Geothermal power generation system and method for controlling silica scale deposition

The geothermal power generation system uses a pH measurement system with a spiral tube and alkaline agent injection to control pH between 8 and 9, addressing silica scale deposition and ensuring accurate measurements, thereby stabilizing plant operation.

JP7754341B2Active Publication Date: 2025-10-15FUJI ELECTRIC CO LTD
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Patent Information

Application Number
JP2024549928
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-09-29
Filing Date
2023-08-31
Publication Date
2025-10-15
Estimated Expiration
2043-08-31

AI Technical Summary

Technical Problem

Geothermal power generation systems face significant silica-based scale deposition issues due to high dissolved silica concentrations, leading to frequent maintenance requirements and inaccurate pH measurements, which are not effectively addressed by existing pH control methods that either result in pipe corrosion or scale adherence to pH meters.

Method used

A geothermal power generation system and method that includes a pH measurement system with a spiral tube and pH meter, connected to a turbine, to accurately measure pH and inject alkaline agents to maintain a pH range of 8 to 9, preventing scale buildup and ensuring accurate pH readings by periodically cleaning the pH measurement system.

Benefits of technology

The system enables precise pH control, preventing silica-based scale deposition and extending maintenance cycles, ensuring stable plant operation by maintaining accurate pH measurements over time.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided is a geothermal power generation system with which it is possible to control silica scale deposition. This geothermal power generation system comprises: a production well; a steam-water separator which separates a geothermal fluid obtained from the production well into steam and hot water; a turbine which rotates by means of the steam separated in the steam-water separator; a reinjection well which returns the geothermal fluid which has passed through the steam-water separator and / or the turbine; a pH measurement system which measures the pH of an extracted portion of the hot water separated in the steam-water separator, and a first thermometer which measures the temperature of the extracted portion of hot water; an injection device which injects an alkaline agent into the geothermal fluid; a second thermometer which measures the temperature of the geothermal fluid at a pH estimation point selected from among an injection part for the alkaline agent, an outlet of the steam-water separator, and a reinjection well inlet; and a control device which controls the injection of the alkaline agent by the injection device on the basis of the measurement results from the pH measurement system, the first thermometer, and the second thermometer.
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Description

[Technical Field]

[0001] The present invention relates to a geothermal power generation system and a method for controlling silica-based scale deposition. [Background technology]

[0002] Scale deposition has been a problem in systems with fluid distribution systems, such as power plants, ship systems, boiler systems, and steel plants. Silica-based scale deposition is particularly problematic in systems that use geothermal fluids, such as geothermal power plants. Attempts have been made to control the pH of geothermal fluids to suppress silica scale deposition.

[0003] A geothermal power generation system is known in which sulfuric acid is generated in the geothermal hot water from hydrogen sulfide (H2S) in the separated hot water by supplying an oxidizing agent to the separated hot water in a hot water return line that returns the separated hot water separated in a steam separator to a hot water reduction well (see, for example, Patent Document 1). Patent Document 1 discloses that by making the separated hot water acidic, it is possible to prevent the deposition of silica scale in the hot water system.

[0004] A scale inhibition method is known that includes the steps of adding a scale inhibitor to geothermal water collected from a production well and, simultaneously with or after the addition of the scale inhibitor, adding an alkaline agent to adjust the pH to 9 or higher (see, for example, Patent Document 2). Patent Document 2 increases the pH of the geothermal water to inhibit the formation of silica scale and can prevent salt precipitation due to inorganic cations when the alkaline agent is added.

[0005] A scale inhibition method is known that includes a step of supplying a chelating agent and an alkaline agent into a pipe through which a fluid flows in order to inhibit the formation of scale containing calcium and silica (see, for example, Patent Document 3). Patent Document 3 provides a method that can minimize the amount of chelating agent used while inhibiting the deposition of scale. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-90147 [Patent Document 2] International Publication WO 2012 / 144277 [Patent Document 3] Japanese Patent Application Laid-Open No. 2013-43145 Summary of the Invention [Problem to be solved by the invention]

[0007] Among the plants where scale is a problem, geothermal power generation systems have a high concentration of dissolved silica in the geothermal water that flows through them. For example, while the maximum dissolved silica concentration in cooling water is around 150 ppm, the dissolved silica concentration in geothermal water in Japan reaches 450-900 ppm. This has created the problem of the tendency for scale such as amorphous silica to precipitate. Due to the deposition of silica-based scale, regular overhaul inspections of turbines, steam separators, heat exchangers, etc. are currently required.

[0008] The method disclosed in Patent Document 1 controls the pH of geothermal water to an acidic range, but there is a large fluctuation range around the target acidic pH of 5 to 5.5, making it difficult to control the pH of the geothermal water. When the pH of geothermal water is less than 5, the problem of pipe corrosion becomes significant, and when it exceeds 5.5, there is a problem of little effect in preventing scale.

[0009] Furthermore, in Patent Document 1, the pH is measured with a pH meter after the oxidizing agent is injected to control the amount of oxidizing agent injected, but there is no way to prevent scale from adhering to the pH meter itself, which causes the problem that the pH cannot be measured accurately over time.

