Iron powder for deodorization

The iron powder with 0.5% oxygen and optional magnetite/wustite enhances adsorption functions, effectively addressing diverse malodors through increased surface area and electrostatic trapping, achieving broad-spectrum deodorization.

JP2026019493APending Publication Date: 2026-02-05KOBE STEEL LTD
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Patent Information

Application Number
JP2024121083
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-26
Publication Date
2026-02-05

AI Technical Summary

Technical Problem

Existing deodorization technologies, such as those using finely pulverized iron powder, are inadequate for addressing a variety of malodors beyond hydrogen sulfide in everyday living spaces.

Method used

Iron powder with a specific composition containing 0.5% or more oxygen, which enhances its specific surface area and adsorption functions through iron oxide fine particles, facilitating physical and chemical adsorption, and optionally includes magnetite and wustite for improved electrostatic trapping.

Benefits of technology

The iron powder demonstrates excellent deodorizing effects on various targets, including ammonia, hydrogen sulfide, acetic acid, and isovaleric acid gases, by increasing contact area and adsorption efficiency.

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Abstract

An object of the present disclosure is to provide an iron powder for deodorization that has an excellent deodorizing effect on various objects.SOLUTION: An iron powder for deodorization according to one aspect of the present disclosure contains iron as a main component and contains 0.5% by mass or more of oxygen.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present disclosure relates to iron powder for deodorization. [Background technology]

[0002] Due to the growing awareness of hygiene, there is an increasing demand for antibacterial substances and deodorizing and deodorizing substances. In particular, because the presence or absence of antibacterial properties is difficult to perceive with the five senses, whereas odors are naturally perceived through the sense of smell, deodorizing and deodorizing substances are attracting more attention today. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 6-316401 Summary of the Invention [Problem to be solved by the invention]

[0004] Patent Document 1 describes a hydrogen sulfide absorbent made of finely pulverized iron powder. On the other hand, in everyday living spaces, for example, there are various targets for deodorization and deodorization other than hydrogen sulfide.

[0005] The present disclosure has been made in view of the above circumstances, and has an object to provide an iron powder for deodorization that has excellent deodorizing effects on various targets. [Means for solving the problem]

[0006] The iron powder for deodorization according to one embodiment of the present disclosure contains iron as a main component and 0.5 mass % or more of oxygen. [Effects of the Invention]

[0007] The iron powder for deodorization according to one embodiment of the present disclosure has excellent deodorizing and deodorizing effects on various targets. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a graph showing the relationship between the decrease in ammonia gas concentration and the elapsed time in No. 1 to No. 6. [Figure 2] FIG. 2 is a graph showing the relationship between the decrease in hydrogen sulfide gas concentration and the elapsed time in No. 1 to No. 6. [Figure 3] FIG. 3 is a graph showing the relationship between the decrease in acetic acid gas concentration and the elapsed time in No. 1 to No. 6. [Figure 4] FIG. 4 is a graph showing the relationship between the decrease in the concentration of isovaleric acid gas and the elapsed time in No. 1 to No. 6. DETAILED DESCRIPTION OF THE INVENTION

[0009] [Description of the embodiments of the present disclosure] First, embodiments of the present disclosure will be listed and described.

[0010] (1) The iron powder for deodorization according to one embodiment of the present disclosure contains iron as a main component and 0.5 mass % or more of oxygen.

[0011] This iron powder for deodorization contains iron as its main component and 0.5% by mass or more of oxygen, thereby enabling a large specific surface area. More specifically, the iron powder for deodorization has a large specific surface area because its surface is covered with a large number of iron oxide fine particles with a large surface area. As a result, the contact area with the target substance that causes malodor and the like can be increased, improving both the physical adsorption function and the chemical adsorption function. Therefore, this iron powder for deodorization has excellent deodorizing effects for various targets. In this disclosure, "deodorizing effect" refers to a combination of both deodorizing and deodorizing effects.

[0012] (2) In the above (1) iron powder for deodorization, the specific surface area is 0.1 m 2According to this embodiment, the contact area with the substance to be adsorbed can be made sufficiently large, and both the physical adsorption function and the chemical adsorption function can be further improved.

[0013] (3) The iron powder for deodorization according to (1) or (2) above may contain 1.0 mass % or more of magnetite. This is believed to facilitate electrostatic trapping of the target substance. As a result, the physical adsorption function can be further improved.

