Carbon dioxide detector
The carbon dioxide gas detector with a pH indicator, alkaline agent, and water-retaining agent in a carrier composition addresses the challenge of rapid concentration detection and fluidity, ensuring timely detection and preventing product deterioration.
Patent Information
- Application Number
- JP2022516965
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-04-22
- Filing Date
- 2021-04-12
- Publication Date
- 2025-08-13
- Estimated Expiration
- 2041-04-12
AI Technical Summary
Existing carbon dioxide gas detectors face challenges in detecting concentration changes quickly and maintaining fluidity, especially in complex packaging shapes, and they struggle to confirm carbon dioxide presence or absence accurately.
A carbon dioxide gas detector comprising a carrier impregnated with an ink composition containing a pH indicator, an alkaline agent, a water-retaining agent, and water, with specific water content and ratios, and optionally a spreading agent, to enhance fluidity and rapid detection.
The detector can rapidly detect increases and decreases in carbon dioxide concentration and has excellent fluidity, ensuring timely detection and preventing product deterioration.
Smart Images

Figure 0007722360000001
Abstract
Description
[Technical Field]
[0001] The present invention relates to a carbon dioxide gas detector. [Background technology]
[0002] To preserve foods, beverages, and medicines that may deteriorate when exposed to oxygen, packaging containers are filled with an inert gas that does not react with the contents. Carbon dioxide is a commonly used gas for this purpose. Carbon dioxide is also used to preserve foods, beverages, and medicines that may lose their quality or efficacy due to the release of carbon dioxide. However, damage to the packaging container can reduce the carbon dioxide concentration inside, which can lead to deterioration of the contents.
[0003] In particular, bicarbonate-containing medicinal solutions are drugs that lose their medicinal efficacy by releasing carbon dioxide gas. Therefore, by packaging a container containing the bicarbonate-containing medicinal solution together with carbon dioxide gas in a gas-barrier packaging container, the release of carbon dioxide gas can be prevented while preserving the drug. However, if a pinhole or poor sealing occurs due to a defect in the packaging material itself, a mistake when sealing the contents, or an impact during transportation such as distribution, at home or in a hospital, the atmosphere in the gas-exchange package can change, causing deterioration of the contents. Furthermore, there is a risk that the change in the atmosphere in the gas-exchange package can be distributed without being noticed. As a simple method to prevent such a situation, a carbon dioxide gas detector is enclosed in the packaging container at the same time as the carbon dioxide gas, and studies are being conducted to more easily and accurately confirm the presence of carbon dioxide gas.
[0004] For example, Patent Document 1 discloses a carbon dioxide gas detecting agent package having a breathable substrate, which is a detecting agent package that does not require any handling during use and does not pose a risk of the contents scattering. Furthermore, Patent Document 2 discloses a carbon dioxide gas detector that changes color even in a low-concentration carbon dioxide atmosphere and allows visual determination of the generation of carbon dioxide gas. The carbon dioxide gas detector comprises a substrate that contains a pH indicator and a water-retaining agent and is impregnated with an alkaline aqueous solution adjusted so that the pH indicator exhibits an alkaline color, and is enclosed in a small bag with a specific water vapor permeability. Furthermore, Patent Document 3 discloses an ink for detecting carbon dioxide gas, which contains a pH indicator, a binder, and a solvent, as an ink composition for detecting carbon dioxide gas, which allows for an easily visible change in color. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-219084 [Patent Document 2] Japanese Patent Application Laid-Open No. 2008-224579 [Patent Document 3] International Publication No. 2001 / 044385 Summary of the Invention [Problem to be solved by the invention]
