Urea treatment apparatus and urea treatment method
The urea treatment device optimizes bromide salt and hypochlorite addition based on temperature differences to address short-path issues, ensuring effective urea removal and reducing chemical consumption.
Patent Information
- Application Number
- JP2024043835
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-19
- Publication Date
- 2025-10-02
AI Technical Summary
Existing urea removal processes in water treatment systems require prolonged retention times due to temperature differences causing short-path phenomena, leading to insufficient urea removal performance.
A urea treatment device and method that adjusts the amounts of bromide salt and hypochlorite based on temperature differences between incoming and outgoing water using temperature information acquisition units, a comparison unit, and an addition amount adjustment unit to optimize chemical addition.
Ensures sufficient urea removal performance by stabilizing chemical addition according to temperature variations, reducing chemical usage, and maintaining water quality.
Smart Images

Figure 2025144179000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a urea treatment device and a urea treatment method. [Background technology]
[0002] In a water treatment system, a water treatment device is disclosed in which hypochlorite and bromide salt are added to the water to be treated in order to remove urea contained in the water (see, for example, Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Publication No. 2023-125145 Summary of the Invention [Problem to be solved by the invention]
[0004] Because the reaction to remove urea takes time, the water to be treated must be retained in the tank for a long time. If there is a difference in the temperature of the water in the tank and the water flowing into the tank, the flow state of the water to be treated in the tank may change, resulting in a short-path phenomenon. A short-path phenomenon occurs when the water to be treated that flows into the tank moves (passes) along the top or bottom of the water stored in the tank before being discharged. When this short-path phenomenon occurs, the water to be treated does not remain in the tank long enough for the reaction to occur. This can result in insufficient urea removal performance.
[0005] An object of the present invention is to provide a urea treatment apparatus and a urea treatment method that can obtain sufficient urea removal performance. [Means for solving the problem]
[0006] The urea treatment device of the present invention comprises: a first temperature information acquiring unit that acquires first temperature information indicating the temperature of the water to be treated that is supplied to a reaction tank in which urea in the water to be treated is treated; a second temperature information acquisition unit that acquires second temperature information indicating the temperature of the water to be treated in the reaction tank or discharged from the reaction tank; The system has an addition amount adjustment unit that compares the temperature indicated by the first temperature information with the temperature indicated by the second temperature information, and adjusts at least one of the amount of bromide salt added to the water to be treated and the amount of hypochlorite added to the water to be treated based on the result of the comparison.
[0007] Further, the urea treatment method of the present invention comprises the steps of: A process of acquiring first temperature information indicating the temperature of the water to be treated that is supplied to a reaction tank in which urea in the water to be treated is treated; A process of acquiring second temperature information indicating the temperature of the water to be treated in the reaction tank or discharged from the reaction tank; a process of comparing a temperature indicated by the first temperature information with a temperature indicated by the second temperature information; Based on the result of the comparison, a treatment is carried out in which at least one of the amount of bromide salt and the amount of hypochlorite added to the water to be treated is adjusted. [Effects of the Invention]
[0008] In the present invention, sufficient urea removal performance can be obtained. [Brief explanation of the drawings]
[0009] [Figure 1] 1 is a diagram showing an embodiment of a urea treatment device according to the present invention; [Figure 2] FIG. 2 is a diagram showing an example of a water treatment system to which the urea treatment device shown in FIG. 1 is applied. [Figure 3] 2 is a graph showing the residence time of the water to be treated in each case where the temperature of the water to be treated at the inlet of the reaction tank shown in FIG. 1 is higher than the temperature of the water to be treated inside the reaction tank or at the outlet. [Figure 4] FIG. 1 is a diagram showing the conditions used in the test. [Figure 5] FIG. 10 is a diagram showing the residual urea concentration in the treated material when the chemical is added in the amount set under each of the above-mentioned conditions 1 to 3 in each case of the magnitude relationship between temperature T1 and temperature T2. [Figure 6] 2 is a flowchart illustrating an example of a control method in the control device shown in FIG. DETAILED DESCRIPTION OF THE INVENTION
[0010] Hereinafter, an embodiment of the present invention will be described with reference to the drawings.
