Bidirectional AC power converter
The bidirectional AC power converter addresses the issue of detecting disconnection and discharging residual power in conventional converters by using a digital control module and phase-locked loop to ensure quick power stoppage and discharge, enabling rapid operation resumption.
Patent Information
- Application Number
- JP2023130790
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-08-11
- Filing Date
- 2023-08-10
- Publication Date
- 2025-09-29
- Estimated Expiration
- 2043-08-10
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a bidirectional AC power converter, and more particularly to a bidirectional AC power converter that disconnects an element to be measured at any time. [Background technology]
[0002] In a conventional AC power converter, when applying a current to a device under test, if it is necessary to disconnect (disconnect) the device under test from the AC power converter, the current applied by the AC power converter must first be zeroed to safely disconnect the device under test from the AC power converter. If the device under test is disconnected from the AC power converter without an early warning, the AC power converter often triggers a protection mechanism and is unable to quickly restore operation. For example, if the device under test is disconnected from the output terminal of the AC power converter without an early warning, the AC power converter cannot immediately determine that the device under test has been disconnected from the output terminal, and therefore continues to draw current from the open-circuited output terminal. In this case, the output terminal of the AC power converter may be subjected to an abnormally high voltage. To prevent the AC power converter from being destroyed, conventional AC power converters directly trigger a protection mechanism.
[0003] Although conventional AC power converters can quickly shut off the current path between the output terminal and the device under test after triggering a protection mechanism, they lack a mechanism for quickly discharging residual power in the current path. Generally, conventional AC power converters can only wait a considerable amount of time and then consume the residual power within the circuit. In fact, even if the device under test is reconnected to the output terminal, the conventional AC power converter cannot resume applying current to the device under test before the remaining power is fully consumed. Therefore, the industry needs a new AC power converter that can quickly discharge residual power when the device under test is disconnected, quickly resume applying current to the device under test when the device under test is reconnected to the output terminal, and provide increased flexibility for adjusting the device under test at any time. Summary of the Invention [Problem to be solved by the invention]
[0004] The present invention provides a bidirectional AC power conversion device that can not only immediately detect a disconnection event when a device under test is disconnected from an output terminal without an early warning, but also quickly release any remaining power in the current path. [Means for solving the problem]
[0005] The present invention provides a bidirectional AC power converter that inputs or outputs a first AC power and includes a digital control module and a power conversion module. The digital control module generates a control signal. The power conversion module sets the input or output first AC power based on the control signal. When the digital control module determines that a real-time voltage signal of the first AC power is abnormal, the control signal instructs the power conversion module to switch to provide a ground voltage.
[0006] In some embodiments, when the digital control module determines that the real-time voltage signal is abnormal, the digital control module may further detect a residual current received by the power conversion module and set a control signal corresponding to the residual current. An output terminal of the power conversion module may receive the residual current, and when the residual current is greater than a predetermined current value, the control signal may instruct the power conversion module to continue providing the ground voltage. When the residual current is equal to or less than the predetermined current value, the control signal may instruct the power conversion module to stop providing the ground voltage and set the duty cycle of the power conversion module to zero.
[0007] In some embodiments, the digital control module may include a phase-locked loop and a control unit. The phase-locked loop may detect an input or output first AC power and generate a real-time voltage signal. An amplitude component and an angular velocity component may be defined in the real-time voltage signal. The control unit may set a control signal based on the amplitude component and at least one amplitude change amount acquired in different switching periods. The control unit may determine the amplitude change amount for each of a plurality of consecutive switching periods and determine that the amplitude change amount is abnormal if all of the amplitude change amounts for each of the plurality of consecutive switching periods are greater than a first threshold. The control unit may also determine the amplitude component for each of the plurality of consecutive switching periods and determine that the amplitude component is abnormal if all of the amplitude components for each of the plurality of consecutive switching periods are equal to or less than a second threshold. [Effects of the Invention]
[0008] As described above, the bidirectional AC power converter of the present invention uses a phase-locked loop to lock the input or output first AC power and determines whether the device under test is disconnected from the output terminal based on the amplitude component of the real-time voltage signal. If the device under test is disconnected from the output terminal without an early warning, the bidirectional AC power converter can immediately detect the disconnection of the device under test and not only stop the input or output of AC power, but also effectively release the remaining power in the current path. Once the device under test is reconnected to the output terminal, the bidirectional AC power converter can quickly resume operation. [Brief explanation of the drawings]
[0009] [Figure 1] 1 is a functional block diagram showing a bidirectional AC power conversion device according to an embodiment of the present invention; [Figure 2] FIG. 2 is a schematic diagram showing an AC voltage. [Figure 3] FIG. 2 is a schematic diagram showing a circuit between an output terminal and an element to be measured according to one embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0010] The features, objects and functions of the present invention will be further described below. However, the following description is merely an example of the present invention and does not limit the scope of the present invention, that is, any equivalent changes and modifications made within the scope of the claims of the present invention do not deviate from the gist of the present invention, and do not deviate from the spirit and scope of the present invention, and should be considered as further embodiments of the present invention.
