Driver device including power factor correction circuit

The driver device synchronizes supply voltage with the offset signal to address inefficiencies in switched-mode power supplies, improving efficiency and reducing material and space requirements in power factor correction circuits.

JP7746604B2Active Publication Date: 2025-09-30SIGNIFY HOLDING BV
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Patent Information

Application Number
JP2024565037
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-06-14
Filing Date
2023-04-25
Publication Date
2025-09-30
Estimated Expiration
2043-04-25

AI Technical Summary

Technical Problem

Existing driver devices with power factor correction circuits suffer from high material and space requirements due to two-stage conversion circuits, and switched-mode power supplies experience inefficiencies due to out-of-phase supply and offset signals, leading to significant power losses.

Method used

A driver device with a regulation circuit that synchronizes the supply voltage with the offset signal generated by the switched-mode power supply to reduce power dissipation, using a mechanism that adjusts the supply voltage in phase and amplitude with the offset signal.

Benefits of technology

This synchronization significantly reduces power losses in the switched-mode power supply, enhancing efficiency and reducing material and space requirements, while maintaining voltage requirements.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present invention provides a mechanism for controlling a supply voltage for a switched-mode power supply designed to compensate for AC mains power ripple in a PFC output signal generated by a power factor correction converter. A regulation circuit is used to synchronize the amplitude of the supply voltage with the amplitude of an offset signal generated by the switched-mode power supply used to compensate for the AC mains power ripple in the PFC output signal. The synchronization adjusts the difference between the voltage amplitude of the regulated supply voltage and the voltage amplitude of the offset signal, thereby controlling power dissipation in the switched-mode power supply.
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Description

[Technical Field]

[0001] The present invention relates to the field of driver devices, and more particularly to driver devices that include power factor correction circuits. [Background technology]

[0002] Driver devices are commonly used to supply power to loads, such as light emitting elements. Typically, a driver device is capable of converting (e.g., AC) input power into (e.g., DC) output power suitable for powering the load. Some driver devices include power factor correction (PFC) circuitry to modify or adjust the power factor of a PFC output signal that defines the output power supplied to the load or bus.

[0003] The PFC output signal may be a signal across the output capacitor of a power factor correction circuit, so it is smoothed to emulate a DC signal. However, a power factor correction circuit is a slow-response converter that adjusts its output by sensing the average power. Therefore, the PFC output signal has a ripple (voltage or current) of approximately 100 / 120 Hz, the exact frequency of which depends on the ripple in the AC input power, which is typically approximately 50 / 60 Hz. Particularly in the case of LED lighting, the output luminous flux of an LED lighting device is highly sensitive to the power supplied to the LED lighting device, so it would be advantageous to reduce or attenuate the size of the ripple in the PFC output signal, e.g., to eliminate or compensate for the ripple. If unadjusted, the ripple in the PFC output signal will result in a corresponding ripple in the brightness of the light output by the LED, which will cause flicker that is perceptible to humans or to capture devices (such as cameras).

[0004] A common way to solve this problem in the art is to use a second conversion circuit cascaded from the power factor correction circuit. This topology can be classified as a two-stage conversion circuit. The second conversion circuit conditions the PFC output signal into a more regulated signal. One disadvantage of such a two-stage conversion circuit is the high material cost and high space requirement, since the second conversion circuit needs to process the entire PFC output signal, and its power rating means that it requires very high, large, and materially expensive components.

[0005] It has been proposed to use a switching converter, i.e., a switched-mode power supply, at the output of a power factor correction circuit, where the switching converter is used to compensate only the AC component of the PFC output signal, rather than the entire PFC output signal. This means that the power rating of the switching converter is relatively smaller, resulting in lower cost and size, compared to a two-stage converter. Examples of suitable prior art are described in US 20140252973 A1 and US 2017 / 0288557 A1. This topology is often referred to as or classified as a 1.5-stage or 1.25-stage converter, compared to the two-stage topology described above. Summary of the Invention [Problem to be solved by the invention]

[0006] There is a continuing demand for improved driver devices. [Means for solving the problem]

[0007] The invention is defined by the claims.

[0008] For LED applications, the driver device may be a universal driver and may be connected to a specific one of a variety of potential LED loads / modules with different LED forward voltages. Even after the driver device is connected to a specific LED module, the LED forward voltage of that module may be dynamically changed when one or more of the LEDs in the LED module are shorted or bypassed, for example, for dimming or color change. In this case, the output voltage of the driver device, and subsequently the output voltage of the switching converter circuit, is likely to be variable at least with the selection of the LED module or even with the dynamic operation of the driver device and the LED module.

[0009] The inventors have found that the average difference between the supply voltage to a switched-mode power supply and the voltage of the offset signal (generated by the switched-mode power supply to compensate for the AC component of the PFC output signal) can be significant, especially when the load powered by the driver requires a low voltage, for example when the LED module acting as the load is a low voltage LED module but the input to the supply voltage to the switched-mode power supply is very large, and this has been found to significantly affect the power efficiency of the switched-mode power supply.

[0010] The inventors have also determined that the supply voltage to the switched-mode power supply is essentially out of phase with the offset signal generated by the switched-mode power supply to compensate for the AC component of the PFC output signal. This is because the offset signal is likely to be out of phase with the PFC output signal such that the offset signal and the PFC output signal are superimposed to form a smoothed signal, and because the PFC output signal is likely to be in phase with the input to the switched-mode power supply, particularly when the supply voltage is generated using a winding that is magnetically coupled to a winding through which the AC mains power is supplied. Because the input and output voltages are out of phase, this has a significant impact on power losses in the switched-mode power supply.

[0011] One or both of these problems can be solved by using the approach proposed by the present disclosure, namely by providing a regulation circuit for regulating the voltage supply to the switched-mode power supply. This regulation can be performed, for example, to synchronize the voltage supply with the offset signal generated by the switched-mode power supply with respect to average voltage and / or instantaneous voltage (in other words, phase). This can significantly reduce power losses in the switched-mode power supply and increase the efficiency of the driver.

