Compartment penetration treatment structure
The compartment penetration structure with a sleeve-shaped insert and integrated cover material addresses workability and sealing issues by using a thermally expandable resin composition, simplifying installation and ensuring effective fireproofing.
Patent Information
- Application Number
- JP2025167306
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-10-03
- Publication Date
- 2025-12-11
- Estimated Expiration
- 2039-07-29
AI Technical Summary
Existing compartment penetration structures in buildings face challenges with poor workability and incomplete sealing due to the use of multiple parts and amorphous fillers, which can lead to variations in performance and increased complexity in installation, especially in hollow walls.
A compartment penetration structure using a sleeve-shaped insert member with a sheet-like cover material integrated to form a fireproof structure, where the insert member is made of a thermally expandable resin composition and fixed with a string-like member or adhesive tape, allowing for easy installation from one side of the partition.
The solution reduces the number of parts required, simplifies the installation process, and ensures effective sealing without the need for additional components inside the through-holes, enhancing workability and fire resistance.
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Figure 2025182041000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a compartment penetration structure formed in a partition section of a building or the like, a compartment penetration material for forming the compartment penetration structure, and a construction method for the compartment penetration structure. [Background technology]
[0002] In buildings such as apartment buildings, office buildings, and schools, compartment penetrations are often installed in partitions such as walls to allow the passage of long objects such as cables and pipes. Compartment penetrations are required to be designed with fire prevention measures (fireproof construction) to prevent the spread of fire to other compartments in the event of a fire in one compartment. Partitions are generally hollow walls, consisting of two walls with a hollow space between them.
[0003] A known method for making a compartment penetration part fireproof is to fill the gap between the long penetrator and the penetration hole with an irregular filler such as fireproof putty or a fireproof pack with fireproof putty packed inside a bag. When an irregular filler is used, a tubular member made of fireproof material may also be placed between the inside of the penetration hole in each wall part and the penetrator (see, for example, Patent Documents 1 and 2).
[0004] It is also known to form a fire prevention structure by inserting a steel sleeve or a sleeve made of a fire-resistant material into a compartment penetration. In the case of a steel sleeve, for example, a fire prevention structure is known in which a retaining member is attached to the end of the steel sleeve via an adapter member, and a fire prevention material is filled between the retaining member and the elongated member (see, for example, Patent Document 3). Furthermore, when a sleeve made of fire-resistant material is used, it is known that additional fire-resistant material is placed inside the sleeve, and a tubular retaining frame for shielding the through hole is attached to the sleeve on the outside of one wall portion (see, for example, Patent Document 4).
[0005] Furthermore, there are many products on the market that contain kits of parts for forming fire-resistant structures. By using kit products, workers can form compartment penetration fire-resistant structures without having to prepare many parts themselves. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Patent No. 6150933 [Patent Document 2] Patent No. 6348320 [Patent Document 3] Japanese Patent Application Laid-Open No. 2016-23683 [Patent Document 4] Patent No. 6378092 Summary of the Invention [Problem to be solved by the invention]
[0007] However, as shown in Patent Document 1, when the gap between the inner surface of the through hole in each wall portion and the insert is sealed with fireproof putty, there are problems such as poor workability and variations in performance depending on the worker. While the use of the fireproof pack shown in Patent Document 2 improves workability, the volume of the amorphous filler is constant, and depending on the size of the through hole, there is a risk that the gap between the through hole and the insert may not be sealed properly. Furthermore, when sealing the gap between the through hole and the insert with amorphous filler, in the case of a hollow wall, work must be done from both sides of the hollow wall to fill the gap between the through hole and the insert in each wall portion, which reduces workability.
[0008] On the other hand, when using a sleeve, a fireproof structure can be formed by inserting the sleeve into the compartment penetration and shielding the sleeve on one side of the outside of the partition, which makes the work relatively easy even for hollow walls.However, conventional fireproof structures using sleeves require a certain number of parts to shield the sleeve, which makes the workability not sufficiently high, and it is easy to forget to attach parts. Furthermore, even kit products still have a large number of parts, which means that the workability is not sufficiently high, and it is easy to forget to attach parts.
[0009] Therefore, an object of the present invention is to provide a compartment penetration processing structure, a construction method for a compartment penetration processing structure, and a compartment penetration processing material that can reduce the number of parts and simplify the work. [Means for solving the problem]
[0010] The present invention has been made to solve the above problems, and the gist of the present invention is as follows. [1] A compartment penetration processing structure in which a compartment penetration part formed in a partition and into which a long penetrating body is inserted has a fireproof structure, an insert member that is inserted into the compartment penetration portion in a sleeve shape and through which the inserter is passed; a sheet-like cover material formed integrally with the insertion member and covering at least one opening of the compartment penetration portion; A compartment penetration processing structure comprising: [2] The compartment penetration processing structure described in [1] above, in which the insertion member is formed into a sleeve shape by facing its end to end and inserted into the compartment penetration portion. [3] A compartment penetration processing structure described in [1] or [2] above, in which the sheet-like cover material is laminated on one side of the insert member so as to extend beyond the compartment penetration body and the end of the insert member, and the protruding portion covers the opening. [4] The compartment penetration structure according to any one of the above [1] to [3], wherein the sheet-like cover material surrounds the outer periphery of the insert and is fixed to the insert. [5] A compartment penetration processing structure as described in [4] above, in which the sheet-like cover material is fixed to the insert by at least one of a string-like member or adhesive tape wrapped around it from the outside, and an adhesive layer or fire-resistant material arranged on the inside. [6] The compartment penetration structure according to any one of the above [1] to [5], wherein the insert member is made of at least one of a fire-resistant material and a non-combustible material. [7] A compartment penetration structure described in any one of [1] to [6] above, wherein the insert member is made of a fire-resistant material, and the fire-resistant material is formed from a heat-expandable resin composition containing a heat-expandable material and a resin. [8] The compartment penetration structure according to any one of the above [1] to [7], wherein the insert member is laminated on a substrate. [9] The compartment penetration structure according to any one of the above [1] to [8], wherein a part of the insertion member is bent from a sleeve shape to cover at least one of the openings.
[10] The compartment penetration structure according to any one of the above [1] to [9], wherein the sheet-like cover material is a non-combustible material.
[11] The compartment penetration structure according to any one of the above [1] to
[10] , wherein the insertion member has a locking member that locks onto the outer periphery of at least one of the openings.
[12] The compartment penetration structure according to any one of the above [1] to
[11] , wherein nothing other than the inserter is disposed inside the body through-hole on the inserter side of the insertion member.
[13] The compartment penetration structure according to any one of the above [1] to
[12] , further comprising a functional member arranged to cover the sheet-like cover material covering at least one of the openings.
[14] A compartment penetration structure described in any one of [1] to
[13] above, further comprising a functional member arranged inside the sheet-like cover material of the compartment penetration structure, which is partitioned by the insert member and the sheet-like cover material.
[15] A construction method for a compartment penetration processing structure in which a compartment penetration part formed in a partition and into which a long penetrating body is inserted has a fireproof structure, a step of attaching a compartment penetration treatment material including an insert member and a sheet-like cover material formed integrally with the insert member to the compartment penetration portion by inserting the insert member into the compartment penetration portion from one opening of the compartment penetration portion in a sleeve-like manner so that the penetrating body passes through the inside of the sleeve; covering the one opening with a sheet-like cover material formed integrally with the insertion member; A construction method for a compartment penetration processing structure comprising:
[16] A compartment penetration treatment material formed in a partition and for making a compartment penetration part into which a long penetrating body is inserted a fireproof structure, an insert member formed in a sleeve shape or deformable into a sleeve shape; a sheet-like cover material formed integrally with the insert member; A compartment-penetrating treatment material.
[17] The compartment penetration treatment material according to
[16] above, wherein the insertion member is in a sheet or roll shape and can be transformed into a sleeve shape.
[18] The compartment penetration treatment material according to
[16] or
[17] above, wherein the sheet-like cover material is laminated on at least one surface of the insert member.
[19] The compartment penetration treatment material described in
[18] above, wherein the sheet-like cover material is laminated so as to extend beyond the end of the insert member.
[20] A compartment penetration treatment material described in any one of
[16] to
[19] above, wherein the insert member is made of a fire-resistant material, and the fire-resistant material is formed from a heat-expandable resin composition containing a heat-expandable material and a resin.
