and output power of the stacked half bridge resonant converter with the proposed three-stacked full bridge rectifier. Blocking capacitors are not required in this rectifier.
(134)
(135) The total n number of the separated transformer can be integrated to less than n number of transformers.
(136)
(137) Stacked Serial-Half-Bridge Rectifier
(138)
(139) One end of the secondary side winding of first transformer TR.sub.1 is connected to the middle point between diodes D.sub.1 and D.sub.2, while the other end of the secondary side winding of first transformer TR.sub.1 is connected to the middle point between diodes D.sub.3 and D.sub.4. One end of the secondary side winding of second transformer TR.sub.2 is connected to the middle point between diodes D.sub.5 and D.sub.6, while the other end of the secondary side winding of second transformer TR.sub.2 is connected to the middle point between diodes D.sub.7 and D.sub.8. One end of the secondary side winding of third transformer TR.sub.3 is connected to the middle point between diodes D.sub.9 and D.sub.10, while the other end of the secondary side winding of third transformer TR.sub.3 is connected to the middle point between diodes D.sub.11 and D.sub.12.
(140) Variable switching frequency control can be applied to regulate the output voltage and output power of the stacked half bridge resonant converter with the three-stacked serial-half-bridge rectifier of one embodiment of the present disclosure. The blocking capacitor C.sub.s1 to C.sub.s3 are applied to establish required DC bias voltage for the proper operation of the rectifier in
(141)
(142) The total n number of the separated transformer can be integrated to less than n number of transformers.
(143) As shown in
(144)
(145) Generalization of Stacked Resonant Converter
(146) Various resonant converters and rectifiers based on stacked half bridge, stacked full bridge and stacked serial-half-bridge are described separately in previous sections.
(147) On the secondary side, a total five different topologies can be used as rectifiers. The first is the n-stacked half bridge structure with transformer star connection, which is the rectifier of the topology in
(148) N separated transformers are applied to provide required turns ratio and galvanic isolation. The n transformers can be further integrated into less than n transformers. The rectifier stage diodes can be replaced by active switches for synchronous rectification and bidirectional operation. Variable switching frequency control, PWM duty cycle modulation and phase shift modulation can be applied to regulate the output voltage and output power in this system.
(149)
(150) On the secondary side, a total p stacked structures are in connected parallel. Each stacked structure includes q stacked basic circuit elements, which is similar to the rectifier stage in
(151) For the purposes of describing and defining the present disclosure, it is noted that terms of degree (e.g., “substantially,” “slightly,” “about,” “comparable,” etc.) may be utilized herein to represent the inherent degree of uncertainty that may be attributed to any quantitative comparison, value, measurement, or other representation. Such terms of degree may also be utilized herein to represent the degree by which a quantitative representation may vary from a stated reference (e.g., about 10% or less) without resulting in a change in the basic function of the subject matter at issue. Unless otherwise stated herein, any numerical value appearing in the present disclosure are deemed to be both the stated value, and alternatively modified by a term of degree (e.g., “about”).
(152) Although various embodiments of the present disclosure have been described in detail herein, one of ordinary skill in the art would readily appreciate modifications and other embodiments without departing from the spirit and scope of the present disclosure as stated in the appended claims.