[0011] Fig. 1 is a diagram showing one embodiment of a urea treatment apparatus of the present invention. As shown in Fig. 1, a urea treatment apparatus 100 according to this embodiment includes temperature information acquisition units 120, 130, a comparison unit 140, an addition amount adjustment unit 150, a bromide salt addition unit 160, a hypochlorite addition unit 170, and a reaction tank 180. The temperature information acquisition units 120, 130, the comparison unit 140, and the addition amount adjustment unit 150 form a control device 110. Fig. 1 shows main elements of this embodiment among the components included in the urea treatment apparatus 100 of the present invention.
[0012] The reaction tank 180 is a water tank in which water to be treated containing urea is stored (retained). The urea in the water to be treated stored (retained) in the reaction tank 180 is treated. Water containing urea can be used as the water to be treated, and raw water for producing ultrapure water, such as industrial water, city water, or well water, can be used as appropriate. Bromide salt and hypochlorite are added to the water to be treated that is supplied to the reaction tank 180, and the water to be treated reacts with the bromide salt and hypochlorite to decompose the urea, resulting in treated water being discharged from the reaction tank 180.
[0013] The bromide salt adding unit 160 adds bromide salt to the water to be treated. For example, the bromide salt adding unit 160 adds bromide salt to the water to be treated stored in the reaction tank 180 via a valve 161. Examples of the bromide salt added by the bromide salt adding unit 160 include sodium bromide (NaBr) and potassium bromide (KBr).
[0014] The hypochlorite addition unit 170 adds hypochlorite to the water to be treated. For example, the hypochlorite addition unit 170 adds hypochlorite to the water to be treated stored in the reaction tank 180 via a valve 171. Examples of hypochlorite added by the hypochlorite addition unit 170 include sodium hypochlorite (NaClO), sodium perchlorate (NaClO), and calcium hypochlorite (Ca(ClO)).
[0015] The temperature information acquisition unit 120 is a first temperature information acquisition unit that acquires first temperature information indicating the temperature of the water to be treated supplied to the reaction tank 180. The temperature information acquisition unit 120 may acquire the first temperature information from a thermometer that is provided at the inlet of the reaction tank 180 and that measures the temperature of the water to be treated. When multiple different types of water to be treated flow into the reaction tank 180, the temperature information acquisition unit 120 may acquire the first temperature information when the type of water to be treated flowing into the reaction tank 180 is switched. Depending on the type of water to be treated flowing into the reaction tank 180, the water temperatures may differ from one another. Therefore, if the temperature information acquisition unit 120 acquires the first temperature information when the type of water to be treated flowing into the reaction tank 180 is switched, treatment appropriate for the water to be treated can be performed. Alternatively, the temperature information acquiring unit 120 may acquire temperature information by calculating the temperature based on the valve opening of a valve provided in a supply pipe that supplies the water to be treated to the reaction tank 180 and the flow rate of the water in the supply pipe. For example, when water to be treated flows into the reaction tank 180 from series A, which has a high temperature, and series B, which has a low temperature, the temperature information acquiring unit 120 may calculate the estimated water temperature of the water to be treated flowing into the reaction tank 180 based on the flow rate of the water to be treated flowing through series A and the flow rate of the water to be treated flowing through series B, or based on the opening of a valve provided in the supply pipe of series A and the opening of a valve provided in the supply pipe of series B. In this case, a thermometer is provided in each supply pipe of each series, and the thermometer measures the temperature of each series. The temperature information acquiring unit 120 acquires temperature information indicating the measured temperature. The temperature information acquiring unit 120 notifies the comparing unit 140 of the acquired first temperature information.
