Impedance monitoring of modular electrolysis systems
In-situ AC impedance spectroscopy using power electronics hardware and controls in electrochemical systems addresses the challenge of continuous fault detection and correction in PEM stacks, enhancing system performance and longevity.
Patent Information
- Application Number
- JP2022578992
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-06-26
- Filing Date
- 2021-06-28
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2041-06-28
AI Technical Summary
Existing electrochemical systems face challenges in detecting degradation modes without interrupting power flow, as laboratory methods are intrusive and impractical for large-scale applications, and existing circuit arrangements require multiple circuits to cancel ripple currents, complicating diagnostics.
Integrate power electronics hardware and controls that allow for in-situ AC impedance spectroscopy by creating a defined AC ripple in electrochemical devices, canceling ripple currents using power factor correction rectifiers and auxiliary power converters, enabling continuous monitoring without disrupting operation.
Enables continuous health monitoring and fault detection in electrochemical systems like PEM stacks, allowing for real-time diagnostics and correction of faults without affecting system operation, improving performance and longevity.
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Abstract
Description
[Technical Field]
[0001] (Related Applications) This application claims the benefit of priority to Indian Patent Application No. 202021027158, filed on June 26, 2020, the entire contents of which are incorporated herein by reference for all purposes. (Technical field)
[0002] The present disclosure is directed to health and performance monitoring and control of electrochemical systems, such as proton exchange membrane (PEM) stack systems, using signals derived from alternating current impedance spectroscopy. [Background technology]
[0003] Electrical circuits in which batteries are either the power source or the load are problematic in that the effects of chemical degradation can occur, with the only observable symptom or measurement being a degradation in the battery's potential or impedance. This is problematic for systems implemented in the field where degradation conditions occur and the only measurement is voltage, as there is no way to differentiate between possible failure modes that can cause the degradation and correct the degradation conditions before they become permanent or chronic. Alternating current impedance spectroscopy can be used in a laboratory setting to analyze the different frequency responses of batteries to determine different failure modes. However, for applications in this field, laboratory equipment may not be used because it is not routine, and if it were used at the kilowatt or even megawatt scale, the resulting ripple from a laboratory signal generator would be highly intrusive to customer use cases where it is not permitted. Summary of the Invention [Means for solving the problem]
[0004] According to one embodiment, an alternating current (AC) impedance spectroscopy method includes providing an AC impedance spectroscopy ripple from power electronics into an electrochemical device and absorbing the ripple in the power electronics.
[0005] According to another embodiment, an alternating current (AC) impedance spectroscopy system includes a power factor correction (PFC) rectifier electrically connectable to an AC power source by an AC splitter bus and to a direct current (DC)-to-DC converter by a DC bus, the PFC rectifier including a plurality of power inverters electrically connectable to respective AC buses of the AC splitter buses, a first capacitor and a second capacitor electrically connected in parallel with the plurality of power inverters by a central DC bus at a DC link midpoint, and an auxiliary power converter electrically connected to the DC link midpoint by the central DC bus and electrically connectable to the direct current (DC)-to-DC converter by the DC bus. The present invention provides, for example, the following. (Item 1) 1. An alternating current (AC) impedance spectroscopy system, comprising: a power factor correcting (PFC) rectifier electrically connectable to an AC power source by an AC splitter bus and to a DC / DC converter by a DC bus; The PFC rectifier a plurality of power inverters electrically connectable to respective AC buses of the AC split buses; a first capacitor and a second capacitor electrically connected in parallel to the plurality of power inverters by a central DC bus at a DC link midpoint; an auxiliary power converter electrically connected to the DC link midpoint by the central DC bus and electrically connectable to the direct current (DC / DC) converter by the DC bus; An AC impedance spectroscopy system comprising: (Item 2) Item 1. The AC impedance spectroscopy system of item 1, wherein the auxiliary power converter is configured to draw an amount of reactive power from the DC link to offset ripple current drawn by the DC / DC converter. (Item 3) The auxiliary power converter a third capacitor and a fourth capacitor electrically connected in parallel to the central DC bus; a filtering inductor having a first end and a second end, the filtering inductor electrically connected in parallel to the third capacitor and the fourth capacitor at the first end; a half-bridge inverter electrically connected to the second end of the filtering inductor; Item 2. The AC impedance spectroscopy system of item 1, comprising: (Item 4) The half-bridge inverter a first transistor electrically connected at an emitter end to the second end of the filtering inductor; a first diode electrically connected at an anode end to the second end of the filtering inductor in parallel with the first transistor; a second transistor electrically connected at a collector end to the second end of the filtering inductor; a second diode electrically connected at its cathode end to the second end of the filtering inductor in parallel with the second transistor; Item 4. The AC impedance spectroscopy system of item 3, comprising: (Item 5) the third capacitor is electrically connected at the first end to the DC bus and at the second end to the central DC bus and the first end of the filtering inductor; the fourth capacitor is electrically connected at the first end to the central DC bus and the first end of the filtering inductor and at the second end to a return DC bus; The half-bridge inverter a first transistor electrically connected at a collector end to the DC bus; a first diode electrically connected at the cathode end to the DC bus in parallel with the first transistor; a second transistor electrically connected at its emitter end to the return DC bus; a second diode electrically connected at the anode end to the return DC bus in parallel with the second transistor; Item 4. The AC impedance spectroscopy system of item 3, comprising: (Item 6) Each of the plurality of power inverters a first diode and a second diode electrically connected in parallel to each of the split AC buses, the first diode being electrically connected at an anode end to each of the AC buses and the second diode being electrically connected at a cathode end to each of the AC buses; a first transistor electrically connected at a collector end to the respective AC bus and electrically connected at an emitter end to the bus; a third diode in parallel with the first transistor, the third diode electrically connected at the cathode end to the respective AC bus and at the anode end to the bus; a second transistor electrically connected at its collector end to the central DC bus and electrically connected at its emitter end to the bus; a fourth diode in parallel with the second transistor, the fourth diode being electrically connected at its cathode end to the central DC bus and at its anode end to the bus; Item 2. The AC impedance spectroscopy system of item 1, comprising: (Item 7) a controller configured with controller-executable instructions, the instructions comprising: measuring a ripple voltage of the DC link based on voltages at the first capacitor and the second capacitor in response to injecting a perturbation into the DC / DC converter; injecting a countervailing ripple into the DC link configured to remove the ripple voltage from the DC link; Item 2. The AC impedance spectroscopy system of item 1, wherein the controller implements operations including: (Item 8) the auxiliary power converter includes a third capacitor and a fourth capacitor electrically connected in parallel to the central DC bus; The auxiliary power converter further comprises a controller configured with controller executable instructions, the instructions comprising: measuring a ripple voltage of the DC link based on voltages at the third capacitor and the fourth capacitor in response to injecting a perturbation into the DC / DC converter and in response to the first capacitor and the second capacitor being inaccessible; injecting a countervailing ripple into the DC link configured to remove the ripple voltage from the DC link; Item 2. The AC impedance spectroscopy system of item 1, wherein the controller implements operations including: (Item 9) 1. An alternating current (AC) impedance spectroscopy method, the method comprising: Providing AC impedance spectroscopy ripple measurements in devices ranging from power electronics to electrochemical devices; absorbing the ripple in the power electronics; An alternating current (AC) impedance spectroscopy method comprising: (Item 10) 10. The method of claim 9, wherein the AC impedance spectroscopy ripple is provided from power electronics into the electrochemical device while an operating current or voltage is provided to or from the electrochemical device, whereby the AC impedance spectroscopy ripple does not interrupt operation of the electrochemical device. (Item 11) the electrochemical device comprises an electrochemical stack; 10. The method of claim 9, wherein the impedances of different parts of the electrochemical stack are measured separately and compared with each other or with a reference or average impedance value. (Item 12) determining a fault in a portion of the electrochemical stack; electrically bypassing the portion of the electrochemical stack containing the fault; Item 12. The method of item 11, further comprising: (Item 13) Item 12. The method of item 11, wherein the electrochemical stack comprises a proton exchange membrane (PEM) electrolyzer stack. (Item 14) The power electronics a plurality of power inverters electrically connectable to respective AC buses of the AC split bus; a first capacitor and a second