Evaporation-to-dryness apparatus and evaporation-to-dryness method
The evaporation and drying apparatus addresses scattering and gas emission issues by using a sealed structure with temperature and gas control, ensuring efficient and safe drying of radioactive substances.
Patent Information
- Application Number
- JP2024052455
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-27
- Publication Date
- 2025-10-09
AI Technical Summary
Existing evaporation and drying methods for solutions containing radioactive substances face issues such as scattering and gas emissions due to bubbling or misting, as well as overheating, which can lead to inefficient evaporation and increased radioactive material release.
An evaporation and drying apparatus with a sealed structure, temperature control, and gas management system that includes a heating device, gas supply and discharge holes, and temperature detection to maintain stable evaporation conditions, reducing scattering and gas emissions.
The apparatus effectively suppresses solution scattering and minimizes gas emissions of radioactive substances by maintaining controlled evaporation conditions, ensuring efficient and safe drying of radioactive materials.
Smart Images

Figure 2025151168000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to an apparatus for evaporating and drying a solution containing a radioactive substance, and a method for evaporating and drying the solution using the apparatus. [Background technology]
[0002] Radioactive substances are used as radiopharmaceuticals that use radiation from radioactive isotopes. They are administered into the body and used to examine the condition of organs by capturing radiation images, or in treatments to kill cancer cells by injection or oral administration.
[0003] On the other hand, obtaining radiopharmaceuticals requires a separation and purification process to separate the desired radioactive material and remove impurities from radioactive materials produced by neutron irradiation in a nuclear reactor. In this separation and purification process for radioactive materials, the dissolving solution is changed as needed, and the process of adsorption and elution onto a resin is repeated. Therefore, an evaporation and drying process is essential, in which the solution containing the radioactive material is heated to evaporate the solvent and precipitate the radioactive material (solid). Various studies have been conducted on evaporation and drying devices and evaporation and drying methods using such devices for solutions containing substances, not just radioactive materials.
[0004] For example, Patent Document 1 describes that a recovery vial containing an acidic organic solvent, in which zirconium ions are dissolved and which has a boiling point lower than that of water and in which zirconium has been eluted, is heated by a heater, and the contained recovery effluent is heated. Patent Document 1 also describes an evaporation to dryness step in which, while reducing the pressure inside the recovery vial, a gas such as an inert gas is supplied from a gas supply unit into the recovery vial, and stirring is performed by bubbling, thereby shortening the time required for evaporation to dryness. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] JP 2020-169358 A (for example, paragraph 0039) Summary of the Invention [Problem to be solved by the invention]
[0006] To complete the evaporation and drying of a solution containing a substance, the solvent must be evaporated to the very end. In evaporation and drying methods that involve agitating the solution by bubbling or turning the solution into mist, the specific surface area of the liquid is increased by turning the liquid into droplets, allowing the applied heat to be transmitted more evenly. However, while these methods can efficiently evaporate and dry, they have the problem of the solution containing dissolved radioactive materials scattering due to the bubbling or misting of the solution.
[0007] Furthermore, in the evaporation to dryness method under high temperature and reduced pressure, evaporation to dryness can be carried out efficiently at high temperatures, but there is a possibility that the solution containing dissolved radioactive materials will splash due to overheating. Conversely, in the evaporation to dryness method at a temperature below the boiling point, evaporation takes time, which causes the problem of increased emissions of gas containing radioactive materials.