[0016] The temperature information acquisition unit 130 is a second temperature information acquisition unit that acquires second temperature information indicating the temperature of the water to be treated in the reaction tank 180 or the treated water discharged from the reaction tank 180. The temperature information acquisition unit 130 may acquire the second temperature information from a thermometer that is provided in the reaction tank 180 or at the outlet of the reaction tank 180 and that measures the temperature of the water to be treated or the treated water. In this case, the temperature information acquisition unit 130 may acquire multiple pieces of temperature information from multiple thermometers that are provided in the reaction tank 180 or at the outlet of the reaction tank 180 and that measure the temperature of the water to be treated or the treated water, and may use the average value of the multiple pieces of acquired temperature information as the second temperature information. Alternatively, the temperature information acquisition unit 130 may acquire the second temperature information from temperature information measured by a thermograph that is provided in the reaction tank 180 and that can measure the temperature distribution of the water to be treated in the reaction tank 180. The temperature information acquiring unit 130 may also estimate the temperature of the water to be treated in the reaction tank 180 or the temperature of the treated water at the outlet of the reaction tank 180 based on environmental information indicating the external environment (around the reaction tank 180), and acquire second temperature information from the estimated temperature. This environmental information includes information indicating the weather and outside air temperature in the reaction tank 180, or information indicating the time period or time (season, etc.) at which the temperature information acquiring unit 130 acquires the second temperature information. For example, the relationship between the outside air temperature and the temperature inside the reaction tank 180 may be associated in advance, and the temperature information acquiring unit 130 may acquire the outside air temperature and acquire temperature information indicating the temperature associated with the acquired outside air temperature as the second temperature information. For example, the relationship between the time period or season and the temperature inside the reaction tank 180 may be associated in advance, and the temperature information acquiring unit 130 may acquire information indicating the time period or season and acquire temperature information indicating the temperature associated with the acquired information indicating the time period or season as the second temperature information. In this way, by the temperature information acquiring unit 130 acquiring the second temperature information based on the environmental information, the temperature information acquiring unit 130 can acquire the second temperature information even when it is difficult to measure the temperature of the water to be treated in the reaction tank 180 or the temperature of the water to be treated at the outlet of the reaction tank 180 due to the shape or arrangement of the reaction tank 180. It is preferable that the temperature information acquiring unit 130 acquires the second temperature information at a timing before the target water to be treated is supplied to the reaction tank 180.When a plurality of different types of water to be treated flows into the reaction tank 180, the temperature information acquisition unit 130 may acquire the second temperature information at the timing when the type of water to be treated flowing into the reaction tank 180 is switched. The reason for this is the same as that described above for the temperature information acquisition unit 120. The temperature information acquisition unit 130 notifies the comparison unit 140 of the acquired second temperature information.
[0017] It is also possible for only one of the temperature information acquisition unit 120 and the temperature information acquisition unit 130 to be provided. That is, the temperature information acquisition unit 120 may also serve as the above-described temperature information acquisition unit 130, and the temperature information acquisition unit 130 may not be provided. Alternatively, the temperature information acquisition unit 130 may also serve as the above-described temperature information acquisition unit 120, and the temperature information acquisition unit 120 may not be provided. Alternatively, a configuration may be adopted in which each of the temperature information acquisition units 120 and 130 can also perform part of the function of the other.
[0018] The comparison unit 140 compares the temperature indicated by the first temperature information notified by the temperature information acquisition unit 120 with the temperature indicated by the second temperature information notified by the temperature information acquisition unit 130. For example, the comparison unit 140 may calculate the difference between the temperature indicated by the first temperature information notified by the temperature information acquisition unit 120 and the temperature indicated by the second temperature information notified by the temperature information acquisition unit 130. Alternatively, the comparison unit 140 may calculate the ratio of the temperature indicated by the second temperature information to the temperature indicated by the first temperature information. In the following description, an example will be given of a process in which the comparison unit 140 calculates the difference between the temperatures indicated by the first temperature information and the second temperature information. The comparison unit 140 compares the calculated difference with a preset threshold value. This threshold value may be "0" or a value preset based on conditions measured during actual operation. The comparison unit 140 notifies the addition amount adjustment unit 150 of the comparison result.
