Modular Electrochemical Systems

The modular electrochemical cell system addresses power underutilization and fluctuation issues by using a housing with removably mounted stacks and computer-controlled power distribution, optimizing energy use and responsiveness.

JP7721173B2Active Publication Date: 2025-08-12ENAPTER SRL
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Patent Information

Application Number
JP2023553291
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-17
Filing Date
2022-03-17
Publication Date
2025-08-12
Estimated Expiration
2042-03-17

AI Technical Summary

Technical Problem

Existing electrochemical devices struggle with underutilization of available power due to activation energy requirements and poor response to power fluctuations, particularly when connected to renewable energy sources.

Method used

A modular electrochemical cell system with a housing containing removably mounted stacks, each stack having fluid inlets and outlets, and a power supply that can be connected in series or parallel, with flow regulation and computer-controlled power distribution to optimize energy use.

Benefits of technology

The system effectively utilizes available power and responds to fluctuations, enhancing energy efficiency and responsiveness, especially when integrated with renewable energy sources.

✦ Generated by Eureka AI based on patent content.

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Abstract

The containerized modular electrochemical cell system comprises a housing and a plurality of electrochemical stacks removably mounted within the housing, each stack comprising one or more electrochemical cells, one or more fluid inlets for receiving a feedstock, and one or more product outlets, the stacks being arranged in at least one row, each row comprising two or more stacks, the stacks in each row being electrically connectable in series, each row being connectable to a power source, each stack or row being configured to operate independently, each row comprising at least one feedstock inlet manifold fluidly connected to an inlet of a stack in the row for distributing feedstock between the inlets of the stacks, at least one product outlet manifold fluidly connected to an outlet of a stack in the row, and flow regulating means configured to regulate fluid flow through the inlets and / or outlets.
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Description

[Technical Field]

[0001] The present invention relates preferably to a container-type system housing an array of modular electrochemical devices, although not necessarily exclusively to an electrolyzer for the electrolytic production of hydrogen. [Background technology]

[0002] Hydrogen has numerous uses ranging from energy storage to the production of fertilizer. Hydrogen can come from many sources. Some of these sources, such as fossil fuels, are undesirable for obvious ecological and environmental reasons. Therefore, it is necessary to be able to produce hydrogen in a reliable and sustainable manner.

[0003] Electrolyzers are devices used to produce water and oxygen by essentially splitting water molecules. Renewable energy sources, including surplus energy harvesting, can be used to power such devices, resulting in hydrogen that can be used as a means of energy storage, for example, complementary to batteries. Electrolyzers generally belong to one of three main technologies currently available: anion exchange membrane (AEM), proton exchange membrane (PEM), and liquid alkaline systems. Liquid alkaline systems are the most established technology, while PEM is somewhat less established. In contrast, AEM electrolyzers are derived from a relatively new technology. Other technologies, such as solid oxide electrolysis, are available but will not be discussed further herein.

[0004] AEM and PEM electrolysers rely on the transfer of ions from one half-cell to the other to produce hydrogen. AEM systems use hydroxide ions (OH - PEM systems rely on the transport of hydrogen ions H through a membrane. + It relies on the movement of

[0005] Other electrochemical devices include fuel cells, electrochemical compressors, or electrochemical purification devices, each of which may be used alone, but may also be found to form part of a single hydrogen solution.

[0006] Currently, it is common practice to size a single electrochemical stack for the required purpose. However, a common drawback to this practice is that the activation energy required for each stack, particularly for such a size, means that the stack will not operate when available power is low. As a result, the available energy is underutilized and the ability to respond to power fluctuations is reduced. Summary of the Invention [Means for solving the problem]

[0007] It is an object of aspects of the present invention to provide improved means and methods for housing and operating modular electrochemical devices that can utilize as much power as is available.

[0008] According to one aspect disclosed herein, a container-type modular electrochemical cell system is provided, the container-type modular electrochemical cell system comprising: a housing; and a plurality of electrochemical stacks removably mounted within the housing, each stack comprising one or more electrochemical cells, one or more fluid inlets for receiving a feedstock, and one or more product outlets, the stacks being arranged in at least one row, each row comprising two or more stacks, the stacks in each row being electrically connectable in series, each row being connectable to a power source, each stack or row being configured to operate independently, each row comprising at least one feedstock inlet manifold fluidly connected to an inlet of a stack in the row for distributing feedstock among the inlets of the stacks, at least one product outlet manifold fluidly connected to an outlet of a stack in the row, and flow regulating means configured to regulate fluid flow through the inlets and / or outlets.

[0009] According to another aspect disclosed herein, there is provided a container-type modular electrochemical cell system, the container-type modular electrochemical cell system comprising: The housing and a plurality of electrochemical stacks removably mounted within the housing, each stack comprising one or more electrochemical cells arranged in side-by-side association to form the stack, each stack comprising one or more fluid inputs for receiving a feedstock and one or more product outputs; two or more stacks form a row, and the housing has one or more rows of stacks therein; a power supply is operatively connected to each string, the stacks in each string being electrically connected in series; each row comprising at least one feedstock inlet fluidly connected to the input of the stack in each row and at least one product outlet fluidly connected to each of the outputs of the stack in each row; The system is means for distributing the feedstock between the feedstock inlets; flow regulating means disposed at the feedstock inlets and / or outlets of each stack, the flow regulating means configured to selectively open and close the respective inlets and / or outlets; and computer-implemented power control means for independently controlling the power supplied to each string of electrochemical cells.

[0010] As used herein, the term "fluid" preferably includes both liquids (eg, liquid water or electrolyte streams) and gases (eg, gaseous streams of hydrogen or oxygen).

[0011] While it is envisioned that any electrochemical device may be used, in a preferred embodiment the electrochemical device may be an electrolytic device, however, it will be understood by those skilled in the art that the required inlets and outlets will vary depending on the nature of the electrochemical device.

[0012] In exemplary embodiments, control means may be provided in communicative connection with the feedstock delivery means and may be configured to cause said feedstock delivery means to deliver a quantity of feedstock to the inlet in response to available energy and / or power fluctuations. In exemplary embodiments, means are provided for circulating spent electrolyte for reuse.