[0006] As applications expand and the shapes of packaging containers become more diverse, a variety of shapes and sizes of carbon dioxide gas detectors are required, and to meet these needs, the detector agent is granulated and stored in a bag or the like of a size appropriate for the packaging container. Patent Documents 1 and 2 describe granular detector agents, but from the perspective of more complex shapes and productivity, a granular detector agent with high fluidity is required. Furthermore, because the hue change is due to the hue change of the aqueous solution of the pH indicator impregnated in the carrier within the packaging container, there is also the problem that it takes time to visually recognize the hue change after the carbon dioxide concentration actually decreases. Furthermore, if it takes time for the color change to occur as described above, it takes time not only during use but also during the manufacture of the carbon dioxide gas detector and during the manufacture and packaging of food and medicine to confirm that the carbon dioxide gas has been properly sealed in. Regarding this problem, for example, the carbon dioxide gas detector in Patent Document 3 has the ability to change color when the carbon dioxide gas concentration drops, making it possible to determine whether carbon dioxide has leaked, but conversely, it cannot confirm whether carbon dioxide has been generated when there is no carbon dioxide gas present. Therefore, an object of the present invention is to provide a carbon dioxide gas detector element that can detect decreases and increases in carbon dioxide gas concentration in a short period of time and has excellent fluidity. [Means for solving the problem]
[0007] As a result of intensive research in light of the above-mentioned problems, the inventors have found that the above-mentioned problems can be solved by a carbon dioxide gas detector which comprises a carrier impregnated with an ink composition containing a pH indicator, an alkaline agent, a water retention agent and water, and which also contains a specific amount of water, and have thus completed the present invention. The present invention provides the following [1] to
[10] .
[0008] [1] A carbon dioxide gas detector in which a carrier is impregnated with an ink composition containing a pH indicator, an alkaline agent, a water-retaining agent, and water, wherein the water content of the carbon dioxide gas detector is 30 to 40 mass %. [2] The carbon dioxide gas detector according to [1], wherein the pH indicator is meta-cresol purple. [3] The carbon dioxide gas detector according to [1] or [2], wherein the water-retaining agent is at least one selected from the group consisting of polyhydric alcohols, polyalkylene glycols, acrylic polymers, and cellulose. [4] The carbon dioxide gas detector according to any one of the above [1] to [3], wherein the mass ratio of water to the carrier (water / carrier) is 0.7 to 1.0. [5] The carbon dioxide gas detector according to any one of the above [1] to [4], wherein the mass ratio of water to the water retention agent (water / water retention agent) is 1.2 to 1.9. [6] The carbon dioxide gas detector according to any one of the above [1] to [5], further comprising a spreading agent. [7] The carbon dioxide gas detector according to [6], wherein the spreading agent is hydrophobic silica. [8] A method for producing a carbon dioxide gas detector, which comprises impregnating a carrier with an ink composition containing a pH indicator, an alkaline agent, a water-retaining agent, and water, and then mixing it with a spreading agent. [9] A package characterized in that the carbon dioxide gas detector according to any one of [1] to [7] is placed inside an outer packaging in which a gas containing carbon dioxide gas is sealed.
[10] A method for storing a bicarbonate-containing infusion, comprising placing the carbon dioxide detector according to any one of [1] to [7] and a bicarbonate-containing infusion in an exterior packaging containing a gas containing carbon dioxide. [Effects of the Invention]
[0009] According to the present invention, it is possible to provide a carbon dioxide gas detector element that is capable of detecting a decrease or increase in carbon dioxide gas concentration in a short period of time and has excellent fluidity. DETAILED DESCRIPTION OF THE INVENTION
[0010] [Carbon dioxide detector] The carbon dioxide gas detector of the present invention is a carbon dioxide gas detector in which a carrier is impregnated with an ink composition containing a pH indicator, an alkaline agent, a water retention agent and water, and the water content of the carbon dioxide gas detector is 30 to 40 mass %.
[0011] <Ink composition> The ink composition contained in the carbon dioxide gas detector contains a pH indicator, an alkaline agent, a water retention agent, and water.