[0010] In the methods disclosed in Patent Documents 2 and 3, geothermal water is kept in the alkaline range, so even if an oxidizing agent is added, the pH changes slowly and the problem of pipe corrosion is unlikely to occur. However, there is a problem that scale adheres to the pH meter, making it impossible to guarantee the accuracy of pH measurement. In addition, the methods disclosed in Patent Documents 2 and 3 have the problem that adding scale inhibitors and chelating agents is costly.

[0011] In geothermal power generation systems, an effective and economical method for controlling the pH of geothermal fluid is required to prevent scale buildup caused by the geothermal fluid. [Means for solving the problem]

[0012] The inventors have discovered a method for preventing scale buildup on a pH meter, accurately measuring the pH of geothermal fluid, and controlling the pH of geothermal fluid to a value within a specific range on the alkaline side, thereby completing the present invention.

[0013] That is, according to an embodiment of the present invention, the present invention includes: [1] Production wells and a steam separator that separates the geothermal fluid obtained from the production well into steam and hot water; a turbine rotated by the steam separated in the steam separator; a reinjection well for returning the geothermal fluid that has passed through the steam separator and / or turbine; a pH measurement system that extracts a portion of the hot water separated in the steam separator and measures the pH of the hot water, and a first thermometer that measures the temperature of the hot water; an injection device for injecting an alkaline agent into the geothermal fluid; The alkaline agent injection section, the steam separator of a second thermometer for measuring the temperature of the geothermal fluid at a pH estimation point selected from the outlet or the inlet of the reinjection well; a control device that controls the injection of the alkaline chemical by the injection device based on the measurement results of the pH measurement system, the first thermometer, and the second thermometer; A geothermal power generation system comprising: The pH measurement system includes a spiral tube and a pH meter, and is connected to the turbine via an on-off valve. of A geothermal power generation system connected to a downstream condensate pump. [2] The system according to [1], wherein the pH measurement system further includes a cleaning agent injection section. [3] The system described in [1], wherein the injection device is connected to piping between the production well and the steam separator. [4] The system described in [3], wherein the second thermometer is provided in a pipe between the production well and the steam separator. [5] The system described in [3], wherein the second thermometer is provided at the entrance of the reinjection well. [6] The system according to [1], wherein the injection device is connected to the hot water section of the steam separator. [7] (a) measuring the temperature of the geothermal fluid at a pH estimation point in a geothermal power generation system; (b) extracting a portion of the hot water separated in the steam separator, releasing heat, and measuring the pH and temperature; (c) estimating the pH of the geothermal fluid at the pH estimation point based on the measurement results of steps (a) and (b); (d) determining whether or not to inject alkaline agents into the geothermal fluid based on the results of the estimation in step (c); A method for controlling silica-based scale deposition, comprising: [8] The method according to [7], wherein in step (d), if the pH is below a predetermined range in the alkaline region, it is determined that alkaline agent injection into the geothermal fluid is necessary. [9] (e) determining the amount of alkaline agent to be injected when it is determined in step (d) that alkaline agent injection is necessary; (f) injecting an alkaline agent into the geothermal fluid based on the determination result of step (e); (g) after step (f) is completed, measuring the temperature of the geothermal fluid at the pH estimation point; (h) after the completion of the step (f), extracting a portion of the hot water separated in the steam separator, releasing heat, and measuring the pH and temperature; (i) estimating the pH of the geothermal fluid at the pH estimation point based on the measurement results of steps (g) and (h); (j) determining whether to increase, decrease, or maintain the amount of alkaline agent injected into the geothermal fluid based on the estimation results of step (i); The method according to [7], further comprising:

[10] The method according to [9], wherein in step (j), it is determined to increase the alkaline agent injection amount when the pH is below a predetermined range in the alkaline region, it is determined to decrease the alkaline agent injection amount when the pH is above the predetermined range in the alkaline region, and it is determined to maintain the alkaline agent injection amount when the pH is within the predetermined range in the alkaline region.

[11] In the step (j), when it is determined to increase the amount of alkaline agent injected, (k) determining the amount of alkaline agent to be injected after the increase; (l) injecting an alkaline agent into the geothermal fluid based on the determination result of step (k); (m) after completion of step (l), measuring the temperature of the geothermal fluid at the pH estimation point; (n) after completion of the step (l), extracting a portion of the hot water separated in the steam separator, releasing heat, and measuring the pH and temperature; (o) estimating the pH of the geothermal fluid at the pH estimation point based on the measurement results of steps (m) and (n); pH increase and estimation operations, including When it is determined in the step (j) that the amount of alkaline chemical to be injected is reduced, (p) determining the injection amount after reduction of the alkaline agent; (q) injecting an alkaline agent into the geothermal fluid based on the determination result of step (p); (r) after completion of step (q), measuring the temperature of the geothermal fluid at the pH estimation point; (s) after completion of the step (q), extracting a portion of the hot water separated in the steam separator, releasing heat, and measuring the pH and temperature; (t) estimating the pH of the geothermal fluid at the pH estimation point based on the measurement results of steps (r) and (s); The method according to

[10] , wherein a pH decrease / estimation operation is performed.