[0012] According to an example according to an aspect of the present invention, there is provided a driver apparatus having a power factor correction (PFC) converter including a first input interface configured to receive AC mains power, a PFC conversion circuit configured to perform power factor correction on the AC mains power and to generate a PFC output signal having a ripple corresponding to a ripple in the AC mains power, and a first output interface configured to provide the PFC output signal.

[0013] The driver device also comprises a power supply for providing a supply voltage from the AC mains power, and a switched mode power supply comprising a second input interface coupled to the power supply and configured to receive the supply voltage from the power supply, a second output interface electrically connected in series with the first output interface, and a switched mode power supply configured to convert the supply voltage into an offset signal supplied to the second output interface, the offset signal being configured to superimpose the PFC output signal to generate a superimposed signal to compensate for the ripple corresponding to the AC mains power.

[0014] More importantly, the driver device further includes an adjustment circuit electrically coupled between the power supply and the second input interface, the adjustment circuit configured to adjust the supply voltage supplied to the second input interface in synchronization with the offset signal to adjust the difference between the voltage amplitude of the adjusted supply voltage and the voltage amplitude of the offset signal.

[0015] Embodiments provide a mechanism for adjusting or changing the supply voltage used by a switched-mode power supply to provide an offset signal so that it is synchronized with or otherwise aligned with the offset signal. Because the input and output of the switched-mode power supply are synchronized, the voltage difference across the switched-mode power supply is reduced, an approach that can significantly reduce power dissipation by the switched-mode power supply and provide a more efficient driver device.

[0016] An embodiment utilizes a regulation circuit coupled between a power supply and an input interface to the switched mode power supply to regulate a voltage supply provided by the power supply, the regulation circuit thereby controlling the voltage of the voltage supply.

[0017] The superimposed signal is a combination of the PFC output signal and the offset signal, i.e., the PFC output signal with the offset signal superimposed thereon. In other words, the superimposition signal is a superimposition of the PFC output signal and the offset signal.

[0018] The regulating circuit may be adapted to regulate the supply voltage in synchronization with the offset signal such that the difference between the voltage amplitude of the regulated supply voltage and the voltage amplitude of the offset signal is adjusted, preferably reduced, thereby controlling, preferably reducing, the power dissipation of the switched mode power supply. This approach provides an effective mechanism for controlling or varying the power dissipation of the switched mode power supply by controlling the difference between the input and output voltages.

[0019] The adjustment circuit may further include a detection circuit for detecting the voltage of the offset signal and / or the voltage of the superimposed signal and the offset signal. The adjustment circuit may be configured to adjust the supply voltage in response to the detected voltage of the offset signal and / or the voltage of the superimposed signal. In this manner, the adjustment circuit can adapt and respond to changes in the offset signal or changes in the voltage drawn by a load powered by the driver device. This provides a dynamic and automatic response method to actively control or reduce power losses in the switched-mode power supply. Note that there may be alternatives to this embodiment. For example, the driver device may be provided with a user interface for receiving (from a user via a user input) a setting regarding the amplitude of the offset signal or the superimposed signal, and the adjustment circuit may be adapted to adjust the supply voltage according to the setting.

[0020] The adjustment circuit may be configured to provide the adjusted supply voltage at a second voltage for a first voltage of one of the offset signal or the superimposed signal, and to provide the adjusted supply voltage at a fourth voltage for a third voltage of the one of the offset signal or the superimposed signal, the first voltage being greater than the third voltage and the second voltage being greater than the fourth voltage. This approach provides a reactive or dynamically responsive adjustment circuit that reacts to any continuing changes in the offset signal and / or the power drawn by the load to improve overall power efficiency of the driver apparatus. When a large output voltage is required, the supply voltage is adjusted to a larger input voltage so that the switched-mode power supply can operate, and when a small output voltage is required, the supply voltage is adjusted to a smaller input voltage so that power losses in the switched-mode power supply are reduced.

[0021] The first voltage, the second voltage, the third voltage, and the fourth voltage may be instantaneous voltages or average voltages.

[0022] In some more specific examples, the adjustment circuit is adapted to adjust the average value of the supply voltage to be synchronized with the average value of the offset signal. This embodiment thereby adjusts the average value of the supply voltage to be synchronized with the average value of the offset signal. This can reduce the difference between the average values / voltages at the input and output of the switched-mode power supply, thereby improving the efficiency of the switched-mode power supply. In particular, it can reduce losses in the switched-mode power supply when the average voltage of the offset signal is low.

[0023] In some examples, the PFC conversion circuit includes a transformer having a primary winding electrically coupled to the first input interface and a first secondary winding magnetically coupled to the primary winding and electrically coupled to the first output interface, and the power supply has a second secondary winding magnetically coupled to the primary winding.

[0024] The regulation circuit may be configured to provide an adjustable ratio or percentage of the average voltage across the second secondary winding to the second input interface as the average voltage of the supply voltage, providing an effective and space-efficient mechanism for controlling the average voltage of the supply voltage, for example for use in synchronizing the average voltage of the supply voltage with the average voltage of the offset signal to improve power efficiency of the switched mode power supply.

[0025] The regulation circuit may include a switch device coupled between the second secondary winding and the second input interface, the switch device configured to switch between at least two configurations including a first configuration in which an average voltage across the second secondary winding at a first ratio or percentage is provided to the second input interface as an average voltage of the supply voltage, and a second configuration in which an average voltage across the second secondary winding at a second ratio or percentage lower than the first ratio or percentage is provided to the second input interface as an average voltage of the supply voltage.