[0019] The addition amount adjustment unit 150 adjusts (controls) at least one of the amount of bromide salt added by the bromide salt addition unit 160 and the amount of hypochlorite added by the hypochlorite addition unit 170 based on the comparison result notified by the comparison unit 140. Specifically, when the difference in the comparison result notified by the comparison unit 140 exceeds a threshold, the addition amount adjustment unit 150 increases or decreases at least one of the amount of bromide salt added by the bromide salt addition unit 160 and the amount of hypochlorite added by the hypochlorite addition unit 170 from the current amount. When adjusting the amount of bromide salt added by the bromide salt addition unit 160, the addition amount adjustment unit 150 adjusts the opening / closing or opening degree of the valve 161. When adjusting the amount of hypochlorite added by the hypochlorite addition unit 170, the addition amount adjustment unit 150 adjusts the opening / closing or opening degree of the valve 171. More specifically, when the difference exceeds a threshold value as a result of the comparison notified by the comparison unit 140, the addition amount adjustment unit 150 estimates the residence time of the water to be treated in the reaction tank 180, and if the estimated residence time is shorter than a predetermined specified time, it determines that the above-mentioned short-pass phenomenon has occurred. In this case, the addition amount adjustment unit 150 increases at least one of the amount of bromide salt added by the bromide salt addition unit 160 and the amount of hypochlorite added by the hypochlorite addition unit 170 from the current addition amount. On the other hand, when the measured residence time exceeds a predetermined specified time, the addition amount adjustment unit 150 decreases at least one of the amount of bromide salt added by the bromide salt addition unit 160 and the amount of hypochlorite added by the hypochlorite addition unit 170 from the current addition amount. This is because, depending on the shape of the reaction tank 180 (rectangular tank, vertical tortuous flow tank, horizontal tortuous flow tank, etc.), there may be a temperature difference between the temperature indicated by the first temperature information notified from the temperature information acquisition unit 120 and the temperature indicated by the second temperature information notified from the temperature information acquisition unit 130, which may create an area where the liquid is likely to stagnate, resulting in a longer residence time. The amount by which the addition amount adjustment unit 150 increases or decreases the addition amount is set in advance based on, for example, the shape and structure of the reaction tank 180, the timing of adjustment, the magnitude of the temperature difference, etc.This setting may be based on the relationship between the residence time and the temperature difference (the difference between the temperature indicated by the first temperature information and the temperature indicated by the second temperature information) obtained by analyzing the flow state of the water to be treated in the reaction tank 180, or by measuring the response at the outlet of the reaction tank 180 by flowing a tracer substance in the reaction tank 180 that is actually used, or by temporarily varying the amounts of bromide salt and hypochlorite added. By setting the threshold value used by the comparison unit 140 to "0," the addition amount adjustment unit 150 adjusts at least one of the amount of bromide salt added by the bromide salt addition unit 160 and the amount of hypochlorite added by the hypochlorite addition unit 170 based on the difference between the temperature indicated by the first temperature information notified by the temperature information acquisition unit 120 and the temperature indicated by the second temperature information notified by the temperature information acquisition unit 130. Specifically, when the temperature indicated by the first temperature information notified from the temperature information acquisition unit 120 is not equivalent to the temperature indicated by the second temperature information notified from the temperature information acquisition unit 130, the addition amount adjustment unit 150 adjusts at least one of the amount of bromide salt added by the bromide salt addition unit 160 and the amount of hypochlorite added by the hypochlorite addition unit 170.
[0020] If the reaction tank 180 is provided with a heat exchanger for adjusting the temperature of the water to be treated in the reaction tank 180, the set temperature of the heat exchanger may be set to the temperature of the water to be treated in the reaction tank 180. In this case, the set temperature of the heat exchanger may be adjusted (controlled) so that the difference between the temperature of the water to be treated at the inlet of the reaction tank 180 and the temperature of the water to be treated in the reaction tank 180 is small (for example, so that it is less than a preset threshold value). If the heat exchanger used in this way is provided outside the reaction tank 180, the water to be treated may be sucked out of the reaction tank 180, passed through the heat exchanger, and then returned to the reaction tank 180. Alternatively, a heat exchanger may be installed inside the reaction tank 180.
