Liquid containing ozone with suppressed dispersion of ozone to vapor phase, manufacturing method of liquid containing ozone
By producing an ozone-containing liquid with ultrafine bubbles through ultrasonic atomization and ozone exposure, ozone dispersion into the gas phase is minimized, addressing human health and environmental concerns without chemical additives.
Patent Information
- Application Number
- JP2024017340
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-02-07
- Publication Date
- 2025-08-20
AI Technical Summary
Ozone dispersion into the gas phase from ozone-containing liquids can have adverse effects on the human body and environment, and existing methods using bittern components to suppress this dispersion may cause metal corrosion and environmental impact.
An ozone-containing liquid with ultrafine bubbles of less than 1 μm diameter is produced by ultrasonic atomization and ozone exposure, ensuring minimal ozone diffusion into the gas phase.
The solution effectively suppresses ozone dispersion into the gas phase, maintaining low ozone concentrations and preventing odor emission, while avoiding the use of chemical additives that cause corrosion and environmental harm.
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Figure 2025121704000001_ABST
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to an ozone-containing liquid in which ozone dispersion into a gas phase is suppressed, and a method for producing an ozone-containing liquid. [Background technology]
[0002] In recent years, there have been many attempts to use ozone to purify and decolorize wastewater because it has deodorizing and purifying properties and does not use chemicals that pollute the environment. However, ozone that disperses from the liquid into the gas phase can have adverse effects on the human body. Therefore, a technology is known in which ozone is compounded with bittern components by adding bittern (MgCl2) to ozone water to produce odorless ozone water regardless of the ozone concentration (Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2009-154076 Summary of the Invention [Problem to be solved by the invention]
[0004] However, bittern components are chemicals with strong deliquescence and alkalinity. Therefore, there is a possibility that metal corrosion may occur due to the deliquescence of the bittern components, and the alkalinity of the bittern components may have an impact on the environment. Therefore, when the ozonated water of Patent Document 1 is used for wastewater treatment or decolorization treatment, it is necessary to recover the bittern components after the treatment.
[0005] An object of the present invention is to provide an ozone-containing liquid that suppresses ozone from scattering into the gas phase regardless of the ozone concentration, without the addition of any chemical agent. [Means for solving the problem]
[0006] In order to solve the above problems, an ozone-containing liquid according to one embodiment of the present disclosure contains at least ozone and a plurality of bubbles suspended in the liquid, and has a D50, which is the cumulative 50% particle size on a volume basis of the bubbles, with the particle size distribution of the bubble diameters of the plurality of bubbles contained per unit volume of the liquid as a population, of less than 1 μm. The liquid is placed in a container having an opening with an opening diameter of 10 cm so that the liquid occupies 50% or more of the container's capacity, and the ozone gas concentration in the space measured at 25°C and 1 atmosphere with a gas concentration meter positioned 3 cm vertically above the opening while the opening is open is a liquid characterized by the following. [Effects of the Invention]
[0007] According to at least one aspect of the present disclosure, it is possible to provide a liquid containing ozone in which ozone dispersion into the gas phase is suppressed regardless of the ozone concentration. [Brief explanation of the drawings]
[0008] [Figure 1] 1 is a diagram for explaining the method for producing ozone water using an atomized bubble generator. FIG. [Figure 2] 1 is a diagram showing an example of an ozone water production apparatus according to a first embodiment. [Figure 3] 2A to 2C are diagrams showing manufacturing steps of the ozone water production apparatus according to the first embodiment. [Figure 4] FIG. [Figure 5] FIG. 10 is a diagram showing an example of an ozone water production apparatus according to a first modified example. [Figure 6] FIG. 1 is a diagram showing an example of an ozone water production apparatus. [Figure 7] FIG. 1 is a diagram showing an example of an ozone water production apparatus. [Figure 8] FIG. 1 is a diagram showing an example of an ozone water production apparatus. [Figure 9] FIG. 1 is a diagram showing an example of an ozone water production apparatus. DETAILED DESCRIPTION OF THE INVENTION
[0009] Hereinafter, embodiments according to the present disclosure will be described. Note that the following embodiments are merely examples and are not intended to limit the ideas of the present disclosure more than necessary.
