Resonant switched capacitor converter, its controller circuit, and electronic device using the same

The controller circuit adjusts the switching frequency to maintain optimal conditions, addressing efficiency losses due to resonant frequency variations, enabling zero-current or zero-voltage switching in resonant switched capacitor converters.

JP7747457B2Active Publication Date: 2025-10-01ROHM CO LTD
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Patent Information

Application Number
JP2021117341
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-07-15
Publication Date
2025-10-01
Estimated Expiration
2041-07-15

AI Technical Summary

Technical Problem

The resonant frequency of resonant switched capacitor converters varies due to manufacturing variations and environmental factors, leading to hard switching and reduced efficiency when the switching frequency operates below the resonant frequency.

Method used

A controller circuit with a frequency controller that adjusts the switching frequency based on the output voltage of the resonant switched capacitor converter to maintain optimal operating conditions, enabling zero-current or zero-voltage switching.

Benefits of technology

Improves efficiency by ensuring soft switching operations and maintaining high efficiency despite variations in resonant frequency.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a resonance switched capacitor converter with improved efficiency.SOLUTION: A controller IC 200 of a resonance switched capacitor converter 100 comprises a drive circuit 120 and a frequency controller 130. The frequency controller 130 controls the switching frequency on the basis of an output voltage VOUT of the resonance switched capacitor converter 100.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present disclosure relates to resonant switched capacitor converters. [Background technology]

[0002] DC / DC converters and charge pumps are used to generate voltages higher or lower than the power supply voltage. DC / DC converters that use inductors as energy storage elements can control the output voltage, but they have the problem of reduced efficiency due to switching operations.

[0003] In applications that require high efficiency, switched capacitor converters (charge pumps) are used, which do not require inductors as energy storage elements. One type of switched capacitor converter known is one that adds a resonant inductor in series with the flying capacitor to achieve resonant operation (called a resonant switched capacitor converter). A resonant switched capacitor converter enables zero-current switching (soft switching), enabling highly efficient operation.

[0004] One type of resonant switched capacitor converter is known as a switched tank converter, which is a configuration in which an inductor is added to a Dickson-type charge pump. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] U.S. Patent No. 9917517 Summary of the Invention [Problem to be solved by the invention]

[0006] The resonant frequency of a resonant switched capacitor converter varies depending on operating conditions such as manufacturing variations in the inductors and capacitors, voltage, temperature, etc. If the switching frequency of a resonant switched capacitor converter operates in a region lower than the resonant frequency, hard switching occurs, resulting in reduced efficiency.

[0007] It is in this context that the present disclosure has been made, and one of its exemplary objects is to provide a resonant switched-capacitor converter with improved efficiency. [Means for solving the problem]

[0008] An aspect of the present disclosure relates to a controller circuit for a resonant switched capacitor converter, the controller circuit including a frequency controller for controlling a switching frequency based on an output voltage of the resonant switched capacitor converter.

[0009] Another aspect of the present disclosure is a method for controlling a resonant switched capacitor converter, comprising the steps of detecting an output voltage of the resonant switched capacitor converter and varying a switching frequency based on the output voltage.

[0010] Any combination of the above elements, or mutual substitution of elements or expressions between methods, devices, systems, etc., are also valid aspects of the present invention or the present disclosure. Furthermore, the description in this section (Means for Solving the Problems) does not explain all essential features of the present invention, and therefore, subcombinations of the described features may also constitute the present invention. [Effects of the Invention]

[0011] According to certain aspects of the present disclosure, the efficiency of a resonant switched capacitor converter can be improved. [Brief explanation of the drawings]