[0014] (4) In any of the iron powders for deodorization described above in (1) to (3), it is preferable to include 1.0 mass % or more of wustite. This is believed to facilitate electrostatic trapping of the target substance, thereby further improving the physical adsorption function.

[0015] (5) In the iron powder for deodorization according to any one of (1) to (4) above, the content of magnetite per 100 parts by mass of oxygen is preferably 200 parts by mass or more and 300 parts by mass or less, and the content of wustite per 100 parts by mass of oxygen is preferably 180 parts by mass or more and 280 parts by mass or less. According to this embodiment, the contents of magnetite and wustite can be easily controlled within ranges that make it easy to electrostatically trap the substance to be adsorbed.

[0016] (6) In the iron powder for deodorization according to any one of (1) to (5) above, the content of elements other than iron and oxygen may each be less than 1.0 mass %. According to this embodiment, the surface properties of the iron powder for deodorization can be uniformly controlled. As a result, various target substances can be more reliably adsorbed. Therefore, the iron powder for deodorization can easily be improved in versatility with respect to the types of odors, etc.

[0017] In this disclosure, "major component" refers to the component with the largest content in terms of mass, for example, a component with a content of 50 mass% or more. "Specific surface area" refers to the BET specific surface area measured in accordance with JIS-Z8830:2013 (Method for measuring the specific surface area of ​​powders (solids) by gas adsorption).

[0018] [Details of the embodiments of the present disclosure] Hereinafter, embodiments of the present disclosure will be described in detail. It should be noted that the numerical values ​​described in this specification can be arbitrarily combined with the upper and lower limit values. In this specification, all numerical ranges from the upper limit value to the lower limit value that can be combined are described as suitable ranges.

[0019] [Iron powder for deodorization] The iron powder for deodorization contains iron as a main component and 0.5 mass % or more of oxygen.

[0020] This iron powder for deodorization contains iron as its main component and 0.5% by mass or more of oxygen, thereby enabling it to have a large specific surface area. More specifically, the iron powder for deodorization has a large specific surface area because its surface is covered with a large number of iron oxide fine particles, each with a large surface area. As a result, the contact area with the target substance that causes malodors can be increased, improving both the physical adsorption function and the chemical adsorption function. Therefore, this iron powder for deodorization has excellent deodorizing and deodorizing effects on a variety of targets.

[0021] The lower limit of the iron content in the iron powder for deodorization may be 60% by mass, 75% by mass, 85% by mass, 95% by mass, 97% by mass, or 98% by mass. Meanwhile, the upper limit of the iron content in the iron powder for deodorization may be 99.5% by mass. It is believed that the iron powder for deodorization, which contains, for example, pure iron as a main component and has an iron oxide film on its surface, can enhance its deodorizing effect. More specifically, it is believed that the iron powder for deodorization can enhance its deodorizing effect by having a ferrite phase (α phase) as a core and an iron oxide film containing numerous iron oxide fine particles on its surface. Therefore, it is believed that the iron powder for deodorization, which has an iron content equal to or greater than the lower limit and contains a necessary amount of oxygen in the iron oxide film, can exhibit excellent deodorizing effect.

[0022] The lower limit of the oxygen content in the iron powder for deodorization is 0.5% by mass as described above, and may be 0.6% by mass, while the upper limit of the oxygen content in the iron powder for deodorization may be, for example, 30% by mass, 20% by mass, 10% by mass, 5% by mass, 1% by mass, or 0.8% by mass.

[0023] As described above, the iron powder for deodorization preferably has an iron oxide film on its surface. By having the iron oxide film, the surface layer of the iron powder for deodorization can have a complex crystal structure, thereby increasing the specific surface area. Examples of iron oxides contained in the iron oxide film include magnetite (Fe3O4), wustite (FeO), and hematite (Fe2O3).

[0024] The iron powder for deodorization preferably contains magnetite. Magnetite is porous and has numerous fine irregularities. Therefore, the specific surface area of ​​the iron powder for deodorization can be easily increased by including magnetite. The lower limit of the magnetite content is preferably 1.0% by mass, more preferably 1.3% by mass, and even more preferably 1.5% by mass, from the viewpoint of, for example, making it easier to electrostatically trap the substance to be adsorbed and further improving the physical adsorption function. On the other hand, the upper limit of the magnetite content may be 45% by mass, 30% by mass, 10% by mass, 5% by mass, 3% by mass, or 2% by mass, from the viewpoint of reducing the production cost of the iron powder for deodorization while obtaining the desired effect.