[0010] While ozone remains in the liquid, it does not diffuse into the gas phase, and ozone water does not emit an ozone odor. However, it naturally diffuses into the gas phase through an equilibrium reaction with the atmosphere, and regular ozone water emits an ozone odor. Ozone concentrations of 0.1 ppm or higher are known to irritate the human nose and throat. Ozone released from the liquid into the gas phase during sewage treatment or decolorization treatment is known to have more severe adverse effects on the human body as the concentration increases. Furthermore, in ozone water produced by dissolving ozone in a liquid through ozone gas bubbling, the ozone bubbles in the water are large, allowing ozone to diffuse into the gas phase in a short period of time. Furthermore, it has been found that if the bubble diameter is 1 μm or larger, ozone diffuses into the gas phase over time, generating an ozone odor. To address the above-mentioned issues, the inventors conducted detailed studies on ozone diffusion into the gas phase. As a result of their investigation, they confirmed that ozone water can be provided that suppresses ozone diffusion into the gas phase using the following configuration.
[0011] That is, the ozone-containing liquid contains at least ozone and a plurality of bubbles suspended in the liquid, and the D50 of the bubble diameter, which is the population of the particle size distribution of the bubble diameters contained per unit volume of the liquid, is less than 1 μm. With this configuration, a container with an opening of 10 cm is filled with ozone to 50% or more of the container's capacity. With the opening open, a gas concentration meter positioned 3 cm vertically above the opening measures an ozone gas concentration of less than 0.1 ppm in the space at room temperature and normal pressure. This is thought to be because the presence of so-called ultrafine bubbles, with a D50 of less than 1 μm, reduces the number of bubbles that rise from the liquid and escape into the gas phase. The bubbles stably suspended in the liquid suppress evaporation and the diffusion of ozone into the gas phase. Furthermore, if bubbles of 1 μm or larger are present, the ozone contained in the bubbles may diffuse into the gas phase as they disappear, and as the ozone diffuses into the gas phase, bubbles smaller than 1 μm may also be entrained and disappear, further diffusing the ozone into the gas phase. Therefore, it was determined that minimizing bubbles of 1 μm or larger is important for providing odorless ozone water. Regarding bubble size, a device using a scattered light intensity tracking method is preferred, and in the embodiment described below, a nanoparticle size distribution analyzer (model SALD-7500) manufactured by Shimadzu Corporation was used.
[0012] [First embodiment] An example of a method for producing an ozone-containing liquid according to the first embodiment will be described below with reference to Fig. 1. Fig. 1(a) is a schematic diagram of an apparatus 100 for producing an ozone-containing liquid. The apparatus 100 includes an atomized bubble generator 101, an ozone generator 102, and a collection container 106. The apparatus 100 also holds a desired liquid inside the collection container 106.
[0013] The ozone-containing liquid obtained by the device 100 is obtained by carrying out a generation process in which ultrasonic waves are irradiated onto the liquid in the collection container 106 to atomize the liquid and generate droplets containing fine bubbles, a process in which the atomized droplets are introduced into the ozone space in which ozone has been generated to bring them into contact with ozone, and a recovery process in which the atomized liquid after introduction is recovered by a recovery mechanism including a collection container, thereby obtaining the desired ozone-containing liquid.
[0014] Specifically, in the droplet generation process, ultrasonic waves are irradiated into the liquid by the atomization bubble generator 101, which generates bubbles by atomizing the liquid. This causes molecules in the liquid to vibrate in the direction of sound propagation, resulting in alternating high-pressure and low-pressure regions. In the low-pressure region, the pressure of the liquid molecules becomes lower than the vapor pressure, generating bubbles 103, which are dissolved gas bubbles, as shown in Figure 1(b). Some of the bubbles generated in the liquid repeatedly expand and contract under the influence of the ultrasonic waves, forming bubbles through association with each other and being released from the liquid. Others are crushed by the vibrations caused by the ultrasonic waves of the atomization bubble generator 101. Therefore, it is believed that small bubbles, specifically ultrafine bubbles with a diameter of less than 1 μm, tend to remain in the liquid.