[0012] [Figure 1]FIG. 1 is a circuit diagram of a resonant switched capacitor converter according to an embodiment. [Figure 2] FIG. 2 is a diagram showing the relationship between the gain and the switching frequency ω of the resonant switched capacitor converter. [Figure 3] FIG. 3 is a circuit diagram of the resonant switched capacitor converter according to the first embodiment. [Figure 4] FIG. 4 is a time chart illustrating the operation of the resonant switched capacitor converter. [Figure 5] FIG. 5 is a circuit diagram of the controller IC according to the first embodiment. [Figure 6] FIG. 6 is a circuit diagram of a controller IC according to the second embodiment. [Figure 7] FIG. 7 is a diagram illustrating the operation of the frequency controller of FIG. [Figure 8] FIG. 8 is a circuit diagram of a resonant switched capacitor converter according to a third embodiment. [Figure 9] FIG. 9 is a diagram illustrating the operation of the resonant switched capacitor converter of FIG. [Figure 10] FIG. 10 is an operational waveform diagram of the resonant switched capacitor converter of FIG. [Figure 11] FIG. 11 is a circuit diagram of a resonant switched capacitor converter according to a fourth embodiment. [Figure 12] FIG. 12 is a circuit diagram of a resonant switched capacitor converter according to a fifth embodiment. [Figure 13] FIG. 13 is a diagram illustrating an example of an electronic device including a resonant switched capacitor converter. DETAILED DESCRIPTION OF THE INVENTION

[0013] (Outline of the embodiment) A summary of some exemplary embodiments of the present disclosure is provided. This summary is intended to provide a simplified overview of some concepts of one or more embodiments in order to provide a basic understanding of the embodiments as a prelude to the more detailed description that follows. It is not intended to limit the scope of the invention or disclosure. This summary is not an exhaustive overview of all possible embodiments, and is not intended to identify key elements of all embodiments or to delineate the scope of some or all aspects. For convenience, the term "one embodiment" may refer to one embodiment (example or variant) or multiple embodiments (examples or variants) disclosed herein.

[0014] In one embodiment, a controller circuit for a resonant switched capacitor converter includes a frequency controller that controls a switching frequency based on an output voltage of the resonant switched capacitor converter.

[0015] According to this configuration, by optimizing the switching frequency according to the output voltage of the resonant switched capacitor converter, even if the resonant frequency varies, the resonant switched capacitor converter can be made to perform soft switching operation, thereby improving efficiency.

[0016] In one embodiment, the frequency controller may control the switching frequency so that the output voltage of the resonant switched capacitor converter approaches a maximum value, thereby achieving zero current switching (ZCS).

[0017] In one embodiment, the frequency controller may change the switching frequency in the first direction in the next frequency control cycle when changing the switching frequency in a first direction results in an increase in the output voltage of the resonant switched capacitor converter, and may change the switching frequency in a second direction opposite to the first direction in the next frequency control cycle when changing the switching frequency in a first direction results in a decrease in the output voltage of the resonant switched capacitor converter.

[0018] In one embodiment, the frequency controller may vary the switching frequency in a region where the switching frequency is higher than the resonant frequency of the resonant switched capacitor converter, thereby improving efficiency through zero voltage switching (ZVS).

[0019] In one embodiment, the frequency controller may vary the switching frequency of the resonant switched capacitor converter so that the output voltage approaches a target voltage, thereby allowing the output voltage to be set to any desired voltage level.

[0020] In one embodiment, the controller circuit may be monolithically integrated on a single semiconductor substrate. "Monolithic integration" includes cases where all of the circuit components are formed on a semiconductor substrate, or where the main circuit components are monolithically integrated, and some resistors, capacitors, etc., for adjusting circuit constants may be provided outside the semiconductor substrate. By integrating the circuit on a single chip, the circuit area can be reduced and the characteristics of the circuit elements can be maintained uniformly.

[0021] (Embodiment) The present invention will be described below based on preferred embodiments with reference to the drawings. The same or equivalent components, parts, and processes shown in each drawing are designated by the same reference numerals, and redundant descriptions will be omitted where appropriate. Furthermore, the embodiments are illustrative and do not limit the invention, and all features and combinations thereof described in the embodiments are not necessarily essential to the invention.

[0022] In this specification, "a state in which component A is connected to component B" includes not only a case in which component A and component B are directly physically connected to each other, but also a case in which component A and component B are indirectly connected to each other via other components that do not substantially affect the electrical connection between them or that do not impair the function or effect achieved by their connection.

[0023] Similarly, "a state in which component C is provided between component A and component B" includes not only cases in which components A and C, or components B and C, are directly connected, but also cases in which they are indirectly connected via other components that do not substantially affect the electrical connection state between them or impair the functions or effects achieved by their combination.