capacitor electrically connected in parallel to the plurality of power inverters by a central DC bus at a DC link midpoint; an auxiliary power converter electrically connected to the DC link midpoint by the central DC bus and electrically connectable to a direct current (DC / DC) converter by the DC bus; Item 10. The method of item 9, comprising: (Item 15) Item 15. The method of item 14, wherein the auxiliary power converter is configured to draw an amount of reactive power from the DC link to offset the AC impedance spectroscopy ripple. (Item 16) measuring the AC impedance spectroscopy ripple voltage of the DC link based on the voltages at the first capacitor and the second capacitor; injecting a countervailing ripple into the DC link configured to remove the ripple voltage from the DC link; Item 15. The method of item 14, further comprising: (Item 17) outputting an AC voltage at a varying frequency; measuring the impedance at varying frequencies of the electrochemical device comprising a proton exchange membrane (PEM) stack; determining whether the measured impedance exceeds a threshold for an AC voltage at a first frequency of the varying frequencies; determining a fault associated with the AC voltage at the first frequency in response to determining that the measured impedance exceeds the threshold for the AC voltage at the first frequency; and Correcting said impairment; Item 10. The method of item 9, further comprising: (Item 18) determining the fault includes determining that the fault is a dryout of a proton exchange membrane; 18. The method of claim 17, wherein correcting the fault comprises increasing humidification, resulting in increased inlet flow water content to the PEM stack. (Item 19) determining the impairment includes determining that the impairment is poisoning of a proton exchange membrane; Item 18. The method of item 17, wherein correcting the fault comprises triggering one of a battery activation cycle or an electrode oxidation / reduction cycle. (Item 20) determining the fault includes determining that the fault is flooding of a proton exchange membrane; Item 18. The method of item 17, wherein correcting the fault includes triggering one of purging the chamber in which flooding is occurring or increasing the anode or cathode recirculation rate to clear the flooding condition. (Item 21) determining the fault includes determining that the fault is a leak through a proton exchange membrane; Correcting the impairment comprises: increasing the fuel supply to compensate for the leakage; and sending a check error message for the leak to be repaired; Item 18. The method according to item 17, comprising: (Item 22) determining the impairment includes determining that the impairment is excessive despreading; Item 18. The method of item 17, wherein correcting the impairment comprises reducing the input of a reactant. (Item 23) determining the fault includes determining that the fault is bubble formation at the anode; Item 18. The method of item 17, wherein correcting the obstruction comprises one of facilitating or increasing water flow to remove the air bubbles. (Item 24) determining the fault includes determining that the fault is insufficient compression; 18. The method of claim 17, wherein correcting the impairment comprises increasing compression by an amount to correct for the insufficient compression. [Brief explanation of the drawings]
[0006] [Figure 1A] 1A and 1B are circuit block diagrams illustrating power electronics hardware configured for alternating current (AC) impedance spectroscopy according to a first embodiment, the power electronics hardware including a power factor correction (PFC) rectifier configured for ripple cancellation. [Figure 1B] 1A and 1B are circuit block diagrams illustrating power electronics hardware configured for alternating current (AC) impedance spectroscopy according to a first embodiment, the power electronics hardware including a power factor correction (PFC) rectifier configured for ripple cancellation.
[0007] [Figure 2A] 2A and 2B are circuit block and control flow diagrams illustrating power electronics hardware and control configured for AC impedance spectroscopy according to a first embodiment, including digital control of a PFC rectifier for ripple cancellation. [Figure 2B]2A and 2B are circuit block and control flow diagrams illustrating power electronics hardware and control configured for AC impedance spectroscopy according to a first embodiment, including digital control of a PFC rectifier for ripple cancellation.
[0008] [Figure 3A] 3A and 3B are circuit block diagrams illustrating power electronics hardware configured for AC impedance spectroscopy according to a second embodiment, the power electronics hardware including a power inverter configured for ripple cancellation. [Figure 3B] 3A and 3B are circuit block diagrams illustrating power electronics hardware configured for AC impedance spectroscopy according to a second embodiment, the power electronics hardware including a power inverter configured for ripple cancellation.
[0009] [Figure 4A] 4A and 4B are circuit block and control flow diagrams illustrating power electronics hardware and control configured for AC impedance spectroscopy according to a second embodiment, including digital control of a power inverter for ripple cancellation. [Figure 4B] 4A and 4B are circuit block and control flow diagrams illustrating power electronics hardware and control configured for AC impedance spectroscopy according to a second embodiment, including digital control of a power inverter for ripple cancellation.
[0010] [Figure 5A]5A and 5B are circuit block diagrams illustrating power electronics hardware configured for AC impedance spectroscopy according to an alternative embodiment, where the power electronics hardware includes a direct current (DC) / DC converter configured for ripple cancellation. [Figure 5B] 5A and 5B are circuit block diagrams illustrating power electronics hardware configured for AC impedance spectroscopy according to an alternative embodiment, where the power electronics hardware includes a direct current (DC) / DC converter configured for ripple cancellation.
[0011] [Figure 6] FIG. 6 is a process flow diagram illustrating an exemplary method of impedance monitoring of a modular electrolysis system according to an embodiment.
[0012] [Figure 7] FIG. 7 is a component block diagram illustrating an exemplary computing device suitable for implementing various embodiments. DETAILED DESCRIPTION OF THE INVENTION
[0013] Like reference symbols in the various drawings indicate like elements.
[0014] The present embodiments will now be described more fully hereinafter with reference to the accompanying figures, in which exemplary embodiments are shown. However, the foregoing may be embodied in many different forms and should not be construed as limited to the exemplary embodiments set forth herein. All fluid flows may flow through conduits (e.g., pipes and / or manifolds) unless otherwise specified.
[0015] All documents mentioned herein are incorporated herein by reference in their entirety. Reference to an item in the singular should be understood to include the plural, and vice versa, unless expressly stated otherwise or clear from the context. Grammatical conjunctions are intended to represent coordinated clauses, sentences, words, and the like in all disjunctive and conjunctive combinations unless otherwise stated or clear from the context. Thus, the term "or" should generally be understood to mean "and / or," and the term "and" should generally be understood to mean "and / or."
[0016] The recitation of ranges of values herein is not intended to be limiting, unless otherwise indicated herein, and instead refers individually to every value that falls within the range, with each separate value within such range being incorporated herein as if it were individually recited herein. The words "about," "approximately," or the like, when associated with numerical values, are to be interpreted as including any deviations as understood by one of ordinary skill in the art to operate satisfactorily for the intended purpose. Values and / or ranges of values are provided herein as examples only and do not constitute limitations on the scope of the described embodiments. The use of any example or exemplary language (e.g., "such as," or the like) is intended merely to better elucidate the embodiments and does not impose limitations on the scope of those embodiments. No language in the specification should be construed as indicating any non-claim element as essential to the practice of the disclosed embodiments.
[0017] Embodiments described herein refer to "cells" as power sources and / or electrical loads of electrochemical systems, such as proton exchange membrane (PEM) fuel cell generators, PEM electrolyzers, other PEM units, and / or other electrochemical systems, which may include cells such as electrochemical cells (e.g., batteries, flow batteries, fuel cells, electrolyzer cells, hydrogen pumping cells, oxygen pumping cells), solar cells, motors, generators, and other semiconductor junction-based cells. In some embodiments, cells as power sources may include electric or electrochemical ammonia synthesis cells, such as electrodialysis cells, electric or electrochemical metal-organic framework (MOF) battery water capacitors, electric or electrochemical oxygen, nitrogen, or air purifiers, electric or electrochemical water polishers. In some embodiments, cells as electrical loads may include customer loads (e.g., building electrical systems, equipment, environmental conditioning systems, machinery, computer networks, etc.), hydrogen pumping cells, and oxygen generation cells, MOF batteries, etc. Examples of such PEM electrolyzer cells are described in U.S. patent application Ser. No. 17 / 101,224, entitled "SYSTEMS AND METHODS OF AMMONIA SYNTHESIS," by Ballantine et al.; U.S. patent application Ser. No. 17 / 101,232, entitled "ELECTROCHEMICAL DEVICES, MODULES, AND SYSTEMS FOR HYDROGEN GENERATION AND METHODS OF OPERATING THEREOF," by Ballantine et al.; and U.S. provisional patent application Ser. No. 63 / 057,406, entitled "MODULAR SYSTEM FOR HYDROGEN AND AMMONIA GENERATION WITHOUT DIRECT WATER INPUT FROM CENTRAL SOURCE," by Light et al. (the entire contents of each of these references are incorporated herein by reference).
[0018] Although the embodiments and examples herein may be described with reference to a PEM-based electrolyzer stack (herein, a PEM stack) for clarity and ease of exposition, this does not limit the scope of the claims and description to a PEM stack, and one skilled in the art will recognize that such embodiments may be applicable to other cells as well.
