Systems and methods that use the base load power of a backup GT system to improve GT emissions or grid stability.
By operating backup GT systems at base load and using power to produce hydrogen fuel or supply to the grid, inefficiencies and emissions are reduced, enhancing grid stability and operational efficiency.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-02
- Publication Date
- 2026-04-06
AI Technical Summary
Operating backup gas turbine (GT) systems at levels below baseload is inefficient, leading to increased emissions and operational challenges, and incurs costs for power delivery companies due to unused capacity and inefficient operation.
A system where a backup GT system operates at base load and uses a portion of its power to produce hydrogen fuel for other GT systems or supply power to the grid, improving efficiency and emissions, and acts as a spinning reserve when demand increases.
Reduces fuel consumption, improves combustion stability, extends component life, and enhances grid stability by maintaining backup GT systems at base load, while reducing emissions and operational costs.
Smart Images

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Abstract
Description
Technical Field
[0001] The present disclosure generally relates to power plant control systems, and more particularly to operating a standby gas turbine (GT) system at base load and using a portion of the base load power to operate a hydrogen production electrolysis system when grid power demand is acceptable to supply hydrogen fuel for injection into other GT systems or to supply power to the grid when grid power demand is required. As a result, the efficiency, performance, and / or emissions of the GT system and / or the stability of the grid can be improved.
Background Art
[0002] Power plants supply power to a wide-area electric grid. In some cases, a power plant may have multiple gas turbine (GT) systems installed. To operate the power plant efficiently and maximize the life of the GT system, it is best to operate the gas turbine at full load or near full load, called "baseload". Note that baseload may not include some reserve called "primary control reserve" for the GT system to automatically respond to changes in the grid frequency. For a stable grid, it is necessary that the generated power of the power plants supplying power to the grid always matches the power demand regardless of fluctuations in demand. Therefore, in order to maintain a stable grid, power plants usually need to maintain a certain amount of additional capacity or standby load, called "spinning reserve", so that additional power can be supplied when needed. The primary control reserve of the GT system cannot respond to fluctuations in power demand from the wide-area electric grid.
[0003] To cope with demand fluctuations, one GT system is designated as a spinning reserve or simply a backup GT system and is not operated under base load. For example, a backup GT system operates at 50-100% load depending on grid power demand. Therefore, in a power plant with 10 GT systems, if there is no increase in demand, for example, 5% can be set as a spinning reserve, supplying 95% of the capacity. In this way, when power demand increases, the backup capacity of the backup GT system (e.g., up to 50%) can be utilized to generate more power quickly and maintain grid stability.
[0004] Operating backup GT systems presents many challenges. For example, operating a GT system below baseload levels is highly inefficient due to poor fuel combustion efficiency, increased emissions, and generally difficulty in controlling output fluctuations. Operating backup GT systems also incurs costs for power delivery companies that purchase electricity from power plants, as they have to pay for the unused capacity of the power plants and the inefficient operation of the backup GT systems. [Prior art documents] [Patent Documents]
[0005] [Patent Document 1] U.S. Patent Application Publication No. 2018 / 254498 [Overview of the project]
[0006] All aspects, examples, and features described below can be combined in any way that is technically possible.
[0007] One aspect of the present disclosure provides a system. The system includes a first GT system operably coupled to a first generator for generating baseload power, the first portion of the baseload power generated by the first GT system being transmitted to a wide-area power grid controlled by a Transmission System Operator (TSO), a second GT system operably coupled to a second generator for generating power to be transmitted to a wide-area power grid, a hydrogen generating electrolytic cell operably coupled to one or both of the first GT system and the second GT system, the hydrogen generating electrolytic cell being selectively powered by either the second portion of the baseload power generated by the first GT system or power returned from the wide-area power grid, and a controller. The controller is configured to, in response to power demand from the TSO that does not exceed a threshold, instruct a second portion of the baseload power generated by the first GT system to be sent to a hydrogen production electrolytic cell to produce hydrogen fuel for one or both of the first and second GT systems, and in response to power demand from the TSO exceeding a threshold, instruct a third portion of the baseload power generated by the first GT system to be sent to the wide-area power grid.
[0008] Another aspect of the present disclosure includes any of the preceding aspects and further includes a plurality of third GT systems located in the same location as the first GT system, each third GT system being operably connected to a third generator to generate base load power for transmission to a wide-area power grid.
[0009] Another aspect of this disclosure includes any of the preceding aspects, wherein the second GT system is at least one of a plurality of third GT systems.
[0010] Another aspect of the present disclosure includes any of the preceding aspects, wherein at least two of the first, second, and third generators are the same generator.
[0011] Another aspect of this disclosure includes any of the preceding aspects, wherein the hydrogen generation electrolytic cell and the second GT system are located in a different geographical location from the first GT system.
[0012] Another aspect of the present disclosure includes any of the preceding aspects, wherein a third portion of the base load power generated by the first GT system is maintained as a primary control reserve by the governor of the first GT system.
[0013] Another aspect of the present disclosure includes any of the preceding aspects, wherein a second portion of the baseload power generated by the first GT system is sent directly to a hydrogen generation electrolytic cell to produce hydrogen fuel for one or both of the first GT system and the second GT system, without passing through a wide-area power grid.
[0014] Another aspect of this disclosure includes any of the preceding aspects, wherein the controller is located in a TSO of a wide-area power grid.
[0015] Another aspect of the present disclosure includes any of the preceding aspects, wherein a third portion of the baseload power generated by the first GT system is transmitted to a wide-area power grid, and power from the wide-area power grid is transmitted to a hydrogen production electrolytic cell to produce hydrogen fuel for the second GT system.
[0016] Another aspect of the present disclosure includes any of the preceding aspects, wherein, in response to the controller instructing that a third portion of the baseload power generated by the first GT system be sent to the wide-area power grid, the controller adjusts at least the non-hydrogen fuel flow rate of the second GT system to maintain the output of the second GT system.
[0017] One aspect of the present disclosure provides a system. The system includes a first GT system operably connected to a first generator to generate baseload power, which is transmitted to a wide-area power grid controlled by a transmission system operator (TSO); a second GT system operably connected to a second generator to generate power for transmission to the wide-area power grid; and a hydrogen production electrolytic cell configured to be selectively powered by power from the wide-area power grid, the hydrogen production electrolytic cell operably connected to supply hydrogen fuel to the second GT system; and a controller. The controller is configured to increase the power from the wide-area power grid to the hydrogen production electrolytic cell in response to excess power from the wide-area power grid exceeding a threshold, thereby increasing the amount of hydrogen fuel produced for the second GT system; and to decrease the power from the wide-area power grid to the hydrogen production electrolytic cell in response to excess power from the wide-area power grid not exceeding a threshold, thereby decreasing the amount of hydrogen fuel produced for the second GT system.