[0021] FIG. 2 is a diagram showing an example of a water treatment system to which the urea treatment device 100 shown in FIG. 1 is applied. The water treatment system shown in FIG. 2 is composed of a pretreatment system, a primary pure water system, and a subsystem (secondary pure water system). Treated water treated in the subsystem (secondary pure water system) is supplied to a point of use. In the example shown in FIG. 2, the urea treatment device 100 is provided in the pretreatment system. The urea treatment device 100 is disposed between a pump that pumps raw water (i.e., water to be treated) from a raw water tank in the pretreatment system and a coagulation / filtration device that removes fine particles from the supplied water to be treated. In the example shown in FIG. 2, raw water is supplied to the pretreatment system. Specifically, the raw water is treated in the urea treatment device 100 and then the coagulation / filtration device. The treated water treated in the pretreatment system is supplied to the primary pure water system as the treated water. Specifically, the treated water treated in the pretreatment system is stored in a filtration tank of the primary pure water system, treated in an activated carbon device and an ion exchange device in that order, and then stored in a desalination tank. The treated water stored in the desalination tank is treated in a reverse osmosis membrane (RO membrane) device and stored in the RO tank. The treated water stored in the RO tank is treated in an ion exchange device and then a membrane degassing device. The treated water treated in the primary pure water system is supplied to the subsystem as water to be treated. Specifically, the treated water treated in the primary pure water system is stored in the primary pure water tank of the subsystem and treated in a heat exchanger, ultraviolet (UV) oxidation device, ion exchange device (CP), membrane degassing device, and ultrafiltration membrane (UF membrane) device in that order. The temperature information acquisition unit 120 shown in FIG. 1 may also acquire temperature information indicating the temperature measured by a thermometer installed upstream of the raw water tank shown in FIG. 2.
[0022] Figure 3 is a graph showing the retention time of the water to be treated in each case where the temperature of the water to be treated at the inlet of the reaction tank 180 shown in Figure 1 is higher than the temperature of the water to be treated inside the reaction tank 180 or at the outlet. The vertical axis of the graph shown in Figure 3 is the ratio of the measured retention time to a predetermined ideal retention time. The data shown in Figure 3 is the result of a test conducted under the following conditions. The reactor 180 was rectangular in shape, and a flat-to-circuit type model was used. The temperature difference between the water temperature of the water to be treated supplied to the reaction tank 180 and the water temperature inside the reaction tank 180 was set to 1 degree. Methylene blue was added to the reaction tank 180, and the ratio of the retention time to the ideal retention time (retention time ratio) was measured. The residence time under ideal conditions was calculated by performing flow analysis. For the flow analysis, ANSYS Fluent R18.1 (manufactured by ANSYS) and model creation software Gambit 2.4.6 (manufactured by ANSYS) were used.
[0023] When temperature T2 (the water temperature in the reaction tank 180; the same applies in the following explanation) is lower than temperature T1 (the water temperature of the water to be treated supplied to the reaction tank 180; the same applies in the following explanation) (Case 1), a short pass is likely to occur in which the water to be treated passes through the upper part of the reaction tank 180. As a result, the retention time ratio is low, as shown in Figure 3. Also, when temperature T2 is higher than temperature T1 (Case 2), a short pass is likely to occur in which the water to be treated passes through the lower part of the reaction tank 180. As a result, the retention time ratio is low, as shown in Figure 3. When temperature T1 and temperature T2 are equal (Case 3), the water to be treated tends to flow evenly within the reaction tank 180, resulting in a higher retention time ratio compared to Cases 1 and 2, and a better reaction being achieved. As such, it was confirmed that when there is a temperature difference between temperature T1 and temperature T2, the effect of shortening the retention time relative to the ideal state is significant.