[0019] Embodiments provide devices and methods for determining health and control points for electrochemical systems, such as PEM stack-based systems, using signals derived from alternating current (AC) impedance spectroscopy. Such devices and methods can be configured to monitor the PEM stack for leakage, errors, degradation, and overall life quality by using a small AC ripple across the direct current (DC) power input into the PEM stack and reading the frequency of the resulting impedance wave. In some embodiments, the AC ripple can be swept through a set of frequencies, and data can be collected for analysis against a predetermined error; the system can be corrected to clear the error, and / or the error can be reported to the owner / customer. The small ripple current should not be higher than the DC current amount and should not affect PEM stack operation or life.
[0020] Existing circuit arrangements for AC impedance spectroscopy require the power flow to or from the electrochemical stack to be interrupted and the impedance to be monitored by observing the voltage transient response. This method has the substantial disadvantage of requiring interruption of the power flow. Furthermore, full range frequency spectrum analysis is not possible using this method.
[0021] Existing circuit arrangements for AC impedance spectroscopy also include structures in which multiple elements of power electronics are operated 180 degrees out of phase to cancel out ripple on the power bus when ripple is applied to the electrochemical stack bus. This has the substantial disadvantage of requiring multiple circuits to be operated to create the cancellation effect, which a single stack circuit would not be able to do.
[0022] Embodiments herein provide power electronics hardware and power electronics controls configured for in-situ AC impedance spectroscopy where ripple returning to the power supply source can be canceled. Such embodiments avoid the requirement of existing circuit arrangements for AC impedance spectroscopy for multiple sections of power electronics to be operated out of phase to cancel ripple currents.
[0023] Embodiments herein provide for the integration of in situ AC impedance spectroscopy in electrochemical systems such as PEM fuel cell generators, PEM electrolyzers, other PEM units, or other electrochemical systems, where AC impedance spectroscopy characteristics are used for system diagnostics and control.
[0024] 1A-5B illustrate various embodiments of power supply electronics located in a power supply module of an electrochemical system, such as a PEM fuel cell generator, a PEM electrolyzer, other PEM unit, or other electrochemical system. The power supply power electronics can be configured to create a defined AC current ripple that can be superimposed on the DC current supplied to a battery, e.g., an electrolyzer stack, such as a PEM stack in an electrolyzer module.
[0025] The resulting ripple returning to the power supply source can be canceled out so that there is no resulting impact on the matching load for the electrochemical system. In some embodiments, the ripple can be canceled out by ripple cancellation power electronics hardware, as described further herein with reference to FIGS. 1A, 1B, 3A, and 3B. In some embodiments, the ripple can be canceled out by ripple cancellation control inside the power electronics error correction loop, as described further herein with reference to FIGS. 2A, 2B, 4A, and 4B. In some embodiments, the ripple can be canceled out by a ripple cancellation switch, as described further herein with reference to FIGS. 5A and 5B.
[0026] The voltage on the electrolyzer stack or group of cells may be monitored by electronics in the power supply module and / or in the electrolyzer module. The phasor impedance of the electrolyzer stack at the ripple frequency may be determined by comparing the induced voltage ripple and drive current ripple signals. Multiple impedances at different frequencies may be determined by varying the drive current ripple frequency. In some embodiments, the drive current ripple may be swept through the frequency in a stepped manner. In some embodiments, the drive current ripple may be selected frequencies used individually or in small sets to obtain specific impedance data at specific frequencies.
[0027] Based on the impedance data, control can be implemented to improve the performance and lifetime of the electrolyzer module. The power electronics hardware and power electronics controls described herein can be integrated in conjunction with system level controls for diagnostic or functional control of the electrochemical system.
[0028] 1A and 1B are circuit block diagrams illustrating power electronics hardware 100a, 100b configured for AC impedance spectroscopy including a power factor correction (PFC) rectifier 102 configured for ripple cancellation according to a first embodiment. Referring to FIGS. 1A and 1B, the power electronics hardware 100a, 100b may be configured to provide power to an electrochemical system, such as a PEM fuel cell generator, a PEM electrolyzer, another PEM unit, or another electrochemical system. The power electronics hardware 100a, 100b may include the PFC rectifier 102 and a DC / DC converter 104, which may be electrically coupled to other components (not shown) of the power electronics hardware 100a, 100b, such as a battery as a power source and / or a battery (not shown) as an electrical load. The power electronics hardware 100a, 100b may further include or be electrically connectable to an AC power source 120, which may provide three-phase AC via an AC bus 121. The AC power source 120 may include a generator, an electrical grid, a load bank, or the like. The AC power source 120 may be electrically connectable to the PFC rectifier 102 through multiple inductors 122. For example, inductors 122, such as at least one inductor 122 electrically connectable to a bus of the split AC bus 121, may be electrically connectable between different phase outputs of the AC power source 120 and the PFC rectifier 102. The AC power source 120 may also be electrically connectable to a ground reference 132.
[0029] The PFC rectifier 102 may include various components configured for power conditioning and for AC impedance spectroscopy. The various components may include any number of power inverters 106, which may be electrically connectable to an AC power source 120, each of which may be electrically connectable to an AC bus of the split AC bus 121 and at least one respective inductor 122. The PFC rectifier 102 may be electrically connected to the DC / DC converter 104. For example, the power inverters 106 may include at least two diodes, such as a first diode 118a and a second diode 118b, each of which may be electrically connectable to an AC bus of the AC split bus 121 between an anode end of the first diode 118a and a cathode end of the second diode 118b. The cathode end of the first diode 118a may be electrically connected to the DC bus 123a, and the anode end of the second diode 118b may be electrically connected to the return DC bus 123b. In some embodiments, the DC bus 123a and the return DC bus 123b may have opposite polarities.
[0030] In some embodiments, a half-bridge inverter 112 may be incorporated into each of the power inverters 106. A first end of the half-bridge inverter 112 may be electrically connected between the anode end of the first diode 118a and the cathode end of the second diode 118b. Thus, in some embodiments, the first end of the half-bridge inverter 112 may be electrically connectable to a respective bus of the AC splitter bus 121, which is connected between the anode end of the first diode 118a and the cathode end of the second diode 118b. The half-bridge inverter 112 may be electrically connected to a central DC bus 123c. In some embodiments, the central DC bus 123c may be a neutral bus. In some embodiments, the half-bridge inverter 112 may include a pair of oppositely oriented parallel diodes 114a, 114b and transistors 116a, 116b, such as insulated gate bipolar transistors (IGBTs) or metal oxide semiconductor field effect transistors (MOSFETs). The pair of parallel diodes 114a, 114b and transistors 116a, 116b may include cathode ends of the diodes 114a, 114b electrically connected to the collector ends of the transistors 116a, 116b and anode ends of the diodes 114a, 114b electrically connected to the emitter ends of the transistors 116a, 116b. The cathode end of the first diode 114a and the collector end of the first transistor 116a may be electrically connected in parallel between the anode end of the first diode 118a and the cathode end of the second diode 118b. The anode ends of the diodes 114a, 114b and the emitter ends of the transistors 116a, 116b may be electrically connected in parallel to a bus (e.g., bus 122). The transistors 116a, 116b may each include a gate end electrically connected in parallel to the bus. The cathode end of the second diode 114b and the collector end of the second transistor 116b may be electrically connected in parallel with the central DC bus 123c.
[0031] The PFC rectifier 102 may include at least two capacitors, such as a first capacitor 108a and a second capacitor 108b, electrically connected in parallel to a central DC bus 123c. The first capacitor 108a may be electrically connected to the central DC bus 123c at its cathode end and to the DC bus 123a at its anode end. The second capacitor 108b may be electrically connected to the central DC bus 123c at its anode end and to the return DC bus 123b at its cathode end. The capacitors 108a, 108b may be electrically connected in parallel with the power inverter 106 and / or the half-bridge inverter 112 via the central DC bus 123c. In some embodiments, the capacitors 108a, 108b may be configured to approximately equally divide the DC voltage between the power inverter 106 and the auxiliary power converter 110 of the PFC rectifier 102. The connection of the capacitors 108a, 108b to the central DC bus 123c may be the midpoint (“O”) with respect to the DC link of the PFC rectifier 102.
