GIS-type zeolite molded body, adsorption device, separation method, and GIS-type zeolite
By controlling the ratio of alkali metals to potassium and lithium in GIS-type zeolite, the strength of the molded body is improved, addressing the weakness of existing GIS-type zeolites and enhancing their durability and processing capacity.
Patent Information
- Application Number
- JP2023527610
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-06-07
- Filing Date
- 2022-05-26
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2042-05-26
AI Technical Summary
Existing GIS-type zeolites lack sufficient strength for practical applications, particularly in transportation and use as catalysts or adsorbents.
The ratio of total alkali metals to the total amount of potassium and lithium in the GIS-type zeolite molded body is controlled within specific ranges (C/A ≤ 1.30, B/A ≤ 1.30, and C/D ≤ 1.30) to enhance the strength of the molded body.
The strengthened GIS-type zeolite molded body is less susceptible to damage during transportation and transfer, allowing for increased gas supply and improved processing capacity in fluidized bed devices, enhancing economic efficiency.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a GIS type zeolite shaped body, an adsorption device, a separation method, and a GIS type zeolite. [Background technology]
[0002] Zeolites can be used as adsorbents, desiccants, separating agents, catalysts, catalyst carriers, detergent aids, ion exchange agents, wastewater treatment agents, fertilizers, food additives, cosmetic additives, etc., and are particularly useful for gas separation. These can also be used after metal exchange depending on the application.
[0003] As a zeolite suitable for various applications, for example, Patent Document 1 describes GIS zeolite, which has a diffraction angle 2θ of a specific diffraction peak within a predetermined range. Here, GIS zeolite is a zeolite with a GIS structure, which is a code defining the structure of zeolites established by the International Zeolite Association (IZA). Patent Document 1 also describes the amount of potassium that can be contained in GIS zeolite. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Patent No. 6714789 Summary of the Invention [Problem to be solved by the invention]
[0005] When the GIS-type zeolite described in Patent Document 1 is used as, for example, a catalyst or an adsorbent, there is room for improvement from the viewpoint of increasing the strength in consideration of actual transportation, transfer, and use.
[0006] The present invention has been made in view of the above problems, and an object of the present invention is to provide a molded body of GIS type zeolite having higher strength.
Means for Solving the Problem
[0007] The inventors of the present invention have found that, in a molded body of GIS-type zeolite, by setting the ratio of the total amount of the substance of alkali metals to the total amount of the substances of potassium and lithium within a predetermined range, the strength of the obtained molded body is improved, and thus the present invention has been completed.
[0008] That is, the present invention includes the following aspects. <1> A GIS-type zeolite and a carrier, wherein when the total amount of the substances of potassium and lithium is defined as A and the total amount of the substances of alkali metals is defined as C, a GIS-type zeolite molded body satisfying C / A ≤ 1.30. <2> [[ID=2X]]The GIS-type zeolite molded body according to <1>, wherein when the total amount of the substances of potassium and lithium is defined as A and the total amount of the values obtained by multiplying the amount of each of the alkali metals and alkaline earth metals by their valences is defined as B, B / A ≤ 1.30 is satisfied. <3> The GIS-type zeolite molded body according to <1> or <2>, wherein when the total amount of the substances of potassium is defined as D and the total amount of the substances of alkali metals is defined as C, C / D ≤ 1.30 is satisfied. <4> The GIS-type zeolite molded body according to any one of <1> to <3>, satisfying 1.00 < C / A. <5> The GIS-type zeolite molded body according to any one of <1> to <4>, satisfying 1.00 < B / A. <6> The GIS-type zeolite molded body according to any one of <1> to <4>, satisfying 1.00 < C / D. <7> The GIS-type zeolite molded body according to any one of <1> to <6>, wherein the carrier contains one or more selected from the group consisting of silica and alumina. <8> The particle size of the GIS type zeolite shaped body is 20 μm or more and 300 μm or less. <1> ~ <7> 2. The GIS type zeolite shaped body according to claim 1, wherein the GIS type zeolite shaped body is a shaped body of a GIS type zeolite. <9> The GIS zeolite shaped body is obtained through a spray drying treatment. <8> The GIS type zeolite molded body according to claim 1. <10> The compressive strength of the GIS type zeolite molded body is 6.0 MPa or more. <8> or <9> The GIS type zeolite molded body according to claim 1. <11> The GIS-type zeolite shaped body is a pellet having a length of 3 mm or more and 50 mm or less and a diameter of 1 mm or more and 20 mm or less. <1> ~ <10> 2. The GIS type zeolite shaped body according to claim 1, wherein the GIS type zeolite shaped body is a shaped body of a GIS type zeolite. <12> The GIS zeolite shaped body is obtained through an extrusion molding process. <11> The GIS type zeolite molded body according to claim 1. <13> The GIS zeolite molded body has a breaking strength of 20 N or more. <11> or <12> The GIS type zeolite molded body according to claim 1. <14> <1> ~ <13> An adsorption device comprising the GIS type zeolite shaped body according to any one of the above. <15> <14> A separation method for separating one or more gases selected from the group consisting of CO2, H2O, He, Ne, Cl2, NH3, and HCl from a mixture containing two or more gases selected from the group consisting of H2, N2, CO, and hydrocarbons, using the adsorption apparatus described in the above. <16> Separating the gas by pressure swing adsorption separation, temperature swing adsorption separation, or pressure-temperature swing adsorption separation; <15> The separation method described in <17> <14> A method for producing a purified gas, comprising separating one or more gases selected from the group consisting of CO2, H2O, He, Ne, Cl2, NH3, and HCl from a mixture containing two or more gases selected from the group consisting of H2, N2, CO, and hydrocarbons, using the adsorption apparatus described in the above. <18> A GIS-type zeolite that satisfies C / A≦1.30, where A is the total amount of potassium and C is the total amount of alkali metals. [Effects of the Invention]
[0009] According to the present invention, a molded body of GIS type zeolite having higher strength can be provided. [Brief explanation of the drawings]
[0010] [Figure 1] FIG. 1 is a diagram illustrating an adsorption device according to one embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0011] Hereinafter, a mode for carrying out the present invention (hereinafter also referred to as "the present embodiment") will be described in detail. Note that the present invention is not limited to the following present embodiment, and various modifications can be made within the scope of the gist thereof. [GIS-type zeolite compact] The GIS zeolite shaped body of the present embodiment includes GIS zeolite and a carrier, and satisfies C / A≦1.30, where A is the total amount of substance of potassium and lithium, and C is the total amount of substance of alkali metals. Because the GIS zeolite shaped body of the present embodiment is configured in this manner, it has excellent strength.
[0012] The GIS type zeolite shaped body of this embodiment satisfies B / A≦1.30, where A is the total amount of substance of potassium and lithium, and B is the total value obtained by multiplying the amount of substance and the valence of each of the alkali metals and alkaline earth metals. Because the GIS type zeolite shaped body of this embodiment is configured in this manner, it has excellent strength.
[0013] When the present inventors first began their investigation into the composition of a GIS-type zeolite shaped body, they repeatedly conducted trial and error from the following perspective: They began their investigation on the assumption that alkali metals promote the dehydration condensation of silica, alumina, and the like, which are often used as shaped supports, and that the strength of the shaped body thus exhibited is affected by the order of electronegativity.
[0014] However, as a result of extensive investigations, the present inventors have surprisingly found that in some cases, in a GIS-type zeolite molded body, a composition having lithium and potassium as cations may have superior strength to a composition having only sodium as a cation, whose electronegativity is between that of lithium and potassium.
[0015] As a result of analyzing such cases, the inventors have found that the strength of the GIS-type zeolite molded body tends to improve when the total amount of alkali metals, C, is set to a certain value or less relative to the amount of potassium and lithium.
[0016] Although the detailed mechanism is not entirely clear, the inventors speculate that by including at least one of potassium and lithium as cations in GIS-type zeolite and setting the amount of such substances above a certain level, the wettability, solvent affinity, surface potential, etc. of the zeolite itself change, thereby affecting the strength of the molded body.
[0017] Improving the strength of the zeolite shaped bodies can suppress damage to the shaped bodies during transportation and transfer. Furthermore, in the case of a fluidized bed device, for example, improving the strength of the zeolite shaped bodies makes the shaped bodies less susceptible to damage even when the linear gas velocity is increased, which allows the amount of gas supplied to be increased, making it easier to increase the processing capacity per unit time and expected to improve economic efficiency.
[0018] In the GIS-type zeolite molded body, the above-mentioned C / A is preferably 1.25 or less, more preferably 1.20 or less, and still more preferably 1.15 or less, from the viewpoint of further improving the strength of the GIS-type zeolite molded body. The lower limit of C / A is not particularly limited, but for example, it is more than 1.00 (that is, it satisfies 1.00 < C / A).