[0024] Furthermore, "signal A (voltage, current) corresponds to signal B (voltage, current)" means that signal A has a correlation with signal B, and specifically means (i) when signal A is signal B, (ii) when signal A is proportional to signal B, (iii) when signal A is obtained by level-shifting signal B, (iv) when signal A is obtained by amplifying signal B, (v) when signal A is obtained by inverting signal B, (vi) or any combination thereof. Those skilled in the art will understand that the scope of "corresponding to" is determined depending on the type and application of signals A and B.

[0025] The vertical and horizontal axes of the waveform diagrams and time charts referred to in this specification have been appropriately enlarged or reduced to facilitate understanding, and the waveforms shown have been simplified, exaggerated, or emphasized to facilitate understanding.

[0026] (Embodiment) 1 is a circuit diagram of a resonant switched capacitor converter 100 according to an embodiment. The resonant switched capacitor converter 100 includes at least one capacitor C1 to Cn, an inductor L, a switch circuit 110, a drive circuit 120 that drives the switch circuit 110, and a frequency controller 130. Of these, at least the drive circuit 120 and the frequency controller 130 are integrated into a single semiconductor chip (hereinafter referred to as a controller IC (Integrated Circuit)) 200. The switch circuit 110 may also be integrated into the controller IC 200.

[0027] The topology of the resonant switched capacitor converter 100 is not particularly limited, and the gain of the resonant switched capacitor converter 100, that is, the voltage division ratio or voltage step-up ratio, is also not particularly limited.

[0028] The inductor L1 is connected in series with one of the capacitors C1 to Cn (a flying capacitor) to form an LC resonant circuit. Note that a plurality of inductors may be provided corresponding to a plurality of flying capacitors.

[0029] The switch circuit 110 includes an input node IN, an output node OUT, a ground node GND, and a plurality of switches SW. The input node IN is connected to an input voltage V IN is supplied to the output node OUT, and the output voltage V of the resonant switched capacitor converter 100 is supplied to the output node OUT. OUT The ground node GND is grounded.

[0030] The drive circuit 120 includes drivers Dr1 to Drm that drive the plurality of switches SW1 to SWm that make up the switch circuit 110.

[0031] The feedback pin FB of the controller IC200 is connected to the output voltage V OUT Feedback voltage V according to FB is fed back. Feedback voltage V FB is the output voltage V OUT may be, the output voltage V OUT It may be a voltage obtained by dividing the voltage.

[0032] Feedback voltage V FB is input to the frequency controller 130. The frequency controller 130 generates a feedback voltage V FB Based on this, the output voltage V OUT For example, the frequency controller 130 includes a frequency-controllable oscillator, and the oscillation frequency of the oscillator is controlled by a feedback voltage V FBThe driving circuit 120 is controlled by a clock CLK based on the output of the oscillator.

[0033] The above is the configuration of the controller IC 200 and the resonant switched capacitor converter 100. Next, the operation will be described.

[0034] 2 is a diagram showing the relationship between the gain and switching frequency ω of the resonant switched capacitor converter 100. Here, a 1 / 2 switched capacitor converter will be described as an example. The characteristics of the switched capacitor converter are expressed by the following equation.

number

[0035] ω0 is the resonant frequency. When the switching frequency ω matches the resonant frequency ω0, the gain G reaches its maximum value of 1 / 2, and decreases as it deviates from that frequency. In particular, when the switching frequency ω becomes lower than the resonant frequency ω0, hard switching occurs, causing a decrease in efficiency. R represents the impedance of the load of the resonant switched capacitor converter 100. Q L is the Q factor of the circuit and Z0 is the characteristic impedance.

[0036] When the load is heavy (when R becomes small), the Q value becomes large, and the decrease in gain becomes large when the switching frequency ω deviates from the resonance frequency ω0.

[0037] The resonant frequency ω0 is determined by the capacitance C of the flying capacitor and the inductance L of the inductor connected in series with it, so if the circuit constants vary, the resonant frequency ω0 will shift. Therefore, in a configuration in which the switch circuit 110 operates based on a clock CLK generated by an oscillator that oscillates at the same frequency as the design value of the resonant frequency ω0, when the resonant frequency ω0 deviates from the design value, the expected output voltage V OUT This will result in a decrease in efficiency.