[0011] FIG. 1 is a functional block diagram showing a bidirectional AC power converter according to an embodiment of the present invention. As shown in FIG. 1, the bidirectional AC power converter 1 is electrically connected between an external power source 2 and an element DUT under test to transmit AC power (first AC power) to the element DUT under test. In practice, the external power source 2 may be a commercial power source or another voltage source, and the element DUT under test applicable to the bidirectional AC power converter 1 is not limited to a load or a voltage source. In one example, when the element DUT under test is a load, the bidirectional AC power converter 1 can provide power to drive the element DUT under test. When the element DUT under test is a voltage source, the bidirectional AC power converter 1 can supply power provided from the element DUT under test to the external power source 2 by drawing power from the element DUT under test. In other words, the bidirectional AC power converter 1 does not limit the transmission direction of the AC power, and the AC power may be input to or output from the bidirectional AC power converter 1.
[0012] The bidirectional AC power converter 1 includes a power conversion module 10 and a digital control module 12. The digital control module 12 includes a phase-locked loop 120 and a control unit 122. The power conversion module 10 includes an output terminal 100 electrically connected to a device under test (DUT). In one example, the output terminal 100 and the device under test (DUT) may be connected by a bus bar. The control unit 122 is electrically connected to the phase-locked loop 120 and the power conversion module 10, respectively, and is capable of generating a control signal for setting a first AC power to be input to or output from the power conversion module 10. The control signal may be a pulse-width modulation (PWM) signal, and the control unit 122 can set various parameters of the AC voltage or AC current output from the power conversion module 10 by determining the duty ratio of the PWM signal within one duty cycle.
[0013] In practice, the phase locked loop 120 includes a phase detector. After the output terminal 100 and the DUT under test are securely connected, the phase detector can lock the AC voltage or AC current transmitted between the power conversion module 10 and the DUT under test. For example, assuming that the power conversion module 10 is configured to draw power from the DUT under test, once the phase detector locks the AC voltage, the phase locked loop 120 can generate a real-time voltage signal based on the locked AC voltage. In one example, the generation of the real-time voltage signal by the phase locked loop 120 is used as a means for determining whether the DUT under test is operating normally. That is, if the phase detector successfully locks the AC voltage (generates a real-time voltage signal), the control unit 122 can determine that the DUT under test is connected to the system. The phase locked loop 120 can also obtain the amplitude and angular velocity components of the real-time voltage signal by performing a Park transformation on the real-time voltage signal. Those skilled in the art should be able to understand the operating principles of the phase locked loop 120, and therefore, a detailed description thereof will be omitted. In one example, the phase locked loop 120 can acquire a corresponding real-time voltage signal in each switching cycle, so that the control unit 122 can calculate the difference between the two amplitude components, i.e., the amplitude change amount, based on the real-time voltage signals of two adjacent switching cycles. In practice, the control unit 122 can record corresponding N-1 amplitude change amounts based on the real-time voltage signals of N consecutive switching cycles, and set the control signal based on the N-1 amplitude change amounts.
[0014] As an actual example, assume that the power conversion module 10 is configured to draw power from the device under test (DUT). If the connection line between the output terminal 100 and the device under test (DUT) is suddenly disconnected, the device under test (DUT) will be disconnected from the output terminal 100 without an early warning. Since the bidirectional AC power converter 1 and the device under test (DUT) transmit AC power, if the device under test (DUT) is disconnected from the output terminal 100 without an early warning, the AC voltage at this time may be close to a peak voltage or close to zero. The processing method of the bidirectional AC power converter 1 of this embodiment will be described below for these two cases. As shown in FIGS. 1 and 2, FIG. 2 is a schematic diagram showing AC voltage. As shown in the figure, if the device under test (DUT) is disconnected from the output terminal 100 at time T1, the AC voltage will be close to a peak value. At this time, the control unit 122 performs real-time Just before Switching period and current switching period period The real-time voltage signal can show that the amplitude change suddenly becomes abnormally large, for example, the voltage decays rapidly from the peak value, so that the amplitude change is greater than the first predetermined threshold. In practice, when the control unit 122 determines that the amplitude change has become abnormal, it quickly adjusts the control signal to instruct the power conversion module 10 not to continue providing AC power.
[0015] This embodiment does not limit the exact value of the first threshold, and those skilled in the art will understand that the first threshold can be determined based on the transmitted AC voltage. On the other hand, the control unit 122 does not necessarily adjust the control signal immediately based only on a single abnormal amplitude change. For example, the control unit 122 can determine whether the amplitude change is abnormal from the real-time voltage signal of multiple consecutive adjacent switching cycles. For example, if the control unit 122 finds that at least six consecutive amplitude changes are all greater than the predetermined first threshold, it can determine that the device under test (DUT) has been disconnected from the output terminal 100.