[0032] The auxiliary power converter 110 may include at least two additional capacitors, such as a first capacitor 124a and a second capacitor 124b, electrically connected in parallel with the central DC bus 123c. The first capacitor 124a may be electrically connected at a first end to the DC bus 123a and at a second end to the central DC bus 123c. The second capacitor 124b may be electrically connected at a first end to the central DC bus 123c and at a second end to the return DC bus 123b. The capacitors 124a and 124b may be electrically connected in parallel with a filter inductor 126. The filter inductor 126 may be electrically connected at a first end to the central DC bus 123c and at a second end to the second half-bridge inverter. The second half-bridge inverter includes a pair of parallel transistors 128a, 128b, such as insulated gate bipolar transistors (IGBTs) or metal oxide semiconductor field effect transistors (MOSFETs), and diodes 130a, 130b. The pair of parallel transistors 128a, 128b and diodes 130a, 130b may include collector ends of the transistors 128a, 128b electrically connected to cathode ends of the diodes 130a, 130b and emitter ends of the transistors 128a, 128b electrically connected to anode ends of the diodes 130a, 130b. The collector end of the first transistor 128a and the cathode end of the first diode 130a may be electrically connected in parallel with the DC bus 123a. The emitter end of the first transistor 128a and the anode end of the first diode 130a may be electrically connected in parallel with the second end of the filter inductor 126. The collector end of the second transistor 128b and the cathode end of the second diode 130b may be electrically connected in parallel with the second end of the filter inductor 126. The emitter end of the second transistor 128b and the anode end of the second diode 130b may be electrically connected in parallel with the return DC bus 123b.
[0033] The ADC / DC converter 104 may be electrically connected between the DC bus 123a and the return DC bus 123b. The DC / DC converter 104 may be electrically connectable to any number and combination of other components (not shown) of the power electronics hardware 100a, 100b, such as a battery as a power source and / or a battery (not shown) as an electrical load.
[0034] In some embodiments, the DC link midpoint (“O”) of the PFC rectifier 102 may present a connection to the capacitors 108a, 108b and the central DC bus 123c. Depending on the state of charge of the capacitors 108a, 108b, the availability of the DC link midpoint may vary. When the DC link midpoint is not accessible, as shown in FIG. 1B, the capacitors 124a, 124b may be actively connected to the DC central bus 123c in place of the DC bus 123a and DC return bus 123b for use in AC impedance spectroscopy.
[0035] The auxiliary power converter 110 may be switched, for example, through control of transistors 130a, 130b, in a manner such that the auxiliary power converter 110 may draw only reactive power from the DC link with a defined magnitude and phase angle. The current drawn by the auxiliary power converter 110 from the DC link may be controlled to compensate for ripple current drawn by the DC / DC converter 104 from the DC link of the PFC rectifier 102. In some embodiments, the control of the transistors 128a, 128b and diodes 130a, 130b may be implemented using any number and combination of controllers (not shown).
[0036] 2A and 2B are circuit block and control flow diagrams illustrating power electronics hardware 200 and control 210 configured for AC impedance spectroscopy, including digital control 202 of a PFC rectifier for ripple cancellation, according to a second embodiment. With reference to FIGS. 1A-2B, like reference numerals in FIGS. 2A and 1A and 1B, including the ground reference 132, AC power source 120, inductor 122, power inverter 106, diodes 118a, 118b, half-bridge inverter 112, capacitors 108a, 108b, and DC / DC converter 104, may be similarly described. Reference numerals relating to components of half-bridge inverter 112 have been omitted for purposes of simplicity and clarity. However, components of half-bridge inverter 112, such as diodes 114a, 114b and transistors 116a, 116b, as shown in and described with reference to FIGS. 1A and 1B, may be similarly described with reference to FIGS. 2A and 2B.
[0037] In some embodiments, control of power electronics hardware 200 configured for AC impedance spectroscopy may be implemented by any number and combination of controllers (not shown). For example, a controller may receive a signal (“A”) from AC power source 120, a signal (“B”) from inductor 122, and signals (“C” and “D”) from capacitors 108a, 108b. Signal (A-D) may represent voltage and / or current levels for each of AC power source 120, inductor 122, and capacitors 108a, 108b. The controller may use signal (A-D) to implement control of power electronics hardware 200 configured for AC impedance spectroscopy, for example, as illustrated in FIG. 2B .
[0038] In the PFC rectifier 202, the current loop may be operated at a high (e.g., several kHz) bandwidth to virtually track the current reference command. Typically, the DC bus voltage control loop will have a lower bandwidth to maintain a sinusoidal grid current in the AC source 120 (“A”) and / or inductor 122 (“B”), for example, by providing appropriate current reference commands (e.g., “SA,” “SB,” “SC”). In other words, the DC bus voltage loop bandwidth will be lower when compared to the current loop. The higher and lower bandwidths are relative and dependent on the power rating of the underlying equipment.
[0039] Ripple voltage on the DC link of the PFC rectifier 202 may appear in the voltage controller's input error signal due to converter perturbations related to AC impedance spectroscopy in the DC / DC converter 104. When the voltage controller error input contains a low-frequency signal (e.g., a signal whose frequency is close to or higher than, particularly about, the voltage loop bandwidth), a ripple portion in the error signal may reach the voltage controller's output. This adds undesirable frequency components to the current reference command. The current controller may ensure proper tracking of the reference command, which may result in the injection of a lower-frequency signal (related to the frequency perturbation injected by the DC / DC converter 104) into the power grid, such as the AC power source 120.
[0040] To mitigate the injection of low-frequency components into the grid, a controller may estimate or find the DC link ripple voltage based on known electrical quantities related to AC impedance spectroscopy and the injected perturbation, or the controller may track the ripple voltage on the DC link. The controller may remove the ripple component from the sensed DC link voltage signal or from an error input to a controller, such as a DC link voltage controller. This may prevent the propagation of the perturbed voltage ripple in the DC link from reaching a controller, such as a current controller, and may effectively prevent the injection of low-frequency components into the grid.
[0041] The controller may implement several operations to remove ripple components from the sensed DC link voltage signal or error. For example, the controller may receive a signal (“A”) from the AC power source 120, a signal (“B”) from the inductor 122, and signals (“C” and “D”) from the capacitors 108a, 108b. These signals (“A-D”) may be voltage signals at the respective components. The controller may, for example, sum the signals (C and D) to generate a total voltage and a voltage difference of the signals (C and D) (212a, 212h). The controller may also receive three phase signals (A and B) and convert the three phase signals to voltage and current components (e.g., dq) in a two-axis reference frame (218a, 218b). A hardware zero-crossing or digital phase-locked loop operation 224 may determine the angular frequency for converting the three phase signals to voltage and current components (218a, 218b). A voltage sensorless control can be used to determine the grid phase angle or angular frequency.
[0042] The total voltage may further be summed with a reactive voltage component to generate a real voltage component (212b), which may be summed with a reference real voltage component to generate a real voltage voltage difference (212c), which may be transformed (e.g., by a proportional and integral (“PI”) operation) to generate a corresponding reference current (214a).
[0043] The reference current in the two-axis reference frame may be summed with a current component in the two-axis reference frame converted from the three-phase signal (B) (212d, 212f) to generate a current difference, and the difference 214b, 214c (e.g., by a PI operation) may be generated. In some embodiments, the reactive power reference current summed with the reactive power current (212f) may be equal to zero. The difference may be summed with a portion of the voltage component in the two-axis reference frame converted from the three-phase signal (A) to generate a value in the two-axis reference frame (212e, 212g). The voltage difference of signals (C and D) may be summed with a zero value (212i), resulting in a value being generated in a third axis reference (214d) (e.g., by a PI operation). The resulting value may be converted to a value in the three-axis reference frame of the received signals (A and B) (216). The values in the three-axis reference frame may be augmented (220a, 220b, 220c) and transformed (222) by a reference voltage (e.g., by enhanced pulse width modulation (ePWM) operation) to generate a current reference command (e.g., "SA", "SB", "SC") that may be provided to the PFC rectifier 202.
[0044] In some embodiments, the AC power source is a battery, such as an electrochemical battery, or a generator, and power electronics pass this power to a load, where the power electronics impart a perturbation, ripple, or sine wave in the supplied current on the battery, device, electrochemical battery, or generator, such that by monitoring the voltage of the battery or generator, the impedance of that item at the frequency of the perturbation, ripple, or sine wave can be determined. Additionally, the power electronics can be configured to create a direct cancellation of the perturbation, ripple, or sine wave so that it does not pass downstream into the feeder to power the load.