[21] The compartment penetration treatment material according to any one of the above
[16] to
[20] , wherein the sheet-like cover material is made of a non-combustible material.
[22] The compartment penetration treatment material according to any one of the above
[16] to
[21] , which has either a functional member or a locking member. [Effects of the Invention]
[0011] According to the present invention, when a compartment penetration part is made into a fireproof structure, it is possible to reduce the number of parts and simplify the work. [Brief explanation of the drawings]
[0012] [Figure 1] 1 is a cross-sectional view showing a compartment penetration structure according to a first embodiment of the present invention. [Figure 2]1 is a cross-sectional view showing a compartment penetration processing material according to a first embodiment of the present invention. [Figure 3] 1 is a perspective view showing a construction method for a compartment penetration processing structure according to a first embodiment of the present invention. FIG. [Figure 4] FIG. 10 is a cross-sectional view showing a compartment penetration treatment material according to a second embodiment of the present invention. [Figure 5] FIG. 10 is a perspective view showing a compartment penetration treatment material according to a third embodiment of the present invention. [Figure 6] FIG. 10 is a cross-sectional view showing a compartment penetration structure according to a third embodiment of the present invention. [Figure 7] FIG. 10 is a perspective view showing a compartment penetration treatment material according to a fourth embodiment of the present invention. [Figure 8] FIG. 10 is a perspective view showing a state in which a compartment penetration processing material according to a fourth embodiment of the present invention is attached to a compartment penetration part. [Figure 9] FIG. 10 is a cross-sectional view showing a compartment penetration structure according to a fourth embodiment of the present invention. [Figure 10] FIG. 10 is a perspective view showing a functional member used in a fifth embodiment of the present invention. [Figure 11] FIG. 10 is a cross-sectional view showing a compartment penetration structure according to a fifth embodiment of the present invention. [Figure 12] FIG. 13 is a perspective view showing a compartment penetration processing material according to a modified example of the fifth embodiment of the present invention. [Figure 13] FIG. 10 is a perspective view showing a compartment penetration processing material according to a sixth embodiment of the present invention. [Figure 14] FIG. 10 is a perspective view showing a compartment penetration structure according to a sixth embodiment of the present invention. [Figure 15] FIG. 11 is a perspective view showing a construction method for a compartment penetration processing structure according to a seventh embodiment of the present invention. [Figure 16] FIG. 13 is a perspective view showing a construction method for a compartment penetration processing structure according to an eighth embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0013] Hereinafter, the pipe shielding structure of the present invention will be described in more detail using embodiments. [First embodiment] Fig. 1 is a cross-sectional view showing a compartment penetration structure 10 according to a first embodiment of the present invention. The compartment penetration structure 10 is formed in a partition 11 and serves to provide a fireproof structure for a compartment penetration part 15 through which a long inserting body 21 is inserted. The inserting body 21 may be a cable, a pipe, or the like, and Fig. 1 shows a mode in which both a cable 21A and a pipe 21B are inserted.
[0014] The partition 11 is a member that separates compartments (a first compartment A and a second compartment B) on the wall surface of a building, and has a compartment penetration part 15 that penetrates from one outer surface 11A of the partition 11 to the other outer surface 11B. In this embodiment, the partition 11 is a hollow wall, and is composed of two wall materials (partition materials) 12A and 12B that are arranged with a gap (hollow part 13) between them. Therefore, the compartment penetration part 15 is composed of a through hole 13A formed in one wall material 12A, a through hole 13B formed in the other wall material 12B, and the hollow part 13 between them. The outer surface of one wall material 12A forms the outer surface 11A of the partition 11, and the outer surface of the other wall material 12B forms the outer surface 11B of the partition 11. The through holes 13A, 13B may have a circular, elliptical, or similar shape so that when an insert member 18 (described later) is inserted, the outer peripheral surface of the insert member 18 can fit into the shape of the inner peripheral surface of the through holes 13A, 13B. Note that the through holes 13A, 13B in the outer surfaces 11A, 11B, respectively, form openings 13C, 13D of the compartment penetration portion 15 provided in the partition portion 11. In this specification, the member that constitutes the compartment penetration portion 15 is sometimes referred to as a compartment penetration body, and in this embodiment, the partition portion 11 (i.e., wall materials 12A and 12B) is the compartment penetration body. Also, a through hole provided in the compartment penetration body is sometimes referred to as a body through hole, and in this embodiment, the through holes 13A and 13B are the body through holes.
[0015] The compartment penetration treatment structure 10 comprises an insert member 18 and a sheet-like covering material 19. The insert member 18 and the sheet-like covering material 19 are integrally formed to constitute a compartment penetration treatment material 20. That is, the sheet-like covering material 19 is fixed to the insert member 18, and when the insert member 18 is inserted into the compartment penetration portion 15 and attached to the partition portion 11, the sheet-like covering material 19 also becomes attached to the partition portion 11. The insertion member 18 is sleeve-shaped and is inserted into the compartment penetration portion 15, and is disposed in the compartment penetration portion 15 so that the inserting body 21 passes through the inside of the sleeve. Here, the sleeve-shaped insertion member 18 is passed through the compartment penetration portion 15 from one through hole 13A to the other through hole 13B.
[0016] The sheet-like cover material 19 formed integrally with the insert member 18 is arranged to cover one opening 13C of the compartment penetration part 15 from the outside of the outer surface 11A. The portion of the sheet-like cover material 19 covering the opening 13C of the compartment penetration part 15 surrounds the insert body 21 and is fixed to the insert body 21 by a string-like member 22 wound from the outside.
[0017] Fig. 2 shows details of the compartment penetration treatment material 20 before it is inserted into the compartment penetration part 15. As shown in Fig. 2, in the compartment penetration treatment material 20, the insert member 18 is sheet-shaped, and a sheet-shaped cover material 19 is laminated on one surface of the sheet-shaped insert member 18. As shown in Fig. 2, the sheet-shaped cover material 19 is laminated so as to protrude outward from one end 18A of the sheet-shaped insert member 18.
[0018] The insert member 18 is made of a fire-resistant material. The fire-resistant material is preferably a thermally expandable material that expands when heated. The thermally expandable material prevents the spread of fire by expanding in the event of a fire. The insert member 18 is preferably a sheet-like material as shown in FIG. 2, and inserted into the compartment penetration portion 15 by forming the insert member 18 end-to-end into a sleeve shape as shown in FIGS. 1 and 3. The thickness of the sheet-like insert member 18 is not particularly limited, but is, for example, 0.5 to 10 mm, preferably 2 to 6 mm. The insert member 18 is preferably flexible so that it can be deformed into a sleeve shape. Alternatively, the insert member 18 may be formed by unrolling a sheet and inserting it into the compartment-penetrating portion 15 with the ends facing each other to form a sleeve.
[0019] The thermally expandable member is formed from a thermally expandable resin composition. The thermally expandable resin composition contains a resin component and a thermally expandable material. By forming the thermally expandable member from a thermally expandable resin composition containing a resin component, the insertion member can be easily curved or deformed, and can be formed into a sleeve shape as described above. Examples of thermally expandable materials include foaming agents that expand when heated, thermally expandable layered inorganic materials such as vermiculite and thermally expandable graphite, with thermally expandable graphite being preferred. The use of thermally expandable graphite allows for appropriate expansion due to heat from a fire, and the mechanical strength of the expanded residue after expansion is excellent, making it easier to improve fire resistance. The thermally expandable material referred to here does not substantially expand when molded, as described below, and the thermally expandable resin composition maintains its thermal expandability in the thermally expandable member.
[0020] The expansion start temperature of the thermally expandable material is not particularly limited, but is preferably 150 to 350°C, more preferably 170 to 300°C, and even more preferably 180 to 280°C. By setting the temperature at or below these lower limits, the thermally expandable material is prevented from accidentally expanding due to heating other than that caused by a fire. Furthermore, by setting the temperature at or below the upper limits, the thermally expandable material is more likely to expand reliably due to heating caused by a fire. The expansion starting temperature of a thermally expandable material can be measured by heating a predetermined amount (e.g., 100 mg) of the material at a constant heating rate (e.g., 10°C / min) and measuring the temperature at which the normal force rises. Any measuring device can be used as long as it is capable of controlling the measurement temperature and measuring the normal stress, and a rheometer, for example, can be used. The expansion ratio of the thermally expandable member is preferably 3 times or more, and more preferably 10 times or more. The upper limit of the expansion ratio is not particularly limited, but is, for example, 50 times. The expansion ratio can be calculated by feeding the thermally expandable member into an electric furnace, heating it at 600°C for 30 minutes, measuring the thickness of a test piece, and then calculating the ratio by dividing the thickness of the test piece after heating by the thickness of the test piece before heating.