[0008] The present invention has been made in view of the above-mentioned circumstances, and an object of the present invention is to provide an evaporation to dryness apparatus and an evaporation to dryness method that suppress the scattering of a solution in which a radioactive substance is dissolved and that emits a small amount of gas containing the radioactive substance. [Means for solving the problem]
[0009] The evaporative drying apparatus of the present invention, which solves the above-mentioned problems, comprises an evaporative drying container for holding a solution in which a radioactive substance is dissolved and evaporating it to dryness, a heating device for heating the evaporative drying container, and a gas supply device for supplying gas to the evaporative drying container, wherein the evaporative drying container has a sealed structure that blocks it from the outside air and is equipped with at least one gas supply hole through which gas can be supplied and at least one gas discharge hole through which gas can be discharged, the heating device comprises heating means for heating the underside of the evaporative drying container or a position below it, temperature detection means for detecting the temperature at a specified position on the evaporative drying container, and heating control means for controlling the heating means based on the detection value of the temperature detection means, the gas supply device comprises gas supply amount control means for controlling the amount of gas supplied to the gas supply hole, the gas supply hole and the gas discharge hole are located on the top surface of the evaporative drying container or at a position above it, and the temperature detection means detects the temperature at the underside of the evaporative drying container or a position below it. [Effects of the Invention]
[0010] The present invention can provide an evaporation to dryness apparatus and an evaporation to dryness method that suppresses scattering of a solution in which a radioactive substance is dissolved and that emits a small amount of gas containing a radioactive substance. [Brief explanation of the drawings]
[0011] [Figure 1] 1 is a schematic diagram of an evaporator to dryness 100 according to a first embodiment. [Figure 2A] FIG. 2 is a perspective view of an evaporating / drying container 101 and the periphery of the evaporating / drying container 101 in the first embodiment. [Figure 2B] FIG. 2 is a side view of the evaporating and drying container 101 and the periphery thereof in the first embodiment. [Figure 3A] FIG. 10 is a perspective view of an evaporating / drying container 101 and the periphery of the evaporating / drying container 101 in a second embodiment. [Figure 3B] FIG. 10 is a side view of an evaporating / drying container 101 and the periphery of the evaporating / drying container 101 in a second embodiment. [Figure 4] FIG. 10 is a schematic diagram of an evaporator to dryness 400 according to a third embodiment. [Figure 5A] This is a graph showing an example of the evaporation to dryness state versus heating time when the flow rate of the supply gas is constant in the evaporation to dryness apparatus 400 according to the third embodiment, and shows the relationship between the residual liquid amount (Arb.) (arbitrary unit) versus the heating time (min) and the detection value (Arb.) of the temperature detection means 111. [Figure 5B] This is a graph showing an example of the evaporation to dryness state versus heating time when the flow rate of the supply gas is constant in the evaporation to dryness apparatus 400 of the third embodiment, and shows the relationship between the heating output value (%) of the heating means 110 and the detection value (Arb.) of the temperature detection means 111 versus the heating time (min). DETAILED DESCRIPTION OF THE INVENTION
[0012] Hereinafter, an evaporation to dryness apparatus and an evaporation to dryness method according to an embodiment of the present invention will be described with reference to the drawings as appropriate. Note that common components in the following description and drawings may be assigned the same reference numerals, and duplicated descriptions may be omitted.
[0013] First Embodiment An evaporation to dryness apparatus according to a first embodiment of the present invention and an evaporation to dryness method according to a first embodiment of the present invention will be described with reference to FIGS. 1, 2A, and 2B.
[0014] (evaporation and drying apparatus) Fig. 1 is a schematic diagram of an evaporative dryness apparatus 100 according to the first embodiment. Fig. 2A is a perspective view of an evaporative dryness container 101 and the periphery of the evaporative dryness container 101 according to the first embodiment. Fig. 2B is a side view of the evaporative dryness container 101 and the periphery of the evaporative dryness container 101 according to the first embodiment.
[0015] The evaporation to dryness apparatus 100 according to the first embodiment heats the solution 207 in which the radioactive substance is dissolved, and precipitates the radioactive substance. As shown in FIG. 1, the evaporating / drying apparatus 100 according to the first embodiment includes an evaporating / drying container 101, a heating device 102, and a gas supplying device 103.
[0016] As shown in FIGS. 2A and 2B, the evaporating and drying container 101 is a cylindrical body with a bottom that holds a solution 207 in which a radioactive substance is dissolved and evaporates and drys the solution. The evaporating and drying container 101 has at least one gas supply hole 104 that can supply gas, at least one gas discharge hole 105 that can discharge gas, and a liquid supply and discharge hole 106. The evaporating and drying container 101 is connected to a gas supply pipe 107, a gas discharge pipe 108, and a liquid supply and discharge pipe 109. Specifically, the gas supply hole 104 is connected to the gas supply pipe 107. The gas discharge hole 105 is connected to the gas discharge pipe 108. The liquid supply and discharge hole 106 is connected to the liquid supply and discharge pipe 109.
[0017] The heating device 102 heats the evaporation / dryness container 101. The heating device 102 includes a heating means 110, a temperature detection means 111, and a heating control means 112. The gas supply device 103 supplies gas to the evaporation / dryness container 101. The gas supply device 103 includes a gas supply amount control means 113, a gas supply means 114, and a connection part 115 that connects the gas supply amount control means 113 and the gas supply means 114. The gas supply means 114 and the gas supply pipe 107 are connected by a joint or the like not shown in FIG.