[0045] 3A and 3B are circuit block diagrams illustrating power electronics hardware 300a, 300b configured for AC impedance spectroscopy, including a power inverter configured for ripple cancellation according to a second embodiment. With reference to FIGS. 1A-3B, like reference numerals in FIGS. 3A and 3B and FIGS. 1A-2B, including ground reference 132, AC power source 120, inductor 122, power inverter 106, capacitors 108a, 108b, auxiliary power converter 110, capacitors 124a, 124b, filter inductor 126, transistors 128a, 128b, diodes 130a, 130b, and DC / DC converter 104, can be similarly described.
[0046] The power inverter 106 may include at least two pairs of parallel transistors 308a, 308b, such as insulated gate bipolar transistors (IGBTs) or metal oxide semiconductor field effect transistors (MOSFETs), and diodes 310a, 310b, instead of the diodes 118a and 118b of the first embodiment shown in FIGS. 1A and 1B. The pairs of parallel transistors 308a, 308b and diodes 310a, 310b may include the collector ends of the transistors 308a, 308b electrically connected to the cathode ends of the respective diodes 310a, 310b, and the emitter ends of the transistors 308a, 308b electrically connected to the anode ends of the respective diodes 310a, 310b. The collector end of the first transistor 308a and the cathode end of the first diode 310a may be electrically connected in parallel with the DC bus 123a. The emitter end of the first transistor 308a and the anode end of the first diode 310a may be electrically connected in parallel with respective ones of the AC split buses 121. The collector end of the second transistor 308b and the cathode end of the second diode 310b may be electrically connected in parallel with respective ones of the AC split buses 121. The emitter end of the second transistor 308b and the anode end of the second diode 310b may be electrically connected in parallel with the return DC bus 123b.
[0047] In some embodiments, a half-bridge inverter 302 may be incorporated into each of the power inverters 106. A first end of the half-bridge inverter 302 may be electrically connected between the emitter end of the first transistor 308a and the anode end of the first diode 310a, and between the collector end of the second transistor 308b and the cathode end of the second diode 310b. Thus, in some embodiments, the first end of the half-bridge inverter 302 may be electrically connectable to each of the AC splitter buses 122, which are electrically connected between the emitter end of the first transistor 308a and the anode end of the first diode 310a, and between the collector end of the second transistor 308b and the cathode end of the second diode 310b. A second end of the half-bridge inverter 302 may be electrically connected to a central DC bus 123c. In some embodiments, the central DC bus 123c may be a neutral bus. In some embodiments, the half-bridge inverter 302 may include a pair of parallel transistors 306 a, 306 b, such as insulated gate bipolar transistors (IGBTs) or metal oxide semiconductor field effect transistors (MOSFETs), and diodes 304 a, 304 b. The pair of parallel transistors 306 a, 306 b and diodes 304 a, 304 b may include collector ends of the transistors 306 a, 306 b electrically connected to cathode ends of the diodes 304 a, 304 b, and emitter ends of the transistors 306 a, 306 b electrically connected to anode ends of the diodes 304 a, 304 b. The collector end of the first transistor 306a and the cathode end of the first diode 304a may be electrically connected in parallel between the emitter end of the first transistor 308a and the anode end of the first diode 310a, and between the collector end of the second transistor 308b and the cathode end of the second diode 310b. The emitter end of the first transistor 306a and the anode end of the first diode 304a may be electrically connected in parallel to a bus. The collector end of the second transistor 306b and the cathode end of the second diode 304b may be electrically connected in parallel to a bus.The emitter end of the second transistor 306b and the anode end of the second diode 304b may be electrically connected in parallel to a central DC bus. The transistors 306a, 306b may each include a gate end electrically connected in parallel to the bus.
[0048] The capacitors 108a, 108b of the power electronics hardware 300a, 300b may be electrically connected in parallel to the central DC bus 123c. The first capacitor 108a may be electrically connected to the central DC bus 123c at a cathode end, and the second capacitor 108b may be electrically connected to the central DC bus 123c at an anode end. The capacitors 108a, 108b may be electrically connected in parallel to the power inverter 106 and / or the half-bridge inverter 302 via the central DC bus 123c.
[0049] The active ripple mitigation in the power electronics hardware 300a, 300b for the power inverter 106 may be identical to that presented for the PFC rectifier 102 in FIGS. 1A and 1B. When the DC link midpoint (“O”) is not accessible, the capacitors 124a, 124b may create a virtual DC link midpoint, and wide voltage fluctuations across the capacitors 124a, 124b, close to the DC bus voltage, may be acceptable. By controlling the amount and phase angle of ripple current drawn by the auxiliary power converter 110 from the DC bus 123a, the voltage ripple across the capacitors 108a, 108b may be mitigated for all inverter load conditions at different power factors. In some embodiments, control of the transistors 308a, 308b, 130a, 130b may be implemented using any number and combination of controllers (not shown).
[0050] 4A and 4B are circuit block and control flow diagrams illustrating power electronics hardware 400 and control 410 configured for AC impedance spectroscopy, including digital control of a power inverter for ripple cancellation according to a second embodiment. With reference to FIGS. 1A-4B, like reference numerals in FIGS. 4A and 1A-2A, 3A, and 3B, including ground reference 132, AC power source 120, inductor 122, power inverter 106, transistors 308a, 308b, diodes 310a, 310b, half-bridge inverter 302, capacitors 108a, 108b, and DC / DC converter 104, may be similarly described. Reference numerals relating to components of half-bridge inverter 302 have been omitted for purposes of simplicity and clarity. However, components of half-bridge inverter 302, such as diodes 304a, 304b and transistors 306a, 306b, as shown and described with reference to FIGS. 3A and 3B, may be similarly described with reference to FIGS. 4A and 4B.
[0051] The digital control 210 of ripple mitigation presented for the PFC rectifier 102 in FIGS. 2A and 2B can be extended for digital control 410 of the power inverter 106 in FIG. 4A. The inverter 106 can be a two-level or multilevel inverter. The control architecture for the digital control 410 can be identical to that for the digital control 210, except that there can be two current references (one for active power and one for reactive power). Ripple in the DC link can propagate to the current reference for active power in both the inverter 106 in FIG. 4A and the PFC rectifier 102 in FIG. 2A. Reactive power in the PFC rectifier 102, such as 212f, summed with the active power can always be zero in FIG. 4B. The active and reactive powers are independent and can be either positive or negative with respect to the inverter 106, in which case bidirectional power flow can be considered a possibility.
[0052] 5A and 5B are circuit block diagrams illustrating power electronics hardware 500 including a DC / DC converter 508 and a compensation set of switches configured for AC impedance spectroscopy with ripple cancellation, according to an alternative embodiment. Referring to FIGS. 1A-5B, power electronics hardware 500 can include a compensation set of switches, an example of which is illustrated in FIG. 5B, configured to offset ripple created and injected into a battery as a power source and / or a battery as a power load by AC impedance spectroscopy.
[0053] The power electronics hardware 500 may include a PFC rectifier 504 (e.g., PFC rectifier 102 in FIGS. 1A-2A and 3A-4A) that may be electrically connectable to an AC power source 502 (e.g., AC power source 120 in FIGS. 1A-2A and 3A-4A). The power electronics hardware 500 may further include a first DC bus 516 that electrically connects the PFC rectifier 504 to at least two DC / DC converters 506, 508 in parallel. In some embodiments, the first DC bus 516 may be an approximately 800V bus. In some embodiments, the DC / DC converter 506 (e.g., DC / DC converter 104 in FIGS. 1A-2A and 3A-4A) may be electrically connectable to a battery as a load 514. The DC / DC converters 506, 508 may be electrically connected to an AC sweep generator 510 configured to generate any number and combination of AC signals, such as a single AC signal, a stepped AC signal, a range of AC signals that may vary in voltage, etc. The AC signals generated by the AC sweep generator 510 may be used by the DC / DC converter 506 to measure the impedance of the battery as a load 514. The DC / DC converter 508 may be electrically connected to a split DC bus 516 at the anode end and to a capacitor 512 at the cathode end via a second DC bus 518. In some embodiments, the second DC bus 518 may be an approximately 400V bus.