[0038] According to the controller IC200 in Figure 1, the output voltage V OUT While monitoring, the expected output voltage V OUT The switching frequency ω can be adjusted to obtain a high efficiency or to operate at a high efficiency, thereby improving efficiency. In particular, since hard switching occurs in the region where ω<ω0 and efficiency decreases, the controller IC 200 may operate the resonant switched capacitor converter 100 in the region where ω≧ω0, thereby improving efficiency.

[0039] The present disclosure covers various devices and methods that can be understood as the block diagram or circuit diagram of Figure 1 or derived from the above description, and is not limited to a specific configuration. Below, more specific configuration examples and examples will be described not to narrow the scope of the present disclosure, but to aid in understanding and clarify the essence and operation of the present disclosure and the present invention.

[0040] Example 1 3 is a circuit diagram of a resonant switched capacitor converter 100A according to the first embodiment. The resonant switched capacitor converter 100A has a gain of 1 / 2, and the input voltage V IN is stepped down by half and the output voltage V OUT =V IN The resonant switched capacitor converter 100A includes two capacitors C1 and C2, one inductor L1, and a controller IC 200A. The switch circuit 110A includes switches SW1 to SW4. This resonant switched capacitor converter 100A has a configuration in which an inductor is added in series with the flying capacitor of the 1 / 2 charge pump.

[0041] The switches SW1 to SW4 are driven by a controller IC 200A. In this embodiment, the switches SW1 to SW4 are N-channel MOSFETs (Metal Oxide Semiconductor Field Effect Transistors). A drive signal for the ith switch SWi isi It is written as S i When is H (high), the switch SWi is on, and S i When is L (low), the switch SWi is off.

[0042] The resonant switched capacitor converter 100A can be switched between a first state φ1 and a second state φ2. In the first state φ1, the first switch SW1 and the third switch SW3 are on, and the second switch SW2 and the fourth switch SW4 are off. At this time, an LC resonant circuit 106 including a capacitor C1 and an inductor L1 is connected in series with a capacitor C2, and an input voltage V IN When C1=C2, the voltage across each capacitor C1 and C2 is V IN It is charged at / 2.

[0043] In the second state φ2, the first switch SW1 and the third switch SW3 are off, and the second switch SW2 and the fourth switch SW4 are on. At this time, the LC resonant circuit 106 including the capacitor C1 and the inductor L1 is connected in parallel with the capacitor C2, and V OUT =V IN / 2 occurs.

[0044] 4 is a time chart illustrating the operation of the resonant switched capacitor converter 100A. In FIG. 4, the drive signals S1 to S4 and the resonant current I flowing through the LC resonant circuit 106 are shown. RES , input current I in , output current I OUT is shown.

[0045] Resonant current I RES When the frequency (resonant frequency) of the inverter and the switching frequency match, the inverter enters a zero current switching (soft switching) state, enabling highly efficient operation. SW is the switching period, which is the period of the clock CLK generated in the controller IC 200A, and represents the reciprocal of the switching frequency.

[0046] Next, the configuration of the controller IC 200A will be described.

[0047] 5 is a circuit diagram of a controller IC 200A according to the first embodiment. The controller IC 200A includes a drive circuit 120A and a frequency controller 130A. The drive circuit 120A includes four drivers Dr1 to Dr4 corresponding to four switches SW1 to SW4. The drivers Dr1 and Dr3 operate in phase with the clock CLK, and the drivers Dr2 and Dr4 operate in anti-phase with the clock CLK.

[0048] The frequency controller 130A includes a variable frequency oscillator 132 and a frequency adjustment unit 134. The frequency adjustment unit 134 adjusts the feedback voltage V FB (Output voltage V OUT ) and adaptively controls the frequency of the variable frequency oscillator 132.

[0049] Specifically, the frequency adjuster 134 adjusts the output voltage V OUT The frequency of the variable frequency oscillator 132 is controlled in each frequency control cycle j so that the feedback voltage V approaches its maximum value. FB The current value of V FBj and the feedback voltage V FB Past values ​​of V FB(j-1) The frequency adjuster 134 is configured to be able to compare the feedback voltage V FB Past value of V FBj-1 The circuit includes a storage unit 136 such as a sample-and-hold circuit or memory for storing the signal, and a comparison circuit 138.