[0015] The atomization phenomenon at the gas-liquid interface caused by the atomization bubble generator 101 is thought to occur because, as shown in Figure 1(c), surface waves are formed in the liquid, and when the vibration amplitude of the surface waves exceeds a critical point, one of the wave crests breaks, generating small droplets and causing atomization. The "atomization" referred to here refers to the generation of bubble-containing droplets 104, which are tiny mist-like liquid.
[0016] When the atomization bubble generator 101 atomizes a liquid at the gas-liquid interface, the liquid containing bubbles is atomized and droplets are generated at the same time, resulting in a significant pressure relief effect. Therefore, new bubbles are generated during atomization, and droplets containing the newly generated bubbles are generated. If the atomized droplets are small, large bubbles cannot exist within the droplets, resulting in the selective generation of small bubbles, so-called ultrafine bubbles. To produce a liquid containing ozone, the atomization that generates droplets containing the bubbles is performed in a space containing ozone gas, making it possible to produce the desired ozone-containing liquid.
[0017] To use an ozone-containing gas as the gas, although there are no particular limitations, it is preferable to provide an ozone gas generation unit 102, which produces ozone gas by discharge or ultraviolet irradiation, inside the collection container 106, and create an ozone-containing atmosphere inside the collection container 106. Creating an ozone-containing atmosphere is preferable because it reduces the risk of generating nitrogen oxides when ozone gas is produced by ultraviolet irradiation in the atmosphere. The light source is preferably a lamp capable of emitting light at wavelengths absorbed by oxygen molecules, more preferably a lamp capable of emitting light at wavelengths of 240 nm or less. Known light sources can also be used. For example, low-pressure mercury lamps using quartz glass are typical, but similar effects can be achieved with mercury-free ozone lamps. Specific examples include excimer lamps and ultraviolet irradiation devices. Commercially available ultraviolet irradiation devices can also be used, such as an antiviral / sterilizing ultraviolet irradiation device (product name "CARE222" manufactured by Ushio Inc.). Naturally, to avoid blocking light of these wavelengths, transparent materials such as quartz glass can be used as components in the optical path.
[0018] Furthermore, when the production of the desired ozone-containing liquid is completed, the ozone in the recovery mechanism can be quenched using known chemical methods such as using manganese catalysts or activated carbon, etc. However, one preferred embodiment is to deactivate the ozone in the recovery mechanism by irradiating it with a general-purpose germicidal lamp capable of emitting light with a wavelength of 254 nm, which is the absorption wavelength of ozone.
[0019] It is preferable to use an ozone-resistant material for the liquid-contacting member with the ozone-containing UFB (Ultra Fine Bubble) liquid after ultraviolet irradiation. Examples of ozone-resistant materials include titanium for metals, fluorine-based polymers (such as PFA (perfluoroalkoxyalkane) and PTFE (polytetrafluoroethylene)) for resins, and quartz for glass.
[0020] 2 shows an overview of an apparatus similar to the apparatus 100 in FIG. 1(a), in which a collection container 106 for collecting ozone-containing liquid is sealed and the entire apparatus is covered. FIG. 3 is a schematic diagram of the steps for producing an ozone-containing liquid using the apparatus 100 in FIG. 1(a), in which droplets containing bubbles with a D50 of 1 μm or less are generated by irradiating the liquid with ultrasound, and the collection container 106 is filled with an ozone atmosphere by the ozone gas generation unit 102. At the same time, the generated droplets are not leaked to the outside, and can be collected as an ozone-containing liquid containing bubbles with a D50 of 1 μm or less.
[0021] When irradiating a liquid with ultrasonic waves to atomize it, it is preferable that the thickness of the liquid placed on the vibrator be 15 cm or less, depending on the output and strength of the vibrator that irradiates the ultrasonic waves. If the thickness of the liquid exceeds 15 cm, the intensity of the ultrasonic irradiation required for atomization increases, raising concerns about its impact on the liquid medium. If water is taken as a specific example of a liquid, there is a concern that hydroxyl radicals generated from water molecules may react with dissolved nitrogen in the atmosphere, resulting in the production of nitrogen oxides. Furthermore, recovery methods include contact recovery of the atomized liquid, or collection at a specific location using a fan or the like.