[0012] (pH indicator) pH indicators are used to detect carbon dioxide. By utilizing the pH change caused by the neutralization of alkali by carbon dioxide, carbon dioxide can be clearly detected even in low concentration ranges. The pH indicator used in the carbon dioxide gas detector of the present invention is preferably an indicator that changes color in a neutral to alkaline range, more preferably an indicator that changes color in a pH range of 7.0 to 10.0, and even more preferably an indicator that changes color in a pH range of 7.2 to 9.6. Furthermore, an indicator that changes color in a distinctly different range so that a clear determination can be made is preferred. Furthermore, an indicator with high thermal stability so that it can be used even at high temperatures is preferred.
[0013] Examples of pH indicators that change color in the neutral to alkaline range include phenol red, cresol red, curcumin, cyanine, α-naphtholphthalein, metacresol purple, thymol blue, o-cresolphthalein, phenolphthalein, etc. These can be used alone or in combination of two or more, but when combining, it is preferable to combine indicators that change color to the same type of hue. Among these, meta-cresol purple is preferred as the pH indicator because it changes color in the alkaline range, changing from purple to yellow at pH 9.0, the color change is large, and it has high chemical stability.
[0014] The amount of pH indicator is preferably an amount that clearly colors the ink and allows a visually identifiable color change, and is preferably 0.001 to 0.1 mass %, more preferably 0.005 to 0.05 mass %, in the ink composition, and is preferably 0.0005 to 0.05 mass %, more preferably 0.001 to 0.01 mass %, in the carbon dioxide gas detector.
[0015] (Alkaline agent) Since carbon dioxide gas is detected by a pH indicator, the ink composition used in the carbon dioxide gas detector of the present invention contains an alkaline agent. The alkaline agent is preferably a compound that is highly soluble in water. Examples of the alkaline agent include metal phosphates, metal hydroxides, metal silicates, metal sulfites, and metal carbonates, with metal phosphates and metal hydroxides being preferred, and metal phosphates being more preferred. Metal phosphates and metal hydroxides are preferred because they have particularly high solubility in water. As the metal phosphate, trisodium phosphate is preferred. Examples of metal hydroxides include sodium hydroxide and potassium hydroxide, with sodium hydroxide being preferred.
[0016] The amount of the alkaline agent is preferably adjusted depending on the pH of the aqueous solution, and is preferably 0.02 to 1.0 mass %, more preferably 0.1 to 0.5 mass %, in the ink composition, and is preferably 0.01 to 0.5 mass %, more preferably 0.05 to 0.2 mass %, in the carbon dioxide gas detector.
[0017] (water retention agent) To retain moisture, the ink composition used in the carbon dioxide gas detector of the present invention contains a water retention agent. The type of water retention agent is not particularly limited as long as it has the effect of reducing water activity when added to the carbon dioxide gas detector, but the following agents are preferably used: The water-retaining agent is preferably at least one selected from the group consisting of polyhydric alcohols, polyalkylene glycols, acrylic polymers and cellulose, and more preferably polyhydric alcohols. Examples of polyhydric alcohols include glycerin, ethylene glycol, and propylene glycol, with glycerin being preferred among these. Examples of polyalkylene glycols include polyethylene glycol. Examples of the acrylic polymer include polyacrylates and polyacrylic esters.
[0018] The amount of the water retention agent in the ink composition is preferably 10 to 70% by mass, more preferably 20 to 60% by mass, from the viewpoint of speeding up detection of carbon dioxide concentration and effectively reducing water activity, and is preferably 5 to 50% by mass, more preferably 10 to 40% by mass, in the carbon dioxide detector.