[12] Step (o) or Process (t) The method described in

[11] further comprises a step of determining whether to increase, decrease, or maintain the amount of alkaline agent injected into the geothermal fluid based on the estimation result, and repeating the pH increase / estimation operation or the pH decrease / estimation operation until the estimated pH value reaches a predetermined range in a predetermined alkaline region. [Effects of the Invention]

[0014] The geothermal power generation system and silica-based scale deposition control method of the present invention prevent scale buildup on the pH meter and enable accurate pH measurement over a long period of time. This also allows the geothermal fluid to maintain a pH between approximately 8 and 9, which can lengthen the maintenance cycle in plants where silica scale deposition is a problem, contributing to stable plant operation. [Brief explanation of the drawings]

[0015] [Figure 1] FIG. 1 is a conceptual diagram showing a geothermal power generation system according to a first embodiment of the present invention. [Figure 2A] FIG. 2A is a flowchart illustrating a method for controlling silica-based scale deposition according to one embodiment of the present invention. [Figure 2B] FIG. 2B is a flowchart illustrating a method for controlling silica-based scale deposition according to one embodiment of the present invention, and is a diagram illustrating control subsequent to FIG. 2A. [Figure 3] FIG. 3 is a conceptual diagram showing a geothermal power generation system according to a second embodiment of the present invention. [Figure 4] FIG. 4 is a conceptual diagram showing a geothermal power generation system according to a third embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0016] Hereinafter, embodiments of the present invention will be described with reference to the drawings, but the present invention is not limited to the embodiments described below.

[0017] According to one embodiment, the present invention relates to a geothermal power generation system and a method for controlling silica-based scale deposition.

[0018] FIG. 1 is a conceptual diagram of a geothermal power generation system according to a first embodiment. The geothermal power generation system shown in FIG. 1 generates electricity using geothermal fluid as a power source and primarily includes a production well 5, a steam separator 6, a turbine 7, a condenser 8, a condensate pump 9, and a reinjection well 19. The geothermal power generation system further includes, as components for scale control, a chemical tank 1, a chemical injection pump 2 (an example of a chemical injection device), a control device 3, a first thermometer 15, a second thermometer 4, and a pH measurement system 20. In the diagram, thick solid arrows represent the flow of geothermal fluid and components derived from the geothermal fluid, such as steam, hot water, and condensate. Thin solid arrows represent the flow of chemicals. Dashed lines represent control signals.

[0019] The flow of geothermal fluid in a geothermal power generation system is described below. A production well 5 is a well that delivers geothermal fluid, which is hot water, steam, or a mixture of these, from an underground geothermal reservoir to the surface. The geothermal fluid delivered from the production well 5 is separated into gaseous steam and liquid hot water in a steam separator 6. The separated steam is directed to a turbine 7, where it is used to rotate the turbine and generate electricity in a generator. The steam that has performed work in the turbine 7 is cooled and condensed in a condenser 8 to become condensed water. The condensed water is sent to a cooling tower 10 by a condensate pump 9. Meanwhile, the hot water separated in the steam separator 6 is optionally directed to a hot water pit 18 via a heat exchanger (not shown) and returned to the reinjection well 19. A portion of the hot water delivered to the hot water pit 18 may be delivered to a facility (not shown) for downstream heat utilization, such as a hot spring facility.

[0020] In the case of a binary power generation system, a second steam separator is provided downstream of the steam separator 6, and the steam separated in the second steam separator heats a low-boiling-point medium. The heated low-boiling-point medium is used to rotate the second turbine. The low-boiling-point medium is used by repeating evaporation and condensation while circulating, and the hot water separated in the steam separator 6 may be used to heat the low-boiling-point medium. In this invention, details of power generation using a low-boiling-point medium to operate the second turbine are not shown, but the geothermal power generation system according to the present invention describes a configuration common to both a binary power generation system and a system in which a turbine is operated solely by geothermal steam, and both a binary power generation system and a system in which a turbine is operated solely by geothermal steam are considered to fall within the scope of the present invention.

[0021] Referring to FIG. 1 , a pH measurement system 20 and a first thermometer 15 are connected to the steam separator 6. The pH measurement system 20 is configured to allow some of the hot water components separated in the steam separator 6 to flow into it. More specifically, the pH measurement system 20 is mainly configured by connecting, in this order, a pipe branching off from the steam separator 6, a spiral pipe 14, and a pH meter 16. A pipe from a condensate pump 9 is connected to the pipe branching off from the steam separator 6, and a cleaning agent injection device 13 can also be connected optionally. The hot water can be retained inside the pH measurement system 20 by a first on-off valve 12 located between the steam separator 6 and the pH measurement system 20, a second on-off valve 11 located between the steam separator 6 and the condensate pump 9, and a third on-off valve 17 located downstream of the pH meter 16. This configuration makes it possible to measure the pH of the hot water for a certain period of time while blocking the movement of substances.

[0022] In the pH measurement system 20, the pipe through which the hot water flows can be primarily made of metal, preferably a corrosion-resistant metal such as stainless steel. The pipe through which the hot water flows may have an outer diameter of, for example, approximately 2 to 12.7 mm. Alternatively, the pipe through which the hot water flows is preferably a relatively thin pipe, with a diameter ratio of approximately 0.004 to 0.028 relative to the transport pipe that transports the hot water from the steam separator 6 to the hot water pit 18. The helical pipe 14 is not particularly limited in diameter or number of turns, as long as it has a surface area sufficient to reduce the temperature of the hot water (approximately 200°C) separated from the steam separator 6 to approximately 80°C. However, the helical pipe 14 is preferably installed so that its outer surface can be exposed to ambient air. The pH meter 16 may be a device equipped with a commonly used porous glass electrode and capable of measuring pH in the range of approximately 5 to 11.