[0050] The frequency adjuster 134 changes the switching frequency, i.e., the frequency of the variable frequency oscillator 132, in a first direction (for example, an upward direction) in a certain frequency control cycle j. The resulting feedback voltage V FBj and the past feedback voltage V FBj-1 is compared by the comparator circuit 138. As a result of the comparison, the output voltage V OUT (Feedback voltage V FB) increases, the frequency of the variable frequency oscillator 132 is changed in the first direction (increasing direction) in the next frequency control cycle j+1. OUT (Feedback voltage V FB ) decreases, the frequency of the variable frequency oscillator 132 is changed in a second direction (downward direction) opposite to the first direction in the next frequency control cycle j+1. FBj is the past value V in the next frequency control cycle j+1 FBj This becomes:

[0051] The frequency adjuster 134 repeats this frequency control cycle to adjust the output voltage V OUT As can be seen in Figure 2, the output voltage V OUT When takes the maximum value, the switching frequency ω and the resonant frequency ω0 coincide, enabling zero current switching and improving efficiency.

[0052] Example 2 6 is a circuit diagram of a controller IC 200B according to Example 2. The controller IC 200B can be used in the resonant switched capacitor converter 100A of FIG. 3 as a substitute for the controller IC 200A.

[0053] The controller IC 200B includes a drive circuit 120B and a frequency controller 130B. The configuration of the drive circuit 120B is similar to that of the drive circuit 120A in FIG.

[0054] The frequency controller 130B includes a variable frequency oscillator 132 and a feedback circuit 140.

[0055] The variable frequency oscillator 132 is a VCO (Voltage Controlled Oscillator) or a DCO (Digital Controlled Oscillator), and is controlled by a control signal S CTRL It oscillates at a frequency that corresponds to the signal level.

[0056] The feedback circuit 140 receives the output voltage V OUT Target Level V OUT(REF) The reference voltage V REF is input. Output voltage V OUT The feedback voltage V FB If the output voltage V OUT Target Level V OUT(REF) is the reference voltage V REF This becomes:

[0057] The feedback circuit 140 controls the frequency of the variable frequency oscillator 132 within the range where ω>ω0. Since the resonant switched capacitor converter 100A operates within the range where ω>ω0, its gain operates in a region smaller than 1 / 2, and the output voltage V OUT Target Level V OUT(REF) is V IN It is set lower than / 2.

[0058] The feedback circuit 140 generates a feedback voltage V FB and the reference voltage V REF The frequency of the variable frequency oscillator 132 is controlled so that the error approaches zero. The feedback circuit 140 can be configured as an analog circuit or a digital circuit. For example, the feedback circuit 140 controls the feedback voltage V FB and the reference voltage V REF It includes an error amplifier that amplifies the error of the control signal S CTRL to the variable frequency oscillator 132. Alternatively, the feedback circuit 140 may be configured as a digital circuit including a PI (proportional integral) controller or a PID (proportional integral derivative) controller.

[0059] 7 is a diagram illustrating the operation of the frequency controller 130B of FIG. 6. The operating range of the resonant switched capacitor converter 100A is limited to the range ω>ω0, and within this range, the output voltage V OUT Target Level V OUT(REF) is determined.

[0060] As a result of the feedback control of the frequency controller 130B, the frequency of the variable frequency oscillator 132, i.e., the switching frequency ω of the resonant switched capacitor converter 100A, is V OUT =V OUT(REF) The optimum frequency ω OPT is stabilized to

[0061] The above is the operation of the controller IC 200B. In the first embodiment, zero-current switching is realized by operating at ω=ω0, whereas in the second embodiment, zero-voltage switching is possible by operating at ω>ω0, thereby realizing highly efficient operation.

[0062] In Example 1, the output voltage V OUT is the input voltage V IN Since the input voltage V IN When the voltage fluctuates, the output voltage V OUT On the other hand, according to the second embodiment, the input voltage V IN Even if the output voltage V OUT is the reference voltage V REF The output voltage can be stabilized at a target level determined according to the

[0063] Example 3 8 is a circuit diagram of a resonant switched capacitor converter 100C according to a third embodiment. The resonant switched capacitor converter 100C is a switched tank converter having a gain of 1 / 4. The input voltage V IN is stepped down to 1 / 4 and the output voltage V OUT =V IN Generates / 4.