[0018] As shown in Figures 2A and 2B, the evaporator / drying vessel 101 is fixed to a fixing base 201. The evaporator / drying vessel 101 has a sealed structure that is isolated from the outside air by connecting piping joints 202 that can isolate the vessel from the outside air when no piping is connected to the gas supply hole 104, the gas discharge hole 105, and the liquid supply / discharge hole 106. The bottom of the evaporator / drying vessel 101 has a roughly cone-shaped shape that deepens toward the center. This shape allows the solution 207 to collect in the center as evaporation progresses. This shape is also useful when stopping the evaporation / drying process midway to concentrate the solution 207 with dissolved radioactive materials to a desired concentration.
[0019] The gas supply hole 104, the gas discharge hole 105, and the liquid supply and discharge hole 106 are arranged on the upper surface or at a position approximately above the evaporation and drying container 101. The gas supply hole 104 and the gas supply pipe 107 are connected by a pipe joint 202, and a supply gas 203 supplied from a gas supply device 103 is supplied to the evaporation and drying container 101.
[0020] Meanwhile, the gas discharge hole 105 and the gas discharge pipe 108 are connected by a pipe joint 202, and the discharged gas 204 is discharged from the evaporation and drying container 101. In order to recover the solvent in the discharged gas 204 or the radioactive material mixed in the discharged gas 204, one or more heat exchangers or an exhaust device may be provided downstream of the gas discharge pipe 108, or one or more heat exchangers and an exhaust device may be provided in series. Also, a vacuum pump may be used instead of the exhaust device.
[0021] The liquid supply and discharge hole 106 and the liquid supply and discharge pipe 109 are connected by a pipe joint 202. Furthermore, a liquid supply and discharge pipe 205 is connected to the end opposite the liquid supply and discharge hole 106, i.e., the end not connected to the liquid supply and discharge pipe 109. The evaporator / drying container 101 has a pipe fixing guide 206 extending downward near the center in a plan view. By providing the pipe fixing guide 206, the end of the liquid supply and discharge pipe 205 not connected to the liquid supply and discharge hole 106 is positioned near the center in a plan view within the evaporator / drying container 101. Specifically, the open end of this end faces the deepest position of the bottom of the generally cone-shaped evaporator / drying container 101 and is positioned close to this deepest position. This makes it possible to prevent the solution 207, in which radioactive substances are dissolved, from splashing onto the wall surface of the evaporator / drying container 101 when the solution 207 is supplied to the evaporator / drying container 101.
[0022] The evaporation and drying container 101 can also be used as a container for preparing a solution when performing solvent substitution. In this case, even when supplying new solvent after evaporation and drying, splashing of the solution 207 containing dissolved radioactive materials onto the wall surface of the evaporation and drying container 101 can be suppressed. In this case, by repeatedly supplying and discharging a very small amount of solution, the solution 207 is stirred, which can promote dissolution of the radioactive materials into the solvent. Furthermore, by stopping the evaporation and drying process midway, the solution 207 containing dissolved radioactive materials can be concentrated to a desired concentration. At this time, a small amount of concentrated solution 207 collects in the center, making it easy to discharge the solution 207.
[0023] On the other hand, the end of the liquid supply / discharge pipe 109 that is not connected to the pipe joint 202 can be connected to a column filled with resin for separating desired radioactive substances or removing impurities. Also, this end can be connected to a container storing a solution 207 in which radioactive substances are dissolved, a container storing the solution 207 discharged from the column filled with resin, or a container storing a solvent.
[0024] The heating means 110 is disposed at a position below or on the underside of the evaporating and drying container 101 and heats the evaporating and drying container 101. The temperature detection means 111 detects the temperature at a predetermined position on the evaporating and drying container 101. Specifically, the temperature detection means 111 performs temperature measurement 117 at a position (predetermined position) below or on the underside of the evaporating and drying container 101 that is close to the solution 207 in which the radioactive substance is dissolved, acquires the temperature information, and detects the temperature of the evaporating and drying container 101. Ideally, the temperature detection means 111 should detect the temperature of the solution 207 in which the radioactive substance is dissolved itself. However, the temperature detection means 111 may be radioactively contaminated by the radioactive substance in the solution 207, increasing the amount of radioactive contaminants; solids after evaporation and drying may adhere to the temperature detection means 111, making it difficult to measure the temperature accurately; and the liquid level changes as the evaporation and drying progresses, making it difficult to measure the temperature accurately. For these reasons, the temperature detection means 111 is used.