[0026] The switching device provides an effective and power-efficient mechanism for controlling or varying the average voltage of the supply voltage. In particular, power losses in such a switching device are extremely low. This is achieved by providing a corresponding ratio or proportion of the secondary winding, thereby providing a correspondingly regulated supply voltage to the second input interface.

[0027] The adjustment circuit may be configured to adjust the average value of the supply voltage in synchronization with the average value of the offset signal by operating the switch device in the first configuration in response to the voltage of the offset signal being greater than or equal to a first predetermined voltage so that the average voltage of the adjusted supply voltage is high, and by operating the switch device in the second configuration in response to the voltage of the offset signal being less than the first predetermined voltage so that the average voltage of the adjusted supply voltage is low.

[0028] This provides a mechanism for reducing the average voltage of the supply voltage when the offset signal has a lower voltage. This reduces the difference between the supply voltage and the voltage of the offset signal, while also allowing the supply voltage to increase when more voltage is needed for the offset signal (e.g., to ensure that needed voltage requirements can be met), thereby providing a more efficient switched-mode power supply. This provides a dynamically responsive supply voltage that improves the efficiency of the switched-mode power supply while still ensuring that the voltage requirements of the SMPS are met.

[0029] The adjustment circuit may be configured to increase the average voltage of the supply voltage with an increase in the average voltage of the superimposed signal and / or the offset signal. In this way, the average voltage of the supply voltage can track the average voltage of the offset signal. The advantages of this approach have already been made clear.

[0030] Instead of, or in addition to, synchronously adjusting the average voltage, the adjustment circuit may be adapted to adjust the instantaneous value of the supply voltage to be synchronized or in phase with the instantaneous value of the offset signal. Thus, the phase of the voltage supply can track or be synchronized with the phase of the offset signal, reducing real-time input / output voltage differences. This improves the efficiency of the switched-mode power supply by ensuring a consistent difference between the input and output of the SMPS.

[0031] The regulator may include a buffer circuit electrically coupled to the power supply and adapted to generate a bias voltage having a substantially stable amplitude, and an inverting circuit configured to subtract a voltage proportional to a voltage of the PFC output signal from the bias voltage to generate the regulated supply voltage for the second input interface.

[0032] When present, the switch device can provide a regulated average voltage of the supply voltage (by defining the magnitude of the bias voltage) and store it in the buffer circuit, e.g., to track the average voltage of the offset signal, while the inverter circuit can provide a regulated instantaneous voltage of the supply voltage, e.g., to track the instantaneous voltage of the offset signal. This combination significantly improves the power efficiency of the SMPS.

[0033] As previously described, in some examples, the PFC conversion circuit includes a transformer having a primary winding electrically coupled to the first input interface and a first secondary winding magnetically coupled to the primary winding and electrically coupled to the first output interface, and the power supply includes a second secondary winding magnetically coupled to the primary winding such that a voltage across the second secondary winding varies proportionally to a voltage of the PFC output signal.

[0034] In such an example, the inverting circuit may be configured to subtract from the bias voltage a voltage proportional to the voltage across the second secondary winding to generate the supply voltage for the second input interface. This approach means that the phase of the supply voltage is out of phase with the phase of the PFC output signal and therefore synchronized or in phase with the offset signal.

[0035] An electronic device is also proposed, comprising a driver device as proposed and / or claimed in this specification and a load connected to the first output interface and the second output interface and configured to be powered by the superimposed signal.

[0036] The load may optionally comprise a light emitting device including one or more light emitting diodes.

[0037] These and other aspects of the invention will be elucidated and elucidated with reference to the following embodiments. [Brief explanation of the drawings]

[0038] For a better understanding of the present invention, and to show more clearly how the same may be carried into effect, reference will now be made, by way of example only, to the accompanying drawings, in which: [Figure 1] 1 illustrates an existing driver device. [Figure 2] 1 illustrates waveforms of an existing driver device. [Figure 3] 1 illustrates a proposed driver device. [Figure 4] 1 illustrates waveforms of the proposed driver device in a first scenario. [Figure 5] 10 illustrates waveforms of the proposed driver device in the second scenario. DETAILED DESCRIPTION OF THE INVENTION

[0039] The present invention will be described with reference to the drawings.

[0040] It should be understood that the detailed description and specific examples, while indicating exemplary embodiments of the devices, systems, and methods, are for purposes of illustration only and are not intended to limit the scope of the invention. These and other features, aspects, and advantages of the devices, systems, and methods of the present invention will become better understood from the following description, appended claims, and accompanying drawings. It should be understood that the figures are merely schematic and are not drawn to scale. It should also be understood that the same reference numerals are used throughout the figures to indicate the same or similar parts.

[0041] The present invention provides a mechanism for controlling the supply voltage for a switched-mode power supply designed to compensate for AC mains power ripple in a PFC output signal generated by a power factor correction converter. A regulation circuit is used to synchronize the amplitude of the supply voltage with the amplitude of an offset signal generated by the switched-mode power supply used to compensate for the AC mains power ripple in the PFC output signal.

[0042] For purposes of improving conceptual understanding, Figure 1 illustrates an existing driver device 100. The driver device 100 is configured to provide a load power signal, sometimes alternatively referred to as a superimposed signal, to a load LED that is separate from the driver device.

[0043] Driver apparatus 100 may form part of an electronic device 10 that includes driver apparatus 100 and a load LED. The load LED may comprise, for example, one or more light emitting diodes or light emitting diode devices. Other suitable loads will be apparent to those skilled in the art.

[0044] The driver device 100 includes a power factor correction converter 110, a switch mode power supply 120, and a regulation circuit .

[0045] The power factor correction converter 110 has a first input interface 111 configured to receive AC mains power AC+, AC-.

[0046] The power factor correcting converter 110 also includes a PFC conversion circuit 112 configured to perform power factor correction on the AC mains power to generate a PFC output signal V(C1).