[0021] The thermally expandable resin composition in which the thermally expandable material is thermally expandable graphite will be described in detail below. Examples of the resin component of the thermally expandable resin composition include thermoplastic resins, thermosetting resins, and elastomers. Examples of thermoplastic resins include polyvinyl chloride (PVC), chlorinated polyvinyl chloride resin (CPVC), fluororesin, polyphenylene ether, modified polyphenylene ether, polyphenylene sulfide, polycarbonate, polyetherimide, polyetheretherketone, polyarylate, polyamide, polyamideimide, polybutadiene, polyimide, acrylic resin, polyacetal, polyamide, polyethylene (PE), polypropylene (PP), polyolefins such as ethylene vinyl acetate (EVA), polyesters such as ethylene-propylene-diene copolymer (EPDM), chloroprene (CR), polyethylene terephthalate, and polybutylene terephthalate, polycarbonate, polystyrene (PS), polyphenylene sulfide, acrylonitrile-butadiene-styrene copolymer (ABS), acrylonitrile-styrene-acrylonitrile copolymer (ASA), and acrylonitrile / ethylene-propylene-diene / styrene copolymer (AES). Examples of the curable resin include epoxy resin, phenol resin, melamine resin, urea resin, unsaturated polyester resin, alkyd resin, polyurethane, and thermosetting polyimide.
[0022] Examples of elastomers include natural rubber, silicone rubber, styrene-butadiene rubber, isoprene rubber, butadiene rubber, chloroprene rubber, acrylonitrile-butadiene rubber, nitrile-butadiene rubber, butyl rubber, ethylene-propylene rubber, ethylene-propylene-diene rubber, urethane rubber, silicone rubber, and fluororubber. Other examples include thermoplastic elastomers such as olefin-based thermoplastic elastomers (TPO), styrene-based thermoplastic elastomers (TPS), ester-based thermoplastic elastomers, amide-based thermoplastic elastomers, and vinyl chloride-based thermoplastic elastomers. The resin component of the thermally expandable resin composition may be one type or a combination of two or more types.
[0023] The thermally expandable resin composition may contain a plasticizer. A plasticizer is preferably used when the resin component is a thermoplastic resin such as polyvinyl chloride resin. Specific examples of the plasticizer include phthalate ester plasticizers such as di-2-ethylhexyl phthalate (DOP), dibutyl phthalate (DBP), diheptyl phthalate (DHP), and diisodecyl phthalate (DIDP); adipic acid esters such as di-2-ethylhexyl adipate (DOA), diisobutyl adipate (DIBA), and dibutyl adipate (DBA), and fatty acid ester plasticizers such as adipic acid polyester; epoxidized ester plasticizers such as epoxidized soybean oil; trimellitic acid ester plasticizers such as tri-2-ethylhexyl trimellitate (TO™) and triisononyl trimellitate (TINT™); phosphate ester plasticizers such as trimethyl phosphate (TMP) and triethyl phosphate (TEP); and process oils such as mineral oil. One or more plasticizers can be used. When the thermally expandable resin composition contains a plasticizer, the content of the plasticizer in the thermally expandable resin composition is, for example, in the range of 0.3 parts by mass or more and 150 parts by mass or less, and preferably in the range of 10 parts by mass or more and 100 parts by mass or less, per 100 parts by mass of the resin component. When the amount of the plasticizer is equal to or greater than these lower limits, good moldability is likely to be achieved, and when the amount is equal to or less than the upper limits, an appropriate strength is imparted to the molded article.
[0024] The total content of the resin component and the plasticizer is preferably 10% by mass or more and 90% by mass or less, more preferably 25% by mass or more and 80% by mass or less, and even more preferably 40% by mass or more and 70% by mass or less, based on the total amount of the resin composition. By setting the content at or above these lower limits, the moldability of the thermally expandable member can be improved. In addition, flexibility is ensured, making it easier to deform into a sleeve shape. In addition, by setting the content at or below the upper limits, it becomes possible to blend sufficient amounts of components such as thermally expandable graphite and inorganic filler. The total content of the resin component and the plasticizer means the total content of both the resin component and the plasticizer when both are contained, and means the content of the resin component alone when no plasticizer is contained.
[0025] Thermally expandable graphite is a conventionally known substance, and is produced by treating powder of natural flake graphite, pyrolytic graphite, kish graphite, or the like with an inorganic acid such as concentrated sulfuric acid, nitric acid, or selenic acid, and a strong oxidizing agent such as concentrated nitric acid, perchloric acid, perchlorates, permanganates, dichromates, or hydrogen peroxide to produce a graphite intercalation compound. The produced thermally expandable graphite is a crystalline compound that maintains the layered structure of carbon. The thermally expandable graphite used in the present invention may be thermally expandable graphite obtained by acid treatment and neutralizing it with ammonia, aliphatic lower amines, alkali metal compounds, alkaline earth metal compounds, or the like. Examples of the aliphatic lower amine include monomethylamine, dimethylamine, trimethylamine, ethylamine, propylamine, and butylamine. Examples of the alkali metal compounds and alkaline earth metal compounds include hydroxides, oxides, carbonates, sulfates, and organic acid salts of potassium, sodium, calcium, barium, magnesium, and the like.
[0026] The particle size of the thermally expandable graphite is not particularly limited, but is preferably in the range of 20 to 200 mesh. If the particle size is equal to or greater than the lower limit, the degree of expansion of the graphite tends to increase, resulting in good expandability. On the other hand, if the particle size is equal to or less than the upper limit, good dispersibility when kneaded with a resin is achieved, improving moldability.
[0027] The content of thermally expandable graphite in the thermally expandable resin composition is, for example, 3 parts by mass or more and 300 parts by mass or less, relative to 100 parts by mass of the resin component. When the content of thermally expandable graphite is 3 parts by mass or more, thermal expandability is improved. When the content is 300 parts by mass or less, moldability is improved, and the surface properties, mechanical properties, flexibility, etc. of the sealing member are also improved. From these viewpoints, the content of thermally expandable graphite is preferably in the range of 10 parts by mass or more and 200 parts by mass or less, and more preferably in the range of 15 parts by mass or more and 100 parts by mass or less.
[0028] The thermally expandable resin composition may further contain an inorganic filler. There are no particular limitations on the inorganic filler, as long as it is an inorganic filler that is generally used in thermally expandable resin compositions. Specific examples include silica, diatomaceous earth, alumina, zinc oxide, titanium oxide, calcium oxide, magnesium oxide, iron oxide, tin oxide, antimony oxide, ferrites, calcium hydroxide, magnesium hydroxide, aluminum hydroxide, basic magnesium carbonate, calcium carbonate, magnesium carbonate, zinc carbonate, barium carbonate, dawnnite, hydrotalcite, calcium sulfate, barium sulfate, gypsum fiber, calcium silicate, talc, clay, mycelium, montmorillonite, bentonite, activated clay, seviolite, imogolite, sericite, glass fiber, glass beads, silica balloon, aluminum nitride, aluminum phosphite, boron nitride, silicon nitride, carbon black, graphite, carbon fiber, carbon balloon, charcoal powder, various metal powders, potassium titanate, magnesium sulfate, lead zirconium titanate, aluminum borate, molybdenum sulfide, silicon carbide, stainless steel fiber, zinc borate, various magnetic powders, slag fiber, fly ash, and dewatered sludge. The inorganic filler may be used alone or in combination of two or more. When an inorganic filler is contained, the content of the inorganic filler in the thermally expandable resin composition is preferably in the range of 3 parts by mass or more and 200 parts by mass or less, and more preferably in the range of 10 parts by mass or more and 150 parts by mass or less, per 100 parts by mass of the resin component.