[0019] In the GIS-type zeolite molded body, the above-mentioned B / A is preferably 1.25 or less, more preferably 1.20 or less, and still more preferably 1.15 or less, from the viewpoint of further improving the strength of the GIS-type zeolite molded body. The lower limit of B / A is not particularly limited, but for example, it is more than 1.00 (that is, it satisfies 1.00 < B / A).
[0020] When the total value of the amount of potassium in the GIS-type zeolite molded body is D and the total value of the amount of alkali metals is C, C / D is preferably 1.30 or less, more preferably 1.25 or less, still more preferably 1.20 or less, and even more preferably 1.15 or less, from the viewpoint of further improving the strength of the GIS-type zeolite molded body. The lower limit of C / D is not particularly limited, but for example, it is more than 1.00 (that is, it satisfies 1.00 < C / D).
[0021] In the present embodiment, the values of A, B, C, and D can be measured based on the methods described in the examples described later. Further, the values of A, B, C, and D can be controlled to satisfy the desired relationship by appropriately adjusting conditions such as the selection of metal species, ion concentration, and number of treatment times in the cation exchange treatment when synthesizing the GIS-type zeolite, or by the selection of the carrier species to be used and the amount of the carrier. (GIS-type zeolite) The GIS-type zeolite molded body of the present embodiment contains a GIS-type zeolite from the viewpoint of exhibiting the functions desired as a zeolite. The GIS-type zeolite in the present embodiment is described in ICDD (International Centre for Diffraction Data), etc. (for example, 00-0 Similar to (39-0219), it is preferable to have diffraction peaks of (1 0 1) and (3 1 2) at around 2θ = 12.45° and 33.36° respectively in the spectrum obtained by X-ray diffraction. Also, typically, the diffraction peak of (1 0 1) is observed in the range of 2θ = 12.15° to 12.75°, and the diffraction peak of (3 1 2) is typically observed in the range of 33.15° to 33.65°. In addition, typically, the diffraction peak of (2 1 1) is observed in the range of 2θ = 20.1° to 24.1°.
[0022] Furthermore, it is known that when the GIS-type zeolite is cation-exchanged with potassium or lithium, the spectrum obtained by X-ray diffraction undergoes a high-angle shift. For example, the diffraction peak of (1 0 1) may be observed in the range of 2θ = 12.55° to 12.90°, or the diffraction peak of (3 1 2) may be observed in the range of 33.70° to 34.25°. The 2θ value of the diffraction peak of (3 1 2) is more preferably 2θ = 33.85° to 34.22°, and even more preferably 2θ = 34.02° to 34.20°. Note that the diffraction peak of (3 1 2) may also exist other than the above 2θ values. Examples of other 2θ values include 2θ = 21.22 to 22.17°, 22.18 to 22.38°, 28.34 to 28.74°, 28.86 to 29.26°, 31.30 to 31.70°, 38.40 to 38.80°, etc.
[0023] When the total value of the amounts of substances of potassium and lithium in the GIS-type zeolite is A, and the total value of the amounts of substances of alkali metals is C, C / A is preferably 1.30 or less, more preferably 1.25 or less, even more preferably 1.20 or less, and still more preferably 1.15 or less from the viewpoint of further improving the strength of the GIS-type zeolite molded body. The lower limit value of C / A is not particularly limited, but for example, it is more than 1.00 (that is, it satisfies 1.00 < C / A).
[0024] In the GIS-type zeolite, when the total value of the amounts of substances of potassium and lithium is A, and the total value of the products of the amount of substance of each of the alkali metals and alkaline earth metals and their valences is B, B / A is preferably 1.30 or less, more preferably 1.25 or less, still more preferably 1.20 or less, and even more preferably 1.15 or less from the viewpoint of further improving the strength of the GIS-type zeolite molded body. The lower limit of B / A is not particularly limited, but for example, it is more than 1.00 (that is, it satisfies 1.00 < B / A).
[0025] In the GIS-type zeolite, when the total value of the amounts of substances of potassium is D, and the total value of the amounts of substances of the alkali metals is C, C / D is preferably 1.30 or less, more preferably 1.25 or less, still more preferably 1.20 or less, and even more preferably 1.15 or less from the viewpoint of further improving the strength of the GIS-type zeolite molded body. The lower limit of C / D is not particularly limited, but for example, it is more than 1.00 (that is, it satisfies 1.00 < C / D).
[0026] The GIS-type zeolite in the present embodiment is preferably silica alumina from the viewpoint of further improving the selective adsorption ability of carbon dioxide in particular.
[0027] In this specification, "silica alumina" means that among the GIS-type zeolites, silica and alumina are the main components (80% by mass or more) of the GIS-type zeolite, the content of aluminum is 1% by mass or more, more preferably 3% by mass or more, still more preferably 5% by mass or more, the content of phosphorus is 4% by mass or less, and the content of Zr or Ti is 8% by mass or less.
[0028] From the same viewpoint as described above, the content of aluminum in the GIS-type zeolite of the present embodiment is preferably 20% by mass or less, more preferably 19% by mass or less.
[0029] From the same viewpoint as above, the content of phosphorus atoms in the GIS zeolite of this embodiment is more preferably 1.5% by mass or less, and particularly preferably 0% by mass.
[0030] The aluminum and phosphorus atom contents can be measured by the method described in the Examples below. The aluminum and phosphorus atom contents can be adjusted to the above-mentioned ranges, for example, by adjusting the composition ratio of the mixed gel used in synthesizing the GIS zeolite to fall within the preferred ranges described below.
[0031] (cation) The GIS zeolite of the present embodiment contains at least one of Li and K, and preferably contains K. Other alkali metals and alkaline earth metals that can be contained in the GIS zeolite of the present embodiment include Na, Rb, Cs, Ca, Mg, Sr, Ba, and the like. From the viewpoint of facilitating crystal formation of the GIS framework, Na, Rb, Cs, and Ca are preferred, and Na is more preferred.
[0032] The content of GIS type zeolite is preferably 10 to 95 mass %, more preferably 20 to 92 mass %, and even more preferably 30 to 90 mass %, relative to 100 mass % of the GIS type zeolite molded body. (Method of manufacturing GIS type zeolite) The GIS-type zeolite in this embodiment can be prepared by, for example, preparing a mixed gel containing a silica source containing silicon, an aluminum source containing aluminum, an alkali metal source containing at least one selected from alkali metals (M1) and alkaline earth metals (M2), a phosphorus source containing phosphorus, and water. The mixed gel and each component contained therein will be described below.
[0033] (Mixed gel) The mixed gel in this embodiment refers to a mixture containing a silica source, an aluminum source, an alkali metal source, and water as components, and optionally containing a phosphorus source and an organic structure-directing agent.
[0034] The silica source refers to a component in the mixed gel that serves as a source of silicon contained in the zeolite produced from the mixed gel, the aluminum source refers to a component in the mixed gel that serves as a source of aluminum contained in the zeolite produced from the mixed gel, the alkali metal source refers to a component in the mixed gel that serves as a source of alkali metals and / or alkaline earth metals contained in the zeolite produced from the mixed gel, and the phosphorus source refers to a component in the mixed gel that serves as a source of phosphorus contained in the zeolite produced from the mixed gel.
[0035] (Silica source) The silica source is not particularly limited as long as it is a commonly used one, and specific examples include sodium silicate, amorphous silica, colloidal silica, wet-process silica, dry-process silica, silica gel, amorphous aluminosilicate gel, tetraethoxysilane (TEOS), trimethylethoxysilane, etc. These compounds may be used alone or in combination. Here, the amorphous aluminosilicate gel serves as both a silica source and an aluminum source.
[0036] Among these, sodium silicate is preferred because it tends to give a zeolite with a high degree of crystallinity.
[0037] (Aluminum source) The aluminum source is not particularly limited as long as it is a commonly used one, and specific examples include sodium aluminate, aluminum sulfate, aluminum nitrate, aluminum acetate, aluminum hydroxide, aluminum oxide, aluminum chloride, aluminum alkoxide, metallic aluminum, amorphous aluminosilicate gel, etc. These compounds may be used alone or in combination.
[0038] Among these, sodium aluminate, aluminum sulfate, aluminum nitrate, aluminum acetate, aluminum hydroxide, aluminum chloride, and aluminum alkoxides are preferred because they tend to produce zeolites with a high degree of crystallinity. From the same viewpoint, sodium aluminate and aluminum hydroxide are more preferred, and sodium aluminate is even more preferred.
[0039] (Alkali metal source) The type of alkali in the alkali metal source is not particularly limited, and any alkali metal and / or any alkaline earth metal compound can be used.
[0040] Examples of alkali metal sources include, but are not limited to, hydroxides, hydrogencarbonates, carbonates, acetates, sulfates, and nitrates of alkali metals or alkaline earth metals. These compounds may be used alone or in combination.