[0024] If the residence time of the water to be treated in the reaction tank 180 is short, the reaction time with the added chemicals will be short, resulting in a high residual urea concentration in the water to be treated supplied from the reaction tank 180. If water to be treated with a high residual urea concentration is supplied to a subsequent stage, it will be impossible to supply water that meets the required conditions. Therefore, by increasing the amount of chemicals added to the water to be treated in the reaction tank 180, the residual urea concentration can be reduced in a short reaction time, making it possible to supply water that meets the required conditions.
[0025] Note that a decrease in the temperature of the water to be treated supplied to the reaction tank 180 reduces the reactivity of the added chemicals. To prevent a decrease in the temperature of the water to be treated, the water to be treated may be heated using the heat exchanger described above. The addition amount adjustment unit 150 may calculate a base amount of chemical to be added (a reference amount to be added before adjustment) based on the temperature of the water to be treated supplied to the reaction tank 180. The addition amount adjustment unit 150 may also measure values of the urea concentration, pH, water temperature, residual chlorine concentration, etc. of the water to be treated, and acquire relationship data showing the relationship between reaction time and the concentration of the treated water based on these values in a reference state such as an ideal state of a completely mixed system (for example, a state in which the temperature of the water to be treated supplied to the reaction tank 180 is within a predetermined temperature range). The addition amount adjustment unit 150 may then calculate the base amount of chemical to be added based on the acquired relationship data. Furthermore, if the water to be treated contains ammonia, hypochlorite is consumed. As a result, the amount of hypochlorite required to be added to the water to be treated increases. Therefore, the addition amount adjustment unit 150 may calculate the base addition amount taking into account the presence of ammonia in the water to be treated. The addition amount adjustment unit 150 may also correct the calculated base addition amount by taking into account fluctuations in residence time due to the temperature difference between temperatures T1 and T2. It is known that the relationship between the urea residual rate y in the water to be treated and the reaction time x proceeds as a first-order reaction of y = exp(-kx). Therefore, by calculating the reaction rate constant k for each chemical addition condition, it is possible to estimate the chemical addition conditions required to achieve the required removal rate for the residence time shortened by the short path. The addition amount adjustment unit 150 may also estimate the extent to which the residence time has been shortened by comparing the actual urea removal rate with the urea removal rate under ideal conditions. The increase or decrease in the chemical addition amount may be estimated based on the estimated change in residence time.
[0026] The addition amount adjusting unit 150 may set a plurality of values of the chemical addition amount according to the temperature difference between the temperature T1 and the temperature T2, and may increase or decrease the chemical addition amount in stages. Specifically, for example, the addition amount adjusting unit 150 may increase or decrease the chemical addition amount in stages as the temperature difference between the temperature T1 and the temperature T2 increases.
[0027] Below, we describe the results of a test conducted by passing water to be treated with a urea concentration of 25 ppb through a tank equivalent to the reaction tank 180 shown in Figure 1 and adding a fixed amount of sodium bromide and varying amounts of sodium hypochlorite to the water. Figure 4 shows the conditions used in the test. Three conditions were set for this test. Condition 1 was a condition in which the amount of sodium bromide added was 3 mg / L and the amount of sodium hypochlorite added was 2.8 mg / L. Condition 2 was a condition in which the amount of sodium bromide added was 3 mg / L and the amount of sodium hypochlorite added was 3.4 mg / L. Condition 3 was a condition in which the amount of sodium bromide added was 3 mg / L and the amount of sodium hypochlorite added was 6.4 mg / L. When sodium bromide and sodium hypochlorite were added in the amounts specified in Condition 1, the residual chlorine level in the water to be treated was 0.4 mg / L. When sodium bromide and sodium hypochlorite were added in the amounts specified in Condition 2, the amount of residual chlorine in the water to be treated reached 1.0 mg / L. When sodium bromide and sodium hypochlorite were added in the amounts specified in Condition 3, the amount of residual chlorine in the water to be treated reached 4.0 mg / L.