[0019] (water) From the viewpoint of quickly detecting the carbon dioxide concentration, the content of water in the ink composition is preferably 40 to 75% by mass, more preferably 50 to 65% by mass, and in the carbon dioxide detector, it is 30 to 40% by mass, preferably 32 to 40% by mass, more preferably 34 to 40% by mass, even more preferably 36 to 40% by mass, and even more preferably 36 to 39.5% by mass. From the viewpoint of rapid detection of carbon dioxide concentration, the mass ratio of water to the water retention agent (water / water retention agent) is preferably 1.0 to 2.0, and more preferably 1.2 to 1.9. By setting the mass ratio of water to the water retention agent within this range, a carbon dioxide gas sensor with no unevenness can be obtained during production. In particular, mixing is sufficient, resulting in a uniform particulate carbon dioxide gas sensor. Furthermore, the mass ratio of water to the carrier (water / carrier), which will be described later, is preferably 0.5 to 2.0, more preferably 0.7 to 1.0, from the viewpoint of speeding up the detection of carbon dioxide concentration and improving fluidity. By setting the mass ratio of water to the carrier within the above range, color development is improved and the product can be easily filled into packaging materials.
[0020] <Carrier> The carbon dioxide gas detector of the present invention is obtained by impregnating a carrier with the ink composition, and by impregnating the carrier and forming the ink into particles, the detector has excellent flowability. As the carrier, porous particles are preferred, and porous inorganic particles are more preferred. Examples of porous inorganic particles include silica gel, diatomaceous earth, zeolite, and porous silicates, with porous silicates being preferred. Among the porous silicates, magnesium aluminometasilicate is preferred because it is also suitable for food and pharmaceutical applications. The carrier is preferably colorless or white so that the color change is clear.The carrier preferably has a pH in the range of neutral to alkaline. The average particle size of the carrier is preferably from 1 to 500 μm, more preferably from 100 to 300 μm, from the viewpoint of flowability and compounding ability. From the viewpoint of flowability, the shape of the carrier is preferably spherical or approximately spherical, and more preferably spherical.
[0021] The amount of the carrier is preferably 20 to 70 mass %, more preferably 30 to 60 mass %, in the carbon dioxide gas detector element, from the viewpoint of speeding up the detection of carbon dioxide gas concentration and improving fluidity.
[0022] <Spreading agent> The carbon dioxide gas detector of the present invention preferably contains a spreading agent from the viewpoint of improving fluidity while maintaining the clarity of the color change. The spreading agent is preferably attached to the outer surface of the carrier impregnated with the ink composition. The spreading agent is preferably spherical fine particles, more preferably silica, and even more preferably hydrophobic silica.
[0023] The amount of the spreading agent in the carbon dioxide gas detector is preferably 0.1 to 5 mass %, more preferably 0.2 to 2 mass %, from the viewpoint of improving fluidity.
[0024] <Packaging> The carbon dioxide gas detector of the present invention is in the form of particles with high fluidity, and although it can be used as is depending on the application, it is preferable to package it, store it, and then use it. The packaging form may be a bag, a box, or the like, with the bag being preferred. The material used for packaging is preferably a transparent resin film, since the presence or absence of carbon dioxide can be determined visually from the outside by checking the change in color. Preferred packaging materials include biaxially oriented polypropylene (OPP), unoriented polypropylene (CPP), low-density polyethylene (LDPE), linear low-density polyethylene (LLDPE), high-density polyethylene (HDPE), polyethylene terephthalate (PET), polyvinyl alcohol (PVA), polyvinyl chloride (PVC), polyvinylidene chloride (PVDC), oriented polyamide (ONY), and the like.
[0025] Furthermore, since it is necessary to open a portion of the packaging to expose the carbon dioxide gas detector to the external atmosphere for detecting the carbon dioxide gas concentration, it is preferable to provide a vent hole in a portion of the packaging. The vent hole is preferably one that does not allow the carbon dioxide gas detector of the present invention to pass through but allows carbon dioxide gas to pass through, and is preferably a vent hole formed by a filamentous material or a fine porous membrane, more preferably a vent hole formed by a filamentous material. Examples of porous membranes include nonwoven fabrics. A part of the thread-like material is present inside the package (the carbon dioxide gas detector housing section), and a part of it reaches the outside of the package. When the thread-like material forms an air hole, the air permeability is achieved by the spaces between the fibers constituting the thread-like material or between the fibers and the material used for the package. The thread-like material may be any material that is an aggregate of fibrous materials and forms a thread shape, and preferably has a melting point of 80°C or higher so as to withstand packaging molding. An example of such a thread-like material is sewing thread. Materials for the thread-like material include polyethylene terephthalate, cotton, polyester, vinylon, silk, and nylon, with polyethylene terephthalate, nylon, and vinylon being preferred. The thread size is preferably 1 to 100 count, more preferably 10 to 80 count, and even more preferably 15 to 60 count.
