Partition wall structure
The partition wall runner and structure with a specific design and materials prevent fire spread by using a concave fitting member and fire-resistant panels, enhancing safety and stability.
Patent Information
- Application Number
- JP2021202696
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-14
- Publication Date
- 2026-01-14
- Estimated Expiration
- 2041-12-14
AI Technical Summary
Conventional partition walls with U-shaped cross-section runners exposed on the ceiling and floor allow heat transfer between sides, potentially spreading fire from one side to the other.
A partition wall runner with a specific design featuring openings and through holes, combined with a concave fitting member and fire-resistant panels, including a honeycomb material and non-combustible boards, to prevent heat transfer and enhance fire resistance.
The solution provides a highly safe partition wall structure that inhibits fire spread by integrating fire-resistant materials and a unique runner design, ensuring safety and stability.
Smart Images

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Abstract
Description
[Technical Field]
[0001] An embodiment of the present invention relates to a partition wall runner, a partition wall structure, and a method for installing a fire-resistant panel.
[0002] Sandwich panel (SWP) technology, which has its roots in Europe, is a highly functional material that excels in design, heat insulation, and light weight. The use of sandwich panels is expected to reduce the burden on the building's structural frame, and to reduce the labor and construction time required for construction.
[0003] Patent Document 1 discloses a structure in which a partition wall is fitted between a runner with a U-shaped cross section installed on the ceiling and a runner with a U-shaped cross section installed on the floor. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2014-159681 Summary of the Invention [Problem to be solved by the invention]
[0005] In conventional partition walls, the U-shaped cross-section runners installed on the ceiling and the U-shaped cross-section runners installed on the floor are exposed from the partition wall. Therefore, if a fire breaks out on one side of the partition wall, heat is transferred from the exposed U-shaped cross-section runners to the other side of the partition wall, which can cause the fire to spread to the other side.
[0006] In view of the above problems, one object of one embodiment of the present invention is to provide a partition wall runner and a partition wall structure that are highly safe. [Means for solving the problem]
[0007] A runner for a partition wall in one embodiment of the present invention has a bottom surface portion extending in a first direction, a first side wall portion rising upward from the bottom surface portion and extending in the first direction, a second side wall portion facing the first side wall portion and rising upward from the bottom surface portion and extending in the first direction, and a curved portion curved to connect the upper part of the first side wall portion to the upper part of the second side wall portion, a first opening portion is provided in part of the curved portion to expose part of the bottom surface portion, a first through hole is provided in the part of the bottom surface portion exposed by the first opening, and the first side wall portion and the second side wall portion are spaced apart to fit into a concave fitting member of the partition wall.
[0008] In the above configuration, a second opening is provided in a part of the curved portion adjacent to the first opening and exposing a part of the bottom surface portion, and a second through hole is provided in the part of the bottom surface portion exposed by the second opening.
[0009] A partition wall structure according to one embodiment of the present invention comprises a first non-combustible board having a first surface and a second surface opposite the first surface, a second non-combustible board having a first surface and a second surface opposite the first surface, a third non-combustible board covering the first surface of the first non-combustible board, a fourth non-combustible board covering the first surface of the second non-combustible board, a honeycomb material arranged between the third and fourth non-combustible boards, a concave fitting member having a web extending along one side of the honeycomb material and a first flange and a second flange sandwiching the web, and a fifth non-combustible board arranged in a position opposite the concave fitting member across the honeycomb material, wherein the fifth non-combustible board comprises a fire-resistant panel arranged in contact with the third and fourth non-combustible boards, and the partition wall runner described above, and the opening of the concave fitting member is fitted into the partition wall runner.
[0010] In the above configuration, the first flange contacts the third noncombustible board, the second flange contacts the fourth noncombustible board, and the distance between the first flange and the second flange is greater than the width of the partition wall runner.
[0011] In the above configuration, a plurality of partition wall runners are fitted between the first flange and the second flange.
[0012] In the above configuration, the concave fitting member is a channel steel or a setting block.