[0025] In this embodiment, it is preferable to increase the ratio of the bottom area of the evaporator / drying container 101 to the volume of the solution 207 in which the radioactive substance is dissolved. That is, it is preferable to increase the bottom area of the evaporator / drying container 101 and decrease the height of the solution 207 in which the radioactive substance is dissolved. In this way, temperature unevenness in the solution 207 is reduced by thermal convection, and the solvent evaporates efficiently. As a result, the generation of bubbles (boiling) due to overheating is suppressed, and scattering of the solution 207 in which the radioactive substance is dissolved onto the wall surface of the evaporator / drying container 101 can be suppressed. Furthermore, since temperature unevenness is reduced, the evaporation time is shortened, and the amount of gas containing the radioactive substance emitted is reduced.
[0026] As the material for the evaporation and drying container 101, the material for the gas supply pipe 107, the gas discharge pipe 108, the liquid supply and discharge pipe 109, the liquid supply and discharge pipe 205, the material for the connecting part 115, the pipe joint 202, and the material for the joints (not shown), any appropriate material can be used depending on the type of fluid, as long as it does not adversely affect the supply gas 203, the discharge gas 204, and the solution 207 in which the radioactive material is dissolved, and is unlikely to be deteriorated by these. These materials may be the same or different, and can be selected appropriately depending on processability, flexibility, etc.
[0027] The material of the evaporator / drying container 101 can be appropriately selected depending on the type of solvent of the solution 207 containing dissolved radioactive materials and the heat resistance temperature of the material, since it is heated by the heating means 110. Specific examples of the material for the evaporator / drying container 101 include glass, such as quartz glass, soda glass, lead glass, and borosilicate glass, as well as fluorine-based resins, such as PE (polyethylene), PP (polypropylene), PEEK (polyether ether ketone), PC (polycarbonate), PTFE (polytetrafluoroethylene), and PFA (perfluoroalkoxyalkane). Furthermore, to improve corrosion resistance and chemical resistance, a lining made of glass or an oxide film formed by the oxidation of silicon may be formed on the surface of the evaporator / drying container 101. By using a transparent or nearly transparent material for the portion filled with the solution 207 containing dissolved radioactive materials, the evaporation and drying process inside the evaporator / drying container 101 can be visually observed.
[0028] The materials of the gas supply pipe 107, the connecting part 115, and the joints (not shown) can be selected appropriately depending on the heat resistance temperature of the materials, because they are not heated by the heating means 110. The materials of the gas discharge pipe 108, the liquid supply / discharge pipe 109, the liquid supply / discharge pipe 205, and the pipe joint 202 can be selected appropriately depending on the type of solvent of the solution 207 in which the radioactive material is dissolved and the heat resistance temperature of the materials. Specific examples of materials that can be used for the gas supply pipe 107, the connecting part 115, the joints (not shown), the gas discharge pipe 108, the liquid supply / discharge pipe 109, and the liquid supply / discharge pipe 205 include PE, PP, PEEK, and fluororesins such as PTFE and PFA.
[0029] The heating means 110 may be a plate heater such as a mica heater, polyimide heater, or silicone rubber heater, a Peltier unit, a mantle heater, a heat exchanger using a heat medium, or a thermostatic bath using a heat medium, or other suitable device. The temperature detection means 111 may include various thermocouples, platinum resistance thermometers, thermistors, and the like.
[0030] The heating control means 112 controls the heating means 110 based on the detection value (temperature detection value 118) of the temperature detection means 111. The heating control means 112 controls the heating means 110 to perform heating (control) 116 of the evaporation to dryness container 101. The heating control means 112 is only required to compare the temperature detection value (observation quantity) 118 by the temperature detection means 111 with the temperature set value and control the heating means 110 based on the deviation, and examples of the control method include continuous control using PID control and ON-OFF control.
[0031] The gas supply amount control means 113 controls the amount of gas supplied to the gas supply hole 104. Examples of the gas supply amount control means 113 include a gas flow meter and a mass flow meter. Examples of the gas supply means 114 include a gas cylinder, a vaporizer, etc. The gas supply means 114 can be appropriately selected from means that can supply a gas that does not adversely affect the solution 207 in which the radioactive material is dissolved, such as an inert gas such as nitrogen gas or argon gas, or dry air.