[0028] FIG. 5 shows the residual urea concentration in the water to be treated when chemicals are added in amounts set under the above-mentioned conditions 1 to 3 for each case of the magnitude relationship between temperatures T1 and T2. As shown in FIG. 5, in all three cases of the magnitude relationship between temperatures T1 and T2, the residual urea concentration in the water to be treated is lower under condition 2, in which the amount of sodium hypochlorite added is increased compared to condition 1. The residual urea concentration in the water to be treated is even lower under condition 3, in which the amount of sodium hypochlorite added is even greater than under condition 2. In other words, increasing the amount of chemicals added to increase residual chlorine further improves treatment performance. On the other hand, if the target urea concentration in the treated water is 10 ppb, and temperatures T1 and T2 are equal when operating under condition 3, in which the amount of sodium hypochlorite added is the highest, the residual urea concentration will be lower than necessary, resulting in excessive chemical addition. Therefore, by adjusting the amount of chemicals added depending on the temperature difference between temperatures T1 and T2, it is possible to stabilize the quality of the treated water while reducing the amount of chemicals used.
[0029] The reaction rate and the urea removal rate (or the residual urea concentration) may be measured in advance for each of a plurality of conditions, and the conditions (amount of chemical to be added) may be determined based on the decrease in residence time due to the temperature difference between the temperature T1 and the temperature T2 and the urea removal rate (or the residual urea concentration).
[0030] The following describes a control method in the control device 110 shown in Fig. 1. Fig. 6 is a flowchart for explaining an example of a control method in the control device 110 shown in Fig. 1.
[0031] First, the temperature information acquisition unit 120 acquires first temperature information indicating the temperature of the water to be treated at the inlet of the reaction tank 180 (step S1). Then, the temperature information acquisition unit 130 acquires second temperature information indicating the temperature of the water to be treated in the reaction tank 180 or the treated water at the outlet of the reaction tank 180 (step S2). Either the process of step S1 or the process of step S2 can be performed first.
[0032] Next, the comparison unit 140 calculates the difference between the temperature indicated by the first temperature information and the temperature indicated by the second temperature information (step S3). The comparison unit 140 compares the calculated difference with a threshold value (step S4). If the calculated difference exceeds the threshold value, the addition amount adjustment unit 150 changes at least one of the amount of bromide salt added by the bromide salt addition unit 160 and the amount of hypochlorite added by the hypochlorite addition unit 170 from the current addition amount (step S5).
[0033] As described above, when there is a temperature difference between temperatures T1 and T2, short-path water is likely to occur in the water being treated as it passes through the reaction tank 180. In such cases, stable urea removal performance can be achieved by adding a large amount of chemical to the water being treated. By monitoring the temperature difference between temperatures T1 and T2 and adjusting the amount of chemical added according to the temperature difference, it is possible to achieve good urea removal performance. This allows for sufficient urea removal performance. Furthermore, the temperature difference between temperatures T1 and T2 may cause the residence time of the water being treated in the reaction tank 180 to be longer than expected. In such cases, the amount of chemical added may be excessive. The present invention reduces chemical costs by appropriately adjusting the amount of chemical injection according to the residence time. Furthermore, when the difference between temperatures T1 and T2 exceeds a threshold value, the amount of chemical added is adjusted. This allows for the amount of chemical added to be increased without increasing the amount of chemical added, even if there is a temperature difference between temperatures T1 and T2, if the temperature difference is small and does not require adjustment of the amount of chemical added. This prevents the unnecessary addition of excessive chemicals.
[0034] Although the above description has been given by allocating each function (process) to each component, this allocation is not limited to the above. Furthermore, the configuration of the components is also not limited to the above-described form, which is merely an example.