[0013] In the above configuration, the fire-resistant panel has a first surface, a second surface opposite the first surface, and a third surface connecting the first surface and the second surface, an insulating layer with a recess provided on the third surface, and a first decorative material provided on the surface of the insulating layer opposite the first surface, and the above-described partition wall runner, and the partition wall runner is fitted into the recess.
[0014] In the above configuration, the width of the concave fitting member is greater than the width of the partition wall runner.
[0015] In the above-described configuration, a plurality of partition wall runners are fitted into the recessed fitting member. [Effects of the Invention]
[0016] According to one embodiment of the present invention, it is possible to provide a highly safe partition wall runner and partition wall structure. [Brief explanation of the drawings]
[0017] [Figure 1] 1 is a perspective view showing a partition wall structure according to an embodiment of the present invention. [Figure 2A] 1 is a perspective view showing a partition wall runner according to an embodiment of the present invention. FIG. [Figure 2B] FIG. 1 is a plan view showing a partition wall runner according to an embodiment of the present invention. [Figure 2C] FIG. 2 is an end view showing a partition wall runner according to one embodiment of the present invention. [Figure 3A] FIG. 1 is a plan view showing a partition wall runner according to an embodiment of the present invention. [Figure 3B] FIG. 2 is an end view showing a partition wall runner according to one embodiment of the present invention. [Figure 4] 1 is a horizontal cross-sectional view of a fire-resistant panel according to an embodiment of the present invention. [Figure 5]1 is a cross-sectional elevation view of a fire-resistant panel according to an embodiment of the present invention. [Figure 6] 1A to 1C are diagrams illustrating a method for installing a fire-resistant panel according to an embodiment of the present invention. [Figure 7] 1A to 1C are diagrams illustrating a method for installing a fire-resistant panel according to an embodiment of the present invention. [Figure 8] 1 is a perspective view showing a partition wall structure according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0018] Each embodiment of the present invention will be described below with reference to the drawings. The disclosure is merely an example, and any modifications that a person skilled in the art can easily make while maintaining the spirit of the invention are naturally included within the scope of the present invention. Furthermore, the drawings may be schematic in terms of the width, thickness, shape, etc. of each part compared to the actual embodiment for clarity of explanation, but these are merely examples and are not intended to limit the interpretation of the present invention. Furthermore, in this specification and each drawing, elements similar to those previously described with reference to the previous drawings are designated by the same reference numerals (or reference numerals with A, B, etc. suffixed thereto), and detailed descriptions may be omitted as appropriate. Furthermore, the letters "first" and "second" attached to each element are convenient labels used to distinguish each element and have no further meaning unless otherwise specified.
[0019] (First embodiment) A partition wall runner 10 and a partition wall structure 1000 according to one embodiment of the present invention will be described with reference to FIGS.
[0020] <1. Overview of the partition wall structure> FIG. 1 is a perspective view showing a partition wall structure 1000 according to one embodiment of the present invention. The partition wall structure 1000 is applicable to compartment members inside or outside buildings such as logistics cold storage warehouses, clean rooms, hospitals, homes, production factories, livestock factories, commercial facilities, and office buildings. The partition wall structure 1000 comprises a plurality of fire-resistant panels 100-1 to 100-2. The number of fire-resistant panels 100 constituting the partition wall structure 1000 is not particularly limited. In the following description, the fire-resistant panels 100-1 to 100-2 have the same structure except for their placement locations. The same also applies to each of the components of the fire-resistant panel 100.
[0021] As shown in FIG. 1, a partition wall runner 10 is fixed to a floor substrate 302. Fire-resistant panels 100-1 and 100-2 are fitted into the partition wall runner 10. A concave fitting member 146 is provided on the fire-resistant panel 100. The partition wall runner 10 is fitted inside the concave fitting member 146. In the partition wall structure 1000, for example, the fire-resistant panels 100-1 and 100-2 are arranged side by side in a first direction D1. Adjacent fire-resistant panels 100-1 and 100-2 are joined by a connecting member (not shown in FIG. 1).