[0032] (evaporation to dryness method) Next, a method of evaporating to dryness using the evaporating to dryness apparatus 100 according to the first embodiment will be described. First, a solution 207 in which a radioactive substance is dissolved is supplied from the liquid supply / discharge pipe 109 through the pipe joint 202, the liquid supply / discharge hole 106, and the liquid supply / discharge pipe 205 into the evaporation / dryness container 101. Note that this solution 207 in which a radioactive substance is dissolved can also be placed in the evaporation / dryness container 101 in advance, depending on the situation.
[0033] The supply of the supply gas 203 from the gas supply device 103 is started. The temperature setting value of the heating device 102 is set to a predetermined temperature, and heating control is started so that the temperature measured by the temperature detection means 111 becomes equal to the temperature setting value. The solvent evaporates according to the saturated vapor pressure of the solvent at the temperature of the supply gas 203, and evaporation progresses. When the temperature detection value 118 of the temperature detection means 111 reaches the temperature setting value, the temperature of the solution 207 in which the radioactive material is dissolved becomes almost constant, and evaporation progresses stably. Once evaporation is complete, there is no solvent to be heated, and the supply gas 203 is heated. Because heating is performed in a closed system, the temperature does not decrease, and a state is reached in which heating is no longer necessary. Because the temperature is maintained even without heating, the heating output value 119 of the heating means 110 drops sharply. In this state, evaporation to dryness of the solution 207 in which the radioactive material is dissolved is completed, and precipitation of the radioactive material is also completed.
[0034] The supply gas 203 may be any gas that does not adversely affect the solution 207 in which the radioactive material is dissolved, and may be an inert gas such as nitrogen gas or argon gas, or dry air. Furthermore, the temperature setting value can be appropriately set to a temperature at which the solution 207 containing dissolved radioactive material efficiently evaporates without generating bubbles due to overheating (without boiling) depending on the types of evaporator / drying container 101 and heater 102. If the temperature setting value is low, bubbles will not be generated due to overheating, but the heating time will be longer, which may increase the amount of gas containing radioactive material emitted. On the other hand, if the temperature setting value is too high, bubbles will be generated due to overheating, which may cause the solution 207 containing dissolved radioactive material to splash or lead to thermal denaturation of the radioactive material.
[0035] Therefore, by controlling the solution temperature to a temperature that does not boil and is as high as possible, scattering of the solution 207 in which the radioactive material is dissolved is suppressed and the amount of gas containing the radioactive material emitted is reduced. Specifically, it is desirable to control the stable solution temperature during continuous heating to be several degrees Celsius to 10 degrees Celsius lower than the boiling point, more specifically, 1 degree Celsius to 10 degrees Celsius lower.
[0036] As described above, the evaporative dryness apparatus 100 according to the first embodiment of the present invention and the evaporative dryness method using the evaporative dryness apparatus 100 according to the first embodiment of the present invention suppress scattering of the solution 207 in which radioactive substances are dissolved. In addition, the amount of gas containing radioactive substances emitted is reduced.
[0037] Second Embodiment An evaporative dryness apparatus 100 according to a second embodiment of the present invention and an evaporative dryness method using the evaporative dryness apparatus 100 according to the second embodiment of the present invention will be described with reference to Figures 3A, 3B, and 1. The following description will focus on the differences between the second embodiment and the first embodiment.
[0038] (evaporation and drying apparatus) Fig. 3A is a perspective view of the evaporating / drying container 101 and the surrounding area thereof in the second embodiment. Fig. 3B is a side view of the evaporating / drying container 101 and the surrounding area thereof in the second embodiment.
[0039] As shown in Figures 3A and 3B, the evaporative drying apparatus 100 according to the second embodiment differs from the evaporative drying apparatus 100 according to the first embodiment in that it further includes a heat shield plate 301, which is a wall-shaped member, surrounding the side of the evaporative drying container 101.
[0040] The heat shield 301 makes the evaporator / drying container 101 less susceptible to the influence of the outside air temperature. Furthermore, when the heat shield 301 is provided, the temperature measured by the temperature detection means 111 reaches the set temperature value more quickly. Furthermore, the heat shield 301 also serves to keep the temperature of the evaporator / drying container 101 more constant. Furthermore, by providing an air layer between the evaporator / drying container 101 and the heat shield 301, the air layer acts as an insulating layer, making it possible to keep the temperature of the evaporator / drying container 101 more constant.
[0041] The material of the heat shield 301 can be appropriately selected depending on the heat resistance temperature of the material, since it is heated by the heating means 110. Specific examples of the material of the heat shield 301 include metals such as stainless steel, aluminum, and aluminum alloys, and resins such as PE, PP, and PET (polyethylene terephthalate).