[0029] Furthermore, the thermally expandable resin composition used in the present invention may contain additives commonly used in thermally expandable resin compositions, such as heat stabilizers, lubricants, processing aids, antioxidants, antistatic agents, pigments, crosslinking agents, crosslinking accelerators, etc., as needed, within the range that does not impair the physical properties of the composition. Among these, it is preferable to use processing aids.
[0030] The thermally expandable member can be manufactured, for example, as follows: First, predetermined amounts of resin components, a thermally expandable material, and other additives, if necessary, are mixed in a mixer such as a kneading roll to obtain a thermally expandable resin composition. The thermally expandable resin composition may be diluted by adding a solvent as appropriate. The thermally expandable resin composition, diluted as necessary, may be applied to a sheet-like covering material, dried, cured, or the like, and formed on one side of the sheet-like covering material. Alternatively, the composition may be formed on one side of the sheet-like covering material by a known method such as extrusion molding. Furthermore, a thermally expandable member previously molded into a sheet may be laminated on the sheet-like covering material by press molding or the like.
[0031] The fire-resistant material may also be a putty-like mixture, which is a resin composition containing at least one inorganic material selected from hydroxides such as aluminum hydroxide and magnesium hydroxide, carbonates such as calcium carbonate and magnesium carbonate, oxides such as magnesium oxide, phosphorus, and phosphorus compounds. In this case, the resin component contained in the resin composition may be appropriately selected from the resin components described above. The putty-like mixture may be laminated in the form of a sheet (i.e., layer) on one side of the sheet-like cover material 19, for example.
[0032] The sheet-like covering material 19 is preferably made of a non-combustible material. The sheet-like covering material 19 is made of a material that can be bent or curved so as to cover the opening 13C of the compartment penetration portion 15, as described below. Note that the non-combustible material is defined in the Building Standards Act and the Building Standards Act Enforcement Order. Specific examples of the sheet-like covering material 19 include metal foil such as aluminum foil, glass cloth, and composites of metal foil and glass cloth such as aluminum glass cloth. Among these, aluminum glass cloth is preferred from the viewpoint of fire resistance. The thickness of the sheet-like cover material 19 is, for example, 0.01 to 1 mm, and preferably 0.05 to 0.5 mm.
[0033] Next, this embodiment will be described in more detail while explaining a construction method of the compartment penetration treatment structure using FIG. 3. As shown in FIG. 3(A), the compartment penetration treatment material 20 is attached to the compartment penetration portion 15 by inserting a sheet-like insert member 18 into the compartment penetration portion 15 while passing an insert 21 through the insert member 18. The insert member 18 is sleeve-shaped to fit the shape of the inner circumferential surface of the through holes 13A and 13B (see FIG. 1) that constitute the compartment penetration portion 15. That is, the insert member 18 is preferably sleeve-shaped so that its outer circumferential surface conforms to the shape of the inner circumferential surface of the through holes 13A and 13B. Since the shape of the inner circumferential surface of the through holes 13A and 13B is generally circular, elliptical, or a shape similar thereto, the insert member 28 is preferably rolled into a sleeve shape, preferably circular, elliptical, or a shape similar thereto. Furthermore, when the tape is formed into a sleeve, the ends are brought face to face, and at this time, the ends may be adhered to each other with an adhesive, a pressure-sensitive adhesive, an adhesive tape, or the like. Here, the adhesive, pressure-sensitive adhesive, and adhesive tape are preferably made of a non-combustible material, a quasi-non-combustible material, or a flame-retardant material, and a flame retardant or the like may be blended into the adhesive, pressure-sensitive adhesive, etc. The adhesive tape includes a substrate and an adhesive layer provided on one side of the substrate, and it is preferable that the substrate and the adhesive layer each be made of a non-combustible material, a quasi-non-combustible material, or a flame-retardant material. However, the insert member is not limited to a configuration in which the ends face each other, and may be sleeve-shaped with the ends overlapping each other.
[0034] Furthermore, the sheet-like cover material 19 laminated on the insert member 18 is formed into a cylindrical shape to match the shape of the insert member 18, and in this case, the sheet-like cover material 19 is disposed on the outside of the insert member 18. Therefore, it is preferable that the insert member 18 be formed into a cylindrical shape so as to match the shape of the inner circumferential surfaces of the through holes 13A, 13B via the sheet-like cover material 19.
[0035] As shown in FIG. 3(A), the insertion member 18 is arranged such that its lateral ends face each other, with one end 18A from which the sheet-like cover material 19 protrudes being one axial end of the sleeve. The lateral direction is a direction perpendicular to the axial direction. The insertion member 18 is inserted into the compartment-penetrating portion 15 with the end opposite to the one end 18A (other end 18B) positioned at the leading end and the one end 18A positioned at the rear end. As a result, the portion of the sheet-like cover material 19 protruding from the one end 18A extends outward from one opening 13C of the compartment-penetrating portion 15, as shown in FIG. 3(B). In other words, the sheet-like cover material 19 protrudes outward not only from the end of the insertion member 18 but also from the compartment-penetrating body (i.e., the partition).
[0036] After the compartment penetration treatment material 20 is inserted into the compartment penetration part 15, the sheet-like covering material 19 extending outward from the through-hole 13A is bent or folded as appropriate to reduce its diameter, as shown in Figure 3(C), so that the sheet-like covering material 19 closely surrounds the outer periphery of the inserter 21. Then, a string-like member 22 is wound around the surrounding portion of the sheet-like covering material 19, and the sheet-like covering material 19 is fixed to the inserter 21 by the string-like member 22, so that one opening 13C of the compartment penetration part 15 is covered by the sheet-like covering material 19.
[0037] The string-like member 22 may be any bendable member, and is preferably a wire member including a wire. The wire member may be a metal wire alone, a resin-coated wire such as Nejirikko (registered trademark) in which a metal wire is coated with resin, or a wire and fiber entangled member such as a mole. When a wire member is used, the sheet-like sealing material 19 can be fixed to the inserting body 21 simply by twisting or twisting it.
[0038] In compartment penetration structure 10 having the structure described above, insertion member 18 prevents communication between hollow portion 13 and the outside of partition portion 11, and one opening 13C of compartment penetration portion 15 is covered by sheet-like cover material 19, which also prevents communication between one opening 13C and the other opening 13D of compartment penetration portion 15. Therefore, compartment penetration structure 10 can form an appropriate fireproof structure for compartment penetration portion 15.
[0039] Furthermore, the compartment penetration treatment structure 10 of this embodiment can be installed by inserting the compartment penetration treatment material 20 into the compartment penetration section 15 through one of the openings 13C, and then covering one of the openings 13C with the sheet-like cover material 19 attached to the compartment penetration treatment material 20. Therefore, the compartment penetration treatment structure can be formed with a small number of parts, and all work can be done from one side of the partition section 11 (the outer surface 11A side), improving workability. Furthermore, in this embodiment, the sheet-like insertion member 18 may be formed into a sleeve shape at the construction site and inserted into the compartment penetration portion 15. Therefore, the size of the sleeve-like insertion member 18 can be adjusted to fit the size of the through holes 13A, 13B by cutting the sheet-like insertion member 18, etc., and therefore it can be used with compartment penetration portions 15 of various sizes. Furthermore, the insert member 18 of this embodiment is made of a fire-resistant material that is relatively flexible, as described above. Therefore, when the insert member 18 is inserted into the compartment penetration portion 15, the cables that make up the insert body 21 are prevented from being damaged by the insert member 18. Additionally, in this embodiment, a fireproof structure can be formed even if nothing other than the insert body 21 is placed inside the frame through-holes (through-holes 13A, 13B) on the insert body 21 side of the insert member 18.
[0040] [Second embodiment] Next, a second embodiment of the present invention will be described with reference to Figure 4. The second embodiment differs from the first embodiment in the structure of the compartment penetration treatment material. The differences between the second embodiment and the first embodiment will be described below. Furthermore, in the following description of different embodiments, components having the same configuration will be given the same reference numerals.
[0041] The compartment penetration treatment material 25 in the second embodiment further comprises an adhesive layer 24 in addition to the insert member 18 and the sheet-like cover material 19. The adhesive layer 24 is a member for adhering and fixing the compartment penetration treatment material 25 to the partition section 11 (see FIG. 1). In the compartment penetration treatment material 25 of this embodiment, the adhesive layer 24 is laminated on the surface of the sheet-like cover material 19 opposite to the surface on which the insert member 18 is provided. The configurations of the insert member 18 and the sheet-like cover material 19 in this embodiment are the same as those in the first embodiment.