[0064] The resonant switched capacitor converter 100C includes three capacitors C1 to C3, two inductors L1 and L3, and a controller IC 200C. The switch circuit 110C includes switches SW1 to SW10. The resonant switched capacitor converter 100C is a switched tank converter in which inductors L1 and L3 are added to a Dickson charge pump.

[0065] The first switch SW1 to the fourth switch SW4 are N-channel MOSFETs, and are connected in series between the input terminal IN and the output terminal OUT.

[0066] The pair of the fifth switch SW5 and the sixth switch SW6, the pair of the seventh switch SW7 and the eighth switch SW8, and the pair of the ninth switch SW9 and the tenth switch SW10 configure inverters INV1 to INV3, respectively.

[0067] The switches SW1 to SW10 are driven by a controller IC200C.

[0068] Figure 9 is a diagram illustrating the operation of the resonant switched capacitor converter 100C in Figure 8. The resonant switched capacitor converter 100C can switch between a first state φ1 and a second state φ2. In the first state φ1, the switches SW1, SW3, SW5, SW7, and SW9 are on, and the remaining switches SW2, SW4, SW6, SW8, and SW10 are off.

[0069] In the second state φ2, the switches SW1, SW3, SW5, SW7, and SW9 are turned off, and the remaining switches SW2, SW4, SW6, SW8, and SW10 are turned on.

[0070] By alternately repeating the first state φ1 and the second state φ2, the voltage across the LC resonant circuit 106_1 of the capacitor C1 and the inductor L1 becomes 36V, the voltage across the capacitor C2 becomes 24V, and the voltage across the LC resonant circuit 106_2 of the capacitor C3 and the inductor L3 becomes 12V, resulting in an output voltage V of 12V. OUT can be obtained.

[0071] Fig. 10 is an operational waveform diagram of the resonant switched capacitor converter 100C of Fig. 8. Fig. 10 shows the states of the switches SW1 to SW10 and the current i flowing in the first state φ1. φ1 , the current i flowing in the second state φ2 φ2 is shown.

[0072] By operating in a resonant state where ω=ω0, zero current switching (ZCS), i.e., ZCS turn-on and ZCS turn-off, becomes possible, resulting in high efficiency.

[0073] The controller IC 200C of the resonant switched capacitor converter 100C according to the third embodiment can be configured based on the controller IC 200A described in the first embodiment, by simply increasing the number of drivers in the drive circuit 120A of the controller IC 200A to 10. This configuration enables zero current switching and achieves high efficiency, similar to the first embodiment.

[0074] Alternatively, the controller IC 200C of the resonant switched capacitor converter 100C according to the third embodiment may be configured based on the controller IC 200B described in the second embodiment, and the number of drivers in the drive circuit 120B of the controller IC 200B may be increased to 10. This configuration enables zero voltage switching, as in the second embodiment, and achieves high efficiency. OUT <V IN In the range of / 4, the output voltage V OUT to any target level V OUT(REF) can be stabilized to

[0075] Example 4 11 is a circuit diagram of a resonant switched capacitor converter 100D according to a fourth embodiment. This resonant switched capacitor converter 100D has a gain of 1 / 4, similar to the third embodiment, and operates in response to an input voltage V IN is stepped down to 1 / 4 and the output voltage V OUT=V IN Generates / 4.

[0076] The resonant switched capacitor converter 100D has a configuration in which the 1 / 2 resonant switched capacitor converter 100A described in the first embodiment is connected in series in two stages. The resonant switched capacitor converter 100A in the front stage receives an input voltage V IN is multiplied by 1 / 2, and the intermediate voltage V MID The downstream resonant switched capacitor converter 100B generates an intermediate voltage V MID is multiplied by 2, and the output voltage V OUT Generate.

[0077] In the fourth embodiment, a controller IC 200A (or 200B) is provided for each resonant switched capacitor converter 100A. The controller IC 200A (200B) of the preceding resonant switched capacitor converter 100A controls the intermediate voltage V MID The controller IC 200A (200B) of the resonant switched capacitor converter 100A controls the switching frequency of the front-stage resonant switched capacitor converter 100A based on the output voltage V OUT Based on this, the switching frequency of the subsequent resonant switched capacitor converter 100A is controlled.