[0018] Another aspect of the present disclosure includes any of the preceding aspects and further includes a plurality of third GT systems co-located with a first GT system, each third GT system being operably connected to a third generator to generate base load power for transmission to a wide-area power grid.
[0019] Another aspect of this disclosure includes any of the preceding aspects, wherein the second GT system is at least one of a plurality of third GT systems.
[0020] Another aspect of this disclosure includes any of the preceding aspects, wherein the hydrogen generation electrolytic cell and the second GT system are located in a different geographical location from the first GT system.
[0021] Another aspect of the present disclosure includes any of the preceding aspects, wherein, in response to the controller instructing the cessation of power transmission from the wide-area power grid to the hydrogen production electrolyzer, the controller adjusts at least the non-hydrogen fuel flow rate of the second GT system in order to maintain the output of the second GT system.
[0022] Another aspect of the present disclosure includes any of the preceding aspects, and the controller is disposed at the TSO of the wide-area power grid.
[0023] One aspect of the present disclosure provides a method. The method includes transmitting a first portion of base load power generated by a first GT system coupled to a first generator to a wide-area power grid controlled by a Transmission System Operator (TSO); in response to the power demand from the wide-area power grid not exceeding a threshold, transmitting a second portion of the base load power generated by the first GT system to a hydrogen production electrolyzer, the hydrogen production electrolyzer being operably coupled to supply hydrogen fuel to a second GT system, the second GT system being operably coupled to a second generator to generate power; and in response to the power demand from the wide-area power grid exceeding the threshold, transmitting a third portion of the base load power generated by the first GT system to the wide-area power grid.
[0024] Another aspect of the present disclosure includes any of the preceding aspects, and further includes transmitting base load power generated by a plurality of third GT systems and operably coupled to a third generator to the wide-area power grid, the plurality of third GT systems being located at the same location as the first GT system, and the second GT system being at least one of the plurality of third GT systems.
[0025] Another aspect of the present disclosure includes any of the preceding aspects, and the hydrogen production electrolyzer and the second GT system are disposed at a geographical location different from the first GT system.
[0026] Another aspect of the present disclosure includes any of the preceding aspects, and in response to transmitting a third portion of the base load power generated by the first GT system to the wide-area power grid, at least the non-hydrogen fuel flow rate of the second GT system is adjusted to maintain the output of the second GT system.
[0027] Two or more aspects described in this disclosure, including those described in this summary, may be combined to form embodiments not particularly described herein.
[0028] The details of one or more embodiments are set forth in the accompanying drawings and the description below. Other features, objects, and advantages will be apparent from the description and drawings, and from the claims.
Brief Description of the Drawings
[0029] These and other features of this disclosure will be more readily understood from the following detailed description of the various aspects of this disclosure, taken in conjunction with the accompanying drawings that illustrate various embodiments of the disclosure. [Figure 1] It is a schematic diagram of an exemplary power generation system according to the prior art. [Figure 2] It is a schematic diagram of a system according to an embodiment of this disclosure. [Figure 3] It is a schematic diagram of an exemplary gas turbine (GT) system according to an embodiment of this disclosure. [Figure 4] It is a cross-sectional view of the compressor portion of the GT system of FIG. 3. [Figure 5] It is a cross-sectional view of the turbine portion of the GT system of FIG. 3. [Figure 6] It is a flowchart of a method of operating a system according to an embodiment of this disclosure. [Figure 7] It is a schematic diagram of a system according to another embodiment of this disclosure. [Figure 8] It is a flowchart of a method of operating a system according to another embodiment of this disclosure. [Figure 9] It is a schematic diagram of a system according to an additional embodiment of this disclosure.
[0030] Please note that the drawings in this disclosure are not necessarily to scale. The drawings are intended to depict only typical embodiments of this disclosure and should not be considered to limit the scope of this disclosure. In the drawings, similar numbers represent similar elements between drawings. [Modes for carrying out the invention]
[0031] Firstly, in order to clearly describe the subject matter of this disclosure, it is necessary to select specific terminology when referring to and describing the relevant mechanical components within a turbomachine used to generate electricity. Wherever possible, common industry terms will be used and used in a manner consistent with their common meaning. Unless otherwise noted, such terms should be given a broad interpretation consistent with the context of this application and the appended claims. Those skilled in the art will understand that certain components are often referred to using multiple different or overlapping terms. What is described as a single component in this specification may include and refer to a component consisting of multiple components in another context. Or, what is described as consisting of multiple components in this specification may be referred to as a single component elsewhere.
[0032] In addition, several descriptive terms may be used periodically in this specification, and it would be beneficial to define these terms at the beginning of this section. Unless otherwise noted, these terms and their definitions are as follows: As used herein, the terms “downstream” and “upstream” refer to the direction of fluid flow, such as the working fluid through a turbine engine, the airflow through a combustor, or the coolant flow through one of the turbine's components. The term “downstream” corresponds to the direction of fluid flow, while the term “upstream” refers to the direction opposite to the flow (i.e., the direction in which the flow originates). The terms “forward” and “rear” are not further specified and simply refer to direction, with “forward” referring to the front of the engine or compressor end, and “rear” referring to the rear section of the turbomachine.
[0033] Often, it is necessary to describe components positioned at different radial locations relative to the central axis. The term “radial” refers to movement or position perpendicular to the axis. For example, if a first component is located closer to the axis than a second component, this specification states that the first component is “radially inward” or “inboard” than the second component. On the other hand, if a first component is located further from the axis than a second component, this specification may state that the first component is “radially outward” or “outboard” of the second component. The term “axial” refers to movement or position parallel to the axis. Finally, the term “circumferential” refers to movement or position around the axis. It will be understood that such terminology may also be applied in relation to the central axis of a turbine.
[0034] Furthermore, several descriptive terms may be used regularly in this specification, as described below. The terms “first,” “second,” and “third” may be used interchangeably to distinguish one component from another and are not intended to imply the position or importance of individual components.