[0041] The alkali metals and alkaline earth metals used as the alkali metal source can usually be Li, Na, K, Rb, Cs, Ca, Mg, Sr, Ba, etc. From the viewpoint of facilitating the formation of GIS-type framework crystals, Li, Na, K, Rb, Cs, and Ca are preferred, and Na, Li, and K are more preferred. The alkali metals and alkaline earth metals used as the alkali metal source may be used alone or in combination.
[0042] Specific examples of the alkali metal source include, but are not limited to, sodium hydroxide, sodium acetate, sodium sulfate, sodium nitrate, sodium carbonate, sodium bicarbonate, potassium hydroxide, potassium acetate, potassium sulfate, potassium nitrate, potassium carbonate, potassium bicarbonate, lithium hydroxide, lithium acetate, lithium sulfate, lithium nitrate, lithium carbonate, lithium bicarbonate, rubidium hydroxide, rubidium acetate, rubidium sulfate, rubidium nitrate, rubidium carbonate, rubidium bicarbonate, cesium hydroxide, cesium acetate, cesium sulfate, cesium nitrate, cesium carbonate, cesium bicarbonate, calcium hydroxide, calcium acetate, calcium sulfate, calcium nitrate, calcium carbonate, calcium bicarbonate, magnesium hydroxide, magnesium acetate, magnesium sulfate, magnesium nitrate, magnesium carbonate, magnesium bicarbonate, strontium hydroxide, strontium acetate, strontium sulfate, strontium nitrate, strontium carbonate, strontium bicarbonate, barium hydroxide, barium acetate, barium sulfate, barium nitrate, barium carbonate, and barium bicarbonate.
[0043] Among these, sodium hydroxide, potassium hydroxide, potassium carbonate, lithium hydroxide, lithium nitrate, rubidium hydroxide, cesium hydroxide, calcium hydroxide, magnesium hydroxide, strontium hydroxide, and barium hydroxide are preferred, sodium hydroxide, potassium hydroxide, potassium carbonate, lithium hydroxide, lithium nitrate, rubidium hydroxide, and cesium hydroxide are more preferred, and sodium hydroxide, potassium hydroxide, potassium carbonate, and lithium nitrate are even more preferred.
[0044] (phosphorus source) The phosphorus source is not particularly limited as long as it is a commonly used one, and specific examples include an aqueous phosphoric acid solution, sodium phosphate, aluminum phosphate, potassium phosphate, lithium phosphate, calcium phosphate, barium phosphate, etc. These compounds may be used alone or in combination.
[0045] Among these, phosphoric acid aqueous solution, sodium phosphate, and aluminum phosphate are preferred because they tend to produce zeolites with a high degree of crystallinity. From the same viewpoint, phosphoric acid aqueous solution and sodium phosphate are more preferred, and phosphoric acid aqueous solution is even more preferred.
[0046] (Organic structure directing agent) When producing a zeolite by hydrothermal synthesis of a mixed gel, the organic structure-directing agent is a compound that acts to promote crystallization into a zeolite structure. In the crystallization of zeolite, an organic structure-directing agent can be used as needed.
[0047] The organic structure-directing agent may be of any type as long as it can form the desired GIS-type zeolite. The organic structure-directing agents may be used alone or in combination.
[0048] Examples of organic structure-directing agents that can be used include, but are not limited to, amines, quaternary ammonium salts, alcohols, ethers, amides, alkyl ureas, alkyl thioureas, cyanoalkanes, and alicyclic heterocyclic compounds containing nitrogen as a heteroatom. Preferably, alkyl amines are used, and more preferably isopropylamine is used.
[0049] Such salts may include anions, such as, but not limited to, Cl. - , Br - , I - These include halogen ions such as halogen ions, hydroxide ions, acetate ions, sulfate ions, nitrate ions, carbonate ions, and hydrogen carbonate ions. Among these, halogen ions and hydroxide ions are preferred, with halogen ions being more preferred, from the viewpoint of facilitating the formation of GIS-type framework crystals.
[0050] (Composition ratio of mixed gel) The ratio of the silica source to the aluminum source in the mixed gel is expressed as the molar ratio of the oxides of the respective elements, that is, SiO2 / Al2O3.
[0051] This SiO2 / Al2O3 ratio is not particularly limited as long as it allows the formation of zeolite, but since this tends to suppress the formation of zeolite having a skeleton different from the GIS-type skeleton, it is preferably 4.0 or more and 70.0 or less, more preferably 4.4 or more and 65.0 or less, even more preferably 5.5 or more and 55.0 or less, even more preferably 5.8 or more and 52.0 or less, even more preferably 6.0 or more and 50.0 or less, and even more preferably 6.5 or more and 40.0 or less.
[0052] The ratio of the aluminum source to the alkali metal source in the mixed gel is expressed as the sum molar ratio of MO and MO to AlO, i.e., (MO + MO) / AlO (where M1 represents an alkali metal and M2 represents an alkaline earth metal). From the viewpoint of facilitating the formation of GIS-type framework crystals, this (MO + MO) / AlO is preferably 1.6 or more, even more preferably 1.7 or more, even more preferably 1.8 or more, and even more preferably 1.9 or more.
[0053] From the viewpoint of suppressing the formation of zeolites having a framework different from the GIS-type framework, (M12O+M2O) / Al2O3 is preferably 2.5 or more and 75.0 or less, more preferably 3.2 or more and 58.0 or less, and even more preferably 3.4 or more and 55.5 or less.
[0054] The ratio of the phosphorus source to the aluminum source in the mixed gel is expressed as the molar ratio of the oxides of each element, i.e., P2O5 / Al2O3.
[0055] This P2O5O2 / Al2O3 ratio is not particularly limited as long as it allows the formation of zeolite, but since this tends to suppress the formation of zeolite having a skeleton different from the GIS-type skeleton, it is preferably less than 1.0, more preferably 0.6 or less, even more preferably 0.4 or less, and particularly preferably 0.
[0056] When an organic structure-directing agent is contained in the mixed gel, the ratio of the aluminum source to the organic structure-directing agent in the mixed gel is expressed as the molar ratio of the organic structure-directing agent to Al2O3, i.e., R / Al2O3 (where R represents the organic structure-directing agent). From the viewpoints of facilitating the formation of GIS-type framework crystals and / or shortening the synthesis time and thus being economical in producing zeolite, the ratio is preferably less than 9.5, more preferably 7.5 or less, and even more preferably 6.0 or less.
[0057] The ratio of the aluminum source to water in the mixed gel is expressed as the molar ratio of water to Al2O3, i.e., H2O / Al2O3. Because the components in the mixed gel tend to be dispersed more uniformly, the ratio is preferably 100 or more, and more preferably 200 or more. From the viewpoint of suppressing the formation of zeolite having a framework different from the GIS-type framework, the ratio is even more preferably 300 or more.
[0058] From the viewpoint of shortening the synthesis time and being economical in producing zeolite, the H2O / Al2O3 is preferably 2800 or less, and more preferably 1800 or less. From the viewpoint of being able to suppress the formation of zeolite having a framework different from the GIS framework, the H2O / Al2O3 is even more preferably 1300 or less.
[0059] As described above, the method for producing GIS zeolite according to this embodiment includes a step of preparing a mixed gel containing a silica source containing silicon, an aluminum source containing aluminum, an alkali metal source containing at least one selected from alkali metals (M1) and alkaline earth metals (M2), a phosphorus source, and water, and when the molar ratios of the components in the mixed gel are calculated as oxides of the silicon, aluminum, alkali metal (M1), alkaline earth metal (M2), and phosphorus source, the molar ratios α, β, γ, and δ represented by the following formulas (1), (2), (3), and (4) preferably satisfy the following relationships: 4.5≦α≦65.0, 2.5≦β≦75.0, 0≦γ<1.0, and 100≦δ≦2800. It is particularly preferable that the GIS zeolite according to this embodiment is obtained by the above-described method for producing GIS zeolite according to this embodiment.
[0060] α = SiO2 / Al2O3(1) β = (MO + MO) / AlO(2) γ=P2O5 / Al2O3(3) δ = H2O / Al2O3(4) Furthermore, in the method for producing GIS-type zeolite according to this embodiment, when the molar ratios α, β, γ, and δ satisfy the above ranges and the mixed gel further contains an organic structure-directing agent R, it is preferable that the molar ratio ε represented by the following formula (5) satisfies ε<9.5.
[0061] ε = R / Al2O3(5) It is not always necessary to have seed crystals present in the mixed gel, but the GIS zeolite of this embodiment can also be obtained by adding pre-produced GIS zeolite as seed crystals to the mixed gel.
[0062] (Mixed gel preparation process) The process for preparing the mixed gel is not particularly limited, but may include, for example, a mixing step of mixing a silica source, an aluminum source, an alkali metal source, water, and, if necessary, an organic structure-directing agent all at once or in multiple stages, and an aging step of the mixture obtained in this mixing step.