[0022] [Variation 1] The method for producing ozone water by applying ultrasonic vibrations is not limited to the above. Here, Modification 1 will be described with reference to FIG. 4. FIG. 4(a) is a perspective view of a device 201 that generates bubbles by vibrations caused by ultrasonic waves, and FIG. 4(b) is a top view of the device 201 that generates bubbles. As shown in FIG. 4(a), there are fine holes (mesh 202) in the center of the top surface of the atomization bubble generator 201. These holes are connected to the bottom side of the atomization bubble generator 201, and liquid is supplied from the bottom side by capillary force or the like. When ultrasonic vibrations are applied to this supplied liquid (for example, stored in 204) by a vibrator 203 provided around the mesh 202, fine droplets are generated (so-called atomization). At this time, it is thought that dissolved gas contained in the liquid becomes small bubbles due to a sudden pressure change caused by the ultrasonic vibrations. It is also thought that bubbles are generated by the gas in the space being absorbed when the liquid becomes fine droplets (atomization).
[0023] Desired ozone water can be produced by using an ozone-containing gas in a collection container, similar to the apparatus 100 of the first embodiment for producing ozone water shown in FIG. 4. A downward atomization direction is effective because the atomized liquid falls under its own weight and can be collected, but upward or horizontal directions are also acceptable. To prevent bubbles from escaping and diffusing from the liquid, the average relative humidity derived from the droplet components in the space can be set to 80% or higher, which is expected to be effective in preventing diffusion. If this average value is less than 80%, the amount of liquid recovered will be small due to evaporation of the bubble-containing droplets, resulting in a reduced recovery rate. Furthermore, if the weight ratio of the bubble-containing liquid to the raw liquid is less than 80%, there is a concern that the atomized droplets will leak out of the production apparatus, resulting in a reduced yield.
[0024] <About liquids> The liquid to be atomized may be water, an organic liquid, an ionic liquid, or the like, but water is preferred. The means for supplying the liquid to be atomized by ultrasonic irradiation is not particularly limited. For example, when water is used as the liquid to be atomized, water may be supplied to a tank in a batch system, water may be supplied through a pipe from a water pipe, or moisture in the air may be supplied as condensed water using a Peltier element or the like. Shaking and stirring the liquid to be atomized by ultrasonic irradiation in a desired gas atmosphere produces water with the desired gas dissolved therein, according to Henry's law. In an oxygen atmosphere, water containing 45 ppm of oxygen is produced. On the other hand, in the atmosphere, water with approximately 8.4 ppm of dissolved oxygen can be produced at room temperature.
[0025] Examples of water include purified water with high purity (ultrapure water), tap water, and hard water. These waters may also contain solutes that dissolve in them (electrolytes formed by dissociation of sodium chloride, silver nitrate, etc., free chlorine, amino acids, sugars, buffers, dyes, etc.), and may also contain dispersants (pigments, dispersants, cells, bubbles, emulsions, titanium oxide, emulsifiers, etc.).
[0026] A mixture of water and a water-soluble organic solvent can also be used. The water-soluble organic solvent to be used is not particularly limited, but specific examples include the following: alkyl alcohols having 1 to 4 carbon atoms, amides, ketones or keto alcohols, cyclic ethers, glycols, lower alkyl ethers of polyhydric alcohols, polyalkylene glycols, and triols.
[0027] The water-soluble organic solvents listed above may be used alone or in combination of two or more.
[0028] Furthermore, as the liquid for the gas dissolving solution, it is also possible to use a liquid derived from a living body, specifically blood, cerebrospinal fluid, or the like.
[0029] Although there are no particular limitations on the ultrasonic irradiation unit for atomization, piezoelectric materials are preferred. Piezoelectric materials are widely used in applications such as actuators, ultrasonic wave emitting vibrators, micropower sources, and high-voltage generators. Many of the piezoelectric materials used in these devices are a material known as PZT, which is an oxide containing lead (Pb), zirconium (Zr), and titanium (Ti). Therefore, due to environmental concerns, development of lead-free piezoelectric materials is underway.