[0025] The iron powder for deodorization preferably contains wüstite. Wüstite contains a large amount of iron vacancies. Therefore, the specific surface area of ​​the iron powder for deodorization can be increased by including wüstite. The lower limit of the wüstite content is preferably 1.0% by mass, more preferably 1.2% by mass, and even more preferably 1.4% by mass, from the viewpoint of facilitating electrostatic trapping of the adsorption target substance and further improving the physical adsorption function. On the other hand, the upper limit of the wüstite content may be 40% by mass, 30% by mass, 10% by mass, 5% by mass, 3% by mass, or 2% by mass, from the viewpoint of reducing the production cost of the iron powder for deodorization while obtaining the desired effect.

[0026] The iron powder for deodorization may contain only one of magnetite and wustite, but preferably contains both magnetite and wustite.

[0027] The lower limit of the magnetite content per 100 parts by mass of oxygen may be 200 parts by mass or 220 parts by mass. On the other hand, the upper limit of the magnetite content per 100 parts by mass of oxygen may be 300 parts by mass or 280 parts by mass. By controlling the magnetite content per 100 parts by mass of oxygen within the above range, it is easy to appropriately adjust the magnetite content in the iron powder for deodorization. As a result, for example, it becomes easier to electrostatically trap the substance to be adsorbed, thereby further improving the physical adsorption function.

[0028] The lower limit of the wustite content per 100 parts by mass of oxygen may be 180 parts by mass, 200 parts by mass, or 210 parts by mass. Meanwhile, the upper limit of the wustite content per 100 parts by mass of oxygen may be 280 parts by mass, 260 parts by mass, or 240 parts by mass. By controlling the wustite content per 100 parts by mass of oxygen within the above range, it is easy to appropriately adjust the wustite content in the iron powder for deodorization. As a result, for example, it becomes easier to electrostatically trap the substance to be adsorbed, further improving the physical adsorption function.

[0029] The iron powder for deodorization may contain elements other than iron and oxygen within a range that achieves the desired effect. Meanwhile, by reducing the content of elements other than iron and oxygen, the surface properties of the iron powder for deodorization can be controlled uniformly. As a result, the range of applicable substances to be adsorbed can be easily expanded, and various substances to be adsorbed can be more reliably adsorbed. From this perspective, the content of elements other than iron and oxygen in the iron powder for deodorization (content of each element) may be less than 1.0% by mass, 0.6% by mass or less, 0.5% by mass or less, or less than 0.5% by mass.

[0030] In the iron powder for deodorization, the upper limit of the total content of elements other than iron and oxygen is preferably 2.5% by mass, more preferably 2.1% by mass, and even more preferably 1.0% by mass, and may be less than 1.0% by mass. By reducing the total content of elements other than iron and oxygen, the surface properties can be uniformly controlled. As a result, the range of applicable substances to be adsorbed can be easily expanded, and various substances can be more reliably adsorbed.

[0031] Examples of elements other than iron and oxygen include carbon (C), manganese (Mn), and sulfur (S). The upper limit of the carbon content in the iron powder for deodorization may be 0.3 mass%, 0.2 mass%, or 0.15 mass%, from the viewpoint of preventing the inclusion of compounds other than iron oxide, such as calcite (Ca(CO3)), in the surface layer of the iron powder for deodorization, which makes it difficult to obtain a correlation between the specific surface area and the adsorption function. The upper limit of the manganese content in the iron powder for deodorization may be 0.3 mass% or 0.25 mass%, from the viewpoint of reducing raw material costs. The upper limit of the sulfur content in the iron powder for deodorization may be 0.3 mass%, 0.2 mass%, 0.1 mass%, 0.05 mass%, or 0.01 mass%, from the viewpoint of preventing a decrease in adsorption ability for sulfur-containing adsorption target substances, such as hydrogen sulfide. In the iron powder for deodorization, elements other than iron and oxygen (in some cases, elements other than iron and oxygen and carbon, manganese, and sulfur) may be unavoidable impurities. The upper limit of the content of the unavoidable impurities may be 0.3 mass%, 0.2 mass%, or 0.1 mass%.