[0016] In one example, suppose the device under test (DUT) is disconnected from the output terminal 100 at time T2. Because the AC voltage at time T2 is close to zero, the current input to or output from the output terminal 100 is essentially close to zero. Conventional AC power converters cannot immediately determine whether the device under test is disconnected, leading to misjudgment. In particular, the digital current measurement method used in conventional AC power converters is prone to errors, such as noise interference, making it difficult to determine whether a small value detected near the current zero point is the current zero point. In other words, if the device under test (DUT) is disconnected near the current zero point, conventional AC power converters cannot determine when to quickly trigger a protection mechanism. In contrast, the amplitude component in this embodiment is a value obtained by separating the angular velocity component (phase) using the Park transform, allowing the control unit 122 to more quickly determine whether the voltage amplitude is changing. Therefore, when the element DUT to be measured is disconnected from the output terminal 100 at time T2, the control unit 122 of this embodiment can determine whether an abnormality has occurred based on the amount of change in amplitude, and can quickly adjust the control signal to instruct the power conversion module 10 not to continue providing AC power.
[0017] The above-described determination method using the amplitude change amount is applied when the AC voltage input to or output from the power conversion module 10 changes significantly. When the AC voltage input to or output from the power conversion module 10 changes only slightly, the control unit 122 can determine whether the device under test (DUT) is disconnected using the amplitude component. In one example, since the voltage peak value of the AC voltage input to or output from the power conversion module 10 is known, this embodiment can set a threshold (second threshold) based on the voltage peak value. In practice, the second threshold does not necessarily have to be equal to the voltage peak value, but may be slightly smaller than the voltage peak value. This embodiment is not limited to this. As a practical example, assume that the power conversion module 10 is configured to draw power from the device under test (DUT), and the phase detector of the phase-locked loop 120 locks onto the real-time voltage signal to obtain the amplitude component and the angular velocity component. At this time, the control unit 122 can determine whether the device DUT under test is disconnected based on whether one or more amplitude components are lower than the second threshold. For example, the control unit 122 can record the amplitude components of multiple consecutive switching cycles, and can determine that the device DUT under test has already been disconnected if the amplitude components of multiple consecutive switching cycles are consistently lower than the second threshold. As described above, the amplitude components in this embodiment are values obtained by separating the angular velocity component (phase) using Park's transform. Therefore, even if the change in AC voltage is small, the control unit 122 can quickly determine whether the device DUT under test is disconnected.
[0018] Note that, since an energy storage capacitor (e.g., bridge-connected between two terminals) is typically bridge-connected to the output terminal 100, in this embodiment, a mechanism for discharging the power of the energy storage capacitor is also designed. As shown in FIGS. 1 to 3, FIG. 3 is a schematic diagram showing a circuit between the output terminal and the device under test (DUT) according to one embodiment of the present invention. As shown in the figure, an energy storage capacitor Xcap may be bridge-connected between the two output terminals 100, but the energy storage capacitor Xcap is not necessarily intentionally designed into the current path. For example, the energy storage capacitor Xcap may have non-ideal capacitance characteristics in the line between the output terminal 100 and the device under test (DUT). The following describes the effect of the energy storage capacitor Xcap on the bidirectional AC power conversion device 1.
[0019] As a practical example, assume that when the power conversion module 10 normally draws power from the device under test (DUT), the energy storage capacitor Xcap continues to store power. At this time, if the device under test (DUT) is disconnected (as shown by the switch SW being turned off in FIG. 3 ), those skilled in the art will understand that the energy storage capacitor Xcap has a significant amount of remaining power and will continue to discharge the remaining current Icap. This embodiment does not limit the size of the energy storage capacitor Xcap or the direction of discharge of the remaining current Icap. Conventionally, the remaining current Icap is consumed by resistance within the circuit, which typically requires a long time. To accelerate the discharge of the remaining power in the energy storage capacitor Xcap, the control unit 122 controls the power conversion module 10 to maintain a ground voltage (also referred to as zero voltage) for a certain period of time when it determines that the device under test (DUT) has been disconnected. In one example, the power conversion module 10 actively controls the output terminal 100 to ground voltage, forcing a voltage difference between the energy storage capacitor Xcap and the output terminal 100, so that the energy storage capacitor Xcap can more efficiently release the remaining current Icap (i.e., there is a larger remaining current Icap).