[0030] An example of a lead-free piezoelectric material is a Ba-based perovskite oxide expressed by the general formula BaM'O3. Here, M' represents a mixed crystal of one element or two or more elements in a certain composition ratio, but the general formula BaM'O3 must satisfy the requirement that the charge be neutral. An example of a piezoelectric material expressed by BaM'O3 is BaTiO3, which has a tetragonal structure near room temperature.
[0031] A commercially available unit can be used as the ultrasonic irradiation unit. A nebulizer is also a suitable example of a commercially available ultrasonic atomization generator. Another suitable embodiment involves separating the liquid that is the raw material for the fine gas-bubble-containing liquid from a liquid phase provided with a piezoelectric atomization unit that irradiates ultrasonic waves, and then indirectly atomizing the liquid with piezoelectric force. The oscillator frequency is not particularly limited, but 1.6 MHz is preferred.
[0032] As an example of improving acid resistance, alkali resistance, solvent resistance, and corrosion resistance (to ozone water, etc.), it is also preferable to coat the liquid-contacting parts of the piezoelectric element with a fluorine-based resin, a titanium-based material, or a glass material such as quartz.
[0033] The following describes humidity. The humidity described in this specification is relative humidity, with 0% representing an atmosphere in which the target gas component for relative humidity is completely absent within the collection mechanism, and 100% representing an atmosphere in which the target gas component condenses within the collection mechanism. If the target liquid is water, it can be measured using a general-purpose hygrometer. However, if the target liquid is something other than water, it is necessary to confirm that the target liquid component is not present in the collection container at the start of ozone water production. A useful method for this confirmation is to use a gas detector tube for the target liquid component. After confirmation, ozone water production is started, and the state in which condensation occurs within the collection mechanism is considered to be a state in which the target liquid has a relative humidity of 100%. Therefore, from this state onward, the state of 100% relative humidity will continue while the ozone water is produced by atomization with power applied. Furthermore, the "average relative humidity" in this specification refers to the average relative humidity in the space of the collection mechanism from the start to the end of ozone water production at room temperature and pressure of 25°C and 1 atmosphere.
[0034] (Explanation of specific embodiments) Hereinafter, ozone water was produced using the ozone water production apparatus shown in the above figures under various production conditions, and the results of verifying the produced ozone water will be described.
[0035] The ozone concentration in the ozone water was quantified using a Pack Test manufactured by Kyoritsu Chemical Research Institute. Furthermore, the bubbles in the produced ozone water were measured using a nanoparticle size distribution analyzer (model SALD-7500) manufactured by Shimadzu Corporation. The raw material liquid before the fine bubbles were generated was used for comparison. The cumulative 50% particle size based on volume of the bubbles contained in the ozone water was used as D50. Similarly, the cumulative 90% particle size was used as D90.
[0036] The odor was analyzed using a San-Ai Oil Biochecker. Ozone release into the gas phase was measured by placing 100 ml of ozone water in a beaker and placing it in six 1 cubic meter (1 m x 1 m x 1 m) containers with lids. After one minute, the lids were opened and the odor was detected. The evaluation criteria are as follows: A: I didn't smell anything. B: I got used to it, but I remembered the smell. C: There was a clear odor and it irritated my nose and throat. D...coughed
[0037] In addition, an ozone gas concentration meter was used to fill a container with a 10cm diameter opening with liquid so that the container's volume was 50% or more, and while the opening was left open, the ozone gas concentration in the space was measured at room temperature and normal pressure using a gas concentration meter placed 3cm vertically above the opening. The evaluation criteria for the ozone concentration in the gas at this time are as follows: A: Less than 0.1 B: 0.1 or more and less than 0.2 C: 0.2 or more and less than 0.5 D...0.5 or more
[0038] The ozone concentration in the liquid was verified. The dissolved ozone concentration in the FB (Fine Bubble)-containing liquid before production and after storage was determined based on a color reaction caused by oxidative coupling with Trinder's reagent. When the upper limit of the measured concentration was reached, the ozone was diluted with ultrapure water and converted to a concentration. The test liquid was sealed in a PFA container without a gas phase and stored at room temperature for 10 days. The ozone concentration at the time of production of the ozone-containing liquid was compared with the ozone concentration 10 days after production. The evaluation criteria for the ozone concentration after 10 days are as follows: The initial ozone concentration was defined as C0, and the ozone concentration 10 days after production was defined as C10. The change in ozone concentration was calculated as C10 / C0 x 100. A: 80% or more B: Between 60% and 80% C: 10% or more but less than 60% D: Less than 10%