[0035] The terms used herein are for the sole purpose of describing specific embodiments and are not intended to limit the disclosure. Where used herein, the singular forms “a,” “an,” and “the” are intended to include the plural form unless the context clearly indicates otherwise. Where used herein and in the claims, the terms “comprises” and / or “comprising” identify the presence of a described feature, integer, step, operation, element, and / or component, but do not exclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof. “Optional” or “optionally” means that the event or situation described thereafter may or may not occur, or the component or element described thereafter may or may not exist, and that the description includes examples in which the event or component exists and examples in which it does not occur or does not exist.
[0036] When an element or layer is referred to as “being,” “engaged,” “connected,” or “combined” with another element or layer, it may be directly present on, engaged with, connected to, or combined with the other element or layer, or there may be an intervening element or layer. In contrast, when an element is said to be “directly on,” “directly engaged to,” “directly connected to,” or “directly coupled to,” there is no intervening element or layer. When power is “directed to” a structure, there may be no intervening structure. Other words used to describe relationships between elements should be interpreted similarly (e.g., “between” vs. “directly between,” “adjacent” vs. “directly adjacent,” etc.). As used herein, the term “and / or” includes any combination of one or more of the enumerated items relating to it.
[0037] As used herein, "baseload power" refers to the output when a particular gas turbine (GT) system is operating at full capacity. It should be noted that baseload power may exclude the "primary control reserve," which is a portion of the gas turbine output automatically controlled by each governor of any GT system to provide backup power against instability caused by frequency changes to the grid, i.e., imbalances between demand and generation. The primary control reserve provides a very fast response to changes, such as 15 seconds. The "spinning reserve" refers to a portion of the power plant capacity reserved for when additional power is requested, i.e., when additional power is requested by the transmission system operator (TSO) of the wide-area power grid. The "secondary control reserve" is a portion of the spinning reserve reserved for automatic generation control (AGC) (also known as load frequency control (LFC)) by the TSO.
[0038] In this context, TSO refers to an entity entrusted with the control of power transmission to and from the wide-area power grid. The geographical area covered by a TSO varies, ranging from national to regional levels, such as a state-based Independent System Operator in the United States. TSOs control power plants and wide-area transmission to maintain the stability of the wide-area power grid. AGC is a system that frequently, quickly, and automatically adjusts the output of multiple generators at different power plants in response to changes in load, for example, based on grid frequency, so that load and power generation are continuously matched. An AGC system can be activated, for example, within about 10 minutes.
[0039] When the grid frequency increases, more power is produced than is used, resulting in accelerated power plant generators. In this case, AGC may reduce the output of one or more power plants. When the grid frequency decreases, there is more load than current generation can supply, causing power plant generators to slow down. In this case, AGC may increase the output of one or more power plants. The "tertiary control reserve" is a portion of the spinning reserve that the TSO can manually adjust when the secondary control reserve is insufficient to maintain stability. The response time here is, for example, around 30 minutes.
[0040] Referring to Figure 1, power plant 100 supplies power to the wide-area power grid 102 (hereinafter simply referred to as "grid 102"). In some cases, power plant 100 may include a number of GT systems 110 at a particular site. Each GT system 110 may be connected to a generator 114 or may share a generator. To operate power plant 100 efficiently and achieve the longest possible lifespan for the GT systems 110, it is best to operate the GT systems 110 at base load power. A stable grid requires that the power generated by power plants 100 supplying power to grid 102 always matches the power demand, regardless of fluctuations in demand. As a result, to maintain a stable power grid, power plants 100 are usually required to maintain a spinning reserve that can supply additional power when needed.
[0041] Figure 1 illustrates a spinning reserve GT system 110R. The reserve GT system 110R can operate at 50-100% load depending on electricity demand. Thus, in the case of an exemplary power plant 100 having 10 GT systems 110, the power plant typically supplies 95% of its capacity, with 5% being a spinning reserve, when there is no increase in demand. In this way, when electricity demand increases, the additional capacity of the reserve GT system 110R of the power plant 100, i.e., up to 50%, can be used to quickly generate electricity to maintain the stability of the grid 102. The amount of spinning reserve adopted can vary based on many factors, such as the average increase / decrease in demand over time, geographical location, and grid infrastructure. Disadvantageously, operating the reserve GT system 110R at a level below baseload or with a high level of output fluctuation is highly inefficient, for example, because the system burns fuel inefficiently, emissions increase, and it is generally difficult to control against output fluctuations. Furthermore, operating the backup GT system 110R would incur costs for the power supply company purchasing energy from power plant 100, as it would cover the unused capacity of power plant 100 and the inefficient operation of backup GT system 110R.
[0042] Embodiments of the present disclosure include a system comprising one or more power plants having a first auxiliary GT system operably coupled to a first generator to communicate with a controller and generate baseload power. The power plant may include any number of other first GT systems operably coupled to one or more generators to generate baseload power for a grid controlled by a TSO. One or more hydrogen-producing electrolyzers are selectively powered from the auxiliary GT system. A first portion of the baseload power of the auxiliary GT system is transmitted to the grid. If the power demand from the TSO does not exceed a threshold, the controller instructs one or more hydrogen-producing electrolyzers to transmit a second portion of the baseload power of the auxiliary GT system to produce hydrogen fuel for one or more second, supplemented GT system(s) and to improve emissions for the latter. If the power demand from the TSO exceeds a threshold (e.g., if demand increases), the controller instructs the second portion of the baseload power of the auxiliary GT system to transmit to the grid.
[0043] By continuously generating base load power, the system reduces fuel consumption, improves combustion temperature stability, extends component life (reducing maintenance), reduces emissions from the backup GT system, and improves the overall performance of the power plant where the backup GT system is used. When grid power demand increases, the system shuts down the hydrogen production electrolytic cell and transmits power from the backup GT system to the grid to maintain grid stability. In this way, the system also serves the role of a conventional spinning reserve, but without the disadvantages of doing so.
[0044] Embodiments of System 200 according to embodiments of the present disclosure will be described with reference to Figures 2 and 6-9. System 200 includes one or more power plants 202 represented by stacked rectangles. Each power plant 202 includes a (first) GT system 210R operably coupled to a first generator 212 to generate base load power. For convenience of explanation, GT system 210R is referred to as “reserve GT system 210R” as it is one of several other GT systems 220 that provides reserve power to the grid 204 when needed. However, reserve GT system 210R operates at base load power (full capacity) as defined herein and does not provide spinning reserve power as defined herein.