[0054] 5B, in some embodiments, the DC / DC converter 508 may include at least two pairs of parallel transistors 520a, 520b, such as insulated gate bipolar transistors (IGBTs) or metal oxide semiconductor field effect transistors (MOSFETs), and diodes 522a, 522b. The pairs of parallel transistors 520a, 520b and diodes 522a, 522b may include the collector ends of the transistors 522a, 522b electrically connected to the cathode ends of the diodes 522a, 522b and the emitter ends of the transistors 520a, 520b electrically connected to the anode ends of the diodes 522a, 522b. The emitter end of the first transistor 520a and the anode end of the first diode 522a may be electrically connected in parallel with a DC bus 516, such as a DC return bus of the DC bus 516. The collector end of the first transistor 520a and the cathode end of the first diode 522a may be electrically connected in parallel with an inductor 514, such as a ripple rejection inductor, as a first end of the inductor 514. The inductor 514 may be electrically connected at a second end to an anode end of the capacitor 512 via a second DC bus 518. The second DC bus 518 may be used to remove ripple from the DC / DC converter 508 and may not carry any active power. The capacitor 512 may be electrically connected at its cathode end to a DC bus 516, such as a DC return bus of the DC bus 516. The emitter end of the second transistor 520b and the anode end of the second diode 522b may be electrically connected in parallel with the first end of the inductor 512. The collector end of the second transistor 520b and the cathode end of the second diode 522b may be electrically connected in parallel with the DC bus 516. The AC signal generated by the AC sweep generator 510 may be used by the DC / DC converter 508 to generate an impedance that may be compared to the impedance measured by the bias of the DC / DC converter 506 to generate a bias signal. The DC / DC converter 508 may be a bidirectional converter, relative to which the DC / DC converter 506 forms a basis for the measured impedance.Capacitor 512 removes ripple from DC / DC converter 508 .
[0055] In some embodiments, the power electronics hardware 100a, 100b, 200, 300a, 300b, 400, and 500 may be unidirectional. In some embodiments, the power electronics hardware 100a, 100b, 200, 300a, 300b, 400, and 500 may be bidirectional.
[0056] In one embodiment, an alternating current (AC) impedance spectroscopy method includes providing an AC impedance spectroscopy ripple from power electronics into an electrochemical device and absorbing the ripple in the power electronics.
[0057] In one embodiment, the AC impedance spectroscopy ripple is provided from power electronics into the electrochemical device while an operating current or voltage is provided to or from the electrochemical device such that the AC impedance spectroscopy ripple does not disrupt operation of the electrochemical device.
[0058] In one embodiment, the electrochemical device comprises an electrochemical stack, and the impedances of different portions of the electrochemical stack are measured separately and compared to each other or to a reference or average impedance value. The method may also include determining a fault in a portion of the electrochemical stack and electrically bypassing the portion of the electrochemical stack containing the fault. The electrochemical stack may comprise a proton exchange membrane (PEM) electrolyzer stack.
[0059] In one embodiment, the power electronics system includes a plurality of power inverters electrically connectable to respective AC buses of the AC splitter buses, a first capacitor and a second capacitor electrically connected in parallel with the plurality of power inverters by a central DC bus at a DC link midpoint, and an auxiliary power converter electrically connected to the DC link midpoint by the central DC bus and electrically connectable to a direct current (DC)-to-DC converter by the DC bus. In one embodiment, the auxiliary power converter is configured to draw reactive power from the DC link to cancel the AC impedance spectroscopy ripple. In one embodiment, the method also includes measuring an AC impedance spectroscopy ripple voltage of the DC link based on voltages at the first capacitor and the second capacitor, and injecting a canceling ripple into the DC link configured to cancel the ripple voltage from the DC link.
[0060] With reference to FIG. 6 , method 600 may also include outputting AC voltages at varying frequencies from power electronics; measuring the impedance at the varying frequencies of an electrochemical device including a proton exchange membrane (PEM) stack; determining whether the measured impedance exceeds a threshold value for the AC voltage at a first frequency of the varying frequencies; and, in response to determining that the measured impedance exceeds the threshold value for the AC voltage at the first frequency, determining a fault associated with the AC voltage at the first frequency; and correcting the fault.
[0061] 6 is a process flow diagram illustrating an exemplary method 600 of impedance monitoring in a modular electrolytic system, according to an embodiment. With reference to FIGS. 1A-5B, method 600 may be implemented in dedicated hardware, software configured to cause a processor (e.g., a controller) to execute instructions of the software, and / or a combination of dedicated hardware and software running on a processor. The software may be stored on a non-transitory processor-readable medium, such as volatile memory (e.g., cache, random access memory, buffer, etc.) or non-volatile memory (fixed or removable storage memory, disk memory, solid-state memory, etc.), and loaded into the processor for execution. For example, method 600 may be implemented as a processor (e.g., controller) executing software within an AC impedance spectroscopy system (e.g., power electronics hardware 100a, 100b, 200, 300a, 300b, 400, and 500 in FIGS. 1A-2A, 3A-4A, 5A, and 5B; power electronics hardware control 210, 410 in FIGS. 2B and 4B), including other individual components and various memory / cache controllers. To encompass alternative configurations enabled in various embodiments, hardware implementing method 600 is referred to herein as a "processing device."
[0062] In block 602, the processing device may generate and output an AC voltage at a varying frequency. The processing device may control various hardware components (e.g., transistors 116a, 116b in FIGS. 1A-2A, transistors 306a, 306b, 308a, 308b in FIGS. 3A-4A, and / or AC sweep generator 510 in FIG. 5A) to generate and output the AC voltage at a varying frequency. The processing device sweeps through a set of preferred frequencies or an entire spectrum of frequencies. In some embodiments, the AC voltage frequency may be between about 1 Hz and about 10 kHz. The maximum frequency of the perturbation may be within the bandwidth of the power electronics converter (e.g., DC / DC converter 104 in FIGS. 1A-2A and 3A-4A, auxiliary power converter 110 in FIGS. 1A, 1B, 3A, and 3B, and / or DC / DC converter 506 in FIG. 5A).
[0063] In block 604, the processing device may measure the impedance resulting from the output of AC voltage at varying frequencies. The processing device may perform measurements of the impedance resulting from the AC voltage through a specified system, such as a battery as a power source and / or a battery as a load. Measurements may be performed by the processing device by monitoring voltages and currents at different locations in an AC impedance spectroscopy system (e.g., power electronics hardware 100a, 100b, 200, 300a, 300b, 400, and 500 in FIGS. 1A-2A, 3A-4A, 5A, and 5B; power electronics hardware control 210, 410 in FIGS. 2B and 4B), such as a power electronics converter (e.g., DC / DC converter 104 in FIGS. 1A-2A and 3A-4A; auxiliary power converter 110 in FIGS. 1A, 1B, 3A, and 3B; DC / DC converter 506 in FIG. 5A).
[0064] At decision block 606, the processing device may determine whether the impedance measurement exceeds a threshold value for the AC voltage frequency. The processing device may access and retrieve a threshold value for the impedance for the AC voltage frequency from memory where the threshold value is stored in correlation, such as in a data structure or database. The processing device may compare the impedance measurement for the AC voltage frequency to the threshold value for the impedance for the AC voltage frequency to determine whether the impedance measurement exceeds the threshold value for the AC voltage frequency.
[0065] In response to determining that the impedance measurement does not exceed a threshold value for the AC voltage frequency (i.e., decision block 606="NO"), the processing device may generate and output an AC voltage at varying frequencies at block 602. In response to determining that the impedance measurement exceeds a threshold value for the AC voltage frequency (i.e., decision block 606="YES"), the processing device may determine and handle a fault associated with the AC voltage frequency at block 608. The processing device may access and retrieve fault information from memory that is stored in correlation, such as in a data structure or database, including fault type, a process for correcting or addressing the fault related to the AC voltage frequency, etc. The processing device may implement a process for correcting or addressing the fault.
[0066] The following are non-exhaustive examples of faults and processes for correcting the faults for different voltage frequencies. For example, a fault associated with a first voltage frequency may include PEM dryout detection, and the fault may be handled by a processing device causing an increase in humidification function to increase the inlet flow water content to the PEM stack to properly humidify and moisten the PEM. In some embodiments, each time a fault occurs, the processing device may consider the environment within the PEM stack and / or the surroundings and may run the humidification process increasingly more frequently and / or at higher levels. In one embodiment, the flow direction of a dead-ended PEM stack may be reversed (inlet-outlet reversed to outlet-inlet) by the processing device when PEM dryout is detected via impedance within about 1 kHz.
[0067] In another example, a fault associated with the second voltage frequency may include poisoning of the PEM. If a fault occurs in which impurities are present in the input components (e.g., water, pure oxygen) and the PEM is poisoned, a change in the cell impedance spectrum may be detected. In some embodiments, the processing device may handle this fault by triggering a cell activation cycle, such as pumping hydrogen from one electrode to another, or an electrode oxidation / reduction cycle. In some embodiments, the processing device may handle this fault by triggering increased functionality of impurity filtering mechanisms in electrochemical systems, such as water or air or fuel purification.