[0023] The operation of the pH measurement system 20 will now be described. When measuring the pH of hot water, the first on-off valve 12 between the steam separator 6 and the system is opened, and the hot water is introduced into the pH measurement system 20. The second on-off valve 11 remains closed during pH measurement. The hot water from the steam separator 6 passes through the spiral tube 14 at high speed, dissipating heat as it passes through the spiral tube 14, and reaches the pH meter 16. Once the pH measurement system 20 is filled with hot water, the first on-off valve 12 and the third on-off valve 17 are closed. This allows the hot water to remain inside the pH measurement system 20, and the pH of the hot water is measured by the pH meter 16. The temperature of the hot water may be obtained by measuring the temperature of the piping near the pH meter 16 with the first thermometer 15. The first thermometer 15 may be a thermometer that measures the temperature by contacting the piping, or may be a thermometer that can measure the temperature of the piping without contact. Alternatively, it may be a thermometer that directly measures the temperature of the hot water rather than the temperature of the piping.

[0024] The pH of the hot water obtained by the pH meter 16 and the temperature of the hot water obtained by the first thermometer 15 are sent to the control device 3. In this specification, the pH of the hot water obtained by the pH meter 16 and the temperature of the hot water obtained by the first thermometer 15 may be referred to as the pH and temperature of the hot water obtained at the pH measurement point.

[0025] After measuring the pH and temperature of the hot water, the third on-off valve 17 is opened, and the measured hot water is released from inside the pH measurement system 20 into the hot water pit 18. Next, the interior of the pH measurement system 20 can be cleaned. When cleaning the pH measurement system 20, the first on-off valve 12 is closed, the third on-off valve 17 is open, and the second on-off valve 11 is opened. Condensate whose temperature has been reduced to room temperature flows at high pressure from the piping connected to the condensate pump 9 into the piping branching from the steam separator 6. This allows room-temperature condensate with a relatively low scale content to flow at high speed through the piping inside the pH measurement system 20. The condensate speed can be adjusted by the pressure of the condensate pump 9. The condensate flowing at high speed can physically peel off scale that has adhered to or is growing on the piping during pH measurement. If scaling is a concern, the pH measurement system 20 can optionally be configured to inject a scale cleaning agent from the cleaning agent injection device 13 into the piping. The cleaning agent may be hydrofluoric acid, sodium hydroxide, or the like, but is not limited to a specific cleaning agent.

[0026] After cleaning is complete, and until the next use, valves 11, 12, and 17 can be closed while liquid such as condensate, cleaning solution, or tap water remains in the piping of pH measurement system 20. In this case, it is preferable that the detection unit of the pH meter be configured so that it can be stored in the KCl solution, which is the solution for the reference electrode of the pH meter.

[0027] The second thermometer 4 measures the temperature of the geothermal fluid between the production well 5 and the steam separator 6. More specifically, the temperature of the geothermal fluid can be obtained by measuring the temperature of the piping through which the geothermal fluid flows between the production well 5 and the steam separator 6. The second thermometer 4 may have a similar configuration to the first thermometer 15, and the temperature of the geothermal fluid can also be obtained by other methods as described for the first thermometer 15. The temperature of the hot water obtained by the second thermometer 4 is sent to the control device 3. The temperature obtained by the second thermometer 4 is used to estimate the pH of the geothermal fluid at the location where the second thermometer 4 is installed. For this reason, in this specification, the temperature obtained by the second thermometer 4 may be referred to as the temperature obtained at the pH estimation point.

[0028] Chemical tank 1 and chemical injection pump 2 are connected in a manner that allows a chemical capable of adjusting the pH, typically an alkaline chemical, to be injected into the geothermal fluid flowing through the geothermal power generation system. In the first embodiment shown in Fig. 1, chemical injection pump 2 is connected to piping between production well 5 and steam separator 6. The start and stop of chemical injection, as well as the amount of chemical injection, can be controlled by control device 3.

[0029] Control device 3 is electrically connected to pH meter 16, first thermometer 15, and second thermometer 4, and acquires actual measurement data from these devices. Based on the actual measurement data, control device 3 performs calculations to estimate the pH at the pH estimation point, where second thermometer 4 is installed. Based on the results of these calculations, control device 3 can start and stop operation of chemical injection pump 2 and calculate the injection amount, and issue commands to chemical injection pump 2. Therefore, control device 3 may be a computer incorporating algorithms related to these calculations. Details of the calculations and commands will be described later.

[0030] Next, we will explain a method for controlling silica-based scale deposition using the geothermal power generation system shown in Figure 1. The method for controlling silica-based scale deposition is a method that estimates the pH value at a predetermined location in the geothermal power generation system and controls the injection of chemicals into the geothermal fluid so as to maintain the estimated value at 8 or more and 9 or less.