[0013] As used herein, "electrolysis stack," "electrochemical stack," and "electrolyzer" are intended to include reference to modular electrolyzers, electrolyzer stacks, and other modular electrochemical devices such as, but not necessarily limited to, compressors, purification devices, fuel cells, or sensors.

[0014] As used herein, a modular device generally includes auxiliary components rather than the stack itself. In embodiments of the invention where a stack is utilized, it is intended that more of the balance of plant (BoP) be shared between the devices.

[0015] Feedstock, as used herein, generally refers to any input to an electrochemical cell. In embodiments using an electrolyzer, this is typically an electrolyte such as KOH for an AEM electrolyzer, or deionized water for a PEM. In embodiments with a fuel cell, this can be a mostly hydrogen-based feedstock and a feedstock with a significant amount of oxygen. Electrochemical oxygen or hydrogen compressors are typically fed with streams containing substantial amounts of either gas. The present invention is not necessarily intended to be limited by such parameters.

[0016] It is envisioned that an enclosure may be a container, but enclosure as used herein is intended to encompass any mechanism, or general arrangement, including a base upon which modules are placed, which base or equivalent may or may not include exterior walls and / or a roof.

[0017] It is envisioned that the means for circulating the feedstock may include, but are not necessarily limited to, a pump, fan, or pressurized reservoir and associated valve for release regulation. Circulation and distribution are used interchangeably, with circulation including embodiments where there is a closed loop for the electrolyte or equivalent used in embodiments with an electrolysis device.

[0018] While it is envisioned that each string will share a power source, in preferred embodiments, the power sources within each string are serial. Alternatively, power may be supplied in parallel to each stack within a string. The strings themselves may be supplied by separate power supplies, in parallel, or multiple in series. Whether the power supplies are serial or parallel, each stack is envisioned to have a front end or terminal and a rear end or terminal, with the front end adapted to accept a positive or negative power supply and the rear end having a negative or positive supply. In embodiments using fuel cells, when power is generated, it is envisioned that each string supplies power, and power is provided in series by each stack in the string.

[0019] Fluid connections in the present invention exist at both the inlet and outlet. Fluid connections may be fed from a shared manifold and are envisioned to be in series or parallel. In preferred embodiments, parallel means for fluid supply and removal are provided to ensure the required pressure is maintained.

[0020] While it is envisioned that a variety of enclosures may be used, in a preferred embodiment, a shipping container is used.

[0021] In a preferred embodiment, a flow regulation means is provided at the outlet, but may additionally or alternatively be provided at the inlet or at each inlet. It is envisaged that any flow regulation means may be used, although conventional check or control valves are utilized.

[0022] In a preferred embodiment, the electrochemical stack comprises at least an anode half-cell and a cathode half-cell, preferably separated by a polymeric ion-exchange membrane, more preferably an anion-exchange membrane. It is contemplated that the inlet is for the introduction of a fuel, oxidant, water, or the like. Such fluids may include any one or more of hydrogen, oxygen, methanol, methane, carbon dioxide, carbon monoxide, or deionized (DI) water.

[0023] Although it is envisaged that each stack may be provided with its own power source forming a string of one electrochemical device, in preferred embodiments the string comprises more than two electrochemical devices. Preferably the string has from 2 to 20 electrochemical devices, more preferably between 2 and 10 devices, and even more preferably between 4 and 6 electrochemical devices.

[0024] The feedstock may be discarded after use, although in some embodiments, for example, those using electrolyzer, electrolyte, or DI water feedstocks, are preferably recycled and means for this are provided.

[0025] While the present invention can be used with electrochemical devices of any size, preferably the power consumption ranges from 1 kW to 200 kW, more preferably between 1 kW and 100 kW, even more preferably between 1 kW and 20 kW, more preferably between 1 kW and 10 kW, more preferably between 1.5 kW and 5 kW, and even more preferably between 2 kW and 3 kW. Devices on the smaller end of the range allow for better utilization of available power and better response to power fluctuations. The ability to respond well to power fluctuations is particularly desirable when the device is intended for connection to renewable energy sources.

[0026] It is envisioned that the system may have a total power consumption of between 0.5 MW and 200 MW, more preferably substantially 1 MW, or between 50 MW and 150 MW. In embodiments of the invention in which more MW is used, it may be more practical to use larger stacks, for example, 10 kW to 100 kW, or 50 kW to 500 kW, 50 kW to 250 kW, or 100 kW to 200 kW in a row.

[0027] Alternatively, each stack is envisioned to have a power consumption that is a fraction of the total system capacity, for example, between 1 / 100 and 1 / 1000, between 1 / 50 and 1 / 500, or between 1 / 50 and 1 / 1000. Preferably, each stack is between 1 / 200 and 1 / 600, or between 1 / 50 and 1 / 100. Typically, the fraction excludes the power requirements of the BOP.

[0028] In a preferred embodiment, the system is adapted to allow hot swapping of electrochemical components. Means allowing electrical and fluidic isolation of the string, such as valves and switches controlling the power supply, are provided for each string. Once isolated, one or more stacks in the isolated string can be replaced. This reduces the need for downtime and further improves power utilization of the system. It is further envisioned that stacks or strings not meeting expected performance characteristics, such as output values, may be adapted by the computing means to be isolated, and a prompt may be sent indicating that maintenance is required.

[0029] While any type of electrochemical device can be used in the present invention, in preferred embodiments, the present invention preferably relates to AEM technology as opposed to PEM. More preferably, when the electrochemical device is an electrolyzer, the AEM electrolyzer has substantially dry half-cells, more preferably dry cathodes. Dry cathodes or anodes refer to devices in which no electrolyte or equivalent is introduced into the cathode or anode half-cells.

[0030] Due to the nature of the electrolyte required, AEM devices do not rely on PGM catalysts, nor do they require materials to withstand the corrosive conditions required by PEM devices.

[0031] A shared connection to a power source may be provided for each row, or alternatively, each device in the row may have its own device power connection. In preferred embodiments where more BOPs are shared, the power supplies are in series and the feedstocks are in parallel via an inlet manifold. The products of the process may be fluidly connected in parallel by an outlet manifold.