[0063] In the mixing step, the components including the silica source, aluminum source, alkali metal source, water, and, if necessary, the organic structure directing agent can be mixed all at once or in multiple stages.
[0064] The order of mixing in multiple stages is not limited and may be appropriately selected depending on the conditions used. When mixing in multiple stages, the mixture may be mixed with or without stirring.
[0065] The stirring method is not particularly limited as long as it is a commonly used stirring method, but specific examples include methods using blade stirring, vibration stirring, rocking stirring, centrifugal stirring, etc.
[0066] The rotation speed of stirring is not particularly limited as long as it is a commonly used stirring speed, and may be, for example, 1 rpm or more and less than 2000 rpm.
[0067] The temperature in the mixing step is not particularly limited as long as it is a commonly used temperature, and examples thereof include temperatures of -20°C or higher and lower than 80°C.
[0068] The time for the mixing step is not particularly limited and can be appropriately selected depending on the temperature of the mixing step, but may be, for example, more than 0 minutes and not more than 1000 hours.
[0069] The aging step may be carried out either by standing or by stirring.
[0070] When stirring in the aging step, any commonly used stirring method can be used without any particular limitation, and specific examples include methods using blade stirring, vibration stirring, rocking stirring, centrifugal stirring, etc.
[0071] The rotation speed of stirring is not particularly limited as long as it is a commonly used stirring speed, and may be, for example, 1 rpm or more and less than 2000 rpm. The temperature in the aging step is not particularly limited as long as it is a commonly used temperature, and examples thereof include a temperature of -20°C or higher and lower than 80°C.
[0072] The time for the aging step is not particularly limited and can be appropriately selected depending on the temperature for the aging step, but may be, for example, more than 0 minutes and not more than 1000 hours.
[0073] It is believed that the dissolution of raw materials, the generation of zeolite precursors, and their re-dissolution occur during the raw material mixing and aging processes. To form a large periodic structure containing eight-membered rings without defects, it is preferable that the formation of the zeolite precursor does not proceed excessively. Furthermore, excessive aging is also preferable because excessive formation of the zeolite precursor tends to increase the formation of ANA zeolite, which has a more stable structure. On the other hand, it is preferable that the raw materials are thoroughly mixed and the raw material gel is in a homogeneous state. The combined time for the mixing and aging processes is not particularly limited and can be adjusted appropriately based on the raw material composition, etc., to obtain a zeolite with an appropriate structure. The above time is typically preferably from 1 minute to less than 24 hours, more preferably from 3 minutes to less than 23 hours, even more preferably from 10 minutes to 18 hours, even more preferably from 15 minutes to 15 hours, and even more preferably from 31 minutes to 6 hours.
[0074] (Hydrothermal synthesis process) The method for producing a GIS-type zeolite according to this embodiment preferably further includes a hydrothermal synthesis step in which the hydrothermal synthesis temperature is 80° C. to 145° C., and more preferably the hydrothermal synthesis temperature is 80° C. to 140° C. That is, preferably, the mixed gel obtained in the preparation step is subjected to hydrothermal synthesis by being stirred or left to stand at a predetermined temperature for a predetermined time.
[0075] The temperature for the hydrothermal synthesis is not particularly limited as long as it is a commonly used temperature, but is preferably 80°C or higher from the viewpoint of shortening the synthesis time and being economical in producing zeolite. From the viewpoint of being able to suppress the formation of zeolite having a framework different from the GIS framework, the temperature is more preferably 90°C or higher, and even more preferably 100°C or higher.
[0076] From the viewpoint of being able to suppress the formation of zeolite having a framework different from the GIS-type framework, the temperature is more preferably 145°C or lower, even more preferably 140°C or lower, and even more preferably 135°C or lower.
[0077] The temperature of the hydrothermal synthesis may be constant or may be changed stepwise.
[0078] The time for the hydrothermal synthesis is not particularly limited as long as it is a time that is generally used, and can be appropriately selected depending on the temperature of the hydrothermal synthesis.
[0079] The hydrothermal synthesis time is preferably 3 hours or more, more preferably 10 hours or more, from the viewpoint of forming a GIS skeleton, and even more preferably 24 hours or more, from the viewpoint of obtaining a highly crystalline GIS zeolite.
[0080] From the viewpoint of economical efficiency in producing zeolite, the time for hydrothermal synthesis is preferably 30 days or less, more preferably 20 days or less, and even more preferably 10 days or less.
[0081] In the hydrothermal synthesis process, the container in which the mixed gel is placed is not particularly limited as long as it is a commonly used container, but if the pressure inside the container increases at a predetermined temperature, or if the mixed gel is placed under gas pressure that does not inhibit crystallization, it is preferable to place the mixed gel in a pressure-resistant container and perform hydrothermal synthesis.
[0082] The pressure vessel is not particularly limited, and various shapes such as a spherical shape, a vertically elongated shape, a horizontally elongated shape, etc. may be used.
[0083] When stirring the mixed gel in the pressure vessel, the pressure vessel is rotated vertically and / or horizontally, preferably vertically.
[0084] When the pressure vessel is rotated in the vertical direction, the rotation speed is not particularly limited as long as it is within a generally used range, but is preferably 1 to 50 rpm, and more preferably 10 to 40 rpm.
[0085] In the hydrothermal synthesis step, the mixed gel can be preferably stirred by using a vertically long pressure-resistant vessel and rotating it vertically.
[0086] (separation / drying process) After the hydrothermal synthesis step, the solid product and the aqueous liquid are separated. The separation method is not particularly limited as long as it is a common method, and examples that can be used include filtration, decantation, spray drying (rotary spraying, nozzle spraying, ultrasonic spraying, etc.), drying using a rotary evaporator, vacuum drying, freeze drying, and natural drying. Separation is usually achieved by filtration or decantation.
[0087] The separated product may be used as it is or may be washed with water or a predetermined solvent. If necessary, the separated product may be dried.
[0088] The temperature at which the separated product is dried is not particularly limited as long as it is a general drying temperature, but is usually from room temperature to 150°C or less.
[0089] The atmosphere used for drying is not particularly limited as long as it is a commonly used atmosphere, but typically, an air atmosphere, an inert gas such as nitrogen or argon, or an atmosphere containing oxygen is used.
[0090] (cation exchange) The GIS-type zeolite of this embodiment can be subjected to cation exchange so that the values of A and B satisfy a predetermined relationship. The cation exchange can be performed by any commonly known method, including, but not limited to, ion exchange and impregnation. These methods can use, but are not limited to, nitrates such as NH4NO3, LiNO3, NaNO3, KNO3, RbNO3, CsNO3, Be(NO3)2, Ca(NO3)2, Mg(NO3)2, Sr(NO3)2, and Ba(NO3)2; salts in which the nitrate ions contained in the nitrates are replaced with halide ions, sulfate ions, carbonate ions, bicarbonate ions, acetate ions, phosphate ions, or hydrogen phosphate ions; or acids such as nitric acid and hydrochloric acid.
[0091] The temperature for cation exchange is not particularly limited as long as it is a common cation exchange temperature, but is usually from room temperature to 100°C or less. The separation method for separating the zeolite after cation exchange is not particularly limited as long as it is a common method, and includes filtration, decantation, spray drying (rotary spray, nozzle spray, ultrasonic spray, etc.), drying using a rotary evaporator, vacuum drying, freeze drying, and natural drying. Separation is usually performed by filtration or decantation. The separated product may be washed with water or a predetermined solvent, or may be dried, as necessary. The temperature for drying the separated product is not particularly limited as long as it is a common drying temperature, but is usually from room temperature to 150°C or less. The atmosphere for drying is not particularly limited as long as it is a commonly used atmosphere, but typically, air, an inert gas such as nitrogen or argon, or an oxygen-added atmosphere is used. [Firing process] In particular, when an organic structure-directing agent is used, the dried product obtained in the separation and drying step can be calcined as necessary to obtain GIS zeolite. The calcination temperature is not particularly limited as long as it is a commonly used temperature, but when it is desired to remove the organic structure-directing agent, the calcination temperature is preferably 300°C or higher, and more preferably 350°C or higher, since this reduces the proportion of the remaining organic structure-directing agent. A calcination temperature of 400°C or higher is even more preferable, since this shortens the calcination time and is therefore more economical when producing GIS zeolite.
[0092] Since the crystallinity of GIS zeolite tends to be maintained, the calcination temperature is preferably less than 550°C, more preferably 530°C or lower, and even more preferably 500°C or lower.
[0093] The baking time is not particularly limited as long as it is a time that allows the organic structure-directing agent to be sufficiently removed, and can be appropriately selected depending on the baking temperature. However, since this tends to reduce the proportion of remaining organic structure-directing agent, the baking time is preferably 0.5 hours or more, more preferably 1 hour or more, and even more preferably 3 hours or more.