[0020] In practice, the control unit 122 continuously detects the value of the remaining current Icap supplied to the output terminal 100. If the value of the remaining current Icap is greater than a predetermined current value, it indicates that the remaining power in the energy storage capacitor Xcap has not been fully discharged, and the control signal provided by the control unit 122 instructs the power conversion module 10 to continue providing the ground voltage. Conversely, if the value of the remaining current Icap is equal to or less than the predetermined current value, it indicates that the remaining power in the energy storage capacitor Xcap has been fully or almost fully discharged, and the control signal provided by the control unit 122 instructs the power conversion module 10 to stop providing the ground voltage. Then, the control unit 122 adjusts the control signal to set the duty ratio to zero, thereby preventing the first AC power from being input to or output from the power conversion module 10, and waits for a restart command.
[0021] As can be seen from the above, in the bidirectional AC power converter 1 of this embodiment, if the DUT under test is disconnected from the output terminal 100 without an early warning, the control unit 122 determines the disconnection of the DUT under test based on the real-time voltage signal generated by the AC voltage locked by the phase-locked loop 120. This reduces erroneous determinations due to voltage phase effects and controls the power conversion module 10 to stop providing AC power before the voltage rises due to the disconnection of the DUT under test. At the same time, the power conversion module 10 maintains the ground voltage at the output terminal 100 and quickly releases the remaining power in the energy storage capacitor Xcap. In this way, the bidirectional AC power converter 1 quickly releases all the remaining power in the energy storage capacitor Xcap without triggering a protection mechanism due to an abnormally high voltage at the output terminal 100. Therefore, when the DUT under test is reconnected to the output terminal 100, the bidirectional AC power converter 1 can quickly resume operation.
[0022] Although the above example illustrates the power conversion module 10 drawing power from the DUT under test, the above embodiment may also be applied to a case in which the power conversion module 10 supplies power to the DUT under test. That is, the control unit 122's determination of abnormal situations, such as when the amplitude change amount is greater than the first threshold, the amplitude component is smaller than the second threshold, and the duty ratio of the power conversion module 10 is greater than the third threshold, is independent of the power transmission direction. Even if the power conversion module 10 supplies power to the DUT under test, the control unit 122 can determine whether the DUT under test is disconnected using the above embodiment.
[0023] As described above, the bidirectional AC power converter of the present invention uses a phase-locked loop to lock the input or output first AC power and determines whether the device under test is disconnected from the output terminal based on the amplitude component of the real-time voltage signal. If the device under test is disconnected from the output terminal without an early warning, the bidirectional AC power converter can immediately detect the disconnection of the device under test and not only stop the input or output of AC power, but also effectively release the remaining power in the current path. Once the device under test is reconnected to the output terminal, the bidirectional AC power converter can quickly resume operation. [Explanation of symbols]
[0024] 1. Bidirectional AC power converter 10 Power Conversion Module 100 output terminal 12 Digital Control Module 120 Phase-locked circuit 122 control unit 2 External power supply DUT: The element to be measured Xcap energy storage capacitor Icap residual current SW switch
Claims
1. A bidirectional AC power conversion device that inputs or outputs a first AC power, a digital control module for generating control signals; a power conversion module that sets the first AC power to be input or output based on the control signal, When the digital control module determines that the real-time voltage signal of the first AC power is abnormal, the control signal instructs the power conversion module to switch to provide a ground voltage; the digital control module includes a phase locked loop and a control unit, the phase locked loop detects the first AC power being input or output and generates the real-time voltage signal, the real-time voltage signal has an amplitude component and an angular velocity component defined therein, and the control unit sets the control signal based on the amplitude component and at least one amplitude change amount acquired at different switching periods.
2. 2. The bidirectional AC power converter of claim 1, wherein when the digital control module determines that the real-time voltage signal is abnormal, the digital control module further detects a residual current received by the power conversion module and sets the control signal corresponding to the residual current.
3. 3. The bidirectional AC power converter according to claim 2, wherein an output terminal of the power conversion module receives the residual current, and when the residual current is greater than a predetermined current value, the control signal instructs the power conversion module to maintain providing the ground voltage.
4. 4. The bidirectional AC power converter according to claim 3, wherein, when the remaining current is equal to or less than the predetermined current value, the control signal instructs the power conversion module to stop providing the ground voltage and sets a duty ratio of the power conversion module to zero.
5. 2. The bidirectional AC power converter according to claim 1, wherein the control unit determines the amount of amplitude change in each of a plurality of consecutive switching periods, and determines that the amount of amplitude change is abnormal when all of the amounts of amplitude change in each of the consecutive switching periods are greater than a first threshold value.
6. 6. The bidirectional AC power converter according to claim 5, wherein the control unit determines the amplitude component of each of a plurality of consecutive switching periods, and determines that the amplitude component is abnormal when all of the amplitude components of each of the consecutive switching periods are equal to or less than a second threshold value.
Citation Information
Patent Citations
Frequency converter
CN203027151U