[0032] It is envisioned that a means for temperature control may be provided in the array of devices, including, but not limited to, heat exchangers, air cooling, or liquid cooling. In a preferred embodiment, waste heat utilization is employed by using heat emitted from the devices to preheat the electrolyte or other feedstock, such as, but not limited to, water. Alternatively, the waste heat may be utilized by providing heat to nearby enclosures, water, or other industrial processes.

[0033] It is envisioned that the electrochemical cell may operate at a variety of temperatures, but in preferred embodiments, the feedstock temperature is not intended to exceed 100° C., more preferably within the range of 40° C. to 80° C., and even more preferably substantially 60° C. Preheating and heat exchangers utilizing waste heat may be employed to minimize energy waste.

[0034] In some embodiments using modules, it is envisaged that means for ventilation or air cooling will be provided for the or each module. However, this is not present in variants using stacks. In any case, even in variants where the modules have means for ventilation, ventilation is preferably provided for the entire enclosure. Ventilation is provided to ensure that the ratio of hydrogen to oxygen does not exceed potentially dangerous levels.

[0035] Alternatively, in a preferred embodiment, ventilation means is provided for the entire system within the enclosure, said ventilation preferably being controlled by a computing means having one or more hydrogen sensors located within the enclosure. By default, the ventilation means is inactive, beneficially not diluting any potential leaks and allowing the hydrogen sensors to detect leaks more quickly and accurately. Location can be determined using multiple sensors. If hydrogen is detected, the computing means is adapted to activate the ventilation means. This has the added benefit of dramatically reducing waste heat and maintaining the temperature within the enclosure. Thus, in a preferred embodiment, it is desirable for the ventilation means to be adapted to handle 10 to 1000 times the amount of produced hydrogen, more preferably between 25 and 200 times, more preferably between 50 and 150 times, and even more preferably substantially 100 times.

[0036] In other embodiments using a fuel cell or compressor as the electrolysis stack, the ventilation means may be sized according to the hydrogen or other feedstock input in the ranges mentioned above.

[0037] In embodiments where modules are used, the modules may include an enclosure which may further act as an insulator, preventing the entire container from reaching the temperature of the stack and making the system easier to use without the need for ventilation.

[0038] The ventilation means may also be controlled by automatic readings from alternative sensors, for example computer means triggering ventilation if an unexpected pressure drop is measured in the fluid pipeline.

[0039] As an additional means for safety measurement, preferred embodiments include at least one sensor for hydrogen and / or other gases that may pose safety concerns. While one sensor may be sufficient, the size of the housing may be large enough that multiple sensors may be desirable distributed throughout the stack or housing. The sensor may be passive, e.g., a visually color-changing tape, but in preferred embodiments, the sensor is adapted to trigger an alarm, preferably increasing ventilation flow before potentially dangerous levels are reached, to minimize risk. Other means, such as mobile sensors, may be used to detect leaks, either alone or in combination with pressure readings from sensors located in each stack or row; a drop in pressure indicates a leak.

[0040] In one embodiment of the present invention, an electrochemical hydrogen sensor may be employed in each column or row of stacked cells. Due to the nature of gaseous hydrogen, the sensor is preferably located substantially in the upper part of the housing, at least in the upper half. This is not intended to exclude sensors in the lower half.

[0041] It is intended that the computing means be controllably connected to the power supply for each device or each string of devices. In a preferred embodiment of the present invention, the computing means is also operatively connected to any one or more sensors for each device or each string of devices, including but not limited to leak detectors, pressure sensors, temperature sensors, humidity sensors, flow sensors, level sensors, pH sensors, conductivity sensors, oxygen sensors, hydrogen sensors, electrolyte sensors, and gas sensors for other feedstocks, such as but not limited to carbon monoxide.

[0042] The operable connection may be wired or wireless, such as by WiFi or Bluetooth. Readings from the sensor may be made available to a user by another computing device, and it is envisaged that access will be secured by known means.

[0043] While it is contemplated that various power sources may be utilized, such as from a national power grid, in preferred embodiments, energy is utilized from renewable sources, more preferably surplus renewable sources, including, but not limited to, solar, onshore or offshore wind, tidal, hydroelectric, or combinations thereof. AEM electrolyzers have been found to be particularly well suited for cycling compared to other more established electrochemical processes.

[0044] It is envisioned that means may be provided for disposal of spent electrolyte or feedstock for reuse in the system.

[0045] It is contemplated that one or more rectifiers may be used to convert the input power, so that it can be supplied as AC, DC, or inverted pulses. The same applies to the power output in fuel cell-based embodiments of the invention. The modular nature of the invention makes it well suited to any known or adopted technology for utilizing as much power as possible. To enable this, variable-length strings may be provided in a single housing to allow for more coordinated control by a computing means. Strings with fewer devices are better suited to handle load fluctuations. Strings with more units have longer response times due to more adequate amplitude matching but reduced frequency matching, but can function more efficiently as a buffer against larger fluctuations in energy supply. Due to more adequate frequency matching and lower amplitude matching capabilities, shorter strings allow for faster response times but reduced buffer capacity.

[0046] In embodiments of the invention where the electrolysis stack is a fuel cell, the train may be more responsive to the energy demands required from the load drawn by the system. The same may be true for the compressor as well.

[0047] According to the present invention, it is envisioned that various electrochemical devices may be housed together to form a hydrogen battery. The electrochemical devices in such variants include at least an electrolyzer and a fuel cell. An electrochemical compressor, or a more conventional mechanical compressor, may also be provided. More preferably, an AEM electrochemical compressor is used to allow for simultaneous compression, drying, and / or purification of the produced hydrogen. BOPs, such as power supplies and computing means, may be shared between each type of electrolytic device. To function as a hydrogen battery, storage means are preferably provided within the enclosure.

[0048] In embodiments utilizing electrochemical compressors, either hydrogen or oxygen can be compressed. The compression can occur with optional purification. The hydrogen is preferably derived from a green source such as water electrolysis, but the feedstock can be from steam reforming or other non-renewable sources of hydrogen, and simultaneous purification is certainly preferred. When oxygen is compressed, the oxygen can be derived from the outlet of one or more electrolyzers, contained in a container or equivalent, or removed from the atmosphere. Simultaneous purification can enable medical or industrial uses. However, a means of drying may also be required prior to storage.