[0047] The power factor correction converter 110 also has a first output interface 113 configured to provide a PFC output signal V(C1). For purposes of improving conceptual understanding, it is assumed that the average amplitude of the PFC output signal V(C1) does not change.

[0048] The PFC output signal V(C1) has a (voltage) ripple that corresponds to the ripple in the AC mains power. The ripple may therefore follow the essentially 50 / 60 Hz sinusoidal waveform of the AC mains. Generally, a power factor correction converter is configured to correct for or account for distortions in the power supplied to or drawn by a load. Generally, the output of a power factor correction circuit follows the essentially 50 / 60 Hz sinusoidal waveform of the AC mains, resulting in AC mains power ripple in the PFC output signal V(C1).

[0049] To at least partially reduce high-frequency switching signals in the PFC output signal V(C1), the power factor conversion circuit may have a first output capacitor C1 connected across the first output interface 113, so that the PFC output signal V(C1) is a nearly continuous signal that can be drawn by a load connected to the first output interface 113. However, the PFC output signal V(C1) will still have low-frequency ripple representing residual periodic fluctuations due to the (unsuppressed) AC mains power. In fact, PFC converters are designed to preserve low-frequency ripple, because otherwise the output would not follow the input.

[0050] In the illustrated example, the PFC converter circuit includes a flyback converter, which is an example of a buck-boost converter. P and the first secondary winding W S1 The diode D1 is connected to the first secondary winding W S1 is coupled to the first output interface, and thereby to the first output capacitor C1. P The current through is controlled by switching element S1.

[0051] However, other suitable PFC conversion circuit layouts for use in the embodiments are well known in the art. By way of example, the PFC conversion circuit 112 may be or include a boost converter, a buck converter, and / or a buck-boost converter. Those skilled in the art will appreciate that any other type of converter is also applicable as long as it is capable of providing PFC functionality.

[0052] In any case, the PFC converter circuit may include a primary winding W to at least galvanically isolate the AC mains power AC+, AC- from the rest of the driver device and / or the load LEDs. P and the first secondary winding W S1 The transformer is formed from

[0053] The switch mode power supply 120 is S2 1 and has a second input interface 121 coupled to the power supply W and configured to receive a supply voltage V(C3) from the power supply. Therefore, the supply voltage V(C3) is the voltage between the first terminal 121A of the second input interface 121 and the second terminal 121B of the second input interface 121. Here, the power supply W S2 is the primary winding W of the power conversion circuit 112 P The PFC output voltage V(C1) is in phase with the second secondary winding, V(C3), due to the magnetic coupling of the windings.

[0054] The switched mode power supply 120 also has a second output interface 122 electrically connected in series with the first output interface 121 .

[0055] The switched mode power supply 120 further comprises a switched mode power supply 123 configured to convert the supply voltage into an offset signal V(C2) that is provided to the second output interface 122. The offset signal is configured to superimpose the PFC output signal V(C1) and to compensate for ripples corresponding to the AC mains power.

[0056] The switched-mode power supply 123 is configured to compensate for ripple in the PFC output signal V(C1). More specifically, the switched-mode power supply is configured to generate an offset signal V(C2), which is then superimposed on the PFC output signal V(C1) to generate a superimposed signal, here equal to V(C1)+V(C2). The superimposed signal is supplied to or derived by the load LED, and may thereby alternatively be referred to as a load power signal. The offset signal V(C2) thereby compensates for ripple (of the AC mains power) in the PFC output signal V(C1), thereby smoothing the power supplied to the load LED.

[0057] The offset signal V(C2) is supplied to the second output interface 122. In the illustrated example, the second output interface is connected in series with the first output interface 112. The load LED can be connected between the first output interface 112 and the second output interface 122 or across the first output interface 112 and the second output interface 122. Therefore, the superimposed signal may be a signal that spans the first output interface and the second output interface.

[0058] A second output capacitor C2 may be connected across the terminals of the second output.

[0059] The switched-mode power supply can be implemented with a current control loop to control its output according to a sensed current through a load LED powered by a load power signal. More specifically, the operation of the switched-mode power supply 120 can be responsive to the current through the load LED, e.g., the voltage across a sense resistor (not shown) connected in series with the load LED. The offset signal V(C2) shown is the resulting voltage of the current control loop.

[0060] In this manner, the driver device may have a current control loop adapted to sense the current of the superimposed signal and control the switched-mode power supply to adjust the offset signal V(C2) so that the sensed current complies with a current reference that is optionally substantially constant.

[0061] In particular, the switched-mode power supply may be configured to control the offset signal V(C2) so that the current through the load LED is matched to a current reference. The current reference is preferably constant, or nearly constant, i.e., substantially constant. This process is called constant current regulation. This means that the offset signal V(C2) tracks the mains power ripple in the PFC output signal V(C1), thereby compensating for this ripple in the PFC output signal.

[0062] The control of the switched mode power supply 120 can be a fast control loop to ensure that the offset signal V(C2) varies with the ripple in the PFC output signal V(C1).

[0063] In one example, if a load with a smaller forward voltage (e.g., a first LED) is replaced with a load with a larger forward voltage (e.g., a second LED with a larger forward voltage), the load current will initially be less than the current reference, causing the switched-mode power supply 120 to increase its output voltage, and the system will converge to a state where the PFC output signal and the offset signal together output the same load current equal to the current reference.

[0064] Examples of suitable switched mode power supplies include buck converters or buck-boost converters; other examples will be apparent to those skilled in the art.

[0065] Techniques for controlling switched mode power supplies to compensate for AC mains power ripple in the PFC output signal are well established in the art, as e.g., as disclosed by US 2017 / 0288557 A1.

[0066] In the existing technology, the regulation circuit 130 includes a rectifier diode D5 and an input capacitor C3 connected between the terminals of the second input interface 121. The input capacitor C3 is configured to smooth the rectified signal provided by the rectifier diode, for example to attenuate high frequencies. The size of the input capacitor C3 is not sufficient to attenuate the voltage ripple of the AC mains power.