[0031] More specifically, the method for controlling silica-based scale deposition includes the following steps. (a) measuring the temperature of the geothermal fluid at a pH estimation point in a geothermal power generation system; (b) A process of extracting a portion of the hot water separated in the steam separator, releasing heat, and measuring the pH and temperature. (c) a step of estimating the pH of the geothermal fluid at the pH estimation point based on the measurement results of steps (a) and (b). (d) determining whether or not to inject alkaline agents into the geothermal fluid based on the results of the estimation in step (c);

[0032] 2A and 2B are flowcharts illustrating an example of a method for controlling silica-based scale deposition. The following description will be made with reference to the conceptual diagram and flowchart of a geothermal power generation system according to a first embodiment shown in FIG. 1. Note that the geothermal fluid in step (c) may be either a mixture of steam and hot water or hot water, depending on the location of the pH estimation point; hot water is used as an example in the flowchart. Both types are collectively referred to as geothermal fluid.

[0033] In a geothermal power generation system, the method for controlling silica-based scale precipitation is preferably performed periodically, for example, once a month or once every two months, but the frequency of the method can be increased or decreased as needed.

[0034] In step (a), the temperature of the geothermal fluid at the pH estimation point in the geothermal power generation system is measured. In the first embodiment, the pH estimation point is between the production well 5 and the steam separator 6, and the temperature of the pipe through which the geothermal fluid flows at the pH estimation point can be measured by the second thermometer 4. Step (a) corresponds to S1 in the flowchart in Figure 2A.

[0035] In step (b), a portion of the hot water separated in the steam separator 6 is extracted, heat is released, and the pH and temperature are measured. In step (b), the pH measurement system 20 is operated, and the pH of the hot water is measured with the pH meter 16. Also, the temperature of the pipe through which the hot water flows is measured with the first thermometer 15, and the temperature of the hot water can be obtained. Step (b) corresponds to S2 and S3 in the flowchart of FIG. 2A.

[0036] In step (c), the pH of the geothermal fluid at the pH estimation point is estimated based on the measurement results of steps (a) and (b). Specifically, the measurements obtained in steps (a) and (b) are sent to the control device 3. The pH of the geothermal fluid at the pH estimation point can then be estimated based on an algorithm pre-installed in the control device 3. The algorithm may be capable of calculating the pH of the geothermal fluid at the pH estimation point based on a relationship between temperature and pH. The relationship between temperature and pH can be calculated using commercially available software such as The Geochemist's Workbench (registered trademark). Step (c) corresponds to S4 in the flowchart of FIG. 2A.

[0037] In step (d), the necessity of injecting an alkaline agent into the geothermal fluid is determined based on the results of the estimation in step (c). More specifically, whether or not to inject an alkaline agent into the geothermal fluid is determined based on whether the estimated pH value is below or above the lower limit of a predetermined range of alkaline water in which scale formation is unlikely. The predetermined range of alkaline water in which scale formation is unlikely is not particularly limited, but can be set by a person skilled in the art within the range of pH 8 to 11, and can be, for example, a pH of 8 to 9. The flowchart and the following description will be given using an example in which the predetermined range of alkaline water, i.e., the appropriate estimated pH range, is 8 to 9. Step (d) corresponds to S5 in the flowchart of FIG. 2A. If the estimated pH value is 8 or greater, the geothermal water is determined to have properties that allow for the prevention of scale deposition, and power generation is continued (S6). The control device 3 ends control without sending a command to the chemical injection pump (END).

[0038] On the other hand, in step (d), if the estimated pH value is less than 8, it is determined that an alkaline agent needs to be injected into the geothermal fluid, and the method further includes the following steps (e) to (j). (e) a step of determining the amount of alkaline agent to be injected when it is determined in the step (d) that alkaline agent injection is necessary; (f) injecting an alkaline agent into the geothermal fluid based on the determination result of step (e). (g) after step (f) is completed, a step of measuring the temperature of the geothermal fluid at the pH estimation point; (h) After the step (f) is completed, a step of extracting a portion of the hot water separated in the steam separator, releasing heat, and measuring the pH and temperature. (i) estimating the pH of the geothermal fluid at the pH estimation point based on the measurement results of steps (g) and (h); (j) a step of determining whether to increase, decrease, or maintain the amount of alkaline agent injected into the geothermal fluid based on the estimation results of the step (i).

[0039] In step (e), the amount of alkaline agent to be injected is determined. Examples of alkaline agents that can be used include sodium hydroxide, potassium hydroxide, and sodium bicarbonate, but the alkaline agent is not limited to a specific agent. The amount of alkaline agent to be injected can be calculated based on the estimated pH value obtained in step (c) and the hot water flow rate of the design specifications specific to the geothermal power generation system at the pH estimation point, so that the target pH value of the hot water after injection is 8 or more and 9 or less. The calculation can be performed by an algorithm pre-installed in the control device 3. Step (e) corresponds to S7 in the flowchart.

[0040] In step (f), an alkaline chemical is injected into the geothermal fluid based on the determination result in step (e). The alkaline chemical can be injected by operating chemical injection pump 2 using control device 3. Step (f) corresponds to S8 and S9 in the flowchart.