[0049] Instead of a fuel cell, such a hydrogen battery could be connected to a refueling station or industrial process for in-situ generation of the required fuel feedstock.

[0050] The enclosure layout is envisioned to have devices arranged in columns and rows. In embodiments utilizing multiple types of electrochemical devices, each group is preferably located adjacent to devices of similar types. For ease of access, the devices are envisioned to be positioned with three walkways in mind, with a central walkway between two walls of the device, said walls comprising multiple stacks. Additional walkways are envisioned behind each wall, as shown. Alternatively, to conserve space, only a central walkway is provided, and means for accessing the rear of the stack module include an access door / removable wall behind the stack, or guide rails or the like to allow for movement of the array of stacks.

[0051] In preferred embodiments, the walkway includes a raised platform to allow for a clearance of between 1 cm and 20 cm, or more preferably between 3 cm and 15 cm, between the floor of the enclosure and the walkway platform to which the stacks are mounted, to allow for clearance in which any BOPs may be placed, optional drainage of any condensate or other liquids that collect, and optional air inlets. In such embodiments, drainage means may also be provided.

[0052] Additionally, it is envisioned that the walkway may be electrically isolated from the housing by material selection, coating, or other suitable means. The walkway may be the same or a different material than the chassis of each stack, module, or device.

[0053] While it is contemplated that each module or stack may be provided with all of the required BOPs, in preferred embodiments, as many BOPs as possible are shared, including, but not necessarily limited to, power supply, water purification / feedstock treatment, feedstock circulation / distribution, the aforementioned sensors, pressure regulation means, HVAC / ventilation means, safety systems, and product treatment.

[0054] To be able to handle a large power supply, it is envisioned that at least 10 modules will be used, but preferably more than 20. On a larger scale, it is envisioned that a single container may house between 100 and 1000 modular devices, more preferably between 200 and 500 modular devices, and more preferably between 300 and 450 modular devices.

[0055] It is envisioned that the pressure regulation means at the outlet from the or each device is adapted to maintain a predetermined threshold. This may vary depending on the device, but in preferred embodiments where the electrochemical device is an electrolyzer, the preferred pressure rating is between 1 bar and 50 bar, more preferably between 20 bar and 40 bar, and even more preferably between 30 bar and 40 bar. In the most preferred embodiment, the pressure rating is substantially 35 bar. This may be limited to lower pressures in certain jurisdictions, e.g., 8 bar in Japan. While fuel cells may require significantly lower regulation means, electrochemical compressors necessarily have, usually incrementally higher means. The electrochemical compressor may ultimately compress the target gas up to 2000 bar, or anywhere within the ranges of 30 bar to 2000 bar, 100 bar to 1500 bar, or 500 bar to 1000 bar. Depending on the intended use of the vehicle, 350 bar or 750 bar may be desired.

[0056] In embodiments using electrochemical compressors, each train may form a single stage, with the first stage feeding P1 to P2, the second stage, and so on, up to the final nth stage, Pn.

[0057] It is envisioned that the present invention may include means for electrically isolating, or optionally fluidly isolating, each stack from other stacks, rows of stacks, and / or the optional chassis of each stack. Isolation may be provided by any suitable means, including electrically insulating materials, or isolation may be provided intermittently by adding circuit breakers, switches, and / or relays. The means for intermittent isolation may be operatively connected to the computing means within the enclosure or may be manually controlled / deactivated, and it is envisioned that this may include flow regulating means disposed at the feedstock inlets and / or outlets of each stack, said flow regulating means configured to selectively open and close the respective inlets and / or outlets, and electrical connections.

[0058] Each stack or row of stacks may be held within a chassis, said chassis including any BoP, such as, but not limited to, sensors (pressure, temperature, etc.), electronics compartments, check valves, etc. Additionally, ports may be provided for inlets and outlets. Furthermore, the chassis may also be provided with reinforcing support brackets and compression means, such as springs or equivalent suspensions, to ensure that the seal remains constant within the stack over the life of the stack. Alternatively, it is envisioned that a chassis may accommodate two or more stacks, rows of stacks, or even multiple rows.

[0059] Means of in-situ diagnostics may also be provided, and it is envisioned that the in-situ diagnostics may be provided on a single device, a string of devices, or a block of strings. A block of strings is two or more strings. The diagnostics may be used to alert, preemptively alert, or otherwise warn a user of required maintenance. Preferably, the in-situ diagnostics may be used by the computing means to control power supply load balancing to favor stacks with better state of health (SoH). SoH may be determined using the actual power output compared against the theoretical power output and run time of the device.

[0060] In a preferred embodiment, the in-situ diagnostics are connected to a computing means and used to determine one or both of the power supply to the stack or row of stacks and how much feedstock should be made available to the stack or row of stacks.

[0061] The means for determining in-situ diagnosis are as follows: The cumulative drive time of a stack or a row of stacks; The cumulative downtime of a stack or a column of stacks, the operating capacity of the driven stack or row of stacks during the drive; the temperature of the stack or columns of the stack; pressure in the stack or row of stacks and the associated inlets and / or outlets of the stack or row of stacks; voltage / potential of the stack or columns of stacks; Data pertaining to the balance of plant, including but not limited to: Feedstock flow, o Feedstock availability, ○Feedstock temperature, Conductivity of the feedstock or equivalent parameter, Pump performance and It is envisioned that the present invention may include the ability to measure any one or more of:

[0062] The foregoing list is not necessarily exhaustive, and any reasonable performance or operating conditions under which the state of a component may be determined or inferred may additionally or alternatively be used.

[0063] It is envisioned that, based on the aforementioned monitored operating conditions, inputs, and outputs, means are provided to predict outputs extrapolated from previous operating conditions. This allows the overall system to operate at a desired capacity or demand. If desired, such measurements may be made at predetermined intervals by in-situ diagnostic means, which intervals may optionally be changed by the user. Additionally, a trigger may be provided to effect the diagnosis. Such a trigger may be a change in power supply, an expected change in conditions, or any other possible trigger.