[0067] For improved understanding, FIG. 2 illustrates waveforms of a driver device 100 as known in the art.

[0068] A first waveform 210 illustrates the voltage of the PFC output signal V(C1), a second waveform 220 illustrates the voltage of the supply voltage V(C3) across the second input terminals, and a third waveform 220 illustrates the voltage of the offset signal V(C2) across the second output terminals.

[0069] 2, for example, when the switched-mode power supply is a buck converter, the voltage of the supply voltage V(C3) and the voltage of the offset signal V(C2) are out of phase with each other. In particular, the supply voltage V(C3) follows the PFC output signal V(C1). Therefore, when the PFC output signal V(C1) is at a valley or trough 210, and therefore the supply voltage V(C3) is at a valley or trough 210, the offset signal V(C1) is at a peak 220 to compensate for the ripple in the PFC output signal.

[0070] This has been found to significantly affect the efficiency of the switched mode power supply since there is a large voltage difference between the input and output of the switched mode power supply at peaks and troughs, and furthermore the difference between the input and output is inconsistent.

[0071] Furthermore, since the average voltage of the PFC output signal voltage is typically fixed, the average voltage of the supply voltage V(C3) is nearly constant. Therefore, changes in the average voltage required for the offset signal can significantly affect the average voltage difference between the supply voltage V(C3) and the offset signal V(C2), which can significantly increase the power dissipated by the switched-mode power supply.

[0072] When a second LED (having a relatively large forward voltage) is connected, the offset signal V(C2) illustrated by waveform 230 (and the load powering signal or superimposed signal illustrated by waveform 200) becomes relatively large. Therefore, the difference between the supply voltage 220 V(C3) and the offset signal 230 is still acceptable or within acceptable boundaries. However, when a first LED (having a relatively low forward voltage) is connected, the offset signal V(C2) illustrated by waveform 230' (and the load powering signal illustrated by waveform 200') becomes smaller and the difference between the supply voltage 220 V(C3) and the offset signal 230' becomes larger, resulting in more / significant power losses in the switched-mode power supply, e.g., outside acceptable boundaries.

[0073] Another problem is that the supply voltage 220 and the offset signal 230 or 230' are out of phase, so when the supply voltage 220 is at its peak value, the offset signal 230 or 230' is at its valley value, which therefore results in power loss in the switched mode power supply.

[0074] The proposed technique provides a mechanism for solving these problems, in particular by using a regulation circuit that can modify or vary the supply voltage V(C3) input to the switched-mode power supply in synchronization (e.g., in terms of phase and / or average voltage) with the offset signal V(C2) output by the switched-mode power supply.

[0075] The present disclosure proposes a new adjustment circuit for use with a driver device. The adjustment circuit is configured to substantially adjust a supply voltage V(C3) supplied to a second input interface of a switched-mode power supply in synchronization with an offset signal. Thus, the phase and / or amplitude of the supply voltage can be changed or varied in synchronization with changes in the phase and / or amplitude of the offset signal. Here, the term "substantially adjust" means that, excluding minor filtering or smoothing, the amplitude of the supply voltage is adjusted by more than 10%, preferably more than 25%.

[0076] 3 illustrates a driver device 300 according to an embodiment. As before, the driver device 300 is configured to provide a load power signal (or a superimposed signal) to a load LED that is separate from the driver device.

[0077] Driver device 300 may form part of electronic device 30, which includes driver device 300 and a load LED. Electronic device 30 is another embodiment. The load LED may comprise, for example, one or more light emitting diodes or light emitting diode devices. Other suitable loads will be apparent to those skilled in the art.

[0078] The driver 300 differs from the previously described drivers in the configuration of the regulation circuit 330. The regulation circuit 330 allows regulation of both the (average) magnitude of the supply voltage V(C3) and / or the phase of the supply voltage V(C3).

[0079] Thus, the regulation circuit 330 is configured to regulate the supply voltage provided by the power supply 340 to generate a regulated supply voltage (received by the second input interface 121 (121A and 121B)).

[0080] More specifically, the adjustment circuit 330 is adapted to adjust the supply voltage V(C3) in synchronization with the offset signal V(C2) such that the difference between the voltage amplitude of the adjusted supply voltage and the voltage amplitude of the offset signal is adjusted, which allows for control of the power dissipation of the controlled switched-mode power supply.

[0081] The adjustment circuit is configured to adjust the average value of the supply voltage, thereby synchronizing the average value of the adjusted supply voltage with the average value of the offset signal.

[0082] Additionally or alternatively, the adjustment circuitry may be configured to invert the phase of the supply voltage, thereby synchronizing the phase of the adjusted supply voltage with the phase of the offset signal.

[0083] The power supply 340 for the regulation circuit is connected to the first end W E1 and the second end W E2 and a second secondary winding W S21 , W S22 The second secondary winding is connected to the primary winding W of the PFC conversion circuit 112. P As explained above, the voltage across the second secondary winding and any tapped portion thereof is magnetically coupled to the first secondary winding W of the PFC converter circuit 112. S1 The voltage across the

[0084] The second secondary winding comprises (at least) two secondary winding sections connected in series, namely, a first secondary winding section W S21 and the second secondary winding portion W S23 It is formed from

[0085] To adjust the supply voltage in synchronization with the offset signal about an average value, the adjustment circuit 330 is configured to change or vary the effective number of turns / ratio of the second secondary winding that contributes to the supply voltage supplied to the second input interface. This approach effectively provides an adjustable ratio or percentage magnitude of the voltage across the second secondary winding as a magnitude of the regulated supply voltage supplied to the second input interface.

[0086] To adjust the magnitude of the supply voltage supplied to the second input interface 121, the adjustment circuit 330 is connected to the second secondary winding W S21 , W S22 and a switch device 331 coupled between the first input interface and the second input interface.