[0035] The processing performed by the control device 110 described above may be performed by a logic circuit individually designed for each purpose. Alternatively, a computer program (hereinafter referred to as the program), which describes the processing procedures, may be recorded on a recording medium readable by the control device 110, and the program recorded on the recording medium may be read and executed by the control device 110. Examples of recording media readable by the control device 110 include removable recording media such as floppy disks, magneto-optical disks, digital versatile discs (DVDs), compact discs (CDs), Blu-ray discs, universal serial bus (USB) memories, and SD cards, as well as memories such as read-only memory (ROM) and random access memory (RAM) built into the control device 110, and hard disc drives (HDDs). The program recorded on the recording medium is read by a CPU (not shown) provided in the control device 110, and the same processing as described above is performed under the control of the CPU. Here, the CPU operates as a computer that executes the program read from the recording medium on which the program is recorded. [Explanation of symbols]
[0036] 100 Urea treatment equipment 110 Control device 120,130 Temperature information acquisition section 140 Comparison Section 150 Addition amount adjustment section 160 Bromide salt addition part 161,171 valves 170 Hypochlorite addition section 180 Reactor
Claims
1. a first temperature information acquiring unit that acquires first temperature information indicating the temperature of the water to be treated that is supplied to a reaction tank in which urea in the water to be treated is treated; a second temperature information acquisition unit that acquires second temperature information indicating the temperature of the water to be treated in the reaction tank or discharged from the reaction tank; a urea treatment device having an addition amount adjustment unit that compares the temperature indicated by the first temperature information with the temperature indicated by the second temperature information, and adjusts at least one of the amount of bromide salt added to the water to be treated and the amount of hypochlorite added to the water to be treated based on the result of the comparison.
2. The urea treatment device according to claim 1, a comparison unit that compares a difference between a temperature indicated by the first temperature information and a temperature indicated by the second temperature information with a threshold value, The addition amount adjusting unit adjusts at least one of the addition amount of the bromide salt and the addition amount of the hypochlorite based on a result of the comparison made by the comparing unit.
3. The urea treatment device according to claim 1 or 2, The addition amount adjustment unit measures at least one of the values of the urea concentration, pH, water temperature, and residual chlorine concentration of the water to be treated under a reference condition, obtains relationship data showing the relationship between reaction time and the concentration of the treated water based on the measured values, and calculates the reference addition amount before adjustment based on the obtained relationship data.
4. The urea treatment device according to claim 1 or 2, The addition amount adjusting unit detects whether the water to be treated contains ammonia, and calculates a reference addition amount before the adjustment based on the detection result.
5. The urea treatment device according to claim 1 or 2, The addition amount adjustment unit increases at least one of the addition amount of the bromide salt and the addition amount of the hypochlorite from the current addition amount when the retention time of the water to be treated in the reaction tank is shorter than a predetermined specified time, and decreases at least one of the addition amount of the bromide salt and the addition amount of the hypochlorite from the current addition amount when the retention time exceeds the specified time.
6. The urea treatment device according to claim 1 or 2, The second temperature information acquisition unit estimates the temperature of the water to be treated in the reaction tank or discharged from the reaction tank based on environmental information indicating the environment surrounding the reaction tank, and acquires the second temperature information indicating the estimated temperature.
7. The urea treatment device according to claim 6, The urea treatment apparatus, wherein the environmental information includes information indicating an outside air temperature of the reaction tank or a time period during which the second temperature information acquisition unit acquires the second temperature information.
8. The urea treatment device according to claim 1 or 2, The first temperature information acquisition unit and the second temperature information acquisition unit acquire the temperature information at a timing when the type of water to be treated flowing into the reaction tank is switched.
9. The urea treatment device according to claim 1 or 2, A heat exchanger for adjusting the temperature of the water to be treated in the reaction tank is provided. a urea treatment apparatus that adjusts the heat exchanger so that a difference between a temperature indicated by the first temperature information and a temperature indicated by the second temperature information is smaller than a threshold value;
10. a process of acquiring first temperature information indicating the temperature of the water to be treated that is supplied to a reaction tank in which urea in the water to be treated is treated; A process of acquiring second temperature information indicating the temperature of the water to be treated in the reaction tank or discharged from the reaction tank; a process of comparing a temperature indicated by the first temperature information with a temperature indicated by the second temperature information; and adjusting at least one of the amount of bromide salt and the amount of hypochlorite added to the water to be treated based on the results of the comparison.
Citation Information
Patent Citations
Water treatment apparatus and water treatment method
JP2023125145A