[0026] [Manufacturing method of carbon dioxide gas detector] There are no limitations on the method for producing the carbon dioxide gas detector of the present invention, but it is preferable to produce it by impregnating a carrier with an ink composition containing a pH indicator, an alkaline agent, a water retention agent and water, and more preferably to produce it by impregnating a carrier with an ink composition containing a pH indicator, an alkaline agent, a water retention agent and water, and then mixing it with a spreading agent.
[0027] In order to uniformly impregnate the carrier with the ink composition, it is preferable to stir the ink composition using a mixer. In order to ensure that the spreading agent is evenly applied to the periphery of the carrier, it is preferable to stir the agent using a mixer. As for the stirring conditions, stirring is preferably carried out at a speed of 10 to 40 rpm.
[0028] [Packaging] The package of the present invention is characterized in that the carbon dioxide gas detector is disposed inside an exterior packaging in which a gas containing carbon dioxide is sealed. That is, the package of the present invention is characterized in that a carrier is impregnated with an ink composition containing a pH indicator, an alkaline agent, a water retention agent, and water, and a carbon dioxide gas detector having a water content of 30 to 40 mass % is disposed inside an exterior packaging in which a gas containing carbon dioxide is sealed.
[0029] The package of the present invention contains a gas containing carbon dioxide gas and the carbon dioxide gas detector inside the package, i.e., inside the outer packaging, and also contains other contents such as a medicinal solution, food, etc. The contents, such as a liquid medicine or food, are preferably further housed in a container, and the container is preferably disposed within the exterior body.
[0030] The exterior body used in the package of the present invention is preferably made of a gas barrier material that is difficult for gases including carbon dioxide to pass through, and specific examples include resin films such as ethylene-vinyl alcohol copolymer, polyethylene terephthalate, nylon, and composite films in which silica, alumina, etc. are vapor-deposited onto these resin films. However, a part of the exterior body is transparent so that the color change of the carbon dioxide gas detector can be visually recognized from outside the exterior body. The carbon dioxide-containing gas may be composed of only carbon dioxide, or may be composed of carbon dioxide and an inert gas. The concentration of carbon dioxide in the carbon dioxide-containing gas is preferably 1 to 50%.
[0031] The contents to be placed in the package of the present invention include medicinal liquids, foods, etc., and specifically include medicinal liquids containing bicarbonate such as sodium bicarbonate, fruits and vegetables, raw meat, and confectioneries. In particular, when bicarbonate-containing infusion liquids are used as medicinal liquids, the carbon dioxide gas detector can detect the carbon dioxide concentration in a short time, allowing for early use or transfer and storage in a carbon dioxide gas atmosphere, thereby suppressing product deterioration, which is preferable.
[0032] [Storage method for bicarbonate-containing infusions] The method for storing bicarbonate-containing infusions of the present invention involves placing the carbon dioxide detector and the bicarbonate-containing infusion inside an exterior packaging containing a gas containing carbon dioxide. That is, the method for storing bicarbonate-containing infusions of the present invention involves impregnating a carrier with an ink composition containing a pH indicator, an alkaline agent, a water-retaining agent, and water, and placing the carbon dioxide detector, which has a water content of 30 to 40% by mass, and the bicarbonate-containing infusion inside an exterior packaging containing a gas containing carbon dioxide. Bicarbonate-containing infusion solutions are used as extracellular fluid replacement solutions, using bicarbonate ions as an alkalizing agent to correct extracellular fluid. Bicarbonate-containing infusion solutions lose their medicinal properties by releasing carbon dioxide gas. Therefore, by packaging the bicarbonate-containing infusion solution in a gas-barrier packaging container together with carbon dioxide gas, the solution can be stored while preventing the release of carbon dioxide gas.