[0094] Since the crystallinity of GIS zeolite tends to be maintained, the calcination time is preferably 20 days or less, more preferably 10 days or less, and even more preferably 7 days or less.
[0095] The firing atmosphere is not particularly limited as long as it is a commonly used atmosphere, but typically, an air atmosphere, an inert gas atmosphere such as nitrogen or argon, or an atmosphere containing oxygen is used. (Carrier) The GIS-type zeolite shaped body of this embodiment contains a carrier from the viewpoint of ensuring excellent strength. Examples of the carrier include inorganic oxides such as alumina, silica, magnesia, zirconia, and titania, as well as clay minerals such as bentonite and kaolin, and cement-like inorganic binders such as calcium silicate and calcium aluminate. Alumina, silica, magnesia, zirconia, and titania are preferred, and silica and alumina are more preferred.
[0096] The content of the carrier is preferably 5 to 90% by mass, more preferably 8 to 80% by mass, and even more preferably 10 to 70% by mass, relative to 100% by mass of the GIS-type zeolite shaped body. Increasing the content of the carrier tends to increase the strength of the shaped body, but tends to decrease the content of the zeolite itself. Therefore, it is preferable to adjust the content of the carrier in consideration of the strength and performance required depending on the application. (shape) The GIS zeolite shaped body of this embodiment may be in the form of a powder. The particle diameter of such a GIS zeolite shaped body is preferably 20 μm or more and 300 μm or less. The particle diameter is more preferably 20 μm or more and 200 μm or less, and even more preferably 30 μm or more and 100 μm or less. When the GIS zeolite shaped body is in the form of a powder, it is suitable for use in a process using a fluidized bed, and when it has the above-mentioned particle diameter, it tends to be more preferably applicable to the process.
[0097] When the GIS type zeolite shaped body of this embodiment is in the form of powder, it is preferably obtained through a spray drying process, which will be described later.
[0098] The particle size can be measured based on the method described in the examples below, and can be adjusted to fall within the above range by, for example, adjusting the conditions of the spray drying treatment.
[0099] The GIS zeolite shaped body of this embodiment may be in the form of pellets. The size of such a GIS zeolite shaped body is preferably a pellet having a length of 3 mm to 50 mm and a diameter of 1 mm to 20 mm. The length of the pellets may be 3 mm to 40 mm, 3 mm to 30 mm, 3 mm to 15 mm, 3 mm to 10 mm, or 3 mm to 8 mm. The diameter of the pellets may be 2 mm to 10 mm, 2 mm to 5 mm, or 2 mm to 4 mm. When the GIS zeolite shaped body is in the form of pellets, it is suitable for use in a process using a fixed bed, and when it has the above-mentioned length and diameter, it tends to be more preferably applicable to the process.
[0100] The shape of the pellets preferably satisfies the above-mentioned length and diameter, but is not particularly limited, and may be a cylinder, a rounded cylinder, or a sphere. A rounded cylinder means a shape in which the corners of the top and bottom surfaces of the cylinder are rounded.
[0101] When the GIS type zeolite shaped body of this embodiment is in the form of pellets, it is preferably obtained through an extrusion molding process, which will be described later.
[0102] The length and diameter can be measured based on the method described in the examples below, and can be adjusted to fall within the above ranges by, for example, classification or other procedures.
[0103] The compressive strength of the GIS type zeolite shaped body of this embodiment is preferably 6.0 MPa or more, more preferably 6.2 MPa or more, and even more preferably 6.4 MPa or more. In particular, when the GIS type zeolite shaped body of this embodiment is in the form of powder, it preferably satisfies the above-mentioned range.
[0104] The compressive strength can be measured based on the method described in the examples below, and can be adjusted to fall within the above range by, for example, adjusting the firing temperature and firing time.
[0105] The breaking strength of the GIS type zeolite shaped article of this embodiment is preferably 20 N or more, more preferably 22 N or more, and even more preferably 24 N or more. In particular, when the GIS type zeolite shaped article of this embodiment is in the form of pellets, it preferably satisfies the above-mentioned range.
[0106] The breaking strength can be measured based on the method described in the examples below, and can be adjusted to fall within the above range by, for example, adjusting the firing temperature and firing time. [Method of manufacturing a GIS-type zeolite molded body] The method for producing the GIS type zeolite molded body according to this embodiment is not particularly limited, but may include a molding process step (X) in which a raw material prepared by mixing the GIS type zeolite according to this embodiment, a carrier, and other optional components is subjected to a molding process to obtain a precursor, and a calcination process (Y) in which the precursor is calcined to obtain a GIS type zeolite molded body.
[0107] As the molding step (X), any commonly known method can be used without any particular limitation, such as spray drying, extrusion molding, injection molding, injection-casting, tumbling granulation, pressure molding, etc. Among these, spray drying and extrusion molding are preferred.
[0108] The temperature of the raw material (also called "slurry" in spray drying) to be subjected to spray drying is not particularly limited, but is preferably 10°C to 80°C, and more preferably 15°C to 60°C. When the slurry temperature is 80°C or lower, evaporation of water in the slurry tends to be suppressed, and when the slurry temperature is 10°C or higher, freezing in the slurry tends to be suppressed.
[0109] Any stirring means can be used when preparing the slurry, and stirring blades are preferred. Specific examples of the blades used for stirring include propellers, paddles, flat paddles, turbines, and cones. For efficient stirring, baffles or the like may be installed in the vessel. The number of stirrers can be determined based on the optimum conditions, such as the size of the catalyst raw material vessel and the shape of the stirring blades.
[0110] In this embodiment, the total stirring time of the slurry is preferably 1 minute to 24 hours, more preferably 10 minutes to 5 hours, and even more preferably 15 minutes to 3 hours. When the mixed solution is stirred for 1 minute or more, the composition in the slurry tends to become uniform, and when it is stirred for 24 hours or less, the influence of water evaporation in the slurry tends to be small.
[0111] The atomization of the slurry can be carried out by a method that is usually carried out industrially, such as a rotating disk method, a two-fluid nozzle method, or a high-pressure nozzle method, but it is particularly preferable to use the rotating disk method.
[0112] The drying heat source for drying the sprayed droplets is preferably air heated by steam, an electric heater, or the like. The temperature at the inlet of the dryer can be about 100°C to 400°C, preferably 150°C to 300°C. The temperature at the outlet of the dryer can be about 40°C to 150°C, preferably 50°C to 130°C.
[0113] The extrusion molding process is not particularly limited, but for example, the temperature for heating and concentrating the raw material used (also called "raw clay" in the extrusion molding process) is preferably 40°C to 80°C, more preferably 50°C to 75°C. If the temperature is 40°C or higher, a decrease in the efficiency of heating and concentrating tends to be prevented, and if the temperature is 80°C or lower, an excessive increase in the amount of water evaporated can be prevented, and control of the concentration state tends to be easier.
[0114] The water content in the raw clay is preferably 35% to 50%, more preferably 38% to 45%. When the water content is 50% or less, excessive improvement in the flexibility of the raw clay can be prevented, and moldability tends to be improved. When the water content is 35% or more, a moderate decrease in the flexibility of the raw clay can be prevented, and moldability tends to be improved.
[0115] The extruder used for the extrusion molding process is not particularly limited, but examples thereof include screw type, roll type, blade type, self-molding type, ram type, etc. Among these, it is particularly preferable to carry out the extrusion molding process using a screw type extruder. [Firing process (Y)] The calcination temperature in the calcination step (Y) is not particularly limited as long as it is a commonly used temperature, but since this tends to ensure strength while maintaining the crystallinity of the zeolite, it is preferably less than 550° C., more preferably 530° C. or less, and even more preferably 500° C. or less. In addition, the calcination temperature is preferably 110° C. or more, more preferably 120° C. or more.
[0116] The calcination time in the calcination step (Y) is not particularly limited as long as the carrier is sufficiently dried and sintered, and can be appropriately selected depending on the calcination temperature. However, since this tends to ensure strength while maintaining the crystallinity of the zeolite, the calcination time is preferably 20 days or less, more preferably 10 days or less, and even more preferably 7 days or less.
[0117] The firing atmosphere in the firing step (Y) is not particularly limited as long as it is a commonly used atmosphere, but typically, an air atmosphere, an inert gas such as nitrogen or argon, or an atmosphere containing oxygen is used.
[0118] The firing in the firing step (Y) can be carried out using a firing furnace such as a rotary furnace, a tunnel furnace, or a muffle furnace. [Application] The uses of the GIS-type zeolite shaped body are not particularly limited, and it can be used, for example, as a separating agent or separation membrane for various gases and liquids, an electrolyte membrane for fuel cells and the like, a filler for various resin shaped bodies, a membrane reactor, a catalyst for hydrocracking, alkylation and the like, a catalyst carrier for supporting metals, metal oxides and the like, an adsorbent, a desiccant, a detergent aid, an ion exchange agent, a wastewater treatment agent, a fertilizer, a food additive, a cosmetic additive, and the like.