[0042] The adhesive layer 24 may be, for example, a single adhesive layer formed from an adhesive, or may be a double-sided adhesive tape attached to the sheet-like cover material 19. The double-sided adhesive tape has adhesive layers on both sides of a substrate, and is attached to the sheet-like cover material 19 via one adhesive layer, and the compartment penetration treatment material 25 is adhered to the partition portion 11 by the other adhesive layer. The adhesive constituting the adhesive layer is not particularly limited, and for example, an acrylic adhesive, a urethane adhesive, a rubber adhesive, a silicone resin adhesive, etc. may be used. A release sheet such as release paper may be further laminated on the adhesive layer 24. In this case, it is preferable to peel off the release sheet before laminating the adhesive layer 24 to the partition portion 11. The thickness of the adhesive layer 24 is smaller than the thickness of each of the insert member 18 and the sheet-like sealing material 19, and is, for example, 5 to 400 μm, and preferably 10 to 150 μm. Here, the adhesive layer 24 is preferably non-flammable, semi-non-flammable, or flame-retardant, and the adhesive used may be blended with a flame retardant, etc. Also, it is preferable to use a non-flammable, semi-non-flammable, or flame-retardant substrate for the double-sided adhesive tape.
[0043] The compartment penetration treatment material 25 may be adhered to the partition 11 via the adhesive layer 24. From the viewpoint of workability, the compartment penetration portion 25 is preferably attached to the inner peripheral surface of the through hole 13A (i.e., one opening 13C, see FIG. 1) via the adhesive layer 24. Therefore, the adhesive layer 24 of the compartment penetration treatment material 25 may be disposed at a position corresponding to one end 18A or its vicinity. As described above, the construction of the compartment penetration treatment structure using the compartment penetration treatment material 24 is performed from the side of one outer surface 11A (see FIG. 1) of the partition 11, so that it is easy to attach the adhesive layer 24 to the inner peripheral surface of one opening 13C, improving workability.
[0044] As described above, in this embodiment, by providing the adhesive layer 24, the compartment penetration processing material 25 can be fixed to the partition portion 11, making it easier to position the compartment penetration processing material 25 in the desired position and maintain it in that state.
[0045] In each of the above embodiments, the sheet-like cover material 19 is arranged on the outer circumferential side of the insert member 18 inside the compartment penetration portion 15, but the sheet-like cover material 19 may also be arranged on the inner circumferential side of the insert member 18. When the sheet-like cover material 19 is arranged on the inner circumferential side, the outer circumferential surface of the insert member 18 comes into direct contact with the inner circumferential surfaces of the through holes 13A and 13B. Furthermore, when the sheet-like cover material 19 is disposed on the inner peripheral side, the adhesive layer 24 in the compartment penetration treatment material 25 of the second embodiment is laminated on one surface of the insert member 18. Specifically, the adhesive layer 24 may be laminated on the surface of the insert member 18 opposite to the surface on which the sheet-like cover material 19 is provided.
[0046] Even when the sheet-like covering material 19 is disposed on the inner peripheral side of the insert member 18, as in the first and second embodiments, the insert member 18 prevents communication between the hollow portion 13 and the outside of the partition portion 11, and one opening 13C of the compartment penetration portion 15 is covered by the sheet-like covering material 19. Therefore, communication between one opening 13C of the compartment penetration portion 15 and the other opening 13D is also prevented. Therefore, the compartment penetration processing structure can form an appropriate fireproof structure for the compartment penetration portion 15. In this case, a fireproof structure can be formed without placing anything other than the sheet-like cover material 19 and the inserting body 21 inside the frame through-hole on the inserting body 21 side of the inserting member 18.
[0047] [Third embodiment] Next, a third embodiment of the present invention will be described with reference to Figures 5 and 6, which show differences from the first embodiment. Figures 5 and 6 show a compartment penetration processing material 35 and a compartment penetration structure 30 in the third embodiment, respectively. In the third embodiment, as shown in FIG. 5, a plurality of notches 28B are formed in the insert member 28. Each notch 28B extends from one end 28A of the insert member 28 to the middle of the insert member 28. When the compartment penetration treatment material 35 is inserted into the compartment penetration portion 15, the sheet-like cover material 29 is disposed inside the insert member 28, as shown in FIG. 6. Because the insert member 28 has the notches 28B, as shown in FIG. 6, the one end 28A is folded back outward to form a flange-shaped locking member 28C. The locking member 28C is locked on the outer surface 11A to the outer periphery of the through hole 13A (i.e., one opening 13C) or inside the through hole 13A, and the one end 28A side of the insert member 28 is fixed to the partition portion 11. Therefore, the compartment penetration treatment material 35 inserted into the compartment penetration portion 15 is reliably fixed at the desired position of the compartment penetration portion 15.
[0048] [Fourth embodiment] Next, a fourth embodiment of the present invention will be described. As shown in FIG. 7 , the compartment penetration treatment material 45 of the fourth embodiment includes an insert member 38 and a sheet-like cover material 39 having the same configuration as those of the first embodiment. A locking member 41 formed separately from the insert member 38 is laminated on the portion of the sheet-like cover material 39 that protrudes from the insert member 38. The locking member 41 is disposed on the surface of the sheet-like cover material 39 on which the insert member 38 is provided, with a gap 42 between the locking member 41 and the insert member 38. The locking member 41 may be sheet-like like the insert member 38, or may be putty-like, and may be made of a fire-resistant material or a foam such as foamed polyethylene, foamed polypropylene, foamed polystyrene, or foamed polyurethane. The insert member 38 and the locking member 41 may both be formed from a thermally expandable resin composition or a putty-like mixture that is a resin composition containing the inorganic material described above. If the inserting member 38 and the locking member 41 are both made of the same material, such as a thermally expandable resin composition or the putty-like mixture described above, they can be easily formed by, for example, intermittent coating.
[0049] The insert member 38 and the locking member 41 are arranged via a gap 42, and as shown in Fig. 8, by folding the sheet-like cover material 39 in the gap 42, a stepped sheet is formed in which the locking member 41 is connected to one end 38A of the insert member 38 via a step 42A. Therefore, when the compartment penetration treatment material 45 (i.e., the insert member 38, the locking member 41, and the sheet-like cover material 39) is formed into a sleeve shape and inserted into the compartment penetration part 15 so that the sheet-like cover material 39 is arranged on the inner periphery side of the insert member 38, the locking member 41, which is located on the outer periphery side of the insert member 38, is connected to one end 38A of the insert member 38, as shown in Fig. 9. Therefore, in the compartment penetration treatment structure 40, the compartment penetration treatment material 45 inserted in the sleeve shape is locked by the locking member 41 to the outer periphery or inside of one opening 13C of the compartment penetration part 15, and is reliably fixed at the desired position of the compartment penetration part 15. In the fourth embodiment, the locking member 41 may be provided on a part of the protruding portion of the sheet-like cover member 39, as shown in FIG. 7, or may be provided on the entirety thereof.
[0050] In the second to fourth embodiments, the compartment-penetrating treatment material is fixed to the partition 11 via an adhesive layer or a locking member, but it may be fixed to the partition by means other than an adhesive layer and a locking member. For example, a sleeve-shaped insert member may be fixed to the partition by known means such as a screw or a stapler. The locking member may also be a member disposed on the outer periphery of the insert member, and is not limited to the configuration of the third and fourth embodiments described above. For example, it may be a sheet-like cover material or a block-like member attached to the insert member.
[0051] [Fifth embodiment] Next, a fifth embodiment of the present invention will be described with reference to Figures 10 and 11. The fifth embodiment differs from the first embodiment in that a functional member is further provided in the compartment penetration processing structure. The following describes the differences between the fifth embodiment and the first embodiment.