[0045] Each power plant 202 may also include one or more additional GT systems 220. For convenience of explanation, the GT systems 220 are referred to as “primary GT systems 220,” since their function is to supply primary, baseload (total capacity) power to the grid 204 with little excess capacity other than primary control reserves, as defined herein. As previously stated, the primary control reserves represent a third portion of the baseload power generated, for example, by a backup GT system 210R and maintained by the governor 223 of the backup GT system 210R (the governor of the primary GT system 220 is not shown for clarity).
[0046] In certain embodiments, system 200 may include a plurality of primary GT systems 220 located in the same location as (co-located with) a backup GT system 210R. For example, nine primary GT systems 220 are illustrated in Figure 2, but any number may be provided. Each primary GT system 220 may be operably coupled to a generator 214 to generate base load power for transmission to the grid 204. While each primary GT system 220 is shown with its corresponding generator 214, it will be recognized that certain primary GT systems 220 may share a generator. For clarity, electrical transmission between the primary GT systems 220 and the grid 204 is not illustrated.
[0047] GT systems 210R and 220 may each include a GT controller 216, or they may share a GT controller 216 (shown only in Figures 2 and 7 for clarity). One or more GT controllers 216 may be part of an overall power plant control system (not shown).
[0048] Referring to Figure 3, cross-sectional views of exemplary GT systems 210R, 220, and 250 according to embodiments of the present disclosure are shown. Generally, GT systems 210R, 220, and 250 operate by extracting energy from a pressurized flow of hot gas produced by the combustion of one or more fuels in a flow of compressed air. A GT system 210R, 220, or 250 may be configured to include an axial compressor 222 mechanically coupled to a downstream turbine section or turbine 224 by a common shaft or rotor, and one or more combustors 226 positioned between the compressor 222 and the turbine 224. The GT systems 210R, 220, and 250 may be formed around a common shaft 228 having a central axis A.
[0049] Figure 4 shows a cross-sectional view of an exemplary portion of a multi-staged axial compressor 222 that may be used in the GT systems 210R, 220, and 250 of Figure 2. The compressor 222 may have multiple stages, each stage including rows of compressor rotor blades 230 and rows of compressor stator blades 232. Thus, the first stage may include rows of compressor rotor blades 230 that rotate around a central shaft, followed by rows of compressor stator blades 232 that remain stationary during operation.
[0050] Figure 5 shows an exemplary turbine section or partial cross-sectional view of a turbine 224 that may be used in the GT systems 210R, 220, and 250 of Figure 2. The turbine 224 may also include multiple stages. Three exemplary stages are shown, but more or fewer stages may be present. Each stage may include multiple turbine nozzles or stator blades 234 that remain stationary during operation and multiple turbine rotor blades 236 that rotate around the shaft during operation. The turbine stator blades 234 are generally spaced apart from each other in the circumferential direction and fixed to the outer casing around the axis of rotation. The turbine rotor blades 236 can be mounted on a turbine wheel or rotor disk (not shown) so as to rotate around a central axis A (Figure 3). It will be understood that the turbine stator blades 234 and turbine rotor blades 236 are in the hot gas path or working fluid path through the turbine 224. The flow direction of the combustion gas or working fluid in the working fluid path is from left to right (based on the orientation in Figure 5), as indicated by the arrows.
[0051] Referring to Figures 3 to 5, in an example of the operation of gas turbines 210R, 220, and 250, the airflow can be compressed by the rotation of the compressor rotor blades 230 in the axial compressor 222. In the combustor 226, when the compressed air is mixed with one or more fuels and ignited, energy may be released. As a result, the flow of hot gas or working fluid from the combustor 226 is directed onto the turbine stator blades 234, inducing the rotation of the turbine rotor blades 236 around the shaft 228. In this way, the energy of the working fluid flow is converted into mechanical energy of the rotor blades, and, considering the connection between the rotor blades and the shaft, into a rotating shaft. The mechanical energy of the shaft 228 is used to drive the rotation of the compressor rotor blades 230, generating a desired or sufficient supply of compressed air. Furthermore, the mechanical energy of shaft 228 can then be used to drive the rotation of one or more generators 212, 214 (Figure 2) coupled to one or more GT systems 210R, 220 (Figure 2) in order to generate electricity.
[0052] One or more fuels used in one or more combustors 226 of GT systems 210R, 220, and 250 may be, but are not limited to, currently known fuels or later developed fuels such as natural gas, synthesis gas, and / or petroleum. Generally, hydrogen, where available, may be added as a fuel or fuel additive for combustion in one or more combustors 226. The use of hydrogen increases the combustion energy obtained from the combustion of non-hydrogen fuels and reduces emissions such as carbon dioxide, among other advantages. However, supplying hydrogen from external sources for use in this manner can be expensive due to transportation and / or safe storage requirements.
[0053] Returning to Figure 2, system 200 also includes a controller 238 that controls the transmission of base load power from the auxiliary GT system 210R. Controller 238 may include any currently known or later developed electromechanical control system that can direct the transmission to different loads. Controller 238 may be part of the overall power plant control system (e.g., controller 216) or it may be a separate system. In Figure 2, controller 238 is shown as being located within power plant 202. In one embodiment, controller 238 is controlled by power plant 202 without additional interaction with TSO 239, which is normally performed as part of the overall operation of power plant 202. In other specific embodiments, controller 238 may be controlled by TSO 239. In one embodiment, controller 238 is located in power plant 202 but is controlled by TSO 239. In alternative embodiments, controller 238 may be located elsewhere, such as in TSO 239. As shown in Figure 2, the controller 238 can direct a first portion 237 of the base load power generated by the auxiliary GT system 210R to the grid 204 controlled by the TSO 239.