[0064] The foregoing information may be used by a control system or computing means in accordance with aspects of the present invention to determine a "weighted run time" (WRT) for each device or each bank of devices, which WRT is expected to take into account factors such as, but not limited to, run time, power supplied during run, expected performance versus actual measured performance, down time, etc.

[0065] There are various ways in which WRT can be used to control the operation of the entire system. Priority is given to the device or string with the lowest WRT, but if in-situ diagnostics indicate or indicate a problem with a device that has a lower WRT than other devices, it may be preferable to prioritize another device or string depending on its State of Health (SoH), which can be determined by in-situ diagnostics. This can be complemented by polarization curve measurements or other diagnostic techniques. A device may have a reduced priority, even if it has a lower WRT, if it requires maintenance or if a potential problem is detected.

[0066] Complementary or alternative to WRT, other methods for determining the SoH of a stack generally involve fitting the stack to an equivalent circuit model. In the simplest case, the model includes resistor and capacitor components, but is generally adapted to include mass transport contributions as well. One example is a Randles circuit that includes Warburg elements to represent mass transport effects. Additionally, constant phase elements, i.e., a more general type of capacitor element, can be included to reflect porous electrodes.

[0067] While equivalent circuit fitting of impedance spectra is possible for electrochemical stacks, to obtain more useful data, it is envisioned that fitting the stack to an equivalent circuit requires electrochemical impedance spectroscopy (EIS) or another circuit that can passively charge / discharge the stack. The passive charge / discharge circuit has the necessary switches and resistors to enable passive charging and discharging of the stack. During charging and discharging, the resulting transient voltages can be used, given a sufficient sampling rate, to fit the stack to an equivalent circuit. For the avoidance of doubt, the measured transient voltages can be combined with a means to use the transient voltages to fit predetermined equivalent circuit parameters. The characteristics of the stack transient voltages can be directly correlated with the performance parameters that need to be identified (i.e., ohmic resistance, kinetic activity characteristics, and even mass transfer / low-frequency behavior). Arguably, this increases the complexity of the hardware, but allows for specific determination of parameters associated with individual cell components. EIS typically requires an expensive potentiostat, but one potentiostat can be used for multiple electrolyzers or multiple strings of electrolyzers. A DC bias is applied to the stack with an AC component (+ / -1% of the DC bias) such that the frequency of the AC disturbance is swept from kHz to mHz, and the impedance is measured at each frequency; this data can be used to fit the stack to an equivalent circuit model. If a potentiostat is used, it is connected to the electrochemical cell, stack, or string by known means not described herein.

[0068] In the ideal case, which simplifies hardware requirements while still obtaining useful information, one would simply look at the evolution of the polarization curve data, where the following equation separates the three dominant loss sources: kinetic, ohmic, and mass transfer losses. TIFF0007721173000001.tif47170

[0069] In this formula, -V is the measured stack transient voltage; -E is the open circuit voltage (i.e., electromotive force), -blog(i / i0) is the Tafel equation for kinetic losses, where: ○i is the applied current density, ○ i0 is the exchange current density, b is the fitting coefficient, i.e., the "Tafel slope"; -iR' represents the ohmic losses, where: ○i is the applied current density, ○R' is the DC resistance, ‐alog(1-i / i lim ) represents the transfer loss, where ○ a is the fitting coefficient, ○i is the applied current density, ○i lim is the limiting current density.

[0070] Yet another diagnostic method involves measuring the change in ΔV, i.e., polarization curve diagnostics. A polarization curve, i.e., a graph of voltage versus applied current, provides information about various types of efficiency losses in an electrolyzer cell / stack: kinetic losses, ohmic losses, and mass transfer losses. Formally, electrolyzers are dominated by kinetic and ohmic losses, where kinetic losses have a logarithmic V vs. I relationship and ohmic losses are linear between V and I. Mass transfer losses exist in the worst case, but can generally be considered as the difference between the raw polarization curve data and the kinetic + ohmic fitting data. The kinetic part has two fitting coefficients: the Tafel slope and the exchange current density, which reflect the health of the catalyst layer on each electrode depending on the electrochemical reaction of the cell. The ohmic part has only one fitting coefficient, which is the DC resistance, and factors affecting it include membrane health and increased contact resistance due to corrosion. Finally, mass transport generally has two fitting coefficients, the pre-logarithmic factor and the limiting current density, both of which give us an idea of the degree of "resistance" to water reaching the catalyst layer and / or gas leaving the electrode; mass transport losses primarily come from the gas diffusion layer (GDL), catalyst layer, and / or membrane.

[0071] Nonlinear curve fitting using five free parameters is, in practice, quite challenging in the described invention, and time-constrained if performed too regularly, but improved throughput, along with the associated costs, may go some way to alleviating this. Here, simplification is possible by ignoring mass transfer fitting and focusing on kinetic and ohmic losses. To improve the accuracy and stability of the fitting procedure, the ohmic portion may be measured and fixed, so that the nonlinear curve fitting corrects for only the two kinetic parameters in the first logarithmic term. In embodiments where one of the fitting parameters, e.g., the Tafel slope, is stable, this may be set to a fixed point in the control software / method to reduce the variance. However, it is preferable to fix something that can be quickly measured, such as DC resistance or another suitable parameter. Deviations from the measured values fitting polarization curves with only ohmic and kinetic contributions may be due to the onset of mass transfer limitation, which can also be used to properly define the maximum capacity value.

[0072] Some methods for measuring the ohmic portion include EIS or current interrupt, which require a potentiostat or impedance meter to read impedance at a fixed high frequency (e.g., 1 kHz). As mentioned above, a single potentiostat can be used aggregated for multiple stacks or rows of stacks. Note that distinguishing between the logarithmic and linear portions of the curve is not easily performed when sufficient data is not present, and this is usually more evident, especially at very low current densities, where it takes a long time to remove the capacitive contribution. It is envisioned that the method can be adapted to perform more measurements at lower current densities, below half the maximum operating capacity, to ensure sufficient data. Measuring resistance by direct methods (e.g., EIS, current interrupt, impedance meter) eliminates numerical issues, allowing for fast recording of polarization curves and requiring fewer points for accurate numerical fitting, regardless of linear or logarithmic trends.