[0041] In step (g), after the completion of step (f), the temperature at the pH estimation point is obtained to again obtain an estimated pH value. The operation may be the same as in step (a). In addition, in step (h), after the completion of step (f), the pH and temperature at the pH measurement point are obtained to again obtain an estimated pH value. The operation is the same as in step (b), in which a portion of the hot water separated in the steam separator is extracted, heat is released, and the pH and temperature are measured. Step (g) corresponds to S10 in the flowchart, and step (h) corresponds to S11 and S12.

[0042] In step (i), the pH of the geothermal fluid at the pH estimation point is estimated based on the measurement results of steps (g) and (h). Step (i) corresponds to S13 in the flowchart, and allows for the estimation of the pH after the injection of the alkaline agent.

[0043] In step (j), a decision is made to increase, decrease, or maintain the amount of alkaline chemical injected into the geothermal fluid based on the estimation results of step (i). This step divides the estimated pH into three cases: when the estimated pH is below a predetermined alkaline range (i.e., less than 8); when the estimated pH is within a predetermined alkaline range (i.e., between 8 and 9); and when the estimated pH exceeds the predetermined alkaline range (i.e., greater than 9). Control is performed for each case. The flowchart proceeds to step A in the flowchart of FIG. 2B after step S13 in FIG. 2A. Step (j) corresponds to step S14 in the flowchart of FIG. 2B. If the estimated pH is between 8 and 9, the geothermal water is determined to have properties that allow for the suppression of scale deposition, and the process proceeds to step S15 to continue power generation. The control device 3 terminates control (END) without sending any additional commands to the chemical injection pump 2. Therefore, the injection of the amount of chemical determined in step (e) continues, and power generation continues.

[0044] Next, in step (j), if the estimated pH value is below a predetermined preferred range, for example, below 8, it is determined to increase the alkaline agent injection amount, and the method further includes the following steps: (k) determining the amount of alkaline agent to be injected after the increase; (l) injecting an alkaline agent into the geothermal fluid based on the determination result of step (k). (m) after completion of step (l), a step of measuring the temperature of the geothermal fluid at the pH estimation point; (n) After the completion of the step (l), a step of extracting a portion of the hot water separated in the steam separator, releasing heat, and measuring the pH and temperature. (o) a step of estimating the pH of the geothermal fluid at the pH estimation point based on the measurement results of steps (m) and (n). The operation including these steps (k) to (o) can be called the pH increase / estimation operation.

[0045] Steps (k) and (l) are performed when the estimated pH value is less than 8, i.e., when the amount of alkaline agent injected determined in step (e) is not sufficient to raise the pH value at the estimated pH point. If the estimated pH value is less than 8 in S14, proceed to S21.

[0046] In step (k), the injection amount of the alkaline agent after the increase is determined. If the estimated pH value is less than 8, it is estimated that the actual hot water flow rate at the pH estimation point is greater than the hot water flow rate of the design specification at the pH estimation point used in the calculation in step (e). Therefore, the actual hot water flow rate at the pH estimation point is calculated from the injection amount of the alkaline agent determined in step (e) and the estimated pH value obtained in step (j). The calculation can be performed by an algorithm pre-installed in the control device 3. Then, the injection amount of the alkaline agent after the increase can be determined from the actual hot water flow rate at the pH estimation point obtained by calculation. Step (k) corresponds to S21 and S22 in the flowchart.

[0047] In the next step (l), an alkaline agent is injected into the geothermal fluid based on the determination result of the step (k). Step (l) corresponds to S23 in the flowchart.

[0048] In step (m), after completion of step (l), the temperature at the pH estimation point is obtained again to obtain an estimated pH value. The operation may be the same as in step (a). In addition, in step (n), after completion of step (l), the pH and temperature at the pH measurement point are obtained again to obtain an estimated pH value. The operation is the same as in step (b), in which a portion of the hot water separated in the steam separator 6 is extracted, heat is released, and the pH and temperature are measured. Step (m) corresponds to S24 in the flowchart, and step (n) corresponds to S25 and S26.

[0049] In step (o), the pH of the geothermal fluid at the pH estimation point is estimated based on the measurement results of steps (m) and (n). Step (o) corresponds to S27 in the flowchart. These pH increase and estimation operations allow for the estimation of the pH after increasing the amount of alkaline agent injected in order to increase the pH.

[0050] On the other hand, in step (j), if the estimated pH value exceeds a predetermined preferred range, for example, 9, it is decided to reduce the amount of alkaline agent to be injected, and the method further includes the following steps. (p) determining the injection amount after reduction of the alkaline agent (q) injecting an alkaline agent into the geothermal fluid based on the determination result of step (p). (r) after step (q) is completed, a step of measuring the temperature of the geothermal fluid at the pH estimation point. (s) after the completion of the step (q), extracting a portion of the hot water separated in the steam separator, releasing heat, and measuring the pH and temperature (t) a step of estimating the pH of the geothermal fluid at the pH estimation point based on the measurement results of steps (r) and (s). The operation including these steps (p) to (t) can be called the pH lowering and estimation operation.

[0051] Steps (p) to (t) are performed if the estimated pH value in S14 exceeds 9, i.e., if the amount of alkaline agent injected determined in step (e) raises the pH of the hot water beyond the appropriate range. If the estimated pH value in S14 exceeds 9, proceed to S31.