[0119] Among the above, the GIS type zeolite shaped body of the present embodiment can be suitably used as an adsorbent. That is, the adsorbent of the present embodiment includes the GIS type zeolite shaped body of the present embodiment.
[0120] In the GIS-type zeolite shaped body of this embodiment, the selectivity of carbon dioxide adsorption tends to be easily increased, and therefore the adsorbent of this embodiment can be designed to be, for example, capable of sufficiently adsorbing carbon dioxide and to have a high selectivity for carbon dioxide adsorption relative to the amount of methane adsorbed. In this case, it can be particularly preferably used for the purpose of selectively removing carbon dioxide from natural gas, for example.
[0121] The adsorption device of the present embodiment is not particularly limited in its configuration as long as it includes the GIS-type zeolite shaped body of the present embodiment. A typical configuration is shown in FIG. 1. The adsorption device 1 of the present embodiment illustrated in FIG. 1 includes filters 3 disposed inside a container 2 at two locations, one on the inlet side and one on the outlet side, and a plurality of zeolite particles 4 (the GIS-type zeolite shaped body of the present embodiment) disposed between the two filters 3. The filters 3 may be made of quartz, for example. For example, when the adsorption device 1 is used to remove carbon dioxide from natural gas, natural gas is introduced through an upper line, impurities are removed by the filters 3, and carbon dioxide is selectively adsorbed and removed by the zeolite particles 4, and methane-rich gas is extracted through a lower line. However, the target to be treated by the adsorption device is not limited to natural gas, and the internal structure of the adsorption device is not limited to the example shown in FIG. 1. [Separation method] The separation method of this embodiment uses an adsorption apparatus equipped with the GIS-type zeolite shaped body of this embodiment to separate one or more gases selected from the group consisting of CO2, HO, He, Ne, Cl2, NH3, and HCl from a mixture containing two or more gases selected from the group consisting of H2, N2, CO, and hydrocarbons. In this embodiment, it is preferable to separate one or more gases selected from the group consisting of CO2 and HO from one or more gases selected from the group consisting of N2, CO, and hydrocarbons. Examples of hydrocarbons include, but are not limited to, methane, ethane, ethylene, propane, propylene, 1-butene, 2-butene, 2-methylpropene, dimethyl ether, and acetylene.
[0122] The separation method using the GIS-type zeolite shaped body of this embodiment is not particularly limited, but is preferably a method that requires low energy during regeneration of an adsorbent such as a GIS-type zeolite shaped body and is therefore economical. Specific examples of such methods are not particularly limited, but it is preferable to use any of pressure swing adsorption separation, temperature swing adsorption separation, and pressure-temperature swing adsorption separation. Pressure swing adsorption separation (PSA) is a method in which the pressure during desorption is lowered below the pressure during gas adsorption, and gas is separated by utilizing the difference in the amount of adsorption at high pressure and the amount of adsorption at low pressure. Thermal swing adsorption separation (TSA) is a method in which the temperature during desorption is raised above the temperature during gas adsorption, and gas is separated by utilizing the difference in the amount of adsorption at low pressure and the amount of adsorption at high pressure. Furthermore, a combination of these methods is pressure-temperature swing adsorption / desorption (PTSA). These methods can be performed under various known conditions.
[0123] The above-described separation method can be implemented as a method for producing a purified gas. That is, the method for producing a purified gas of this embodiment uses an adsorption apparatus equipped with the GIS-type zeolite shaped body of this embodiment to separate one or more gases selected from the group consisting of CO2, HO, He, Ne, Cl2, NH3, and HCl from a mixture containing two or more gases selected from the group consisting of H2, N2, CO, and hydrocarbons. Here, for example, when methane and carbon dioxide are separated from a mixed gas containing methane and carbon dioxide by adsorbing carbon dioxide onto an adsorbent, the purified gas in this embodiment may be methane or carbon dioxide. That is, both the gas that serves as the adsorbate of the adsorbent of this embodiment and other gases can be recovered as the purified gas in this embodiment. [Example]
[0124] Hereinafter, the present embodiment will be described in detail with reference to examples and comparative examples, but the present embodiment is not limited to these examples in any way. [Crystal structure analysis] The crystal structure of GIS-type zeolite was analyzed using the following procedure. (1) The dried products (powdered zeolite) obtained in Synthesis Examples 1 and 2 were used as samples and were pulverized in an agate mortar. 10% by mass of crystalline silicon (manufactured by Rare Metallic Co., Ltd.) was further added, and the mixture was mixed in the agate mortar until uniform, and this was used as a sample for structural analysis. (2) The sample (1) above was uniformly fixed on a non-reflective sample plate for powders, and crystal structure analysis was carried out under the following conditions.
[0125] X-ray diffractometer (XRD): Rigaku powder X-ray diffractometer "RINT2500" (product name) X-ray source: Cu tube (40kV, 200mA) Measurement temperature: 25℃ Measurement range: 5 to 60° (0.02° / step) Measurement speed: 0.2° / min Slit width (scattering, diverging, receiving): 1°, 1°, 0.15mm (3) The obtained X-ray diffraction spectrum was corrected for 2θ shift using the diffraction peak of crystalline silicon, and then data analysis was performed using the XRD data analysis software “PDXL2” (software name, manufactured by Rigaku Corporation) with the “α cut value” set to 3.00 in the analysis software, and the 2θ value of the peak was measured. [Measurement of the content of each element (measurement methods A, B, C, and D)] The GIS zeolite produced in each Synthesis Example and the GIS zeolite shaped body produced in each Example and Comparative Example were thermally dissolved in a sodium hydroxide aqueous solution or aqua regia, and the appropriately diluted solution was used for composition analysis by ICP-Atomic Emission Spectroscopy (SPS3520UV-DD: instrument name, manufactured by Seiko Instruments Inc.), and the contents of alkali metals and alkaline earth metals were calculated to determine A, B, C, and D. Similarly, the contents of Si, Al, P, Zr, and Ti were also calculated. [Strength measurement] The strength of the GIS-type zeolite molded body was measured 20 times using a micro-compression testing machine (MCT-W500 manufactured by Shimadzu Corporation, compressive strength measurement) for Examples 1 to 10, 21 to 22 and Comparative Examples 1 to 6, and 13 to 14, and a digital hardness tester (KHT-40N manufactured by Fujiwara Seisakusho Co., Ltd., 3 mm indenter, breaking strength measurement) for Examples 11 to 20, 23 to 24 and Comparative Examples 7 to 12, and 15 to 16. The average value of the values obtained was used for each measurement. [Particle size measurement] Of the GIS type zeolite shaped articles, the particle sizes of Examples 1 to 10, 21 to 22 and Comparative Examples 1 to 6, 13 to 14 were measured using a laser diffraction / scattering particle size analyzer (MT3000 manufactured by Microtrac) according to the attached manual. [Measurement of pellet length and diameter] Of the GIS type zeolite shaped bodies, the length and diameter of the pellets were measured by the vernier caliper method for Examples 11 to 20, 23, and 24 and Comparative Examples 7 to 12, 15, and 16. In the measurements, a vernier caliper with a minimum readable value of 0.1 mm or less was used, and measurements were taken for three samples, and the average values were used as the length and diameter. [Gas adsorption isotherm measurement] Gas adsorption isotherm measurements were carried out according to the following procedure. (1) GIS-1 and the molded bodies obtained in the examples were used as samples, and a 12 mm cell (Micro 0.2 g was placed in a container (manufactured by Meritics). (2) The sample placed in the cell (1) above was placed in a gas adsorption measuring device "3-Flex" (trade name) manufactured by Micro Meritics, and heated and vacuum degassed at 250°C and 0.001 mmHg or less for 12 hours. (3) The sample placed in the cell after the treatment in (2) above was placed in constant-temperature circulating water at 25°C, and after the sample temperature reached 25±0.2°C, absolute pressures were measured from 0.25 to 760 mmHg using liquefied carbon dioxide gas (manufactured by Sumitomo Seika Chemicals Co., Ltd., purity 99.9% by mass or more), methane gas (manufactured by Sumitomo Seika Chemicals Co., Ltd., purity 99.0% by mass or more), or nitrogen gas (manufactured by Taiyo Nippon Sanso Corporation, purity 99.9995% by mass). During the measurements, the pressure was measured over time, and it was determined that the saturated adsorption amount had been reached when the pressure fluctuation became 0.001% / 10 sec or less. [Synthesis of GIS-type zeolite] (Synthesis Example 1) A mixed gel was prepared by mixing 207.30 g of water, 8.78 g of sodium hydroxide (NaOH, manufactured by Wako Pure Chemical Industries, Ltd.), 16.4 g of sodium aluminate (NaAlO2, manufactured by Wako Pure Chemical Industries, Ltd.), and 248.3 g of water glass No. 3 (manufactured by Kishida Chemical Co., Ltd.) and stirring for 15 minutes. The mixed gel had a composition of SiO2 / Al2O3 = 12.0, Na2O / Al2O3 = 4.0, and HO / Al2O3 = 200. The mixed gel was placed in a 1000 mL stainless steel autoclave with a fluororesin inner tube and subjected to hydrothermal synthesis at 130°C for 5 days without stirring. The product was filtered and dried at 120°C to obtain powdered GIS-type zeolite. The GIS-type zeolite obtained in this manner, which was not subjected to ion exchange treatment, was designated GIS-0 and used for the production of molded bodies, as described below.