[0042] (evaporation to dryness method) Using the evaporative drying apparatus 100 according to the second embodiment described above, the solution 207 in which a radioactive substance is dissolved can be evaporated to dryness, and the radioactive substance can be precipitated, in the same manner as in the evaporative drying method using the evaporative drying apparatus 100 according to the first embodiment. In the second embodiment, the heat shield 301 can keep the temperature of the evaporative drying container 101 more constant. Therefore, in the second embodiment, temperature unevenness of the solution 207 is reduced, and the solvent can be evaporated efficiently. As a result, the generation of bubbles due to overheating is suppressed, and the solution 207 in which the radioactive substance is dissolved is prevented from splashing onto the wall surface of the evaporative drying container 101. Furthermore, because the temperature unevenness is reduced, the evaporation time is shortened, and the amount of gas containing the radioactive substance emitted is reduced.
[0043] As described above, the evaporative dryness apparatus 100 according to the second embodiment of the present invention and the evaporative dryness method using the evaporative dryness apparatus 100 according to the second embodiment of the present invention suppress scattering of the solution 207 in which radioactive substances are dissolved. In addition, the amount of gas containing radioactive substances emitted is reduced.
[0044] Third Embodiment An evaporative to dryness apparatus 400 according to a third embodiment of the present invention and an evaporative to dryness method using the evaporative to dryness apparatus 400 according to the third embodiment of the present invention will be described with reference to Fig. 4. The following description will focus on the differences between the third embodiment and the first and second embodiments.
[0045] (evaporation and drying apparatus) FIG. 4 is a schematic diagram of an evaporator to dryness 400 according to the third embodiment. As shown in FIG. 4, the evaporative dryness apparatus 400 according to the third embodiment differs from the evaporative dryness apparatus 100 according to the first and second embodiments in that it is provided with a primary heat exchanger 401, a secondary heat exchanger 402, and an exhaust device 403 downstream of the gas exhaust piping 108.
[0046] The primary heat exchanger 401 is connected to the gas discharge pipe 108 by a joint (not shown). The secondary heat exchanger 402 is connected to the primary heat exchanger 401 via a first gas discharge pipe 404. The first gas discharge pipe 404 is connected to the primary heat exchanger 401 and the secondary heat exchanger 402 by joints (not shown). The exhaust device 403 is connected to the secondary heat exchanger 402 via a second gas exhaust pipe 405. The second gas exhaust pipe 405 is connected to the secondary heat exchanger 402 and the exhaust device 403 by joints (not shown).
[0047] The materials of the first gas discharge pipe 404 and the second gas discharge pipe 405 can be appropriately selected depending on the type of solution 207 in which the radioactive material is dissolved and the heat resistance temperature of the material, since they are heated by the gas containing the radioactive material heated by the heating means 110 and cooled by the heat exchanger. Specifically, the materials of the first gas discharge pipe 404 and the second gas discharge pipe 405 can be metals such as stainless steel, or fluororesins such as PE, PP, PEEK, PTFE, and PFA.
[0048] The materials for the primary heat exchanger 401 and the secondary heat exchanger 402 can be appropriately selected depending on the type of solution 207 in which the radioactive material is dissolved and the heat resistance temperature of the material. Specifically, the materials for the primary heat exchanger 401 and the secondary heat exchanger 402 can be metals such as stainless steel, or fluororesins such as PE, PP, PTFE, and PFA. Furthermore, to improve corrosion resistance and chemical resistance, a lining made of glass or an oxide film formed by oxidizing silicon may be formed on the surfaces of the primary heat exchanger 401 and the secondary heat exchanger 402, respectively. Using a transparent or nearly transparent material allows visual observation of the liquefied solvent being collected in the primary heat exchanger 401 and the secondary heat exchanger 402.
[0049] The primary heat exchanger 401 and the secondary heat exchanger 402 may be a heat exchange trap, a trap bottle, or the like. The exhaust device 403 may be equipped with a scrubber, an exhaust gas cleaning device, an exhaust gas treatment device, or the like, depending on the type of the solution 207 in which the radioactive material is dissolved.
[0050] (evaporation to dryness method) In the evaporative drying apparatus 400 according to the third embodiment, the solution 207 in which the radioactive substance is dissolved can be evaporated to dryness to precipitate the radioactive substance, in the same manner as in the evaporative drying method using the evaporative drying apparatus 100 according to the first or second embodiment.