[0052] FIG. 10 shows a functional member 50 used in the fifth embodiment. The functional member 50 in the fifth embodiment is a member (also referred to as a "covering functional member") that further covers the sheet-like cover material 19 that covers the opening. The functional member 50 is formed from a metal, a resin material, a rubber material, or the like. As shown in FIG. 10, the functional member 50 in this embodiment is divided into two and consists of a pair of divided pieces 50A and 50B, and the divided pieces 50A and 50B are butted together to form the functional member 50. The divided pieces 50A and 50B may be fixed to each other by, for example, providing a convex portion, a concave portion, or the like on each of the butting surfaces of each other and fitting them together. The functional member 50 is cap-shaped and has a top surface 51 and a side surface 52 erected on the top surface 51. The side surface 52 has a certain height so that the sheet-like cover material 19 can be stored inside. The inner diameter of the functional member 50 (side surface 52) is larger than the diameter of one opening 13C of the compartment penetration part. In addition, the top surface 51 is provided with a hole 51A through which the penetrating body 21 is passed. The hole 51A may be circular, or may be any shape other than circular depending on the shape of the inserter 21. The hole 51A may be smaller than the size of the inserter 21. Also, a notch may be provided instead of the hole 51A. Even if the size of the hole 51A is smaller than the inserter 21 or if a notch is provided instead of the hole 51A, when the functional member 50 is made of rubber or a resin material, when the inserter 21 is inserted into the hole 51A (or the notch), the top surface 51 bends and the inserter 21 can be inserted into the hole 51A (or the notch).
[0053] After the opening 13C is covered with the sheet-like sealing material 19, the functional member 50 is attached to the outer surface 11A of the partition 11 as shown in Fig. 11. Here, since the functional member 50 is divided into two divided pieces 50A, 50B as described above, it is preferable that the functional member 50 is attached to the outer surface 11A by butting together the two pieces so as to sandwich the insert 21 from both sides. In addition, the functional member 50 may be fixed to the outer surface 11A of the partition portion 11 using known fixing means such as adhesives, glue, screws, or tackers, or the outer surface 11A may have recesses or protrusions, etc., and the functional member 50 may be fixed to the outer surface 11A by fitting or the like.
[0054] The sheet-like covering material 19 may be bent or folded, resulting in wrinkles and an unattractive appearance, but by further covering the sheet-like covering material 19 with the functional member 50 as in this embodiment, the appearance of the compartment penetration treatment structure 55 is improved. In other words, the functional member 50 functions as a decorative member. Furthermore, the functional member 50 is positioned outside the area defined by the sheet-like covering material 19 and the insert member 18, and does not interfere with the formation of the fire-resistant structure. However, the functional member 50 is not limited to functioning as a decorative material, and can impart various functions to the compartment penetration structure 55. For example, the functional member 50 may impart sound insulation, odor prevention, vibration damping, and other functions to the compartment penetration structure 55. Note that sound insulation performance and odor prevention performance are functions that prevent sound leakage, odor leakage, and the like from one outer surface 11A (or 11B) to the other outer surface 11B (or 11A). Also, vibration damping performance is a function that prevents the insert 21 from vibrating.
[0055] The functional member 50 provides a certain level of sound insulation and deodorizing performance by covering the opening 13C, and also provides a certain level of vibration damping performance by supporting the insert 21 on the inner circumferential surface of the hole 51A. The material of the functional member 50 can be appropriately selected depending on the desired function. For example, if a sound insulation function is desired, the functional member 50 can be formed from a sound insulation material such as a foam or rubber material. If a deodorizing function is desired, a deodorizer or a deodorizing agent can be blended into the resin material or rubber material that constitutes the functional member 50. Furthermore, if a vibration damping function is desired, the functional member 50 can be formed from a rubber material or the like. Furthermore, additional components, such as a sound insulation material, a deodorizer, or a deodorizing agent, can be attached to the inner surface of the functional member 50 (e.g., the inner surface of the top surface 51) depending on the desired function.
[0056] As described above, in this embodiment, by providing the functional member 50 in the compartment penetration processing structure 55, it is possible to provide various functions while forming an appropriate fireproof structure for the compartment penetration part 15. Furthermore, even when attaching the functional member 50, it is possible to prevent an increase in the number of parts, and all work can be done from one side of the partition part 11 (the outer surface 11A side), improving workability.
[0057] As described above, the functional member that further covers the sheet-like cover material 19 that covers the opening 13C is not limited to the above-described configuration and may have any shape as long as it can cover the sheet-like cover material. One modified example of such a functional member is shown in FIG. 12. As shown in FIG. 12, in this modified example, the functional member is not divided into two pieces but consists of a single functional member 57. Similar to the functional member 50 in the fifth embodiment, the functional member 57 is cap-shaped and has a top surface 58 and a side surface 59, with a hole 58A formed in the top surface 58. The functional member 57 also has a slit 57A extending from the hole 58A toward the outer periphery, and the slit 57A is formed across the top surface 58 and the side surface 59. The slit 57A allows the inserting body 21 to be inserted into the hole 58A through the slit 57A without the functional member 57 being divided into two pieces. In this modified example, a notch may be formed in the top surface 58 instead of the hole 58A.
[0058] The functional member that further covers the sheet-like cover material is not limited to the above configuration and may have any other configuration, for example, it may be divided into three or more parts. Also, for example, although the functional member is fixed to the partition portion 11 (i.e., the outer surface 11A), it does not need to be fixed to the partition portion 11, and may be fixed to either the sheet-like cover material or the insert member, for example. In this case, the functional member may be fixed to either the sheet-like cover material or the insert member from the outer periphery side by known fixing means such as adhesive, pressure-sensitive adhesive, screws, or tacker, or may be fixed by fitting into these.
[0059] [Sixth embodiment] Next, a sixth embodiment of the present invention will be described with reference to Figures 13 and 14. In the fifth embodiment, the functional member was arranged to cover the sheet-like cover member, but in this embodiment, the functional member is a functional member (also referred to as an "internal functional member") arranged inside the compartment penetration processing structure covered by the sheet-like cover member, which is different. Below, the sixth embodiment will be described with respect to the differences from the fifth embodiment.
[0060] The functional member 60 in this embodiment is provided on and supported by a sheet-like cover material 69. Specifically, in the compartment penetration processing material 65, the functional member 60 is laminated on the portion of the sheet-like cover material 69 that protrudes from one end 68A of the insertion member 68. The configurations of the sheet-like cover material 69 and the insertion member 68 are the same as those in the first embodiment. The functional member 60 may be provided with functions such as sound insulation, deodorization, and vibration damping, and may be a sound-insulating material such as a foam or rubber material, a deodorizer or deodorizer itself, or a resin material or rubber material containing a deodorizer or deodorizer. It may also be a rubber material that functions as a vibration damping material. Furthermore, while the functional member 60 is shown in FIG. 13 as being formed in a sheet shape, as will be described later, it may have any shape as long as it does not prevent the sheet-like cover material 69 from covering the opening 13C.
[0061] In this embodiment, when the compartment penetration treatment material 65 (i.e., the insert member 68 and the sheet-like cover material 69) is formed into a sleeve shape and inserted into the compartment penetration part 15, the part of the sheet-like cover material 69 that protrudes from one end 68A of the insert member 68 and the functional member 60 laminated on the protruding part are positioned outside the outer surface 11A. Note that the functional member 60 is positioned inside the sheet-like cover material 69 and is therefore not shown in FIG. 14. The protruding portion of the sheet-like covering material 69 can be reduced in diameter as in the above-described embodiments, thereby allowing the sheet-like covering material 69 to tightly surround the outer periphery of the insert 21. In this case, the sheet-like covering material 69 may be in tight contact with the insert 21 via the functional member 60 disposed inside. Then, the string-like member 22 is wound around the surrounding portion of the sheet-like covering material 69, and the sheet-like covering material 69 is fixed to the insert 21 by the string-like member 22, whereby one opening 13C of the compartment penetration portion 15 is covered by the sheet-like covering material 69.
[0062] As described above, in the sixth embodiment, the functional member 60 is also provided on the compartment penetration treatment material 65, so that the function can be imparted with a small number of parts and with good workability. Furthermore, the functional member 60 does not prevent the sheet-like cover material 69 from covering the opening 13C, so it does not hinder the formation of the fire prevention structure.