[0032] The lower limit of the specific surface area of ​​the iron powder for deodorization is 0.1 m from the viewpoint of sufficiently increasing the contact area with the substance to be adsorbed and improving both the physical adsorption function and the chemical adsorption function. 2 / g is preferred, and 0.2m 2 / g is more preferable, and 0.3m 2On the other hand, the upper limit of the specific surface area is, for example, 1.0 m / g, from the viewpoint of facilitating the homogenization of the surface properties of the iron powder for deodorization. 2 / g, and 0.8m 2 / g, and 0.6m 2 / g, and 0.4m 2 / g.

[0033] The lower limit of the particle diameter D50 (median of the particle size distribution for the entire iron powder) of the iron powder for deodorization may be 40 μm, 60 μm, or 70 μm, for example, from the viewpoint of ease of production, etc. On the other hand, the upper limit of the particle diameter D50 may be 250 μm, 150 μm, or 100 μm, from the viewpoint of sufficiently increasing the specific surface area.

[0034] The iron powder for deodorization may be, for example, an aggregate of a large number of iron powders for deodorization. The iron powder for deodorization can be used as a deodorizing and deodorizing material with a wide range of applications, regardless of the type of substance to be adsorbed. Examples of substances to be adsorbed by the iron powder for deodorization include amine gases such as ammonia, trimethylamine, and pyridine; sulfide gases such as hydrogen sulfide, methyl mercaptan, methyl disulfide, and propanethiol; organic gases such as acetic acid, propionic acid, n-butyric acid, isobutyric acid, n-valeric acid, and isovaleric acid; and aldehyde gases such as acetaldehyde and propionaldehyde.

[0035] [Other embodiments] The above-described embodiments do not limit the configuration of the present invention. Therefore, the above-described embodiments may include omissions, substitutions, or additions of components based on the description in this specification and common general technical knowledge, and all of these should be construed as falling within the scope of the present invention. [Example]

[0036] The present invention will be described in detail below based on examples, but the present invention should not be construed as being limited by the descriptions in these examples.

[0037] [No.1 to No.6] The adsorption characteristics of iron powders for deodorization (No. 1 to No. 6), which have the chemical composition, particle size D50, and specific surface area shown in Table 1, for ammonia gas, hydrogen sulfide gas, acetic acid gas, and isovaleric acid gas were investigated. No. 1 is a water-atomized powder produced by crushing molten iron with high-pressure water, followed by rapid cooling and oxidation. No. 2 is a water-atomized powder produced by crushing molten iron with added sulfur with high-pressure water, followed by rapid cooling and oxidation. No. 3 is iron powder collected in a wet dust collector during the converter process. No. 4 is high-oxygen iron(II) oxide obtained by heating iron salts such as iron oxalate in a vacuum. Nos. 5 and 6 are water-atomized powders produced by crushing molten iron with high-pressure water, followed by rapid cooling and oxidation, followed by reduction.

[0038] (composition) The composition of No. 1 to No. 6 was measured by X-ray diffraction (XRD). Carbon (C), manganese (Mn), and sulfur (S) were not measured for No. 3 due to the large variations between iron powders. The content of each of the iron (Fe), carbon (C), manganese (Mn), and sulfur (S) components for No. 4 was not measured. Furthermore, in Table 1, "-" indicates that the content was below the measurement limit. In No. 1, No. 2, and Nos. 4 to 6, all impurities other than iron (Fe), carbon (C), manganese (Mn), sulfur (S), and oxygen (O) are unavoidable impurities.

[0039] (Particle size D50) The particle diameters D50 of No. 1, No. 2, No. 5, and No. 6 were calculated from the particle size distribution (discontinuous value) sieved using a low-tap sieve shaker. The particle diameter D50 of No. 3 was measured using a particle size distribution analyzer (MICROTRAC HRA 9320-X100) using the laser diffraction scattering method. For No. 4, the product specification value was used.

[0040] (specific surface area) The specific surface areas of No. 1 to No. 6 were determined by BET specific surface area measured using Shimadzu Corporation's FlowSorbII 2300 in accordance with JIS-Z8830:2013 (Method for measuring the specific surface area of ​​powders (solids) by gas adsorption).