[0126] According to the XRD pattern obtained from the zeolite of Synthesis Example 1, the (1 0 1) diffraction peak was 12.40°, the (2 1 1) diffraction peak was 21.62°, and the (3 1 2) diffraction peak was 33.38°, confirming that the obtained zeolite was of the GIS type.
[0127] Furthermore, the amount of Al contained in the GIS zeolite of Synthesis Example 1 was 9.9 mass %, and P, Zr, and Ti were not detected. (Synthesis Example 2) A zeolite equivalent to that described in Example 3 of Patent Document 1 was synthesized as follows. Specifically, 329.50 g of water, 1.76 g of sodium hydroxide, 3.28 g of sodium aluminate, and 49.7 g of water glass No. 3 were mixed and stirred for 6 hours to prepare a mixed gel. The mixed gel had a composition of SiO2 / Al2O3 = 12.0, Na2O / Al2O3 = 4.0, and H2O / Al2O3 = 1000. The mixed gel was placed in a 1000 mL stainless steel autoclave equipped with a fluororesin inner tube and subjected to hydrothermal synthesis at 135°C for 4 days without stirring. The product was filtered and dried at 120°C to obtain powdered zeolite. 1 g of the resulting zeolite was added to 500 mL of 0.1 N potassium hydroxide aqueous solution and stirred at 400 rpm for 3 hours at 40°C. The product was filtered and dried at 120°C to obtain powdered GIS-type zeolite in which some of the cations had been exchanged with potassium.
[0128] According to the XRD pattern obtained from the zeolite of Synthesis Example 2, the (1 0 1) diffraction peak was 12.78°, the (2 1 1) diffraction peak was 22.20°, and the (3 1 2) diffraction peak was 34.18°, confirming that the obtained zeolite was of the GIS type.
[0129] Furthermore, the amount of Al contained in the GIS zeolite of Synthesis Example 2 was 9.7 mass %, and P, Zr, and Ti were not detected. [Cation exchange] GIS-0 obtained in Synthesis Example 1 was subjected to cation exchange by an ion exchange method using potassium carbonate or lithium nitrate, and the ion concentration and number of exchanges were adjusted to obtain GIS-1 to GIS-7.
[0130] The GIS-type zeolite GIS-8 of Synthesis Example 2 was subjected to cation exchange by an ion exchange method using potassium carbonate, and the ion concentration and number of exchanges were adjusted to obtain GIS-9.
[0131] GIS-0 to GIS-9 were analyzed by ICP-emission spectroscopy, and the alkali metal and alkaline earth metal contents obtained are shown in Table 1. Note that 1.3A and B in Table 1 indicate values for 100 g of sample.
[0132] [Table 1] [symbol] The symbols used below have the following meanings: A: The total amount of potassium and lithium out of the total amount of alkali metals and alkaline earth metals B: The sum of the amounts of alkali metals and alkaline earth metals multiplied by their valences C: Total amount of alkali metals D: Total amount of potassium [Example 1] 561.4 g of GIS-1 was dispersed in 571.9 g of ion-exchanged water and then added to 4423.8 g of alumina sol (Nissan Chemical Industries, Ltd., alumina content: 10.5% by mass) to prepare a raw material slurry. The resulting raw material slurry was stirred at 25°C for 1 hour. The raw material slurry was in a sol state and had a viscosity of 300 cP (measured with a B-type viscometer manufactured by Eiko Seiki Co., Ltd.). The raw material slurry was fed into a spray dryer (Okawahara Kakoki OC-16 spray dryer) with the fluid temperature at the inlet set to 230°C and the fluid temperature at the outlet set to 120°C, and spray-dried using a rotating disk method to obtain a dried powder. The resulting dried powder was calcined in an electric furnace at 350°C for 24 hours in an air atmosphere.
[0133] The strength of the GIS zeolite shaped body thus obtained was 8.2 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and shown in Table 2. Note that A, B, C, and D in Table 2 indicate values for 100 g of sample. Furthermore, the particle size of the shaped body was 55 μm. Furthermore, the amount of carrier in the shaped body was 45 mass %, and the amount of GIS zeolite was 55 mass %. [Example 2] A GIS zeolite shaped body was obtained in the same manner as in Example 1, except that GIS zeolite was changed to G-2. The strength of the GIS zeolite shaped body thus obtained was 7.5 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 55 μm. [Example 3] A GIS type zeolite shaped body was obtained in the same manner as in Example 1, except that GIS type zeolite was changed to G-3. The strength of the GIS type zeolite shaped body thus obtained was 8.3 MPa. Furthermore, by measuring the contents of each of the above-mentioned elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle diameter of the shaped body was 56 μm. [Example 4] A GIS zeolite shaped body was obtained in the same manner as in Example 1, except that GIS zeolite was changed to G-4. The strength of the GIS zeolite shaped body thus obtained was 7.3 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 55 μm. [Example 5] A GIS zeolite shaped body was obtained in the same manner as in Example 1, except that GIS zeolite was changed to G-5. The strength of the GIS zeolite shaped body thus obtained was 8.4 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 56 μm. [Comparative Example 1] A GIS type zeolite shaped body was obtained in the same manner as in Example 1, except that the GIS type zeolite was G-0. The strength of the GIS type zeolite shaped body thus obtained was 3.2 MPa. Furthermore, by measuring the contents of each of the above-mentioned elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 55 μm. Comparative Example 2 A GIS type zeolite shaped body was obtained in the same manner as in Example 1, except that GIS type zeolite was changed to G-6. The strength of the GIS type zeolite shaped body thus obtained was 4.0 MPa. Furthermore, by measuring the contents of each of the above-mentioned elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 56 μm. Comparative Example 3 A GIS zeolite shaped body was obtained in the same manner as in Example 1, except that GIS zeolite was changed to G-7. The strength of the GIS zeolite shaped body thus obtained was 3.8 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 55 μm. [Example 6] A GIS type zeolite shaped body was obtained in the same manner as in Example 1, except that 1263.9 g of ion-exchanged water and 3159.9 g of silica sol (manufactured by Nalco, silica content: 14.7% by mass) were used instead of 4423.8 g of alumina sol. The strength of the GIS type zeolite shaped body thus obtained was 8.0 MPa. Furthermore, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and are shown in Table 2. Furthermore, the particle size of the shaped body was 50 μm. [Example 7] A GIS zeolite shaped body was obtained in the same manner as in Example 6, except that GIS zeolite was changed to G-2. The strength of the GIS zeolite shaped body thus obtained was 6.5 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 51 μm. [Example 8] A GIS zeolite shaped body was obtained in the same manner as in Example 6, except that GIS zeolite was changed to G-3. The strength of the GIS zeolite shaped body thus obtained was 7.9 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 51 μm. [Example 9] A GIS zeolite shaped body was obtained in the same manner as in Example 6, except that GIS zeolite was changed to G-4. The strength of the GIS zeolite shaped body thus obtained was 6.4 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 52 μm. [Example 10] A GIS zeolite shaped body was obtained in the same manner as in Example 6, except that GIS zeolite was changed to G-5. The strength of the GIS zeolite shaped body thus obtained was 8.0 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 51 μm. Comparative Example 4 A GIS zeolite shaped body was obtained in the same manner as in Example 6, except that the GIS zeolite was G-0. The strength of the GIS zeolite shaped body thus obtained was 3.4 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 51 μm. Comparative Example 5 A GIS zeolite shaped body was obtained in the same manner as in Example 6, except that GIS zeolite was changed to G-6. The strength of the GIS zeolite shaped body thus obtained was 4.2 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 51 μm. Comparative Example 6 A GIS zeolite shaped body was obtained in the same manner as in Example 6, except that GIS zeolite was changed to G-7. The strength of the GIS zeolite shaped body thus obtained was 3.8 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 51 μm. [Example 11] 100 g of GIS-1, 250 g of alumina sol (Kawaken Fine Chemicals Co., Ltd., alumina content: 10% by mass), and 275 g of ion-exchanged water were mixed and stirred, and then the moisture content was adjusted to 40% by heating and concentrating at 70°C to obtain raw clay. The obtained raw clay was molded using a wet extrusion granulator (Multigran MG-55 model (dome die 40 rpm), hole diameter φ3 mm) to obtain extrusion-molded pellets with a length of 5 mm and a diameter of 3 mm. The obtained extrusion-molded pellets were fired in an electric furnace at 350°C for 3 hours in an air atmosphere.