[0073] In a preferred embodiment of the present invention, the above-described means and methods of performing in-situ diagnostics are used by the control means to determine the allocation and division of available power and / or feedstock.

[0074] It is envisioned that means are provided for determining available power, as well as for predicting available power based on known conditions.

[0075] In preferred embodiments, a flow regulation means may also be provided at the inlet, i.e., upstream of the stack or stack flow. This also includes embodiments with a feedstock outlet, for example, an electrolysis device with an electrolyte outlet, where the feedstock inlet and outlet form a loop with the feedstock inlet and outlet. A pump or equivalent may be placed upstream of the stack or row of stacks to minimize the presence of dissolved gases.

[0076] In a preferred embodiment of the electrolyzer train, a flow regulation means, or in other cases a pressure regulation means such as a check valve, is arranged at least at the hydrogen outlet.

[0077] According to a second aspect of the present invention, there is provided a method of controlling a plurality of electrochemical devices in a containerized modular electrochemical system, said method comprising: - Providing a container as a housing; providing a plurality of electrochemical stacks within the housing, the electrochemical stacks being arranged in series rows, each row comprising at least one electrochemical stack; Each electrochemical stack comprises at least one inlet and at least one outlet in each stack, flow regulation means are provided at at least one of the inlet and / or outlet of the stack; connecting a power supply to each electrolysis stack or each bank of electrolysis stacks; Providing a computing means, The power supply is controlled by the computing means, the computing means is adapted to direct power to one or more columns using means provided for determining the power to be supplied, providing means for calculating the power supplied to the columns or to each column, which may be different; Providing a means for circulating the feedstock.

[0078] In a preferred embodiment, the electrochemical system mainly comprises an electrolyzer stack. Thus, according to a second aspect of the present invention, there is provided a method of controlling a plurality of electrochemical devices in a containerized modular electrolyzer system, said method comprising: - Providing a container as a housing; providing a plurality of electrolyzers within the housing, the electrolyzers being arranged in series rows, each row comprising at least one electrolyzer; Each electrolysis device comprises at least one inlet for electrolyte, each electrolyzer of each electrolyzer train comprises at least one outlet for at least the hydrogen produced, the oxygen produced and the spent electrolyte, providing a plurality of electrolysers within said housing, wherein flow regulating means are provided at at least one of the inlets and / or outlets; connecting a power supply to each electrolyzer or each bank of electrolyzers; Providing a computing means, The power supply is controlled by the computing means, the computing means is adapted to direct power to one or more columns using means provided for determining the power to be supplied, providing means for calculating the power supplied to the columns or to each column, which may be different; Providing a means for circulating the feedstock.

[0079] The method of operating the system as described above can be adapted to include variations of any of the disclosed devices as described above, including the use of in-situ diagnostics and other features.

[0080] The method may further comprise providing means for controlling the outlet pressure from one or more outlet manifolds. Optionally, means may be provided for purification of the contents of said outlet manifolds.

[0081] It is also envisioned that a walkway may be provided in the housing for access to each device. The walkway may be provided in the center, but preferably rear access to each stack is also provided. [Brief explanation of the drawings]

[0082] In order to facilitate an understanding of the invention, specific embodiments thereof will now be described, by way of example, with reference to the accompanying drawings, in which: [Figure 1] FIG. 1 shows an example layout of a containerized electrochemical solution. [Figure 2] FIG. 2 is a schematic diagram of an exemplary electrolysis stack. [Figure 3A] FIG. 3A shows a schematic example of a cell arrangement in the stack depicted in FIG. [Figure 3B] FIG. 3B shows a schematic example of a cell arrangement in the stack depicted in FIG. [Figure 4] Figure 4 is a load curve for a single stack. [Figure 5] FIG. 5 depicts a row of stacks electrically connected in series. [Figure 6] FIG. 6 depicts a row of stacks connected electrically in series and fluidly in parallel. [Figure 7] Figure 7 shows the stack in the chassis from two angles. [Figure 8] FIG. 8 depicts (in graphs 8a and 8b) steady-state operation and load jumps for a bank of five electrolyzers. [Figure 9] FIG. 9 depicts (graphs 9a-9c) an expanded load jump of a string of electrolyzers. DETAILED DESCRIPTION OF THE INVENTION

[0083] Referring to Figure 1, a containerized modular electrochemical system 1 can be seen. The enclosure 2 is a standard shipping container with a middle walkway 3 and a rear walkway 4, which provide clearance 5 for balance of plant (BoP) and drainage where required. In the preferred embodiment, modules 10 are located on the walkway, and the modules are electrolyzers. The electrolyzers 10 are arranged in columns 100, which are columns that share a power supply.

[0084] As previously mentioned, the device walls 20a, 20b do not have to be the same type of electrochemical device.

[0085] The container 2 has an area 30 for BoP such as a water tank, pump, hydrogen storage etc., all of which are not shown. Also not shown are components such as ventilation means, sensors etc.

[0086] Referring to Figure 2 of the drawings, there is shown a schematic representation of an electrolytic stack 50 that may be used in a system 1 adapted for in-situ diagnostics. As can be seen, the stack is bounded by end plates 51a, 51b. Between the end plates are a plurality of cells 60, the configuration of each of which can be seen in Figures 6A and 6B and will be described in more detail below. Bounding each cell 60 is a bipolar plate 52. As previously mentioned, pins 53 are connected to the bipolar plates 52 to perform in-situ diagnostics. The pins are connected to a stack board (not shown) to perform diagnostics, the results of which are communicated to a control / gateway and used to determine load distribution for each stack 50.

[0087] 3A and 3B show schematic diagrams of two examples of cells 60 that can be used in the stack 50. Each type of cell 60 is bounded by bipolar plates 61a and 61b. From the first bipolar plate 61a comes the anode 62, membrane 64, cathode 63, and the next bipolar plate 61b. In these figures, pins are not shown for clarity. The cell configuration of FIG. 6B differs from that of FIG. 6A in the presence of a gas diffusion layer (GDL) 65a between the bipolar plate 61a and the anode 62. Additionally, another GDL 65b is present between the cathode 63 and the second bipolar plate 61b.