[0054] System 200 also includes a hydrogen-producing electrolyzer 242 configured to be selectively powered from a backup GT system 210R. The hydrogen-producing electrolyzer 242 (hereinafter, "electrolyzer 242") may include any currently known or later developed free-standing water electrolysis system. Electrolysis of water is the process of using electricity to decompose water into oxygen and hydrogen gas. The hydrogen gas released in this process is used as hydrogen fuel 244 according to embodiments of the present disclosure. Although one electrolyzer 242 is illustrated, any number of free-standing electrolyzers may be provided. The electrolyzer 242 may have any currently known or later developed structure capable of carrying out the electrolysis of water. In any case, the electrolyzer 242 generates a flow of hydrogen fuel 244. In system 200, the controller 238 can instruct the electrolytic cell 242 to supply power with a second portion 246 of the base load power generated by the auxiliary GT system 210R. In system 200, the electrolytic cell 242 is operably coupled to supply hydrogen fuel 244 to the (second) GT system 250. For convenience of explanation, since the GT system 250 receives auxiliary fuel in the form of hydrogen from the electrolytic cell 242, it may be referred to herein as the “supplemented GT system 250”. The supplemented GT system 250 may include the auxiliary GT system 210R and / or any one or more primary GT systems 220 in system 200. The supplemented GT system 250 may be located in the same position as one or more primary GT systems 220 and / or the auxiliary GT system 210R. In any case, the supplemented GT system 250 can be operably coupled to the generators 212, 214 to generate power. In the example of Figure 2, the supplemental GT system 250 may be one or more of the primary GT systems 220 and / or auxiliary GT systems 210R. In alternative embodiments described herein (see Figure 9), the electrolytic cell 242 and the supplemental GT system 250 may be located in different geographical locations from one or more primary GT systems 220 and / or auxiliary GT systems 210R, for example, in different remote power plants 202. Multiple other (third) primary GT systems 220 may be located in the same locations as one or more auxiliary GT systems 210R that are not supplemental GT systems 250. Each unsupplemented GT system may be operably coupled to its own or a shared (third) generator 214 to generate base load power for transmission to the wide-area power grid 104.
[0055] Figure 6 shows a flowchart illustrating the operation of system 200, more specifically controller 238, according to an embodiment of the present disclosure. Referring to Figures 2 and 6, in process step P1, the backup GT system 210R operates at base load. According to an embodiment of the present disclosure, the backup GT system 210R always operates at base load, thus eliminating the inefficiencies caused by supplying spinning reserve. In process step P1, a first portion 237 of the base load power generated by the backup GT system 210R coupled to the generator 212 is sent to the grid 204. The first portion 237 may be any portion of the capacity of the backup GT system 210R, for example, 50%. Also in process step P1, base load power generated by multiple primary GT systems 220 and operably coupled to one or more generators 214 is sent to the grid 204. As shown in Figure 2, the primary GT system 220 is not required in all cases, but may be located in the same location as the auxiliary GT system 210R (co-located with it).
[0056] In process step P2, the controller 238 determines whether the power demand (request) from TSO239 to grid 204 exceeds a threshold, i.e., whether the power demand is greater than a threshold. The threshold can be any currently known or later developed value that indicates that the power demand from TSO239 to grid 204 requires additional power to be generated by the power plant 202. The threshold can be created, for example, as part of a currently known or later developed AGC algorithm that typically triggers the use of a secondary backup power source. Such algorithms are well known and require no further explanation. Alternatively, the threshold may be manually identified without TSO239's knowledge, causing the power plant 202 to activate the controller 238, or it may be manually identified by TSO239, causing TSO239 to activate the controller 238.
[0057] A negative response (i.e., "NO") in process step P2 indicates that the power demand from TSO239 to grid 204 does not exceed a threshold, i.e., there is no need to supply backup power. In this case, in process step P3, the controller 238 instructs that a second portion 246 of the base load power generated by the backup GT system 210R be sent to one or more electrolytic cells 242 to generate hydrogen fuel 244 for one or both of the one or more backup GT systems 210R and one or more supplemental GT systems 250. One or more electrolytic cells 242 are turned on if they are not already turned on. As previously stated, the electrolytic cells 242 are operably coupled to supply hydrogen fuel 244 to one or more backup GT systems 210R and / or one or more supplemental GT systems 250, i.e., one or more combustors 226 operably coupled to generators 212, 214 to generate power. Power from one or more supplemental GT systems 250 can be used for grid 204 or for other purposes.
[0058] Hydrogen fuel 244 can be directed to one or more supplemental GT systems 250 in known ways. As is recognized, using hydrogen fuel 244 with one or more GT systems can improve the emissions of one or more supplemental GT systems compared to using one or more conventional hydrocarbon-containing fuels. Thus, the second portion 246 of the baseload power of the auxiliary GT system 210R, which is normally an unused spinning reserve, is used to reduce the emissions of one or more supplemental GT systems 250 and reduce the emissions of one or more power plants 202. In Figure 2, as indicated by the solid arrows, the supplemental GT system 250 may be at least one of a plurality of primary GT systems 220. In other embodiments, as indicated by the solid and dashed arrows, the supplemental GT system 250 may optionally be any number of primary GT systems 220 and / or auxiliary GT systems 210R.
[0059] Continuing with the flowchart in Figure 6, the affirmative response (i.e., "YES") at process step P2 indicates that the demand for power from TSO239 for grid 204 exceeds a threshold, meaning that power plants 202 and the backup GT system 210R need to supply more power to TSO239 for grid 204, in particular, to maintain stability and meet the demand. Now, at process step P4, the controller 238 instructs that a third portion 240 of the base load power generated by the backup GT system 210R and generator 212 be sent to grid 204. Furthermore, one or more electrolytic cells 242 may be turned off (stopped) if they are not already turned off (stopped). In at least one embodiment, the third portion 240 of the base load power of the backup GT system 210R used to power grid 204 is equivalent to the second portion 246 of the base load power of the backup GT system 210R used to power one or more electrolytic cells 242, although this is not required in all cases. In this way, any increase in power demand sufficient to require additional power from power plant 202 is met by the backup GT system 210R.
[0060] In any process steps P5 and P6 following process steps P3 and P4 respectively, one or more overall GT controllers 216 and / or controllers 238 may adjust at least the non-hydrogen fuel flow rate of the supplemental GT system 250 in order to maintain the output of the supplemental GT system 250 in response to the preceding process step. For example, with respect to process step P5, the supplemental GT system 250 may be adjusted in response to sending a second portion 246 of the base load power generated by the auxiliary GT system 210R to one or more electrolytic cells 242. Now, when the flow of hydrogen fuel 244 to the supplemental GT system 250 begins (P3), the output of one or more supplemental GT systems 250 may increase and / or the amount of non-hydrogen fuel used may decrease.
[0061] Alternatively, with respect to process step P6, the supplemental GT system 250 may be adjusted in response to sending a third portion 240 of the base load power generated by the auxiliary GT system 210R to the grid 204. Here, if the flow of hydrogen fuel 244 to one or more supplemental GT systems 250 is stopped (P4), the output of one or more supplemental GT systems 250 may decrease. To maintain the output, at least the non-hydrogen fuel flow rate of one or more supplemental GT systems 250 may be adjusted. In some cases, the non-hydrogen fuel flow rate may be increased to increase the output and compensate for the output loss due to the cessation of the hydrogen fuel 244 flow. In other cases, the non-hydrogen fuel flow rate may be decreased to reduce the output in order to compensate for the additional output due to the addition of hydrogen fuel 244. To maintain the output, other operating parameters of the supplemental GT systems 250, such as inlet vane location, fuel type, fuel composition, and staged fuel injection operation, may also be adjusted.