[0063] In the sixth embodiment described above, the internal functional member is positioned inside the sheet-like cover material, but it may be positioned anywhere within the section penetration processing structure partitioned by the insert member and the sheet-like cover material, for example, it may be positioned inside the insert member. Furthermore, the configuration of the internal functional member may be in any form, and it may be placed inside the penetration treatment structure separately from the compartment penetration treatment material, or it may be placed inside the insert member in the form of putty, or putty stored in a bag may be placed inside the insert member. Furthermore, the internal functional member may be a cap-shaped member that has a top surface and sides, like the covering functional member shown in the fifth embodiment, and covers the opening formed by one end 18A of the insert member 18 (see Figure 11) inside the sheet-like cover material, or it may be a plate-shaped member that covers the opening formed by one end 18A of the insert member 18.
[0064] In the first to sixth embodiments described above, the insertion member is formed into a sleeve shape by facing the ends of a sheet-like member, but it may also be formed into a sleeve shape in advance. By forming it into a sleeve shape in advance, workability on site is further improved. Furthermore, if it is formed into a sleeve shape in advance, the diameter of the insertion member cannot be adjusted when inserting it into the compartment penetration part, so it is effective when used for a compartment penetration part having a through hole of a predetermined size.
[0065] [Seventh embodiment] FIG. 15 shows an example of a seventh embodiment in which the insert member is formed into a sleeve shape in advance. As shown in FIG. 15(A), the compartment penetration treatment material 70 according to this embodiment includes a sleeve-shaped insert member 73 and a sheet-like cover material 74 attached to one end 73A of the insert member 73 in the axial direction. The insert member 73 is formed from a fire-resistant material as described above, and may be formed by any method as long as it is formed into a sleeve shape. Furthermore, the insert member 73 made of a sleeve material may be provided with a slit extending in the axial direction, and the sheet-like cover material may also be provided with a slit. The provision of the slit makes it easier for the inserter 21 to pass through the inside of the insert member 73. The sheet-like covering material 74 is made of a non-combustible material and extends radially outward in a sheet shape from one end 73 A. The sheet-like covering material 74 may or may not be layered on the outer circumferential surface of the sleeve-shaped insert member 73.
[0066] In the compartment penetration processing material 70 of this embodiment, as in the above-described embodiments, a sleeve-shaped insert member 73 is inserted into the compartment penetration part 15 as shown in Fig. 15(B). Thereafter, as shown in Fig. 15(C), a sheet-like cover material 74 is bundled and tightly wrapped around the outer periphery of the inserter 21 from the outside of the inserter 21, and then the sheet-like cover material 74 is fixed to the inserter 21 with a string-like member 22 to form a compartment penetration processing structure 75.
[0067] Of course, a functional member may also be provided in the seventh embodiment. The functional member may be a covering functional member that further covers the sheet-like cover material 74, as described in the fifth embodiment and its modifications, or an internal functional member that is provided inside the compartment penetration structure, as described in the sixth embodiment. Details of the covering functional member and the internal functional member are as described above, but a specific example in which an internal functional member is provided in the compartment penetration structure is shown in Figure 16 as the eighth embodiment.
[0068] [Eighth embodiment] The internal functional member used in the eighth embodiment may be a cap-shaped functional member 80, as shown in FIG. 16(B). The cap-shaped functional member 80 may have a top surface 81 and side surfaces 82, as in the fifth embodiment. Furthermore, a notch or hole may be provided in the top surface 81, and a slit may be provided from the hole (or notch) toward the outer peripheral surface. Furthermore, the functional member 80 may be divided into two or more parts. However, since the functional member 80 does not need to store a seat cover material inside, the side surfaces 82 of the functional member 80 do not need to have a fixed height, and the functional member may be a plate-shaped member with the side surfaces 82 omitted.
[0069] When a functional member 80 is used as the internal functional member, the insert member 73 is inserted into the compartment penetration portion 15 as shown in Fig. 16(A). At this time, the sheet-like cover material 74 is preferably arranged along the outer surface 11A of the partition 11. Then, as shown in Fig. 16(B), the functional member 80 is preferably placed on top of the sheet-like cover material 74 arranged in this manner so as to cover the opening 13C. As a result, the lower end of the functional member 80 (i.e., the lower end of the side surface 82) is arranged on the outer periphery of the opening 13C via the sheet-like cover material 74. The functional member 80 may be fixed to the outer surface 11A of the partition 11 via the sheet-like cover material 74 by known fixing means such as screws or a stapler. The cap-shaped functional member 80 may be fixed by fitting it onto the end of the insert member 73 via the sheet-like cover material 74, or may be fixed to the partition 11 or the insert member 73 by any other fixing means. After the functional member 80 is fixed, the sheet-like cover material 74 is tightly wrapped around the outer periphery of the insert 21 from the outside of the insert 21, as shown in Figure 16 (C), and then the sheet-like cover material 74 is fixed to the insert 21 with a string-like member 22 to form a compartment penetration processing structure 85.
[0070] In the above description, the present invention has been described in detail using embodiments, but the present invention is not limited to the configurations of the above embodiments, and various improvements or modifications may be made without departing from the technical concept of the present invention, and the various configurations may be combined as appropriate. For example, in each of the above embodiments, the sheet-like covering material is fixed to the insert with a string-like member. However, it may also be fixed to the sheet-like covering material by something other than a string-like member. For example, it may be fixed to the sheet-like covering material by an adhesive layer or a fire-resistant material. The adhesive layer or fire-resistant material may be pre-laminated on the inside of the sheet-like covering material in a portion that contacts the insert. The adhesive layer may consist of a single adhesive layer, or it may be a double-sided adhesive tape having a substrate and adhesive layers on both sides of the substrate. The fire-resistant material may be formed from the above-mentioned thermally expandable resin composition. For example, the thermally expandable resin composition may be applied uncured or diluted with a solvent to the sheet-like covering material, and the uncured or undried thermally expandable resin composition may be cured and dried while in contact with the insert, thereby fixing the sheet-like covering material to the insert via the fire-resistant material. It may also be fixed with a putty-like mixture, which is a resin composition containing at least one inorganic material selected from hydroxides such as aluminum hydroxide and magnesium hydroxide, carbonates such as calcium carbonate and magnesium carbonate, oxides such as magnesium oxide, phosphorus, and phosphorus compounds. The sheet-like cover material may also be secured by an adhesive tape wrapped around it from the outside. The adhesive tape may be a single-sided adhesive tape having a substrate and an adhesive layer on one side of the substrate. The details of the substrate and the adhesive layer are as described above.
[0071] In the above embodiments, the insert member of the present invention is made of a fire-resistant material. However, the insert member may be made of a non-combustible material. Specific examples include mortar, a metal pipe such as a steel sleeve, inorganic fiber, and molded bodies thereof. However, from the viewpoint of preventing damage to the inserter 21, the end of the insert member is preferably made of a flexible material with no exposed sharp edges, such as an organic foam, a rubber-like molded body, or a fire-resistant material. The insert member itself does not need to be made of a non-combustible material or a fire-resistant material, but may be a pipe or the like having a non-combustible material disposed at least partially inside or outside thereof. The pipe may be made of a resin material or the like.
[0072] In each of the above embodiments, the sleeve-shaped insert member may be partially bent, with the bent portion covering one opening of the compartment-penetrating portion. In this case, for example, one axial end of the sleeve-shaped insert member may be bent. The one opening of the compartment-penetrating portion may be covered with a sheet-like covering material so as to further cover the bent end of the insert member. In this way, the one opening of the compartment-penetrating portion is covered by the end of the insert member and the sheet-like covering material, which makes it easier to improve fire resistance. One end of the sleeve-shaped insertion member may be bent after being inserted into the compartment-penetrating portion, or may have a bent shape in advance.
[0073] Furthermore, in each of the above-described embodiments, a fire-resistant material such as a thermally expandable material may be disposed inside the compartment penetration structure defined by the insert member and the sheet-like cover material (for example, inside the insert member). By disposing a fire-resistant material inside the compartment penetration structure, fire resistance is likely to be improved. Furthermore, when the insert is made of a non-combustible material, it is preferable that a fire-resistant material made of a thermally expandable material is disposed inside the compartment penetration structure. In this embodiment, the insert itself does not expand in the event of a fire, but the fire-resistant material disposed inside the compartment penetration structure expands, thereby appropriately preventing the spread of fire.