[0039] The bactericidal effect of ozone water was also verified. Specifically, a comparative test was conducted using a biochecker when ozone water was added to a suspension containing Escherichia coli and Staphylococcus aureus, and compared with ultrapure water. The evaluation criteria are as follows: A: 99% or more B: Between 80% and 99% C: 50% or more but less than 80% D: Less than 50%
[0040] Example 1 Ozone water was produced using the device 500 shown in Figure 5. A piezoelectric ceramic microporous mist-maker fogger, commonly used in ultrasonic humidifiers, was used as the atomized bubble generator. This mist-maker fogger can generate approximately 20 ml of 10 μm mist in one hour. The ambient ozone concentration was measured using an ozone gas detector tube one minute after ozone gas production and was found to be 180 ppm. An ozone generator 102 was installed inside the container. The ambient ozone concentration was measured using an ozone gas detector tube one minute after ozone gas production and was found to be 15 ppm. Ozone water was produced. The average relative humidity (referred to as the average relative humidity) in the collection container during production was 85%. Ozone water was produced using a configuration in which the liquid atomized and released into the ozone space was collected. The average relative humidity in the collection container during production was 85%. The ozone concentration in the liquid was 1.2 ppm. Unless otherwise specified in the following examples, the average relative humidity is 80% or higher.
[0041] Example 2 As in Example 1, a piezoelectric ceramic microporous mist maker fogger used in ultrasonic humidifiers was used, using the device 600 in Figure 6 (with the atomization bubble generator facing downward). The air ozone concentration was measured using an ozone gas detector tube one minute after ozone gas production and was found to be 15 ppm. Ozone water was produced using a configuration in which the liquid atomized and released into the ozone space was collected. The average relative humidity in the collection container during production was 90%. The ozone concentration in the liquid was 1.2 ppm.
[0042] Example 3 Ozone water was produced using the same device as in Example 1. The air ozone concentration was measured using an ozone gas detector tube one minute after the production of ozone gas and was found to be 50 ppm. The ozone water was produced using a configuration in which the liquid that was atomized and released into the ozone space was collected. The average relative humidity in the collection container during production was 88%. The ozone concentration in the liquid was 5 ppm.
[0043] Example 4 Ozone water was produced using the same device as in Example 2. The air ozone concentration was measured using an ozone gas detector tube one minute after the production of ozone gas and was found to be 50 ppm. The ozone water was produced using a configuration in which the liquid that was atomized and released into the ozone space was collected. The average relative humidity in the collection container during production was 90%. The ozone concentration in the liquid was 5 ppm.
[0044] Example 5 Ozone water was produced using the same device as in Example 1. The air ozone concentration was measured using an ozone gas detector tube one minute after the production of ozone gas and was found to be 100 ppm. The ozone water was produced using a configuration in which the liquid that was atomized and released into the ozone space was collected. The average relative humidity in the collection container during production was 85%. The ozone concentration in the liquid was 13 ppm.
[0045] Example 6 Ozone water was produced using the same device as in Example 2. The air ozone concentration was measured using an ozone gas detector tube one minute after the production of ozone gas and was found to be 100 ppm. The ozone water was produced using a configuration in which the liquid that was atomized and released into the ozone space was collected. The average relative humidity in the collection container during production was 90%. The ozone concentration in the liquid was 13 ppm.
[0046] Example 7 Ozone water was produced using the same device as in Example 1. The air ozone concentration was measured using an ozone gas detector tube one minute after the production of ozone gas and was found to be 180 ppm. The ozone water was produced using a configuration in which the liquid that was atomized and released into the ozone space was collected. The average relative humidity in the collection container during production was 85%. The ozone concentration in the liquid was 50 ppm.