[0088] Figure 4 is a graph depicting the load curve of the electrolysis stack depicted in the setup shown in the previous figure. Loads range from 60% to 100%, where in practice the relationship is found to be linear and arguably most efficient. Loads above 100% are not performed to protect the stack.

[0089] FIG. 5 depicts a string 100 of stacks 10a-10e electrically connected in series. Power is supplied to the first stack 10a via the first connection 11a. Power is supplied from the first stack 10a to the second stack 10b via a wire connecting the second connection 12a of the first stack 10a to the first connection 11b of the second stack 10b. This is repeated for each stack 10 in the string 100. For example, power is supplied from the second stack 10b to the third stack 10c via a wire connecting the second connection 12b of the second stack to the third stack 10c, and so on.

[0090] Figure 6 shows the string of Figure 5 fluidly connected in parallel. It includes an inlet manifold 70 that delivers feedstock to each stack 10 in the string 100. The inlet manifold 70 has an inlet to each stack via inlets 71a, 71b, etc. In this embodiment, an inlet is present at the cathode half-cell of each electrolysis stack 10. An anode outlet manifold 40 delivers produced oxygen from each anode half-cell via outlets 41a, 41b, etc. A second manifold outlet 30 is connected to each cathode half-cell for delivering exiting hydrogen via outlets 31a, 31b, etc.

[0091] The hydrogen sensor 32 and oxygen sensor 42 are shown connected in series. The oxygen sensor 32 may be located on the hydrogen outlet manifold 30 and the hydrogen sensor 42 may be located on the oxygen outlet manifold 40 to ensure outlet safety and ensure the gases do not mix above the lower explosive limit (LEL).

[0092] Figure 7 illustrates the stack 10 in the chassis 13 from two directions (front and rear). The connector pins 12 are visible. Also illustrated are sensors, such as a flow meter 14, a temperature sensor 15, an electronics compartment 16, and a pressure sensor 17, between the rear of the stack 10 and the rear 22 of the chassis 13. These may be operably connected to control means by wire or wirelessly. A check valve 18 is located at the outlet. The front of the frame 21 has a handle to allow replacement of the stack if maintenance is required. The aforementioned compression means is depicted as a support bracket in this embodiment.

[0093] Figure 8 depicts steady-state operation and a load jump for the string of five electrolyzers seen in other figures. Graph 8a shows time on the x-axis and amperes on the y-axis. After an initial increase, steady, stable operation is shown between 10:50 and approximately 12:05. A load jump is shown between 12:05 and 12:30.

[0094] Graph 8b shows the readings for the same configuration, with voltage on the Y-axis. Due to the configuration having five stacks, there is a peak of approximately 210V, as values need to be multiplied by 5. Surprisingly, this configuration allows for greater resilience in the system to dampen voltage swings, which is inherently a great advantage for systems connected to variable renewable energy sources.

[0095] Figure 9 shows three graphs 9a, 9b, and 9c that are enlarged versions of the graphs seen in Figure 8. The times in 9b and 9c are in seconds instead of minutes. 9a shows the highlighted section. Step changes are seen in both the ampere and voltage readings without overshoot or oscillation. This allows for fast tracking of fluctuating energy availability, improving system efficacy.

[0096] In this figure, not all BoPs are shown, and the present invention is not intended to be necessarily limited by such BoPs.

[0097] The present invention is not intended to be limited to the details of the foregoing embodiments. For example, a single system may contain various electrochemical stacks, such as an electrolyzer, a compressor, and a fuel cell. Additionally, the unclaimed BoP may vary without departing from the scope of the present invention. The feedstock or electrolyte may also vary without departing from the scope of the present invention. From the foregoing, it will be apparent to those skilled in the art that various modifications can be made to the described embodiments without departing from the scope of the present invention, which is defined by the appended claims.

Claims

1. A container-type modular electrochemical cell system, comprising: - A housing and a plurality of electrochemical stacks removably mounted within said housing; and Each of the electrochemical stacks comprises: one or more electrochemical cells; one or more fluid inlets for receiving a feedstock; one or more product outlets; With The electrochemical stacks are arranged in at least one row, Each of the columns comprises: two or more of said electrochemical stacks; With the electrochemical stacks in each of the strings are electrically connectable in series; each of said strings being connectable to a power source; each of the electrochemical stacks or each of the banks is configured to operate independently in response to available energy and / or power fluctuations; Each of the columns comprises: at least one feedstock inlet manifold fluidly connected to the inlets of the electrochemical stacks in the row for distributing feedstock among the inlets of the electrochemical stacks; at least one product outlet manifold fluidly connected to the outlets of the electrochemical stacks in the row; flow regulating means configured to regulate fluid flow through the inlet and / or the outlet; Equipped with A container-type modular electrochemical cell system.

2. feedstock delivery means configured to deliver an amount of feedstock to said inlet in response to available energy and / or power fluctuations; It is made of The container-type modular electrochemical system according to claim 1 .

3. the feedstock delivery means being any one or more of a pump, a fan, or a pressurized reservoir with release regulation; The container-type modular electrochemical system according to claim 2 .

4. means for recycling spent electrolyte for reuse; It is made of The container-type modular electrochemical system according to any one of claims 1 to 3.

5. The electrochemical stacks constituting the columns include: one or more of an electrolyzer, a compressor, a purifier, a dryer, and a fuel cell; Equipped with The container-type modular electrochemical system according to any one of claims 1 to 4.

6. the feedstock is any one or more of an electrolyte, a gas stream comprising hydrogen and a gas stream comprising oxygen, methanol, methane, carbon dioxide, carbon monoxide, or DI water; The container-type modular electrochemical system according to any one of claims 1 to 5.

7. The electrochemical stack comprises: at least an anode half-cell and a cathode half-cell separated by a polymeric ion exchange membrane; Equipped with The container-type modular electrochemical system according to any one of claims 1 to 6.