[0068] In another example, a fault associated with the third voltage frequency may include flooding of the PEM (e.g., accumulation of liquid water), and the fault may be handled by a processing device to either cause the PEM system control to purge the chamber where the flooding occurs, such as on the anode or cathode of the cell, and / or increase the recirculation rate of the anode or cathode to eliminate the flooding condition. In one embodiment, a flooding fault may be detected by a processing device by monitoring the impedance of the PEM stack at a frequency of 1 Hz.
[0069] In another example, the fault associated with the fourth voltage frequency may include a leak from the PEM. If a leak occurs, such as detected by the processing device when there is a divergence between the electrochemical system function (output flow or output power per input flow) compared to the baseline impedance spectrum, the leak fault may be handled by the processing device by adjusting and supplying more fuel to the electrochemical system (not running as efficiently) to cover the need. The processing device may send an error code for inspection so that the leak can be corrected. Impedance measurements may be taken to determine the exact location of the leak.
[0070] In another example, the fault associated with the fifth voltage frequency may include excessive back-diffusion. If excessive back-diffusion occurs as detected by the processing device when there is a divergence in the output compared to the cell impedance value, the electrochemical system may evaluate why the excess occurs, and if significantly environmental, the excessive back-diffusion fault may be handled by the processing device by causing the electrochemical system to correct itself and reducing input reactant usage to minimize back-diffusion.
[0071] In another example, a fault associated with the sixth voltage frequency may include gas bubble formation on the anode. If gas bubbles form on the anode plate as detected by the processing device through low frequency impedance monitoring, the processing device may handle the fault by accelerating or increasing the water flow to remove the gas bubbles.
[0072] In another example, the fault associated with the seventh voltage frequency may include insufficient compression. The processing device may detect the insufficient compression fault when the impedance spectrum indicates increased bulk resistance. The processing device may handle this fault by increasing compression to compensate and correct the condition.
[0073] In block 610, the processing device may send a notification to an inspection team. In some embodiments, the processing device may send a notification that a fault has occurred. The notification may be specific to the type of fault detected and / or may include AC impedance spectroscopy results, such as impedance measurements in the electrochemical system, voltage frequency, and / or location of the measured impedance. In some embodiments, the processing device may send a notification that the error has been resolved and / or is not resolved. In some embodiments, the processing device may send a notification that there is an impact on electrochemical system performance.
[0074] In some embodiments, the blocks of method 600 may be implemented continuously, periodically, and responsively in any combination. For example, blocks 602, 604, and 606 may be implemented continuously, even in parallel with each other and / or other blocks of method 600.
[0075] In some embodiments, impedance spectroscopy is used to separately measure the impedance of portions of an electrochemical stack, such as a PEM stack. For example, the impedance of one portion of a stack can be compared to the impedance of another portion of the same stack, or to a reference impedance or stack average. Differential impedance measurements across portions of a stack can more easily pinpoint errors or faults. Furthermore, in addition to measuring impedance, triggering current bypass or shorting of a portion (i.e., section) of the stack based on impedance may also occur. This provides a more efficient system that requires less manual inspection and maintains a longer lifespan. In other words, a defective portion of a PEM stack can be electrically bypassed in the event of an erroneous impedance measurement from the defective portion.
[0076] In one embodiment, the power electronics hardware 100a, 100b, 200, 300a, 300b, 400, and 500 in Figures 1A-2A, 3A-4A, 5A, and 5B, and the power electronics hardware controls 210, 410 in Figures 2B and 4B inject AC impedance spectroscopy ripples into the electrochemical device and simultaneously absorb ripples, so that they can be installed in DC systems or other non-bipolar systems without interrupting the operating current or voltage being provided to or from the electrochemical device. In one embodiment, multiple superimposed ripples or ripples of complex waveforms, such as square waves, can be provided to create multiple frequencies for analysis using a single injected ripple waveform.
[0077] Various embodiments (including, but not limited to, the embodiments discussed above with reference to FIGS. 1A-6 ) may also be implemented in a computing system, such as any of a variety of commercial and / or dedicated integrated or embedded computing systems. An exemplary computing system 700 is illustrated in FIG. 7 . Such a computing system 700 typically includes one or more processor assemblies 701 (e.g., controllers, CPUs, DSPs, FPGAs, ASICs, etc.) coupled to volatile memory 702 and mass non-volatile memory 704 (e.g., disk drives, solid-state drives, etc.). The computing system 700 may also include a data port or drive 706 (e.g., compact disc (CD) or digital versatile disc (DVD) disk drive, USB port, serial port, etc.) coupled to the processor assembly 701. The computing system 700 may also include a network access port 703 coupled to the processor assembly 701 for establishing a network interface connection with a network 705, such as a local or wide area network, the Internet, a public switched telephone network, and / or a cellular data network, which is coupled to other broadcast system computers and servers.
[0078] 1A-7, processor assembly 701 may be any programmable microprocessor, microcomputer, or multiple processor chips or chips that can be configured by software instructions (applications) to perform various functions, including those of the various embodiments described above. In some devices, multiple processors may be provided, such as one processor dedicated to wireless communication functions and one processor dedicated to running other applications. Typically, software applications may be stored in internal memory 702 before they are accessed and loaded into processor assembly 701. Processor assembly 701 may include sufficient internal memory to store application software instructions. In many devices, internal memory 702 may be volatile or non-volatile memory, such as flash memory, or a mixture of both. For purposes of this description, a general reference to memory refers to memory accessible by processor assembly 701, including devices within processor assembly 701 itself and internal memory 702 or removable memory plugged into memory 702.
[0079] The above systems, devices, methods, processes, and equivalents may be implemented in hardware, software, or any combination thereof suitable for the control, data acquisition, and data processing described herein. This includes implementation in one or more microprocessors, microcontrollers, embedded microcontrollers, programmable digital signal processors, or other programmable devices or processing circuits, along with internal and / or external memory. This may also, or instead, include one or more application-specific integrated circuits, programmable gate arrays, programmable array logic components, or any other device or devices that can be configured to process electronic signals. It will be further understood that implementations of the processes or devices described above may include computer-executable code written using a structured programming language such as C, an object-oriented programming language such as C++, or any other high- or low-level programming language (including assembly language, hardware description languages, and database programming languages and techniques) that can be stored, compiled, or interpreted to be executed by one of the above devices and processors, heterogeneous combinations of processor architectures, or different hardware and software combinations. At the same time, processing may be distributed across devices such as the various systems described above, or all of the functionality may be integrated into a dedicated stand-alone device, and all such permutations and combinations are intended to fall within the scope of this disclosure.
[0080]
[0013] Embodiments disclosed herein include computer program products comprising computer-executable or computer-usable code that, when executed on one or more computing devices, may perform any and / or all of the steps of the control systems described above. The code may be stored in a non-transitory manner in computer memory, which may be memory from which the program executes (such as random access memory associated with a processor), or in a disk drive, flash memory, or any other optical, electromagnetic, magnetic, infrared, etc. storage device, or any other device or combination of devices. In another aspect, any of the control systems described above may be embodied in any suitable transmission or propagation medium that carries the computer-executable code and / or any input or output from the same.
[0081] The method steps of the implementations described herein are intended to include any suitable way of causing such method steps to be performed, consistent with the patentability of the claims that follow, unless a different meaning is expressly provided or otherwise apparent from the context. Thus, for example, performing step X includes any suitable way of causing another party, such as a remote user, a remote processing resource (e.g., a server or cloud computer), or a machine, to perform step X. Similarly, performing steps X, Y, and Z may include any way of directing or controlling any combination of such other individuals or resources to perform steps X, Y, and Z in order to obtain the benefit of such steps. Thus, the method steps of the implementations described herein are intended to include any suitable way of causing one or more other parties or entities to perform steps, consistent with the patentability of the claims that follow, unless a different meaning is expressly provided or otherwise apparent from the context. Such parties or entities need not be under the direction or control of any other party or entity, or be within any particular authority.
[0082] It should be understood that the methods and systems described above are described by way of example and not limitation. Numerous variations, additions, omissions, and other modifications will be apparent to those skilled in the art. Additionally, the order or presentation of method steps in the above description and drawings is not intended to require a specific order for performing the recited steps unless a particular order is expressly required or otherwise apparent from the context. Thus, while specific embodiments have been illustrated and described, it will be apparent to those skilled in the art that various changes and modifications in form and detail can be made therein without departing from the scope of the present disclosure.