[0033] When storing bicarbonate-containing infusion in a gas containing carbon dioxide, the use of the carbon dioxide detector allows a decrease in the carbon dioxide concentration in the gas to be detected in a short period of time, making it possible to use up the bicarbonate-containing infusion, which is prone to deterioration, early or to store it again in a carbon dioxide atmosphere, which is preferable because it allows the deterioration of the bicarbonate-containing infusion to be efficiently prevented.
[0034] The outer packaging body used in the preservation method of the present invention is preferably an outer packaging body that can be suitably used for the above-mentioned packaging body. Specifically, it is preferably made of a gas barrier material that is difficult for gases including carbon dioxide to pass through, and specific examples include resin films such as ethylene-vinyl alcohol copolymer, polyethylene terephthalate, and nylon, and composite films in which silica, alumina, etc. are vapor-deposited on these resin films. The carbon dioxide-containing gas is preferably composed of carbon dioxide and nitrogen gas. The concentration of carbon dioxide in the carbon dioxide-containing gas is preferably 1 to 50%, more preferably 1 to 15%, and even more preferably 3 to 10%.
[0035] The storage temperature in the storage method of the present invention is preferably 5 to 40°C.
[0036] The preservation method of the present invention is more effective when transferring or transporting a bicarbonate-containing infusion. That is, a method for transferring or transporting a bicarbonate-containing infusion in which the carbon dioxide detector and the bicarbonate-containing infusion are placed inside an exterior packaging containing a gas containing carbon dioxide is also preferred. When moving or transporting bicarbonate-containing infusions, external stimuli or impacts often cause damage to the exterior packaging that cannot be detected visually. However, the carbon dioxide detector can detect a decrease in carbon dioxide concentration in a short period of time, making it possible to quickly use up bicarbonate-containing infusions whose exterior packaging has been damaged or to store them again in a carbon dioxide atmosphere, which is preferable because it can efficiently prevent deterioration of the bicarbonate-containing infusion. [Example]
[0037] EXAMPLES The present invention will be explained in more detail below using examples and comparative examples, but the present invention is not limited to these examples.
[0038] [evaluation] The carbon dioxide gas detectors obtained in the examples and comparative examples were evaluated as follows. <Detection evaluation of carbon dioxide concentration (detection time and color change)> The detection of carbon dioxide concentration was evaluated as follows. (Creating carbon dioxide gas detector packaging) 0.2 g of the carbon dioxide gas detector obtained in the examples and comparative examples was placed in a 2.5 cm x 3.0 cm bag made of transparent laminated film of OPP / LLDPE (with breathable thread), and the opening was heat-sealed to seal it, thereby obtaining a packaged carbon dioxide gas detector. (Test Method) [1] Increase in carbon dioxide concentration The carbon dioxide detector package was placed in a 250 mL bag made of gas barrier film, and a mixed gas of 5% carbon dioxide and 95% nitrogen was sealed inside. The opening of the gas barrier film bag was then heat-sealed and stored in an environment of 25°C. The color of the detector was evaluated immediately after storage (0 hours), after 1.5 hours, and after 3 hours using the following method. [2] Decrease in carbon dioxide concentration The carbon dioxide detector package was placed in a 250 mL bag made of gas barrier film, and a mixed gas of 5% carbon dioxide and 95% nitrogen was sealed inside. The opening of the gas barrier film bag was then heat-sealed and stored in an environment of 25°C for 3 hours. The carbon dioxide detector package was then removed and stored in the atmosphere at 25°C (carbon dioxide concentration 0.04%), and the color of the detector was evaluated using the following method immediately after storage (0 hours), after 15 hours, and after 32 hours. (Evaluation method) (1)Δb * Value: From the outside of the packaging of the carbon dioxide gas detector, use a color difference meter to measure the b * The value was measured immediately after storage (0 hours later) * The difference between the values is Δb * The value was Δb * The larger the value, the greater the change in hue and the better the detectability of carbon dioxide concentration. (2) Hue by color chart: The color of the carbon dioxide gas detector was visually evaluated from the outside of the package using a color chart (G&E, New Color Dictionary). The greater the change in hue from immediately after storage (0 hours later), the better the carbon dioxide gas concentration detection ability. In the evaluations (1) and (2), the shorter the time until the hue change occurs, the shorter the time it takes to detect the change in carbon dioxide concentration.