[0134] The strength of the GIS zeolite shaped body thus obtained was 30.3 N. Furthermore, by measuring the contents of each of the elements described above, A, B, C, D, etc. were calculated and shown in Table 2. Furthermore, the amount of carrier in the shaped body was 20% by mass, and the amount of GIS zeolite was 80% by mass. [Example 12] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 11, except that the GIS zeolite was changed to G-2. The strength of the GIS zeolite shaped body thus obtained was 24.6 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and the results are shown in Table 2. [Example 13] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 11, except that GIS zeolite was changed to G-3. The strength of the GIS zeolite shaped body thus obtained was 30.6 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above elements, and the results are shown in Table 2. [Example 14] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 11, except that GIS zeolite was changed to G-4. The strength of the GIS zeolite shaped body thus obtained was 24.0 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above elements, and the results are shown in Table 2. [Example 15] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 11, except that GIS zeolite was changed to G-5. The strength of the GIS zeolite shaped body thus obtained was 29.7 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and the results are shown in Table 2. Comparative Example 7 A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 11, except that the GIS zeolite was G-0. The strength of the GIS zeolite shaped body thus obtained was 6.0 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and the results are shown in Table 2. [Comparative Example 8] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 11, except that GIS zeolite was changed to G-6. The strength of the GIS zeolite shaped body thus obtained was 13.2 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above elements, and the results are shown in Table 2. Comparative Example 9 A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 11, except that GIS zeolite was changed to G-7. The strength of the GIS zeolite shaped body thus obtained was 12.6 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and the results are shown in Table 2. [Example 16] A GIS type zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 11, except that 250 g of alumina sol was replaced with 176.4 g of ion-exchanged water and 73.5 g of silica sol (manufactured by Nalco, silica content: 34 mass%). The strength of the GIS type zeolite shaped body thus obtained was 30.0 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and are shown in Table 2. [Example 17] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 16, except that GIS zeolite was changed to G-2. The strength of the GIS zeolite shaped body thus obtained was 24.6 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and the results are shown in Table 2. [Example 18] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 16, except that GIS zeolite was changed to G-3. The strength of the GIS zeolite shaped body thus obtained was 29.4 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and the results are shown in Table 2. [Example 19] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 16, except that GIS zeolite was changed to G-4. The strength of the GIS zeolite shaped body thus obtained was 24.3 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and the results are shown in Table 2. [Example 20] A GIS zeolite shaped body was obtained in the same manner as in Example 16, except that GIS zeolite was changed to G-5. The strength of the GIS zeolite shaped body thus obtained was 28.5 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and the results are shown in Table 2. [Comparative Example 10] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 16, except that the GIS zeolite was G-0. The strength of the GIS zeolite shaped body thus obtained was 5.4 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and the results are shown in Table 2. [Comparative Example 11] A GIS zeolite shaped body was obtained in the same manner as in Example 16, except that GIS zeolite was changed to G-6. The strength of the GIS zeolite shaped body thus obtained was 12.6 N. Furthermore, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and the results are shown in Table 2. [Comparative Example 12] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 16, except that GIS zeolite was changed to G-7. The strength of the GIS zeolite shaped body thus obtained was 12.0 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above elements, and the results are shown in Table 2. [Example 21] A GIS zeolite shaped body was obtained in the same manner as in Example 1, except that GIS zeolite was changed to G-9. The strength of the GIS zeolite shaped body thus obtained was 8.0 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 55 μm. [Example 22] A GIS zeolite shaped body was obtained in the same manner as in Example 6, except that GIS zeolite was changed to G-9. The strength of the GIS zeolite shaped body thus obtained was 7.8 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 51 μm. [Example 23] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 11, except that GIS zeolite was changed to G-9. The strength of the GIS zeolite shaped body thus obtained was 29.4 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and the results are shown in Table 2. [Example 24] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 16, except that GIS zeolite was changed to G-9. The strength of the GIS zeolite shaped body thus obtained was 28.2 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above elements, and the results are shown in Table 2. [Comparative Example 13] A GIS zeolite shaped body was obtained in the same manner as in Example 1, except that GIS zeolite was changed to G-8. The strength of the GIS zeolite shaped body thus obtained was 5.8 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle size of the shaped body was 54 μm. [Comparative Example 14] A GIS zeolite shaped body was obtained in the same manner as in Example 6, except that GIS zeolite was changed to G-8. The strength of the GIS zeolite shaped body thus obtained was 5.3 MPa. Furthermore, by measuring the contents of each of the above elements, A, B, C, D, etc. were calculated and are shown in Table 2. Furthermore, the particle diameter of the shaped body was 50 μm. [Comparative Example 15] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 11, except that GIS zeolite was changed to G-8. The strength of the GIS zeolite shaped body thus obtained was 17.4 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and the results are shown in Table 2. [Comparative Example 16] A GIS zeolite shaped body (pellet having a length of 5 mm and a diameter of 3 mm) was obtained in the same manner as in Example 16, except that GIS zeolite was changed to G-8. The strength of the GIS zeolite shaped body thus obtained was 16.8 N. In addition, A, B, C, D, etc. were calculated by measuring the contents of each of the above-mentioned elements, and the results are shown in Table 2.
[0135] [Table 2] [Example 25] When the adsorption isotherms of CO, CH, and N of the molded body of GIS-type zeolite in Example 1 were measured, the adsorption amounts at 25°C and 760 mmHg were CO: 29.3 cm 3 / g, CH4:0.1cm 3 / g, N2:0.2cm 3 / g, the adsorption selectivity (CO2 / CH4) was 293, and the adsorption selectivity (CO2 / N2) was 147, confirming that the material has sufficient performance as an adsorbent.
Claims
1. GIS type zeolite, A carrier; Including, When the total amount of substance of potassium and lithium is A and the total amount of substance of alkali metals is C, the relationship 1.00<C / A≦1.30 is satisfied, When the total value of the amounts of the alkali metal and alkaline earth metal multiplied by their valences is B, the relationship 1.00<B / A≦1.30 is satisfied; A GIS-type zeolite shaped body, wherein when the total amount of substance of potassium is D and the total amount of substance of alkali metals is C, the relationship 1.00<C / D≦1.30 is satisfied.
2. 2. The GIS type zeolite shaped body according to claim 1, wherein the support comprises at least one material selected from the group consisting of silica and alumina.
3. 2. The GIS type zeolite shaped body according to claim 1, wherein the particle size of the GIS type zeolite shaped body is 20 μm or more and 300 μm or less.
4. 4. The GIS type zeolite shaped body according to claim 3, wherein the GIS type zeolite shaped body is obtained through a spray drying treatment.
5. 5. The GIS type zeolite shaped body according to claim 4, wherein the GIS type zeolite shaped body has a compressive strength of 6.0 MPa or more.
6. 2. The GIS type zeolite shaped body according to claim 1, wherein the GIS type zeolite shaped body is a pellet having a length of 3 mm or more and 50 mm or less and a diameter of 1 mm or more and 20 mm or less.
7. 7. The GIS type zeolite shaped body according to claim 6, wherein the GIS type zeolite shaped body is obtained through an extrusion molding process.
8. 8. The GIS type zeolite shaped body according to claim 7, wherein the breaking strength of the GIS type zeolite shaped body is 20 N or more.
9. An adsorption device comprising the GIS type zeolite shaped body according to any one of claims 1 to 8.
10. The adsorption device according to claim 9 is used to 2 , N 2 , CO, and a hydrocarbon from a mixture containing two or more gases selected from the group consisting of 2 , H 2 O, He, Ne, Cl 2 , N.H. 3 and HCl.
11. The method according to claim 10, wherein the gas is separated by pressure swing adsorption, temperature swing adsorption, or pressure-temperature swing adsorption.
12. The adsorption device according to claim 9 is used to 2 , N 2 , CO, and a hydrocarbon from a mixture containing two or more gases selected from the group consisting of 2 , H 2 O, He, Ne, Cl 2 , N.H. 3 and HCl.
13. When the total amount of substance of potassium and lithium is A and the total amount of substance of alkali metals is C, the relationship 1.00<C / A≦1.30 is satisfied, When the total value of the amounts of the alkali metal and alkaline earth metal multiplied by their valences is B, the relationship 1.00<B / A≦1.30 is satisfied; A GIS-type zeolite that satisfies 1.00<C / D≦1.30, where D is the total amount of substance of potassium and C is the total amount of substance of alkali metals.
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