Claims
1. 1. An alternating current (AC) impedance spectroscopy system, comprising: a power factor correcting (PFC) rectifier electrically connectable to the AC power source by an AC splitter bus and to the DC / DC converter by a first direct current (DC) bus; The PFC rectifier comprises: a plurality of power inverters electrically connectable to respective AC buses of the AC split buses; a first capacitor and a second capacitor electrically connected in parallel to the plurality of power inverters by a central DC bus at a DC link midpoint; an auxiliary power converter electrically connected to the DC link midpoint by the central DC bus and electrically connectable to the DC / DC converter by the first DC bus; Including, the auxiliary power converter is configured to draw an amount of reactive power from the DC link to offset ripple current drawn by the DC / DC converter; The auxiliary power converter a third capacitor electrically connected in parallel to the first capacitor and a fourth capacitor electrically connected in parallel to the second capacitor; a filtering inductor electrically connected in parallel with the third capacitor and the fourth capacitor, wherein current from the DC link midpoint is alternately and controllably drawn through the filtering inductor or the third capacitor and the fourth capacitor; and 1. An AC impedance spectroscopy system comprising:
2. The auxiliary power converter the filtering inductor having a first end and a second end, the filtering inductor being electrically connected in parallel to the third capacitor and the fourth capacitor at the first end; a half-bridge inverter electrically connected to the second end of the filtering inductor; 10. The AC impedance spectroscopy system of claim 1, comprising:
3. The half-bridge inverter a first transistor electrically connected at an emitter end to the second end of the filtering inductor; a first diode electrically connected at an anode end to the second end of the filtering inductor in parallel with the first transistor; a second transistor electrically connected at a collector end to the second end of the filtering inductor; a second diode electrically connected at its cathode end to the second end of the filtering inductor in parallel with the second transistor; 3. The AC impedance spectroscopy system of claim 2, comprising:
4. the third capacitor is electrically connected at a first end to the first DC bus and at a second end to the central DC bus and the first end of the filtering inductor; the fourth capacitor is electrically connected at a first end to the central DC bus and the first end of the filtering inductor and at a second end to a return DC bus; The half-bridge inverter a first transistor electrically connected at a collector end to the first DC bus; a first diode electrically connected at its cathode end to the first DC bus in parallel with the first transistor; a second transistor electrically connected at its emitter end to the return DC bus; a second diode electrically connected at its anode end to the return DC bus in parallel with the second transistor; 3. The AC impedance spectroscopy system of claim 2, comprising:
5. Each of the plurality of power inverters a first diode and a second diode electrically connected in parallel to the respective AC buses of the AC split buses, the first diode being electrically connected at an anode end to the respective AC bus and the second diode being electrically connected at a cathode end to the respective AC bus; a first transistor having a collector end and an emitter end, the collector end electrically connected to the respective AC bus; a third diode having a cathode end and an anode end, the cathode end electrically connected to the respective AC bus and the anode end electrically connected to the emitter end of the first transistor; a second transistor having a collector end and an emitter end, the collector end electrically connected to the central DC bus and the emitter end electrically connected to the emitter end of the first transistor; a fourth diode having a cathode end and an anode end, the cathode end electrically connected to the central DC bus and the anode end electrically connected to the emitter end of the second transistor; 10. The AC impedance spectroscopy system of claim 1, comprising:
6. a controller configured with controller-executable instructions, the instructions comprising: measuring a ripple voltage of the DC link based on voltages at the first capacitor and the second capacitor in response to injecting a perturbation into the DC / DC converter; injecting a countervailing ripple into the DC link configured to remove the ripple voltage from the DC link; 10. The AC impedance spectroscopy system of claim 1, wherein the controller implements operations including:
7. the auxiliary power converter includes a third capacitor and a fourth capacitor electrically connected in parallel to the central DC bus; The AC impedance spectroscopy system further comprises a controller configured with controller-executable instructions, the instructions comprising: measuring a ripple voltage of the DC link based on voltages at the third capacitor and the fourth capacitor in response to injecting a perturbation into the DC / DC converter and in response to the first capacitor and the second capacitor being inaccessible; injecting a countervailing ripple into the DC link configured to remove the ripple voltage from the DC link; 10. The AC impedance spectroscopy system of claim 1, wherein the controller implements operations including:
8. 1. An alternating current (AC) impedance spectroscopy method, the method comprising: Providing AC impedance spectroscopy ripple from power electronics into an electrochemical device, wherein a power factor correction (PFC) rectifier is electrically connectable to an AC power source by an AC splitter bus and to a DC / DC converter by a direct current (DC) bus; absorbing the AC impedance spectroscopy ripple in the power electronics, wherein an auxiliary power converter is configured to draw an amount of reactive power from a DC link to offset ripple current drawn by the DC / DC converter; A method comprising:
9. 9. The method of claim 8, wherein the AC impedance spectroscopy ripple is provided from power electronics into the electrochemical device while an operating current or voltage is provided to or from the electrochemical device, whereby the AC impedance spectroscopy ripple does not interrupt operation of the electrochemical device.
10. the electrochemical device comprises an electrochemical stack; The method of claim 8 , wherein the impedances of different portions of the electrochemical stack are measured separately and compared to each other or to a reference or average impedance value.
11. determining a fault in a portion of the electrochemical stack; electrically bypassing the portion of the electrochemical stack containing the fault; The method of claim 10 further comprising:
12. The method of claim 10 , wherein the electrochemical stack comprises a proton exchange membrane (PEM) electrolyzer stack.
13. The PFC rectifier comprises: a plurality of power inverters electrically connectable to respective AC buses of the AC split buses; a first capacitor and a second capacitor electrically connected in parallel to the plurality of power inverters by a central DC bus at a DC link midpoint; an auxiliary power converter electrically connected to the DC link midpoint by the central DC bus and electrically connectable to the DC / DC converter by the DC bus; The method of claim 8, comprising:
14. measuring the AC impedance spectroscopy ripple of the DC link based on the voltages at the first capacitor and the second capacitor; injecting a countervailing ripple into the DC link configured to remove the AC impedance spectroscopy ripple from the DC link; 14. The method of claim 13, further comprising:
15. outputting an AC voltage at a varying frequency; measuring the impedance at varying frequencies of the electrochemical device comprising a proton exchange membrane (PEM) stack; determining whether the measured impedance exceeds a threshold for the AC voltage at a first frequency of the varying frequencies; determining a fault associated with the AC voltage at the first frequency in response to determining that the measured impedance exceeds the threshold for the AC voltage at the first frequency; and Correcting said impairment; The method of claim 8 further comprising:
16. determining the fault includes determining that the fault is a dryout of a proton exchange membrane; 16. The method of claim 15, wherein correcting the fault comprises increasing humidification to produce an increased inlet flow water content to the PEM stack.
17. determining the impairment includes determining that the impairment is poisoning of a proton exchange membrane; 16. The method of claim 15, wherein correcting the fault comprises triggering one of a battery activation cycle or an electrode oxidation / depletion cycle.
18. determining the fault includes determining that the fault is flooding of a proton exchange membrane; 16. The method of claim 15, wherein correcting the fault includes triggering one of purging the chamber in which the flooding is occurring or increasing the recirculation rate of the anode or cathode to clear the flooding condition.
19. determining the fault includes determining that the fault is a leak through a proton exchange membrane; Correcting the impairment comprises: increasing the fuel supply to compensate for the leakage; and sending a check error message for the leak to be repaired; 16. The method of claim 15, comprising:
20. determining the impairment includes determining that the impairment is excessive despreading; 16. The method of claim 15, wherein correcting the impairment comprises reducing reactant input.
21. determining the fault includes determining that the fault is bubble formation at the anode; 16. The method of claim 15, wherein correcting the obstruction includes one of stimulating or increasing water flow to remove air bubbles.
22. determining the fault includes determining that the fault is insufficient compression; The method of claim 15 , wherein correcting the fault comprises increasing compression by an amount to compensate for the insufficient compression.
23. 10. The AC impedance spectroscopy system of claim 1, further comprising one or more additional power factor correction (PFC) rectifiers electrically connectable to the AC power source by the AC splitter bus and to the DC / DC converter by the first DC bus.
24. 24. The AC impedance spectroscopy system of claim 23, wherein the one or more additional PFC rectifiers are connected in parallel to the PFC rectifier, the one or more additional PFC rectifiers configured to cancel one or more additional ripple currents drawn by the DC / DC converter.
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