[0039] <Liquidity> The flowability was evaluated as follows. The angle of repose of the carbon dioxide gas detector was measured using a powder measuring instrument (PT-X, manufactured by Hosokawa Micron Corporation). The smaller the angle of repose, the better the fluidity.
[0040] [Carbon dioxide detector] Example 1 A purple ink composition was obtained by mixing 83 g of distilled water with 0.016 g of meta-cresol purple (a pH indicator), 0.25 g of trisodium phosphate dodecahydrate (an alkaline agent), and 59.5 g of glycerin (a water-retaining agent). 142.7 g of this ink composition was impregnated into 100 g of magnesium aluminometasilicate (trade name: Neusilin SG2, average particle size: approximately 200 μm) as a carrier, and 0.75 g of hydrophobic silica was added and stirred to obtain a purple carbon dioxide gas detector. The evaluation results are shown in Table 1.
[0041] Examples 2-3 and Comparative Examples 1-2 A purple carbon dioxide gas detector was obtained in the same manner as in Example 1, except that the amount of distilled water was changed as shown in Table 1. The evaluation results are shown in Table 1.
[0042] Example 4 Except for not using hydrophobic silica, a purple carbon dioxide gas detector was obtained in the same manner as in Example 1. The evaluation results are shown in Table 1.
[0043] [Table 1]
[0044] As shown in Table 1, the carbon dioxide gas detector of Comparative Example 1 had low sensitivity to decreases in carbon dioxide gas concentration, and in particular, no change was observed even after 15 hours when evaluated using a color chart. Furthermore, the carbon dioxide gas detector of Comparative Example 2 had a large angle of repose and poor fluidity. In contrast, the carbon dioxide gas detectors of the Examples were able to detect decreases and increases in carbon dioxide gas concentration in a short period of time, and were also found to have excellent fluidity.
Claims
1. A carbon dioxide gas detector in which a carrier is impregnated with an ink composition containing a pH indicator, an alkaline agent, a water-retaining agent, and water, wherein the water content of the carbon dioxide gas detector is 30 to 40 mass %.
2. 2. The carbon dioxide gas detector according to claim 1, wherein the pH indicator is meta-cresol purple.
3. 3. The carbon dioxide gas detector according to claim 1, wherein the water-retaining agent is at least one selected from the group consisting of polyhydric alcohols, polyalkylene glycols, acrylic polymers, and cellulose.
4. 4. The carbon dioxide gas detector according to claim 1, wherein the mass ratio of water to the carrier (water / carrier) is 0.7 to 1.
0.
5. 5. The carbon dioxide gas detector according to claim 1, wherein the mass ratio of water to the water retention agent (water / water retention agent) is 1.2 to 1.
9.
6. The carbon dioxide gas detector according to any one of claims 1 to 5, further comprising a spreading agent.
7. 7. The carbon dioxide gas detector according to claim 6, wherein the spreading agent is hydrophobic silica.
8. A package comprising the carbon dioxide gas detector according to any one of claims 1 to 7, disposed in an outer packaging in which a gas containing carbon dioxide gas is sealed.
9. A method for storing a bicarbonate-containing infusion, comprising placing the carbon dioxide gas detector according to any one of claims 1 to 7 and the bicarbonate-containing infusion in an exterior body containing a gas containing carbon dioxide.
Citation Information
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