[0062] In certain embodiments, the flowchart in Figure 6 can be controlled by the power plant 202 without intervention from or knowledge of the TSO239. Alternatively, it can be controlled by the TSO239.
[0063] Furthermore, with respect to generators 212, 214, although each GT system 210R, 220 is shown to include its own generator, it will be recognized that GT systems 210R, 220 may share one or more generators. Thus, at least one of the generators 212, 214 used for the auxiliary GT system 210R, one or more primary GT systems 220, and one or more supplemental GT systems 250 may be the same generator. In the embodiment of Figure 2, a second portion 246 of the baseload power generated by the auxiliary GT system 210R is sent directly to one or more electrolyzers 242 to generate a flow of one or more hydrogen fuels 244 for one or more supplemental GT systems 250, without passing through the grid 204. That is, the second portion 246 is maintained within the power plant 202. Here again, the transmission of the second portion 246 may be controlled by the power plant 202 or TSO 239.
[0064] Figure 7 shows a schematic diagram of system 200 according to another embodiment of the present disclosure. Here, a backup GT system 210R is operably coupled to a generator 212 to generate base load power, and all of the base load power is sent to the grid 204. That is, rather than dividing the base load power (as in Figure 2, which has a first part 237, a second part 246, and a third part 240), all of the base load power 260 generated by the backup GT system 210R and the generator 212 is sent to the grid 204. In this embodiment, one or more electrolytic cells 242 are configured to be selectively powered by the power 262 received from the grid 204. One or more electrolytic cells 242 are operably coupled to supply hydrogen fuel 244 to one or more supplemental GT systems 250, and one or more supplemental GT systems 250 are operably coupled to one or more generators 214 to generate power for, for example, the grid 204 or another load. To power one or more electrolytic cells 242 when needed, power 262 from the grid 204 is transmitted / returned to one or more electrolytic cells 242, generating a flow of hydrogen fuel 244 for the supplemental GT system 250. In this example, the controller 238 may be located in the TSO 239 of the grid 204. For example, the controller 238 may be part of a currently known or later developed AGC system, or it may be a separate system that works in conjunction with the AGC system, or it may be manually controlled. In any case, the TSO 239 can control the use of one or more electrolytic cells 242 without interacting with other control systems of the power plant 202 (e.g., controller 216).
[0065] Figure 8 shows a flowchart of how the system 200, more specifically the controller 238, is operated according to another embodiment of the present disclosure. Referring to Figures 7 and 8, in process step P10, the reserve GT system 210R is operated at base load. According to embodiments of the present disclosure, the reserve GT system 210R is always operated at base load, thus eliminating inefficiencies caused by providing a spinning reserve. In process step P10, the base load power 260 generated by the reserve GT system 210R coupled to the generator 212 is sent to the grid 204. Also in process step P10, base load power (arrows omitted for clarity) generated by multiple primary GT systems 220 and operably coupled to one or more generators 214 is sent to the grid 204. As shown in Figure 2, the primary GT systems 220 may be located in the same place as the reserve GT system 210R, but this is not required in all cases.
[0066] In process step P12, the controller 238 determines whether excess power from grid 204 exceeds a threshold, i.e., whether the total power generated by one or more power plants 202 exceeds the demand from grid 204 and is greater than the threshold. The threshold can be a currently known or later developed value that indicates that excess power from grid 204 is available. The threshold may be created as part of any currently known or later developed AGC algorithm to indicate that excess power is available and trigger a call to reduce the power generated by one or more power plants 202, for example. Such algorithms are well known and therefore require no further explanation.
[0067] Alternatively, the threshold may be manually determined and the controller 238 may be activated by the TSO 239. An affirmative response (i.e., "YES") in process step P12 indicates that sufficient excess power is available from the grid 204 for one or more electrolytic cells 242. In this case, in process step P13, the controller 238 increases (instructs) the power 262 from the grid 204 to one or more electrolytic cells 242 to increase the amount of hydrogen fuel produced for the supplemental GT system 250. Here, electrolytic cells 242 that are already operating may increase their output, and / or further turn on electrolytic cells 242 that were not yet turned on. If one or more electrolytic cells 242 were not operating, process step P13 activates one or more electrolytic cells 242 and begins supplying hydrogen fuel 244 to the supplemental GT system 250. (The power 262 can be considered a reserve of a portion of the base load power 260 generated by the auxiliary GT system 210R).
[0068] As described above, one or more electrolytic cells 242 are operably connected to supply hydrogen fuel 244 to one or more supplemental GT systems 250 which are operably connected to generators 212, 214 to generate electricity. The electricity from one or more supplemental GT systems 250 can be used for the grid 204 or for other purposes. The hydrogen fuel 244 can be led to one or more supplemental GT systems 250. As described above, by using hydrogen fuel 244 with the supplemental GT systems 250, the emissions of those GT systems can be reduced compared to the emissions that would be possible with hydrocarbon-based fuels. In this way, the base load power 260 of the auxiliary GT system 210R is used to its maximum extent, and the power 262 is used to reduce the emissions of one or more supplemental GT systems 250 and therefore to reduce the emissions of the power plant 202. The additional electricity generated by the power plant 202 having one or more electrolytic cells 242 can be used, for example, to reduce power generation at other locations that are not generated as efficiently or cleanly as the power plant 202 having one or more electrolytic cells 242.
[0069] In Figure 7, as indicated by the solid arrow representing hydrogen fuel 244, the supplemental GT system 250 may be at least one of the multiple primary GT systems 220. Alternatively, as described above, in other embodiments shown by the solid and dashed arrows, the supplemental GT system 250 may optionally be any number of primary GT systems 220 and / or auxiliary GT systems 210R.
[0070] Continuing with the flowchart in Figure 8, a negative response (i.e., "NO") at process step P12 indicates that the excess power from grid 204 is not greater than a threshold, for example, there is no overall excess power, or there is insufficient power 262 to supply power from grid 204 to one or more electrolytic cells 242. In this case, at process step P14, the controller 238 reduces (instructs) the power from grid 204 to one or more electrolytic cells 242 in order to reduce the amount of hydrogen fuel 244 produced for one or more supplemental GT systems 250. Here, electrolytic cells 242 that are already operating may have their output reduced, and / or at least some electrolytic cells 242 may be turned off. If insufficient excess power is available, as can be identified by the excess power not exceeding a threshold, process step P14 may turn off all electrolytic cells 242 and thus stop supplying hydrogen fuel 244 to one or more supplemental GT systems 250.