[0052] In step (p), the injection amount of the alkaline agent after reduction is determined. If the estimated pH value exceeds 9, it is estimated that the actual hot water flow rate at the pH estimation point is smaller than the hot water flow rate of the design specification at the pH estimation point used in the calculation in step (e). Therefore, the actual hot water flow rate at the pH estimation point is calculated from the injection amount of the alkaline agent determined in step (e) and the estimated pH value obtained in step (j). The calculation can be performed by an algorithm pre-installed in the control device 3. Then, the injection amount of the alkaline agent after reduction can be determined from the actual hot water flow rate at the pH estimation point obtained by calculation. Step (p) corresponds to S31 and S32 in the flowchart.

[0053] In the subsequent step (q), an alkaline agent is injected into the geothermal fluid based on the determination result of the step (p). The step (q) corresponds to S33 in the flowchart.

[0054] In step (r), after the completion of step (q), the temperature at the pH estimation point is obtained again to obtain an estimated pH value. The operation may be the same as in step (a). In addition, in step (p), after the completion of step (q), the pH and temperature at the pH measurement point are obtained again to obtain an estimated pH value. The operation is the same as in step (b), in which a portion of the hot water separated in the steam separator 6 is extracted, heat is released, and the pH and temperature are measured. Step (r) corresponds to S34 in the flowchart, and step (s) corresponds to S35 and S36.

[0055] In step (t), the pH of the geothermal fluid at the pH estimation point is estimated based on the measurement results of steps (r) and (s). Step (t) corresponds to S37 in the flowchart. These pH reduction and estimation operations allow for the estimation of the pH after reducing the amount of alkaline agent injected in order to lower the pH.

[0056] When the estimated pH value after increasing or decreasing the injection amount of alkaline chemical is obtained in S27 or S37 of the flowchart, the process returns to S14 and the next step is determined according to the judgment formula. That is, if the pH is less than 8, the pH increase / estimation operation (steps (k) to (o), S21 to S27) is performed, and if the pH is greater than 9, the pH decrease / estimation operation (steps (p) to (t), S31 to S37) is performed. If the pH is between 8 and 9, the process proceeds to S15 and the control ends. These operations are preferably repeated until the estimated pH value falls within a predetermined preferred range, for example, between 8 and 9 in FIG. 2B.

[0057] In this way, by controlling the pH of the geothermal fluid flowing through a geothermal power generation system within a specified value range at a specified pH estimation point, it is possible to prevent the geothermal fluid from becoming prone to scale formation and to control the deposition of silica-based scale.

[0058] According to the geothermal power generation system of the first embodiment, by obtaining an estimated pH value between the production well 5 and the brackish water separator 6 and injecting an alkaline agent into the geothermal fluid between the production well 5 and the brackish water separator 6, the pH of the geothermal fluid can be controlled and scale deposition can be suppressed.

[0059] Next, Figure 3 is a conceptual diagram of a geothermal power generation system according to a second embodiment of the present invention. The geothermal power generation system shown in Figure 3 differs from the first embodiment in that a second thermometer 34 is provided at the hot water outlet of the steam separator 36, and that a chemical injection pump 32 is configured to inject a chemical into the hot water section within the steam separator 36. The other configurations are the same as those of the first embodiment. Furthermore, each step of the method for controlling silica-based scale deposition is also the same as those of the first embodiment. The hot water section within the steam separator 36 refers to the section through which hot water obtained by separating steam from the geothermal fluid flowing into the steam separator 36 flows.

[0060] According to the geothermal power generation system of the second embodiment of the present invention, by injecting alkaline chemicals into the hot water section in the steam separator 36, there is no risk of lowering the temperature of the geothermal steam used in the turbine, and heat loss can be prevented compared to the first embodiment.

[0061] Next, Fig. 4 is a conceptual diagram of a geothermal power generation system according to a third embodiment of the present invention. The geothermal power generation system shown in Fig. 4 differs from the first embodiment in that a second thermometer 64 is provided at the entrance of the reinjection well 79, and no hot water pit is provided. The rest of the configuration is the same as in the first embodiment. Furthermore, each step of the method for controlling silica-based scale deposition is also the same as in the first embodiment.

[0062] In the geothermal power generation system according to the third embodiment of the present invention, the entrance to the reinjection well 79 is used as the pH estimation point, and the temperature of the hot water entering the reinjection well 79 is used as the parameter for determining the amount of alkaline chemical to be injected. This makes it possible to prevent scale formation in the piping leading up to the reinjection well 79. This provides the advantage of eliminating the need for the scale precipitation process in a hot water pit, which was previously required, and eliminating the need to install a hot water pit. [Explanation of symbols]

[0063] 1, 31, 61 Chemical tank, 2, 32, 62 Chemical injection pump 3, 33, 63 Control device, 4, 34, 64 Second thermometer, 5, 35, 65 Production well 6, 36, 66 Steam separator, 7, 37, 67 Turbine, 8, 38, 68 Condenser 9, 39, 69 Condensate pump, 10, 40, 70 Cooling tower, 11, 41, 71 second opening and closing valve, 12, 42, 72 first opening and closing valve, 13, 43, 73 Detergent injection device, 14, 44, 74 Spiral tube 15, 45, 75 First thermometer, 16, 46, 76 pH meter 17, 47, 77 Third opening and closing valve, 18, 48 Hot water pit 19, 49, 79 Reinjection wells