[0087] The switch device includes a switch capacitor C4. The voltage across the switch capacitor C4 defines or controls the average voltage of the (regulated) supply voltage provided to the second input interface. Therefore, the voltage V(C4) across the switch capacitor is sometimes referred to as a bias voltage.

[0088] A first plate C4A of the switched capacitor C4 is connected to the first terminal 121A of the second input interface 121. A second different plate C4B of the switched capacitor C4 is connected to the second secondary winding W S21 , W S22 The second end W E2 is connected to.

[0089] The switch device 331 comprises a first switch-diode pair S2, D2 and a second switch-diode pair S3, D3. Both switch-diode pairs are connected to the second secondary winding W S21 , W S22 to the first plate C4A of the switched capacitor C4. Each switch diode pair is controllable (e.g., by a switch controller) to controllably allow or prevent current flow from the second secondary winding (through the switch diode pair) to the first plate C4A of the switched capacitor. Each diode of the switch diode pair prevents or limits current flow from the first plate of the switched capacitor back to the second secondary winding.

[0090] The first switch-diode pair S2, D2 is connected to the second secondary winding W S21 , W S22 The first end W E1is connected to the first plate C4A of the switched capacitor. E1 is compared to the second end connected to the second plate C4B of the switched capacitor C4, the second secondary winding W S21 , W S22 The other end of the

[0091] A second switch-diode pair S3, D3 is connected to the second secondary winding W, which is located between the first and second ends of the second secondary winding. S21 , W S22 Intermediate position / Intermediate tap W IP From the second secondary winding W S21 , W S22 is connected to the first plate C4A of the switched capacitor. In the example shown, the intermediate position W IP is the first winding portion WS of the second secondary winding 21 It is a position located between the two ends of the

[0092] When only the first switch diode pair S2, D2 conducts current, the average voltage across the switch capacitor C5 is greater than when only the second switch diode pair S3, D3 conducts current. This means that when only the first switch diode pair S2, D2 conducts current, the average voltage across the second secondary winding W S21 , W S22 This is because the effective turns ratio (i.e., the number of turns that contribute to the voltage supplied to the switch capacitor C5) is greater than when only the second switch-diode pair S3, D3 conducts current. Therefore, by controlling which switch-diode pair is active, the effective turns ratio (and therefore voltage) of the second secondary winding can be changed.

[0093] In other words, depending on which switch-diode pair is active and allows current to flow, different ratios or percentages of the (maximum potential average) voltage across the second secondary winding can be supplied to the first plate C4A of the switched capacitor.

[0094] Therefore, by controlling which of the switch-diode pairs is active, i.e., allows current to flow, it is possible to control the magnitude of the average voltage across the switch capacitor.

[0095] The operation of switches S2, S3 may be controlled by switch controller 335. Among other things, the switch controller may control which switch-diode pair conducts current in response to the voltage of the offset signal or superimposed signal.

[0096] Therefore, the switch device may be configured to switch between at least two configurations including a first configuration in which a first ratio or percentage magnitude of the voltage across the second secondary winding is provided to the second input interface as the magnitude of the regulated supply voltage, and a second configuration in which a second ratio or percentage magnitude of the voltage across the second secondary winding, which is lower than the first ratio or percentage, is provided to the second input interface as the voltage magnitude of the regulated supply voltage.

[0097] In other words, the switch device is configured to be switchable between a first configuration in which an average voltage across the second secondary winding at a first ratio or percentage is supplied to the second input interface as an average voltage of the supply voltage, and a second configuration in which an average voltage across the second secondary winding at a second ratio or percentage lower than the first ratio or percentage is supplied to the second input interface as an average voltage of the supply voltage.

[0098] The switch device may include a detection circuit 336, 336' for detecting the voltage of the offset signal and / or the voltage of the superimposed signal. In the illustrated example, the detection circuit 336 detects the voltage of the offset signal. In another example, the detection circuit 336' detects the voltage of the superimposed signal.

[0099] The adjustment circuit (via the switch controller) may be configured to adjust the supply voltage in response to the sensed voltage of the offset signal and / or the voltage of the superimposed signal.

[0100] The adjustment circuit (via the switch controller) may be configured to provide a regulated supply voltage of a second voltage for a first voltage of one of the offset signal or the superimposed signal, and to provide a regulated supply voltage of a fourth voltage for a third voltage of said one of the offset signal or the superimposed signal.

[0101] The first voltage is greater than the third voltage, and the second voltage is greater than the fourth voltage.

[0102] In this manner, the average voltage of the supply voltage can be adjusted synchronously with the average value of the offset signal, and therefore the first voltage, the second voltage, the third voltage and the fourth voltage may be average voltages.

[0103] In some examples, the switch device is configured to operate in a first configuration such that the regulated supply voltage is increased in response to the voltage of the offset signal being greater than or equal to a first predetermined voltage, and to operate in a second configuration such that the regulated supply voltage is decreased in response to the voltage of the offset signal being less than the first predetermined voltage.

[0104] The operation of the switch device may be performed by the switch controller 335, as previously described.

[0105] For example, if switch controller 335 detects a large voltage, e.g., a voltage greater than a threshold, from circuit 336 or 336′, it closes switch S2 and opens switch S3 to provide a large regulated supply voltage; otherwise, it opens switch S2 and closes switch S3 to provide a small regulated supply voltage.

[0106] The capacitance of switch capacitor C4 is large enough so that the voltage across the switch capacitor has a substantially constant / stable amplitude when only one of the switch-diode pairs allows current to flow. It will be understood that the value of this substantially constant / stable amplitude will change when the active switch-diode pair is switched. Thus, the term "constant / stable" simply means that the amplitude is fixed for the voltage at the secondary winding of each selected ratio.