[0041] [Table 1]

[0042] (adsorption characteristics) For each of No. 1 to No. 6, the adsorption characteristics were evaluated using ammonia gas, hydrogen sulfide gas, acetic acid gas, and isovaleric acid gas as the substances to be adsorbed by the following test method.

[0043] First, a test device was constructed by connecting a detector tube to an airbag (sealed container). Next, 200g of iron powder Nos. 1 through 6 were individually placed into the airbag, and a mixture of ammonia gas, hydrogen sulfide gas, acetic acid gas, and isovaleric acid gas with odorless air was injected. The concentrations (ppm) of ammonia gas, hydrogen sulfide gas, acetic acid gas, and isovaleric acid gas in the mixture were 100 ppm, 4 ppm, 30 ppm, and 7.5 ppm, respectively. The gas concentrations were then measured using the detector tube after 30 minutes, 2 hours, and 24 hours, and the decrease in the concentrations of each target substance was evaluated. The test results are shown in Table 2. The relationship between the decrease in ammonia gas concentration and elapsed time is shown in Figure 1, the relationship between the decrease in hydrogen sulfide gas concentration and elapsed time in Figure 2, the relationship between the decrease in acetic acid gas concentration and elapsed time in Figure 3, and the relationship between the decrease in isovaleric acid gas concentration and elapsed time in Figure 4. In Table 2, "0" indicates a value below the lower detection limit. The lower detection limit for ammonia gas is 0.5 ppm, the lower detection limit for hydrogen sulfide gas is 0.05 ppm, the lower detection limit for acetic acid gas is 0.5 ppm, and the lower detection limit for isovaleric acid gas is 0.38 ppm.

[0044] [Table 2]

[0045] [Evaluation results] Nos. 1 to 4 contain iron as the main component and 0.5% by mass or more of oxygen. As a result, Nos. 1 to 4 have excellent adsorption properties for ammonia gas, hydrogen sulfide gas, acetic acid gas, and isovaleric acid gas. Therefore, it can be seen that iron powders Nos. 1 to 4 are suitable as iron powders for deodorizing and eliminating odors.

[0046] Furthermore, comparing No. 1 to No. 4, No. 2 exhibited poor hydrogen sulfide gas adsorption properties. This is presumably because No. 2 contained 0.975 mass% S, which made it difficult to sufficiently promote the reaction between Fe and S.

[0047] Furthermore, comparing No. 1 to No. 4, No. 3 was iron powder collected in the converter process, and therefore contained compounds other than iron oxide, such as calcite (Ca(CO3)), in its surface layer. As a result, while No. 3 has an extremely large specific surface area, it is presumed that there is little correlation between the specific surface area and the adsorption properties for, for example, ammonia gas and isovaleric acid gas.

[0048] Comparing No. 1 to No. 4, No. 1 has a smaller specific surface area than the other iron powders, but has sufficient adsorption properties for all target substances. No. 4 has excellent adsorption properties, but its extremely high oxygen content poses issues from the perspective of production costs, etc. [Industrial Applicability]

[0049] The iron powder for deodorization according to one embodiment of the present disclosure is suitable as a versatile deodorizing material.

Claims

1. Iron is the main component, Contains 0.5% by mass or more of oxygen Iron powder for deodorizing and eliminating odors.

2. Specific surface area is 0.1m 2 2. The iron powder for deodorization according to claim 1, wherein the iron powder has a molecular weight of 1 / g or more.

3. 3. The iron powder for deodorization according to claim 1, which contains magnetite in an amount of 1.0 mass % or more.

4. 3. The iron powder for deodorization according to claim 1, which contains 1.0 mass % or more of wustite.

5. The content of magnetite per 100 parts by mass of oxygen is 200 parts by mass or more and 300 parts by mass or less, 3. The iron powder for deodorization according to claim 1, wherein the wustite content is 180 parts by mass or more and 280 parts by mass or less per 100 parts by mass of oxygen.

6. 3. The iron powder for deodorization according to claim 1, wherein the content of elements other than iron and oxygen is less than 1.0 mass % each.

Citation Information

Patent Citations

  • Product wherein content of hydrogen sulfide is decreased and preparation thereof

    JP1994316401A