[0074] Furthermore, the sheet-like cover material does not need to be a non-combustible material, and may be made of a semi-non-combustible material, a flame-retardant material, or other materials. Note that semi-non-combustible materials and flame-retardant materials are defined in the Building Standards Act and the Enforcement Order of the Building Standards Act. Furthermore, a non-combustible material may be placed inside the compartment penetration structure defined by the insert member and the sheet-like cover material (for example, inside the insert member). Placing a non-combustible material inside the compartment penetration structure tends to improve fire resistance. Examples of non-combustible materials that can be placed inside the compartment penetration structure include glass wool and rock wool. Furthermore, when the sheet-like cover material is made of a material other than a non-combustible material, it is preferable to place a non-combustible material inside the compartment penetration structure from the standpoint of fire resistance, etc.
[0075] In addition, in the first and second embodiments, the sheet-like cover material is cylindrical together with the insertion member, but it does not have to be cylindrical, and for example, the sheet-like cover material may be cut so that it spreads radially outward from one end of the insertion member, as in the seventh embodiment. When the sheet-like cover material is arranged so that it spreads radially outward, the opening 13C inside the sheet-like cover material is more likely to be covered by the cap-shaped functional member 80 or plate-shaped functional member shown in Fig. 16 as the internal functional member.
[0076] In addition, in each of the above embodiments, the sheet-like cover material is laminated on the insert member and integrated with the insert member, but the sheet-like cover material may be integrated with the insert member in any manner as long as it is fixed to the insert member. For example, the sheet-like cover material may be integrated with the insert member by being connected to the end of the insert member.
[0077] In the compartment penetration treatment material of each of the above embodiments, sheet-like cover materials may be laminated on both sides of the insert member. In this case, for example, a laminate structure may be formed in which the sheet-like cover material, the insert member, and the sheet-like cover material are provided in this order, and it is also preferable that both sheet-like cover materials extend beyond the end of the insert member. When sheet-like cover materials are provided on both sides, one opening can be covered by two sheet-like cover materials. Alternatively, one sheet-like cover material may cover one opening of the compartment penetration portion, and the other sheet-like cover material may cover the other opening of the compartment penetration portion.
[0078] In addition, in each of the above embodiments, the insert member may be laminated on the substrate. That is, for example, a laminated structure may be formed in which the substrate, insert member, and sheet-like cover material are provided in this order. The substrate is not particularly limited, but may be made of a non-combustible material, such as metal foil, glass cloth, or a composite of metal foil and glass cloth, such as aluminum glass cloth. Among these, aluminum glass cloth is preferred from the viewpoint of fire resistance. The thickness of the substrate is, for example, 0.01 to 1 mm, preferably 0.05 to 0.5 mm. In this case, the substrate, together with the insert member and sheet-like cover material, may be formed into a cylindrical shape and inserted into the compartment penetration portion.
[0079] Furthermore, in the above description, the partition 11 is a hollow wall having a hollow portion 13 therein, but it is not limited to a hollow wall and may be a wall without a hollow, for example, made of a single wall material. Furthermore, the partition 11 is not limited to a wall of a building and may be a ceiling or floor of a building. Even if the partition is a ceiling or floor, it may have a structure with a hollow portion between two partition materials, or a structure without a hollow portion, for example, made of a single partition material.
[0080] In addition, in each of the above embodiments, the sheet-like cover material covers one opening of the compartment penetration part, but it may also cover both openings. In this case, the sheet-like cover material may have any shape, for example, it may be formed so as to extend outward from both axial ends of the insertion member, and the extended portions may cover both openings. Also, two sheet-like cover materials may be provided, and each sheet-like cover material may cover both openings. [Explanation of symbols]
[0081] 10, 30, 40, 55, 75, 85 compartment penetration processing structure 11 Partition 13 Hollow part 13C,13D opening 15 Compartment penetration 18, 28, 38, 68, 73 Inserts 18A, 28A, 38A, 68A, 73A One end 19, 29, 39, 69, 74 Sheet-type covering material 20, 25, 35, 45, 65, 70 compartment penetration treatment material 21 Penetrator 22 String-like member 24 Adhesive layer 28B notch 28C, 41 Locking member 42 Gap 42A Step 50, 57, 60, 80 Functional parts 51, 58, 81 top 52, 59, 82 Side
Claims
1. A compartment penetration processing structure in which a compartment penetration part formed in a partition part and into which a long penetrating body is inserted has a fireproof structure, an insert member that is inserted into the compartment penetration portion in a sleeve shape and through which the inserter is passed; a sheet-like cover material formed integrally with the insertion member and covering at least one opening of the compartment penetration portion; A compartment penetration processing structure comprising:
2. The compartment penetration structure according to claim 1 , wherein the insertion member is formed into a sleeve shape by facing its end portions to each other and is inserted into the compartment penetration portion.
3. A compartment penetration processing structure as described in claim 1 or 2, wherein the sheet-like cover material is laminated on one side of the insert member so as to extend outside the compartment penetration body and the end of the insert member, and the protruding portion covers the opening.
4. 4. The compartment penetration structure according to claim 1, wherein the sheet-like cover material surrounds the outer periphery of the insert and is fixed to the insert.
5. The compartment penetration processing structure described in claim 4, wherein the sheet-like cover material is fixed to the insert by at least one of a string-like member or adhesive tape wrapped around the outside and an adhesive layer or fire-resistant material arranged on the inside.
6. The compartment penetration structure according to any one of claims 1 to 5, wherein the insert member is made of at least one of a fire-resistant material and a non-combustible material.
7. The compartment penetration processing structure according to any one of claims 1 to 6, wherein the insert member is made of a fire-resistant material, and the fire-resistant material is formed from a thermally expandable resin composition containing a thermally expandable material and a resin.
8. The compartment penetration structure according to any one of claims 1 to 7, wherein the insert member is laminated on a substrate.
9. The compartment penetration structure according to any one of claims 1 to 8, wherein a portion of the insertion member is bent from a sleeve shape to cover at least one of the openings.
10. The compartment penetration treatment structure according to any one of claims 1 to 9, wherein the sheet-like cover material is a non-combustible material.
11. The compartment penetration structure according to any one of claims 1 to 10, wherein the insertion member has a locking member that locks onto the outer periphery of at least one of the openings.
12. The compartment penetration processing structure according to any one of claims 1 to 11, wherein nothing other than the inserting body is disposed inside the body through hole on the inserting body side of the insertion member.
13. The compartment penetration treatment structure according to any one of claims 1 to 12, further comprising a functional member arranged to cover the sheet-like cover material that covers at least one of the openings.
14. The compartment penetration processing structure according to any one of claims 1 to 13, further comprising a functional member disposed inside the sheet-like cover material of the compartment penetration processing structure, which is partitioned by the insert member and the sheet-like cover material.
15. A construction method for a compartment penetration processing structure in which a compartment penetration part formed in a partition and into which a long penetrating body is inserted has a fireproof structure, a step of attaching a compartment penetration treatment material including an insert member and a sheet-like cover material formed integrally with the insert member to the compartment penetration portion by inserting the insert member into the compartment penetration portion from one opening of the compartment penetration portion in a sleeve-like manner so that the penetrating body passes through the inside of the sleeve; covering the one opening with a sheet-like cover material formed integrally with the insertion member; A construction method for a compartment penetration processing structure comprising:
16. A compartment penetration treatment material for making a compartment penetration part formed in a partition and into which a long penetrating body is inserted a fireproof structure, an insert member formed in a sleeve shape or deformable into a sleeve shape; a sheet-like cover material formed integrally with the insert member; A compartment-penetrating treatment material.
17. The compartment penetration treatment material according to claim 16, wherein the insertion member is in a sheet or roll shape and can be transformed into a sleeve shape.
18. The compartment penetration treatment material according to claim 16 or 17, wherein the sheet-like cover material is laminated on at least one surface of the insert member.
19. The compartment penetration treatment material according to claim 18, wherein the sheet-like cover material is laminated so as to extend outward beyond the end of the insertion member.
20. The insert member is made of a fire-resistant material, and the fire-resistant material is formed from a thermally expandable resin composition containing a thermally expandable material and a resin. Compartment penetration processing material according to any one of claims 16 to 19.
21. The compartment penetration treatment material according to any one of claims 16 to 20, wherein the sheet-like cover material is a non-combustible material.
22. The compartment penetration treatment material according to any one of claims 16 to 21, comprising either a functional member or a locking member.
Citation Information
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