Claims

1. Production wells and a steam separator that separates the geothermal fluid obtained from the production well into steam and hot water; a turbine rotated by the steam separated in the steam separator; a reinjection well for returning the geothermal fluid that has passed through the steam separator and / or turbine; a pH measurement system that extracts a portion of the hot water separated by the steam separator and measures the pH of the hot water, and a first thermometer that measures the temperature of the hot water; an injection device for injecting an alkaline agent into the geothermal fluid; a second thermometer for measuring the temperature of the geothermal fluid at a pH estimation point selected from the alkaline agent injection point, the outlet of the steam separator, or the inlet of the reinjection well; a control device that controls the injection of the alkaline chemical by the injection device based on the measurement results of the pH measurement system, the first thermometer, and the second thermometer; A geothermal power generation system comprising: A geothermal power generation system, wherein the pH measurement system includes a spiral tube and a pH meter, and is connected to a condensate pump downstream of the turbine via an on-off valve.

2. The system of claim 1 , wherein the pH measurement system further comprises a cleaning agent injector.

3. The system of claim 1 , wherein the injection device is connected to piping between the production well and the steam separator.

4. The system of claim 3 , wherein the second thermometer is provided in a pipe between the production well and the steam separator.

5. The system of claim 3 , wherein the second thermometer is provided at the entrance of the reinjection well.

6. The system of claim 1 , wherein the injection device is connected to a hot water section of the steam separator.

7. (a) measuring the temperature of a geothermal fluid at a pH estimation point in a geothermal power generation system; (b) extracting a portion of the hot water separated in the steam separator, releasing heat, and measuring the pH and temperature; (c) estimating the pH of the geothermal fluid at the pH estimation point based on the measurement results of steps (a) and (b); (d) determining whether or not to inject alkaline agents into the geothermal fluid based on the results of the estimation in step (c); A method for controlling silica-based scale deposition, comprising:

8. 8. The method of claim 7, wherein in step (d), it is determined that alkaline agent injection into the geothermal fluid is necessary if the pH is below a predetermined range in the alkaline region.

9. (e) determining the amount of alkaline chemical to be injected when it is determined in step (d) that alkaline chemical injection is necessary; (f) injecting an alkaline agent into the geothermal fluid based on the determination of step (e); (g) after step (f) is completed, measuring the temperature of the geothermal fluid at the pH estimation point; (h) after the completion of the step (f), extracting a portion of the hot water separated in the steam separator, releasing heat, and measuring the pH and temperature; (i) estimating the pH of the geothermal fluid at the pH estimation point based on the measurement results of steps (g) and (h); (j) determining whether to increase, decrease, or maintain the amount of alkaline agent injected into the geothermal fluid based on the estimation results of step (i); The method of claim 7 further comprising:

10. 10. The method of claim 9, wherein in step (j), it is determined to increase the alkaline chemical injection amount when the pH is below a predetermined range in the alkaline region, it is determined to decrease the alkaline chemical injection amount when the pH is above the predetermined range in the alkaline region, and it is determined to maintain the alkaline chemical injection amount when the pH is within the predetermined range in the alkaline region.

11. In the step (j), when it is determined that the amount of alkaline chemical to be injected is increased, (k) determining the increased dose of alkaline agent; (l) injecting an alkaline agent into the geothermal fluid based on the determination result of step (k); (m) after completion of step (l), measuring the temperature of the geothermal fluid at the pH estimation point; (n) after completion of the step (l), extracting a portion of the hot water separated in the steam separator, releasing heat, and measuring the pH and temperature; (o) estimating the pH of the geothermal fluid at the pH estimation point based on the measurement results of steps (m) and (n); pH increase and estimation operations, including In the step (j), when it is determined that the amount of alkaline chemical to be injected is reduced, (p) determining the post-reduction dose of alkaline agent; (q) injecting an alkaline agent into the geothermal fluid based on the determination result of step (p); (r) after completion of step (q), measuring the temperature of the geothermal fluid at the pH estimation point; (s) after the completion of the step (q), extracting a portion of the hot water separated in the steam separator, releasing heat, and measuring the pH and temperature; (t) estimating the pH of the geothermal fluid at the pH estimation point based on the measurement results of steps (r) and (s); The method according to claim 10, wherein a pH lowering and estimation operation is performed, comprising:

12. 12. The method of claim 11, further comprising a step of determining whether to increase, decrease, or maintain the amount of alkaline agent injected into the geothermal fluid based on the estimation result of step (o) or step (t), and repeating the pH increase / estimation operation or the pH decrease / estimation operation until the estimated pH value reaches a predetermined range in a predetermined alkaline region.

Citation Information

Patent Citations

  • Weakly-alkaline pressure-reducing reinforced scale precipitation method

    CN113620478A

  • Method for suppressing scale and power generation system

    JP2011196197A

  • Scale suppression method and geothermal power generation apparatus

    JP2013043145A

  • Geothermal power generation system and geothermal power generation system scale prevention method

    JP2015090147A

  • Scale inhibition method and geothermal power generating device

    WO2012144277A1