[0051] During and after the evaporation of the solution 207 to dryness, the primary heat exchanger 401 receives the exhaust gas 204 via the gas exhaust pipe 108. The primary heat exchanger 401 liquefies the vaporized solvent in the exhaust gas 204 and also recovers the radioactive material contained in a very small amount together with the solvent.
[0052] Next, the secondary heat exchanger 402 receives the gas that has passed through the first gas discharge pipe 404, liquefies the vaporized solvent that was not liquefied in the primary heat exchanger, and recovers any radioactive material that may be present in trace amounts together with the solvent, thereby reducing the amount of gas containing radioactive material that is discharged.
[0053] Next, the exhaust device 403 removes gases and particles contained in the gas discharged from the secondary heat exchanger 402 , purifies the gas, and discharges it to the outside of the evaporation and drying device 400 .
[0054] 5A is a graph showing an example of the evaporation to dryness state versus heating time when the flow rate of the supply gas is constant in the evaporative drying apparatus 400 according to the third embodiment, showing the relationship between the amount of residual liquid (Arb.) (arbitrary unit) versus heating time (min) and the detected value (Arb.) of the temperature detection means 111. FIG. 5B is a graph showing an example of the evaporation to dryness state versus heating time when the flow rate of the supply gas is constant in the evaporative drying apparatus 400 according to the third embodiment, showing the relationship between the heating output value (%) of the heating means 110 versus heating time (min) and the detected value (Arb.) of the temperature detection means 111.
[0055] As shown in FIG. 5A, the amount of residual liquid began to decrease as soon as heating control by the heating device 102 was initiated. The value detected by the temperature detection means 111 increased, and the rate of decrease in the amount of residual liquid became steeper after the heating time had exceeded 10 minutes and the set temperature was reached. After the heating time reached 25 minutes and the amount of residual liquid became zero and evaporation was completed, the value detected by the temperature detection means 111 tended to become unstable. Meanwhile, as shown in FIG. 5B, the heating output value of the heating means 110 reached its maximum as soon as heating control by the heating device 102 was initiated. Thereafter, the heating output value of the heating means 110 decreased slightly just before the set temperature was reached, and then maintained a constant value, but then suddenly decreased to zero just before evaporation was completed.
[0056] Therefore, the heating control means 112 can determine the temperature setting value of the temperature detection means 111 that will minimize the heating time by detecting in advance the instability of the detection value of the temperature detection means 111 and the sudden drop in the heating output value of the heating means 110 during the evaporation and drying of the solution 207 in which the radioactive material is dissolved. In this way, the evaporating and drying apparatus 400 can minimize the amount of gas emitted that contains the radioactive material.
[0057] Furthermore, the heating control means 112 can detect complete evaporation of the solution 207 in the evaporating and drying container 101 using at least one of the detection value of the temperature detection means 111 and the heating output value of the heating means 110. When the heating control means 112 detects complete evaporation in this way, it terminates heating. In this way, the evaporating and drying device 400 can reduce or prevent thermal denaturation of the radioactive substance while minimizing the emission of gas containing the radioactive substance. Before complete evaporation, while the solution 207 remains, the temperature remains almost constant due to the latent heat of evaporation of the solution 207, but once complete evaporation occurs, the temperature rises. Therefore, complete evaporation can be determined by a change in the detection value of the temperature detection means 111. Furthermore, the heating output value of the heating means 110 also changes, so complete evaporation can also be determined from the change in the heating output value.
[0058] The optimum value of the flow rate (amount of gas sent) of the supply gas 203 in FIGS. 5A and 5B can be determined as follows. Since the evaporation and drying vessel 101 is constantly supplied with gas, it is not an enclosed space, and assuming that it does not follow gas-liquid equilibrium, it is believed that Equation 1 generally holds true according to Boyle's law. (Formula 1) Saturated vapor pressure of solvent at gas temperature × exhaust volume (L / min) ≒ Atmospheric pressure at gas temperature × solvent vaporization volume rate (L / min)
[0059] By transforming Equation 1, Equation 2 is obtained. (Formula 2) Volume of exhaust gas (L / min) ≒ Volumetric rate of solvent vaporization (L / min) × (atmospheric pressure at gas temperature / saturated vapor pressure of solvent at gas temperature)
[0060] From Equation 2, it is possible to minimize the amount of gas containing radioactive materials emitted by controlling the amount of gas sent to the evaporation and drying vessel 101 so that it is approximately the same as the flow rate (exhaust volume) of the exhaust gas 204 calculated by Equation 2. Specifically, it is desirable to control it to within ±10 to 20% of the flow rate of the exhaust gas 204 calculated by Equation 2.