[0071] In any process steps P15 and P16 following process steps P13 and P14, one or more overall GT controllers 216 and / or controllers 238 may adjust the flow rate of at least non-hydrogen fuel to the supplemental GT system 250 in order to maintain the output of the supplemental GT system 250 in response to the preceding process. For example, with respect to process step P15, the supplemental GT system 250 may be adjusted in response to power 262 being transmitted from the grid 204 to one or more electrolyzers 242. Now, when the flow of hydrogen fuel 244 to the supplemental GT system 250 begins (P13), the output of the supplemental GT system 250 may increase.
[0072] Alternatively, with respect to process step P16, the supplemental GT system 250 may be adjusted in response to a decrease or cessation of power 262 from grid 204 to one or more electrolytic cells 242. Here, if the flow of hydrogen fuel 244 to the supplemental GT system 250 is stopped (P14), the output of the supplemental GT system 250 may decrease. To maintain output, at least the non-hydrogen fuel flow rates of one or more supplemental GT systems 250 may be adjusted, i.e., the output may be increased to compensate for the output loss due to the cessation of the hydrogen fuel 244 flow, or decreased to compensate for the additional output due to the addition of hydrogen fuel 244 flow. Other operating parameters of the supplemental GT system 250 may also be adjusted to maintain output, such as inlet vane location, fuel type, fuel composition, and staged fuel injection operation.
[0073] The flowchart in Figure 8 shows that the TSO239 can be controlled without intervention from power plant 202, or it can be controlled by power plant 202.
[0074] Figure 9 is a schematic diagram of a system 200 according to an additional embodiment of the present disclosure. The system 200 in Figure 9 may follow the operational methodology of Figure 8. Here, any number of power plants 202A-C may operate all GT systems 210R, 220 at base load. That is, one or more auxiliary GT systems 210R may be operably coupled to one or more generators 212 to generate base load power to be transmitted to the grid 204. Also, multiple primary GT systems 220 may be co-located (located in the same place) with their respective auxiliary GT systems 210R which are operably coupled to one or more generators 214 to generate base load power to be transmitted to the grid 204. Thus, the collective base load power 268 of all GT systems is transmitted to the grid 204.
[0075] In these embodiments, one or more electrolytic cells 242A-C are not necessarily located together with power plants 202A-C, but can be located anywhere hydrogen is needed as fuel, i.e., at sites 270A-C, respectively. In the illustrated non-limiting example, one hydrogen-producing electrolytic cell 242A can supply hydrogen fuel 244 to a supplemental GT system 250 at site 270A. Site 270A is different from power plants 202A-C, and therefore the electrolytic cell 242 and supplemental GT system 250 are located at a different geographical location from one or more auxiliary GT systems 210R. Here, the electrolytic cell 242A may be configured to be selectively powered by power 262 from the grid 204. The electrolytic cell 242A is operably coupled to supply hydrogen fuel 244 to the supplemental GT system 250, which is operably coupled to a generator 214 to generate power. The supplemental GT system 250 may be, for example, a GT system requiring lower emissions. The supplemental GT system 250 can be located at any geographical location 270A different from power plants 202A-C.
[0076] Other electrolyzers 242B-C located at other sites 270B-C can supply hydrogen fuel 244 to a variety of other industrial applications 272 that require hydrogen as fuel, such as aerospace, transportation, chemical manufacturing, electronics, food and beverage, general manufacturing, glassmaking, hospitals / medical, mining, agriculture, construction, pharmaceuticals, plastics, or wood products, but are not limited to these. Any number of electrolyzers 242 can be powered from the grid 204, for example, through control by the TSO 239 or other entities. The controller 238 is configured to instruct power transmission from the grid 204 to the electrolyzers 242A-C to produce hydrogen fuel 244 for, for example, the supplemental GT system 250 at site 270A. This instruction may occur in response to excess power from the grid 204 exceeding a threshold ("YES" in process step P13 and process step P12 in Figure 8). Alternatively, the controller 238 may instruct the cessation of power supply from grid 204 to one or more electrolytic cells 242A-C in response to the excess power from grid 204 not exceeding a threshold (process step P14, and "NO" in process step P12 in Figure 8). Process step P15 in Figure 8 may also be performed in system 200 in Figure 9.
[0077] In Figure 9, the controller 238 may be located in the TSO 239 of grid 204. Here again, the controller 238 may be part of a currently known or later-developed AGC system, a separate system operating in conjunction with the AGC system, or manually controlled. In this example, the TSO 239 can control the use of one or more electrolytic cells 242 without interacting with other control systems of the power plants 202A-C.
[0078] Embodiments of this disclosure provide a system that operates one or more backup GT systems at base load at all times and uses surplus base load power that the grid does not need when power demand is low to power one or more hydrogen production electrolyzers. The hydrogen fuel from one or more hydrogen production electrolyzers can be injected into one or more other supplemental GT systems to reduce emissions from those GT systems. When grid power demand increases, the system reduces (turns down or turns off) the power to one or more hydrogen production electrolyzers and transmits power from the backup GT systems to the grid to maintain grid stability. Thus, the benefits of a spinning reserve are obtained without incurring the disadvantages of a spinning reserve.
[0079] The aforementioned drawings illustrate some of the processes related to some embodiments of the present disclosure. In this regard, each drawing or block in the flowchart of the drawings represents a process step related to an embodiment of the described method. It should also be noted that in some alternative embodiments, the actions shown in the drawings or blocks may occur out of order shown in the drawings, or may actually be performed substantially simultaneously or in reverse order, depending on the actions involved. Furthermore, those skilled in the art will recognize that additional blocks describing the processes may be added.
[0080] The approximate expressions used throughout this specification and the claims may be applied to modify any quantitative expression that may change acceptablely without altering the fundamental function of the expression in question. Thus, values modified by terms such as “about,” “approximately,” and “substantially” are not limited to the exact values specified. In at least some instances, approximate expressions may correspond to the precision of the instrument used to measure the value. Throughout this specification and the claims, range limitations may be combined and / or replaced. Such ranges, unless otherwise specified in context or wording, include all subranges contained therein. “About” applied to specific values within a range may indicate ±10% of one or more values described, unless it applies to both endpoints and depends on the precision of the instrument used to measure the value.