[0047] Example 8 Ozone water was produced using the same device as in Example 2. The air ozone concentration was measured using an ozone gas detector tube one minute after the production of ozone gas and was found to be 180 ppm. The ozone water was produced using a configuration in which the liquid that was atomized and released into the ozone space was collected. The average relative humidity in the collection container during production was 90%. The ozone concentration in the liquid was 50 ppm.
[0048] Example 9 Ozone water was produced using the same device as in Example 1. The air ozone concentration was measured using an ozone gas detector tube one minute after the production of ozone gas and was found to be 200 ppm. The ozone water was produced using a configuration in which the liquid that was atomized and released into the ozone space was collected. The average relative humidity in the collection container during production was 90%. The ozone concentration in the liquid was 70 ppm.
[0049] Example 10 Ozone water was produced using the same device as in Example 2. The air ozone concentration was measured using an ozone gas detector tube one minute after the production of ozone gas and was found to be 200 ppm. The ozone water was produced using a configuration in which the liquid that was atomized and released into the ozone space was collected. The average relative humidity in the collection container during production was 99%. The ozone concentration in the liquid was 70 ppm.
[0050] Example 11 Ozone water was produced using the same device as in Example 1. The air ozone concentration was measured using an ozone gas detector tube 30 seconds after the production of ozone gas and was found to be 200 ppm. The ozone water was produced using a configuration in which the liquid that was atomized and released into the ozone space was collected. The average relative humidity in the collection container during production was 90%. The ozone concentration in the liquid was 100 ppm.
[0051] Example 12 Ozone water was produced using the same device as in Example 2. The air ozone concentration was measured using an ozone gas detector tube 30 seconds after the production of ozone gas and was found to be 200 ppm. The ozone water was produced using a configuration in which the liquid that was atomized and released into the ozone space was collected. The average relative humidity in the collection container during production was 99%. The ozone concentration in the liquid was 100 ppm.
[0052] Example 13 Ozone water was produced using the same device as in Example 2. The gas in the container was replaced with oxygen during this process. The ozone concentration in the air was measured 10 seconds after the production of ozone gas using an ozone gas detector tube and was found to be 200 ppm. Ozone water was produced using a configuration in which the liquid that was atomized and released into the ozone space was collected. The average relative humidity in the collection container during production was 99%. The ozone concentration in the liquid was 500 ppm.
[0053] Example 14 Ozone water was produced using the device 700 shown in Figure 7. A piezoelectric atomization element (1.6 MHz) manufactured by Seiko Giken was used as the atomization bubble generator 101. The atomization bubble generator 101 was placed in a glass container 107, and 300 ml of ultrapure water was poured into it. The height at which the atomization bubble generator 101 was installed was adjusted so that the distance between the gas-liquid interface and the piezoelectric element surface was 3.5 cm. An ozone generator 102 was installed inside the container. The air ozone concentration at this time was measured using an ozone gas detector tube 1 minute after ozone gas production and was found to be 15 ppm. Ozone water was produced. The average relative humidity in the collection container during production (referred to as the average relative humidity) was 90%. The ozone concentration in the liquid was 1 ppm.
[0054] Example 15 Ozone water was produced using the same device as in Example 14. The air ozone concentration was measured using an ozone gas detector tube 1 minute after the production of ozone gas and was found to be 170 ppm. Ozone water was produced. The average value of the relative humidity in the collection container during production (referred to as the average relative humidity) was 90%. The ozone concentration in the liquid was 50 ppm.
[0055] Example 16 Ozone water was produced using the same device as in Example 14. The gas in the container was replaced with oxygen during this process. The ozone concentration in the air was measured using an ozone gas detector tube 10 seconds after the ozone gas was produced and was found to be 200 ppm. Ozone water was produced using a system that collected the liquid that had been atomized and released into the ozone space. The average relative humidity in the collection container during production was 99%. The ozone concentration in the liquid was 500 ppm.
[0056] (Comparative Example 1) In Example 1 (FIG. 4), ozone water production was attempted in a state where outside air could be taken into the collection container 106 to improve air circulation. The local relative humidity was 81%. The relative humidity in the space where the liquid was atomized and diffused was 40% in the initial state, and the average relative humidity during production was 78%. Using such a device, we attempted to produce ozone water, but it was difficult to collect it.