[0061] As described above, the evaporative to dryness apparatus 400 according to the third embodiment of the present invention and the evaporative to dryness method using the evaporative to dryness apparatus 400 according to the third embodiment of the present invention suppress scattering of the solution 207 in which radioactive substances are dissolved. In addition, the amount of gas containing radioactive substances emitted is reduced.
[0062] The evaporation-to-dryness apparatus and evaporation-to-dryness method according to the present invention have been described in detail above using embodiments. However, the present invention is not limited to the above-described embodiments and includes various modifications. For example, the above-described embodiments have been described in detail to clearly explain the present invention, and the present invention is not necessarily limited to those including all of the described configurations. Furthermore, it is possible to replace part of the configuration of one embodiment with the configuration of another embodiment, or to add the configuration of another embodiment to the configuration of one embodiment. Furthermore, it is possible to add, delete, or replace part of the configuration of each embodiment with other configurations. These embodiments and their modifications are included within the scope and spirit of the invention, and are also included in the scope of the invention and its equivalents as set forth in the claims. [Explanation of symbols]
[0063] 100 Evaporation and drying apparatus 101 Evaporation and drying vessel 102 Heating device 103 Gas supply device 104 Gas supply hole 105 Gas exhaust hole 106 Liquid supply and discharge hole 107 Gas supply piping 108 Gas exhaust piping 109 Liquid supply and discharge piping 110 Heating means 111 Temperature detection means 112 Heating control means 113 Gas supply amount control means 114 Gas supply means 115 Connection 116 Heating (Controlled) 117 Temperature Measurement 118 Temperature detection value 119 Heating Output Value 201 Fixed stand 202 Piping fittings 203 Supply gas 204 Exhaust Gas 205 Liquid supply and discharge piping 206 Pipe fixing guide 207 Solution 301 Heat shield 400 Evaporation and Drying Apparatus 401 Primary heat exchanger 402 Secondary heat exchanger 403 Exhaust system 404 First gas exhaust pipe 405 Second gas exhaust pipe
Claims
1. The method comprises: an evaporation and drying container for holding a solution in which a radioactive substance is dissolved and evaporating and drying the solution; a heating device for heating the evaporation and drying container; and a gas supplying device for supplying a gas to the evaporation and drying container; the evaporation and drying container has a sealed structure that is isolated from the outside air, and includes at least one gas supply hole that can supply gas and at least one gas discharge hole that can discharge gas; The heating device includes a heating means for heating the lower surface or a position below the evaporating and drying container, a temperature detecting means for detecting the temperature at a predetermined position of the evaporating and drying container, and a heating control means for controlling the heating means based on a value detected by the temperature detecting means; the gas supply device includes a gas supply amount control means for controlling the amount of gas supplied to the gas supply hole; the gas supply hole and the gas discharge hole are arranged on the top surface or at an upper position of the evaporation and drying container; An evaporation to dryness apparatus, characterized in that the temperature detection means detects the temperature of the lower surface or a position below the evaporation to dryness container.
2. 2. The evaporating and drying apparatus according to claim 1, further comprising a heat shield plate, which is a wall-like member arranged to surround the side surface of the evaporating and drying container when the evaporating and drying container is heated.
3. 2. The evaporation and drying apparatus according to claim 1, wherein the heating control means controls the temperature of the stable solution during continuous heating to be 1 to 10° C. lower than the boiling point.
4. 2. The evaporation and drying apparatus according to claim 1, wherein the heating control means detects complete evaporation of the solution in the evaporation and drying container using at least one of the detected value of the temperature detection means and the heating output value of the heating means.
5. The amount of gas sent to the evaporation and drying container by the gas supply amount control means is Discharge volume (L / min) = Solvent vaporization volume rate (L / min) × (atmospheric pressure at gas temperature / saturated vapor pressure of solvent at gas temperature) 2. The evaporation and drying apparatus according to claim 1, wherein the amount of exhaust gas is controlled so as to be determined by the following formula:
6. A method for evaporating to dryness, comprising evaporating a solution in which the radioactive substance is dissolved using the evaporating to dryness apparatus according to any one of claims 1 to 5, to precipitate the radioactive substance.
Citation Information
Patent Citations
Zirconium purification method and zirconium purification apparatus
JP2020169358A