8. The polymer membrane is an anion exchange membrane (AEM). The container-type modular electrochemical system according to claim 7.

9. Each of the strings is powered or provides power to the electrical power is supplied to or provided in series by each of the electrochemical stacks in the series; 9. The container-type modular electrochemical system according to claim 1.

10. The enclosure is a standard shipping container. The container-type modular electrochemical system according to any one of claims 1 to 9.

11. Each of the columns comprises: Stacks of numbers between 2 and 20, Equipped with The container-type modular electrochemical system according to any one of claims 1 to 10.

12. Each of the electrochemical stacks comprises: The power consumption of the entire system is between 1 / 50 and 1 / 1000, Prepare, 12. The container-type modular electrochemical system according to any one of claims 1 to 11.

13. Means for electrically and fluidly isolating each of the electrochemical stacks or each of the rows of the electrochemical stacks to allow replacement of the electrochemical stacks; It is made of 13. The container-type modular electrochemical system according to any one of claims 1 to 12.

14. Means for isolating the electrochemical stack or the column by manual means and / or computational means. It is made of The container-type modular electrochemical system according to claim 13.

15. Means for controlling heat, It is made of 15. The container-type modular electrochemical system according to any one of claims 1 to 14.

16. Ventilation means are provided in the housing, the ventilation means is activated when a potential leak is detected; 16. The containerized modular electrochemical system according to any one of claims 1 to 15.

17. means for independently operating each of said electrochemical stacks or each of said banks; It is made of 17. The containerized modular electrochemical system according to any one of claims 1 to 16.

18. the means for independently operating each of the electrochemical stacks or each of the strings is a computer implemented power control means for independently controlling the power supplied to each string of electrochemical cells; 18. The containerized modular electrochemical system of claim 17.

19. the computer implemented power control means is operatively connected to one or more sensors within the housing, including any one or more of a leak detector, a pressure sensor, a temperature sensor, a humidity sensor, a flow sensor, a level sensor, a pH sensor, a conductivity sensor, an oxygen sensor, a hydrogen sensor, an electrolyte sensor, and a gas sensor; 20. The containerized modular electrochemical system of claim 18.

20. The system comprises: one or more rectifiers for converting the input power to enable the supply of AC, DC, or inverted pulse power; Equipped with 20. The containerized modular electrochemical system according to any one of claims 1 to 19.

21. means for in-situ diagnostics are provided in each of the electrochemical stacks or in each of the rows of electrochemical stacks; 21. The containerized modular electrochemical system according to any one of claims 1 to 20.

22. The in-situ diagnosis includes: - the cumulative drive time of a stack or row of stacks; the cumulative downtime of a stack or a row of stacks; the working capacity of the driven stack or row of stacks during driving; - the temperature of the stack or row of stacks; the pressure at the stack or row of stacks and the associated inlets and / or outlets of the stack or row of stacks; voltage / potential of the stack or row of stacks; Data pertaining to the balance of plant, including but not limited to: Feedstock flow, o Feedstock availability, ○Feedstock temperature, Conductivity of the feedstock or equivalent parameter, Pump performance and and adapted to measure any one or more of:

22. The containerized modular electrochemical system of claim 21.

23. the in-situ diagnostics are connected to a computing means and used to determine power supply to or from the electrochemical stack or the row of electrochemical stacks, or feedstock availability for each of the electrochemical stacks or each of the row of electrochemical stacks; 23. The container-type modular electrochemical system according to claim 21 or 22.

24. the system is adapted to produce hydrogen and / or oxygen, compress hydrogen and / or oxygen, and purify hydrogen and / or oxygen; 24. The containerized modular electrochemical system according to any one of claims 1 to 23.

25. the flow regulating means is configured to regulate fluid flow through the inlets and / or outlets by selectively opening and closing the inlets and / or outlets, by selectively opening and closing valves in the inlet manifold or the outlet manifold, or by restricting a fluid flow path through the inlets and / or outlets and / or through the inlet manifold or the outlet manifold; 25. The containerized modular electrochemical system according to any one of claims 1 to 24.

26. 1. A containerized modular electrochemical system for the electrolytic production of hydrogen from water, said system comprising: - A housing and a plurality of electrochemical stacks removably within the housing, each of the electrochemical stacks comprising one or more electrolyzers arranged in a series row, each of the rows comprising at least one of the electrochemical stacks, each of the electrochemical stacks comprising at least one inlet for electrolyte, and a plurality of outlets in each of the electrochemical stacks or the row of electrochemical stacks for at least produced hydrogen, produced oxygen, and spent electrolyte; - flow regulation means provided at at least one of the inlet and / or the outlet of the electrochemical stack; a power supply operatively connected to each electrolysis stack or each row of electrolysis stacks, the power supply configured to operate independently in response to available energy and / or power fluctuations; - computer implemented control means for controlling said power supplies, configured to direct power to one or more strings depending on the operating conditions of the one or more strings; - a means for recycling spent electrolyte for reuse; It is made of A container-type modular electrochemical system characterized by:

27. 1. A method for controlling a plurality of electrochemical devices in a containerized modular electrochemical system, the method comprising: - providing a housing; removably mounting a plurality of electrochemical stacks within the housing, the electrochemical stacks being arranged in serial rows, each row comprising at least one electrochemical stack, each electrochemical stack having a fluid input for receiving a feedstock and a product output, each row comprising a feedstock inlet fluidly connected to the input of each electrochemical stack in the row and at least one product outlet fluidly connected to each of the outputs of the electrochemical stacks in each row; operatively connecting a power source to each of said strings; circulating the feedstock between said feedstock inlets; - providing a flow regulation means at at least one of the inlet and / or the outlet of the electrochemical stack; - configuring a computer implemented power control means to independently control the power supplied to each string of electrochemical cells; and The electrochemical stacks in each of the columns are electrically connected in series, the flow regulating means being configured to selectively open and close each of the inlets and / or outlets; each of the electrochemical stacks or each of the columns is configured to operate independently in response to available energy and / or power fluctuations; A method characterized by:

28. Each electrochemical stack is an electrolyzer; 25. The method of controlling a plurality of electrochemical devices in a containerized modular electrochemical system according to claim 24.

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