[0057] (Comparative Example 2) In Example 14, the height at which the piezoelectric element was installed was adjusted so that the distance between the gas-liquid interface and the surface of the piezoelectric element was 30 cm. Except for this, an attempt was made to produce ozone water in the same manner as in Example 1. Furthermore, no formation of a water column or opacification of the gas phase was observed at the liquid-gas interface, and no microdroplets were generated.
[0058] (Comparative Example 3) In Example 14, the piezoelectric element was changed to a 267 Hz probe type. Otherwise, an attempt was made to produce a liquid containing fine gas bubbles in the same manner as in Example 14. Furthermore, no formation of a water column or opacification of the gas phase was observed at the liquid-gas interface, and no microdroplets were generated.
[0059] Comparative Example 4 Ozone water was produced by injecting high-concentration ozone gas from the outside using an apparatus 800 as shown in Figure 8. An air bubble atomization device 301 was installed, with the air bubble atomization device connected to the exhaust port. Specifically, the gas phase and the aqueous phase were separated by a microporous membrane, and the gas phase side was pressurized using an air pump. Air was introduced through the microporous membrane, and ozone bubbling was performed to produce ozone water. A filter membrane with a molecular weight cutoff of 1000 (Minimate, manufactured by Nippon Pall) was used as the microporous membrane. The ozone concentration in the liquid was 1.5 ppm.
[0060] (Comparative Example 5) In the apparatus 900 shown in Figure 9, ultrapure water was placed in a sealed container, an ozone gas generator was attached, and ozone was generated. The ozone gas generator was then removed, the container was sealed, and the water was stirred with a paint shaker to produce ozone water. The ozone concentration in the liquid was 5 ppm.
[0061] Below, a table summarizing the above examples and comparative examples is provided.
[0062] [Table 1]
[0063] [Table 2]
Claims
1. A liquid containing ozone, the liquid contains at least ozone and a plurality of bubbles retained in the liquid; D50, which is a volume-based cumulative 50% particle size of bubbles based on a particle size distribution of bubble diameters of a plurality of bubbles contained per unit volume of the liquid, is less than 1 μm; The liquid is placed in a container having an opening with a diameter of 10 cm so that the liquid occupies 50% or more of the volume of the container, and while the opening is open, the ozone gas concentration in the space measured at 25°C and 1 atmosphere using a gas concentration meter positioned 3 cm vertically above the opening is less than 0.1 ppm.
2. 2. The liquid according to claim 1, wherein the ozone concentration of the liquid is 60% or more 10 days after preparation compared to the concentration at the time of preparation.
3. The liquid according to claim 1 or 2, characterized in that D90, which is the cumulative 90% particle size based on volume of bubbles in a population based on the particle size distribution of the bubble diameters of a plurality of bubbles in the ozone-containing liquid, is less than 1 μm.
4. 3. The liquid according to claim 1, wherein the ozone-containing liquid has an ozone concentration of 5 ppm or more.
5. 3. The liquid according to claim 1, wherein the ozone-containing liquid has an ozone concentration of 13 ppm or more.
6. 3. The liquid according to claim 1, wherein the ozone-containing liquid has an ozone concentration of 50 ppm or more.
7. 3. The liquid according to claim 1, wherein the ozone-containing liquid has an ozone concentration of 70 ppm or more.
8. a generating step of atomizing a liquid by irradiating it with ultrasonic waves to generate droplets containing fine bubbles; contacting the droplets with ozone; a collecting step of collecting the droplets into a collection container by a collection mechanism including the collection container; and a step of obtaining the liquid according to claim 1 or 2 through the recovery step.
9. The generating step includes: A generating device including a mesh and a vibrator is used, 9. The method for producing an ozone-containing liquid according to claim 8, wherein the bubbles are generated by supplying a liquid to the mesh and irradiating the supplied liquid with ultrasonic waves by the vibrator.
10. 9. A method for producing an ozone-containing liquid as described in claim 8, characterized in that the average relative humidity inside the recovery container during execution of the method for producing an ozone-containing liquid is 80% or more, where the humidity when the liquid condenses is 100%.
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Patent Citations
Sustained-release ozone water, and method and device for producing the same
JP2009154076A