[0107] In this manner, the switch device and the switched capacitor act as a buffer circuit electrically coupled to the second secondary winding and adapted to generate a bias voltage V(C4) having a substantially constant amplitude in synchronization with the average value of the offset signal or superimposed signal.

[0108] Furthermore, it is desirable to adjust the phase of the supply voltage to coincide or match the phase of the offset signal, whereas the phase of the supply voltage at the secondary winding is originally out of phase with, or even opposite to, the offset signal. The present application proposes inverting the phase of the supply voltage, and the adjustment circuit comprises an inversion circuit 332. The inversion circuit is configured to subtract a voltage proportional to the voltage across the second secondary winding from a constant bias voltage (generated by a switch device or a buffer circuit) to generate an adjusted supply voltage for the second input interface. Therefore, the adjusted supply voltage is in phase with the offset signal.

[0109] In the illustrated example, the inverting circuit includes a diode D4, a capacitor C5, and an inverting capacitor C3. A first plate C5A of the capacitor C5 is connected to the second terminal 121B of the second input interface 121. A second plate C5B of the capacitor C5 is connected to the second end W of the second secondary winding. E2 and therefore connected to the second plate C4B of the switched capacitor C4. S21 , W S22 The second end W E2 is the second winding W S22The second input interface 121, i.e., the voltage across the terminals of the inverting capacitor C3 (i.e., the regulated supply voltage) is equal to V(C4)-V(C5).

[0110] The diode D4 is connected to the second end W of the second winding. E2 The second winding section W S22 The first end W E3 is connected to the first plate C5A of capacitor C5. The capacitance of capacitor C5 (e.g., <100 μF) is sized small enough so that the instantaneous voltage across the capacitor follows or is in phase with the PFC output signal (e.g., has AC mains ripple), i.e., is not smoothed to a constant voltage as is done by switched capacitor C4. Inverting capacitor C3 is also sized small enough so that the voltage V(C4) on capacitor C3 still carries the opposite phase of V(C5), and therefore V(C4)-V(C5) follows the phase of the offset signal.

[0111] Since the voltage across the terminals of the second input interface, i.e., the regulated supply voltage, is equal to V(C4)-V(C5), this results in a regulated supply voltage that is out of phase with the PFC output signal, and therefore is in phase with the offset signal V(C2).

[0112] In general, the switch device 331 allows the average voltage of the (regulated) supply voltage at the second input interface 121 to follow or synchronize with at least the average voltage of the offset signal. Thus, if the average voltage of the offset signal increases (e.g., above a predetermined threshold), the average voltage of the regulated supply voltage may increase. Similarly, if the average voltage of the offset signal decreases (e.g., below a predetermined threshold), the average voltage of the regulated supply voltage may decrease.

[0113] Furthermore, the inversion circuit 321 also enables the instantaneous voltage of the (regulated) supply voltage at the second input interface 121 to follow or synchronize with at least the instantaneous voltage of the offset signal. In other words, the inversion circuit enables the phase of the (regulated) supply voltage to match at least the phase of the offset signal.

[0114] 4 and 5 illustrate sets of waveforms in different scenarios for the purpose of improving understanding. The two figures are to the same scale, so they can be compared to each other to show that the average value of the regulated supply voltage V(C3) follows the average value of the offset signal.

[0115] Both figures illustrate a first waveform 410 representing the voltage of the PFC output signal V(C1) across the first output interface 113, a second waveform 420 representing the voltage V(C4) across the switch capacitor C4, a third waveform 430 representing the voltage V(C5) across the capacitor C5, a fourth waveform 440, 440' representing the voltage V(C3) of the supply voltage supplied to the second input interface, and a fifth waveform 450, 450' representing the voltage V(C2) of the offset signal. There is also a waveform 200 or 200' showing the voltage of the superimposed signal.

[0116] FIG. 4 illustrates a scenario in which the (average) voltage drawn by the load LED is high, and therefore the average voltage of the offset signal V(C2) is correspondingly high.

[0117] FIG. 5 illustrates a scenario in which the (average) voltage drawn by the load LED is lower (compared to that in FIG. 4) and therefore the average voltage of the offset signal V(C2) is correspondingly lower.

[0118] In either case, the phase of the supply voltage V(C3) is adjusted to synchronize with the voltage of the offset signal.

[0119] When the average voltage of the offset signal V(C3) is lower, the average voltage of the regulated supply voltage is also reduced, for example, by switching from conducting current through the first switch diode pair S2, D2 to conducting current through the second switch diode pair S3, D3. This reduces the average value of the voltage V(C4) across the switch capacitor C4, thereby reducing the average value of the regulated supply voltage V(C3) (which is equal to V(C4) - V(C5)). Therefore, the difference between V(C3) and V(C2) is limited, and power losses are reduced.

[0120] 3, in some embodiments, the inverting circuit may be omitted. In such an example, the second terminal 121B of the second input interface 121 is connected to the second end W of the secondary winding. E2 . In such an example, switch capacitor C4 may also be omitted. This approach results in an embodiment in which the average voltage of supply voltage V(C3) can be changed (via a switch device) to, for example, track or synchronize with the average voltage of the offset signal. However, the phase of supply voltage V(C3) is not synchronized with the phase of the offset signal, and therefore this approach is less advantageous.

[0121] Similarly, in some embodiments, it is possible to instead omit the switch-diode pair. In this scenario, the first plate C4A of the switch capacitor is connected to the first end W of the secondary winding, e.g., via a diode. E1 , which produces a supply voltage that is phase-locked or synchronized with the offset signal, but does not have an adjustable average voltage. This also has a greater power loss and is therefore less advantageous than the electronic device shown.

[0122] There is also proposed an electronic device 30 comprising any of the driver devices 300 described herein and a load LED configured to be powered by a load power signal generated by such a driver device, whereby the load is connected to the first output interface 113 and the second output interface 122 of the driver device.