[0078] This configuration allows the 1 / 4 resonant switched capacitor converter to operate with high efficiency.

[0079] Example 5 12 is a circuit diagram of a resonant switched capacitor converter 100E according to a fifth embodiment. This resonant switched capacitor converter 100E has a gain of 1 / 4, similar to the third and fourth embodiments, and operates in response to an input voltage V IN is stepped down to 1 / 4 and the output voltage V OUT =V IN Generates / 4.

[0080] The resonant switched capacitor converter 100E has a configuration in which two 1 / 2 resonant switched capacitor converters 100A are connected in series, as in the fourth embodiment, but in the fifth embodiment, the controller IC 200E for the two resonant switched capacitor converters 100A is integrated into one chip. The controller IC 200E controls the output voltage V OUT Only the output voltage V OUT Based on this, the switching frequencies of both the front and rear stages are controlled in the same way.

[0081] This configuration allows the 1 / 4 resonant switched capacitor converter to operate with high efficiency.

[0082] (Variation) The above-described embodiment is merely an example, and it will be understood by those skilled in the art that various modifications are possible in the combination of the components and the processing steps. Such modifications will be described below.

[0083] In the embodiments, a 1 / 2 or 1 / 4 converter has been described, but the application of the present disclosure is not limited to this and can be applied to converters with other gains. It can also be applied to switched capacitor converters with a gain greater than 1.

[0084] (Application) 13 is a diagram showing an example of an electronic device 700 including a resonant switched capacitor converter 100. A suitable example of the electronic device 700 is a server. Originally, a 12V power line was connected to the server, and therefore the internal circuit 710 is designed to operate at 12V. The internal circuit 710 may include a CPU (Central Processing Unit), memory, a LAN (Local Area Network) interface circuit, a DC / DC converter that steps down the 12V voltage, and the like.

[0085] In recent years, there has been a trend to replace the bus voltage from 12 V with 48 V in order to reduce the current flowing through the power lines. In this case, a power supply circuit 720 is required that steps down the 48 V power supply voltage to 12 V. The resonant switched capacitor converter 100 with a gain of 1 / 4 described above can be suitably used for such a power supply circuit 720.

[0086] The electronic device 700 is not limited to a server, but may also be an in-vehicle device. While conventional automobile batteries are mainly 12V or 24V, hybrid vehicles may employ 48V systems, which also require a power supply circuit that converts the 48V battery voltage to 12V or 24V. In such cases, the 1 / 2x or 1 / 4x resonant switched capacitor converter 100 can be suitably used.

[0087] Alternatively, the electronic device 700 may be industrial equipment, office automation equipment, or consumer equipment such as audio equipment.

[0088] The embodiments are merely examples, and it will be understood by those skilled in the art that there are various variations in the combination of each component and each treatment process, and that such variations are also included in the present disclosure and can constitute the scope of the present invention. [Explanation of symbols]

[0089] 100 Resonant Switched Capacitor Converter 102 input lines 104 output lines 106 LC resonant circuit 110 Switch Circuit 120 Drive Circuit 130 Frequency Controller 132 Variable Frequency Oscillator 134 Frequency Adjustment Unit 136 Memory section 138 Comparison circuit 140 Feedback Circuit 200 Controller IC SW switch C capacitor L inductor

Claims

1. 1. A controller circuit for a resonant switched capacitor converter, comprising: a frequency controller including a variable frequency oscillator that determines a switching frequency of the resonant switched capacitor converter, the frequency controller comparing a current output voltage of the resonant switched capacitor converter with a past output voltage for each frequency control cycle during a switching operation, and controlling the frequency of the variable frequency oscillator based on a comparison result; The frequency controller a controller circuit configured to vary the switching frequency in a first direction when the output voltage of the resonant switched capacitor converter increases, and to vary the switching frequency in a second direction opposite to the first direction when the output voltage of the resonant switched capacitor converter decreases, in a next frequency control cycle.

2. 10. The controller circuit according to claim 1, which is monolithically integrated on a single semiconductor substrate.

3. A resonant switched capacitor converter comprising a controller circuit according to claim 1 or 2.

4. An electronic device comprising the resonant switched capacitor converter according to claim 3.

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