[0081] All means or step-plus functional elements in the following claims, corresponding structures, materials, actions, and equivalents are intended to include any structures, materials, or actions for performing a function in combination with other claimed elements, as specifically claimed. The descriptions in this disclosure are presented for illustrative and explanatory purposes and are not intended to be exhaustive or restrictive of the disclosure in the disclosed form. Many modifications and variations will be apparent to those skilled in the art without departing from the scope and spirit of this disclosure. The embodiments have been selected and described to best illustrate the principles and practical applications of this disclosure and to enable those skilled in the art to understand this disclosure in various embodiments with various modifications to suit a particular intended use. [Explanation of symbols]
[0082] 100: Power plant 102: Wide-area power grid 110: GT system 114: Generator 200: System 202: Power plant 204: Grid 210: GT system 212, 214: Generator 216: GT controller 220: Additional GT system 222: Compressor 223: Governor 224: Turbine 226: Combustor 228: Shaft 230: Compressor rotor blade 232: Compressor stator blade 234: Turbine stator blade 236: Turbine rotor blade 237: First part 238: Controller 239: TSO 240: Third part 242: Hydrogen production electrolytic cell 244: Hydrogen fuel 246: Second part 250: Supplemental GT system 260: Base load power 262: Power 268: Base load power 270: Geographic location 272: Industrial application
Claims
1. A first gas turbine (GT) system (210R) operably connected to a first generator (212) to generate base load power (260), wherein a first portion (237) of the base load power (260) generated by the first GT system (210R) is transmitted to a wide-area power grid (204) controlled by a transmission system operator (TSO) (239), A second gas turbine (GT) system (220) is operably connected to a second generator (214) that generates electricity for transmission to a wide-area power grid (204), A hydrogen-generating electrolytic cell (242) operably connected to supply hydrogen fuel (244) to one or both of a first GT system (210R) and a second GT system (220), wherein the hydrogen-generating electrolytic cell (242) is configured to be selectively powered by a second portion (246) of base-load power (260) generated by the first GT system (210R), Controller (238) and Includes, The controller (238) is In response to a power demand (262) from a TSO (239) that does not exceed a threshold, a second portion (246) of the base load power (260) generated by the first GT system (210R) is sent to a hydrogen production electrolytic cell (242) and instructed to produce hydrogen fuel (244) for one or both of the first GT system (210R) and the second GT system (220). A system configured to, in response to a threshold-exceeding power demand (262) from a TSO (239), instruct a third portion (240) of the baseload power (260) generated by a first GT system (210R) to be transmitted to a wide-area power grid (204), to stop the supply of hydrogen fuel (244) to at least a second GT system (220) if it is not already shut down, and to turn off a hydrogen production electrolytic cell (242) if it is not already turned off.
2. The system according to claim 1, further comprising a plurality of third gas turbine (GT) systems (250) located in the same location as the first GT system (210R), each third GT system (250) being operably connected to a third generator that generates base load power (260) for transmission to a wide-area power grid (204).
3. The system according to claim 2, wherein the second GT system (220) is at least one of a plurality of third GT systems (250).
4. The system according to claim 3, wherein at least two of the first, second, and third generators (114, 212, 214) are the same generator.
5. The system according to claim 2, wherein the hydrogen generating electrolytic cell (242) and the second GT system (220) are located at different geographical locations from the first GT system (210R).
6. The system according to claim 1, wherein a fourth portion of the base load power (260) generated by the first GT system (210R) is maintained as a primary control reserve by the governor of the first GT system (210R).
7. The system according to claim 1, wherein a second portion (246) of base load power (260) generated by a first GT system (210R) is sent directly to a hydrogen generating electrolytic cell (242) to generate hydrogen fuel (244) for one or both of the first GT system (210R) and the second GT system (220), without passing through a wide-area power grid (204).
8. The system according to claim 1, wherein the controller (238) is installed in the TSO (239) of the wide-area power grid (204).
9. The system according to claim 8, wherein a third portion (240) of the base load power (260) generated by the first GT system (210R) is transmitted to a wide-area power grid (204), and power from the wide-area power grid (204) is transmitted to a hydrogen production electrolytic cell (242) to produce hydrogen fuel (244) for one or both of the first GT system (210R) and the second GT system (220).
10. The system according to claim 1, in response to a controller (238) instructing the transmission of a third portion (240) of the baseload power (260) generated by the first GT system (210R) to the wide-area power grid (204), the controller (238) adjusts at least the non-hydrogen fuel flow rate (244) of the second GT system (220) to maintain the output of the second GT system (220).
11. The steps include transmitting a first portion (237) of base load power (260) generated by a first gas turbine (GT) system (210R) connected to a first generator (212) to a wide-area power grid (204) controlled by a transmission system operator (TSO) (239), The steps of sending a second portion (246) of base-load power (260) generated by a first GT system (210R) to a hydrogen-generating electrolytic cell (242) in response to a power demand (262) from a TSO (239) that does not exceed a threshold, wherein the hydrogen-generating electrolytic cell (242) is operably coupled to supply hydrogen fuel (244) to a second gas turbine (GT) system (220), and the second GT system (220) is operably coupled to a second generator (214) to generate power, In response to the power demand (262) from the TSO exceeding a threshold, the third portion (240) of the base load power (260) generated by the first GT system (210R) is transmitted to the wide-area power grid (204). If it has not yet been stopped, the step of stopping the supply of hydrogen fuel (244) to at least the second GT system (220), If it is not yet turned off, the hydrogen generation electrolytic cell (242) is turned off, Methods that include...
12. The method according to claim 11, further comprising the step of transmitting base load power (260) generated by a plurality of third gas turbine (GT) systems (250) operably coupled to a third generator (214) to a wide-area power grid (204), wherein the plurality of third GT systems (250) are located in the same place as a first GT system (210R), and the second GT system (220) is at least one of the plurality of third GT systems (250).
13. The method according to claim 11, wherein the hydrogen generating electrolytic cell (242) and the second GT system (220) are located at different geographical locations from the first GT system (210R).
14. The method according to claim 11, wherein the flow rate of at least non-hydrogen fuel (244) of the second GT system (220) is adjusted in order to maintain the output of the second GT system (220) in response to sending a third portion (240) of the base load power (260) generated by the first GT system (210R) to the wide-area power grid (204).
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