[0123] The load may, for example, comprise one or more light emitting diodes or light emitting diode devices. Other suitable loads will be apparent to those skilled in the art.

[0124] Those skilled in the art can understand and effect variations to the disclosed embodiments in practicing the claimed invention, from a study of the drawings, the specification and the appended claims. In the claims, the word "comprises" does not exclude other elements or steps, and the singular does not exclude a plurality.

[0125] The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to advantage.

[0126] It should be noted that when the term "adapted to" is used in the claims or the specification, the term "adapted to" is intended to be equivalent to the term "configured to." It should be noted that when the term "configuration" is used in the claims or the specification, the term "configuration" is intended to be equivalent to the term "system," and vice versa.

[0127] Any reference signs in the claims should not be construed as limiting the scope.

Claims

1. A PFC converter comprising: a first input interface configured to receive AC mains power; a PFC conversion circuit configured to perform power factor correction on the AC mains power and to generate a PFC output signal having a ripple corresponding to a ripple in the AC mains power; and a PFC converter including a first output interface configured to provide the PFC output signal; a power supply for providing a supply voltage from the AC mains power; 1. A switched mode power supply comprising: a second input interface coupled to the power supply and configured to receive the supply voltage from the power supply; a second output interface electrically connected in series with the first output interface; and a switched mode power supply apparatus comprising: a switched mode power supply configured to convert the supply voltage into an offset signal provided to the second output interface, the offset signal being configured to superimpose the PFC output signal to generate a superimposed signal to compensate for the ripple corresponding to the AC mains power; and an adjustment circuit configured to adjust the supply voltage supplied to the second input interface in synchronization with the offset signal to adjust a difference between a voltage amplitude of the adjusted supply voltage and a voltage amplitude of the offset signal.

2. 2. The driver device of claim 1, wherein the adjustment circuit is electrically coupled between the power supply and the second input interface, and is adapted to adjust the supply voltage in synchronization with the offset signal so that a difference between a voltage amplitude of the adjusted supply voltage and a voltage amplitude of the offset signal is adjusted, thereby controlling power dissipation of the switched-mode power supply.

3. a detection circuit for detecting a voltage of the offset signal and / or a voltage of the superimposed signal; 2. The driver device of claim 1, wherein the adjustment circuit is configured to adjust the supply voltage in response to a sensed voltage of the offset signal and / or the superimposed voltages of the PFC output signal and the offset signal.

4. The adjustment circuit providing the supply voltage adjusted to a second voltage relative to a first voltage of one of the offset signal or the superimposed signal; configured to provide the adjusted supply voltage at a fourth voltage relative to a third voltage of the one of the offset signal or the superimposed signal; 4. The driver device of claim 3, wherein the first voltage is greater than the third voltage, and the second voltage is greater than the fourth voltage.

5. 5. The driver device according to claim 4, wherein the first voltage, the second voltage, the third voltage, and the fourth voltage are instantaneous voltages or average voltages.

6. 2. The driver device of claim 1, wherein the adjusting circuit is adapted to adjust the average value of the supply voltage to be synchronized with the average value of the offset signal.

7. the PFC conversion circuit comprises a transformer having a primary winding electrically coupled to the first input interface and a first secondary winding magnetically coupled to the primary winding and electrically coupled to the first output interface; the power supply having a second secondary winding magnetically coupled to the primary winding; 2. The driver device of claim 1, wherein the adjustment circuit is configured to provide an adjustable ratio or percentage of the average voltage across the second secondary winding as the average voltage of the supply voltage to the second input interface.

8. The regulation circuit includes a switch device coupled between the second secondary winding and the second input interface, the switch device comprising: a first arrangement in which an average voltage across the second secondary winding at a first ratio or percentage is supplied to the second input interface as an average voltage of the supply voltage; a second configuration in which an average voltage across the second secondary winding at a second ratio or rate lower than the first ratio or rate is supplied to the second input interface as an average voltage of the supply voltage.

9. The adjustment circuit operating the switch device in the first configuration such that the average voltage of the regulated supply voltage is high in response to the voltage of the offset signal being equal to or greater than a first predetermined voltage; 9. The driver apparatus of claim 8, configured to adjust the average value of the supply voltage in synchronization with the average value of the offset signal by operating the switch device in the second configuration such that the average voltage of the adjusted supply voltage is lower in response to the voltage of the offset signal being less than the first predetermined voltage.

10. 2. The driver device of claim 1, wherein the adjustment circuit is configured to increase the average voltage of the supply voltage with an increase in the average voltage of the superimposed signal and / or the offset signal.

11. 2. Driver device according to claim 1, wherein the adjusting circuit is adapted to adjust the instantaneous value of the supply voltage to be synchronized or in phase with the instantaneous value of the offset signal.

12. The adjustment circuit a buffer circuit electrically coupled to the power supply and adapted to generate a bias voltage having a substantially stable amplitude; an inverter circuit configured to subtract a voltage proportional to a voltage of the PFC output signal from the bias voltage to generate the regulated supply voltage for the second input interface.

13. the PFC conversion circuit comprises a transformer having a primary winding electrically coupled to the first input interface and a first secondary winding magnetically coupled to the primary winding and electrically coupled to the first output interface; the power supply having a second secondary winding magnetically coupled to the primary winding such that a voltage across the second secondary winding varies proportionally to a voltage of the PFC output signal; 13. The driver device of claim 12, wherein the inverting circuit is configured to subtract a voltage proportional to the voltage across the second secondary winding from the bias voltage to generate the supply voltage for the second input interface.

14. A driver device according to any one of claims 1 to 13; a load connected to the first output interface and the second output interface and configured to be powered by the superimposed signal.

15. 15. The electronic device of claim 14, wherein the load comprises a light emitting device, optionally including one or more light emitting diodes.

Citation Information

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