[0022] The partition wall structure 1000 and the fire-resistant panel 100 are defined as having a first direction D1, a second direction D2 perpendicular to the first direction D1, and a third direction D3 perpendicular to the first direction D1 and the second direction D2. The fire-resistant panel 100 has a height H1, a width W1, and a thickness T1. The height H1 is greater than the width W1 and the thickness T1, and the width W1 is greater than the thickness T1. In this embodiment, an example is described in which the fire-resistant panel 100 is installed vertically so that the width W1 of the fire-resistant panel 100 is in the first direction D1, the thickness T1 is in the second direction D2, and the height H3 is in the third direction D3. However, this embodiment is not limited thereto. The fire-resistant panel 100 may also be installed horizontally so that the height H1 of the fire-resistant panel 100 is in the first direction D1 and the width W is in the second direction D2.
[0023] The fire-resistant panel 100 includes a honeycomb material 102, non-combustible boards 104, 106, and 122, non-combustible boards 108 and 112, channel steel 142 and 144 (not shown), and a concave fitting member 146. The detailed structure of the fire-resistant panel 100 will be described later. The fire-resistant panel 100 has a first surface 100a and a second surface 100b opposite the first surface 100a. FIG. 1 illustrates the first surface 100-1a of the fire-resistant panel 100-1. A plurality of connectors are provided at predetermined intervals in the fire-resistant panel 100 along the third direction D3. Connectors 166, 168, 182, and 184 shown in FIG. 1 will be described later in detail.
[0024] <2. Structure of partition wall runner> Fig. 2A is a perspective view showing a partition wall runner 10 according to one embodiment of the present invention. Fig. 2B is a plan view showing the partition wall runner 10 according to one embodiment of the present invention. Fig. 2C is an end view of the partition wall runner 10 cut along line A1-A2. A fire-resistant panel, which will be described later, is fitted into the partition wall runner 10.
[0025] 2A, the partition wall runner 10 has a bottom surface portion 12 extending in a first direction D1, a side wall portion 14 rising upward from the bottom surface portion 12 and extending in the first direction D1, a side wall portion 16 rising upward from the bottom surface portion 12 and extending in the first direction D1 so as to face the side wall portion 14, and a curved portion 18 curved to connect an upper portion of the side wall portion 14 to an upper portion of the side wall portion 16. The partition wall runner 10 also has an opening 22 in part of the curved portion 18 that exposes a portion of the bottom surface portion 12. A through-hole 24 is also provided in the portion of the bottom surface portion 12 exposed by the opening 22. The partition wall runner 10 is hollow and tubular. The partition wall runner 10 is made of a material such as steel, stainless steel, or aluminum.
[0026] 2A, the sidewalls 14, 16 are illustrated as being perpendicular to the bottom surface 12, but one embodiment of the present invention is not limited to this. The angle with respect to the bottom surface 12 may be less than 90°.
[0027] 2B and 2C, the bottom surface portion 12 and the floor substrate 302 are fixed together by screws 20 at the openings 22 of the partition wall runner 10. The through holes 24 are holes for inserting the screws 20. By providing the through holes 24, the positions for inserting the screws 20 can be determined in advance, making it easier to install the partition wall runner 10. However, the through holes 24 are not necessarily provided. The partition wall runner 10 has a height H2, a width W2, and a length L2. In this embodiment, the length L2 of the partition wall runner 10 is in the first direction D1, the width W2 is in the second direction D2, and the height H2 is in the third direction D3.
[0028] 2A to 2C show an example in which the bottom portion 12 is fixed in one opening 22 with one screw 20, but one embodiment of the present invention is not limited to this. The bottom portion 12 may be fixed in one opening 22 with multiple screws 20. When fixing the bottom portion 12 in one opening 22 with multiple screws 20, the multiple screws 20 may be fixed along the first direction D1, or the multiple screws 20 may be fixed along the second direction D2.
[0029] 2A to 2C, the opening 22 is provided at approximately the middle position in the first direction D1 of the partition wall runner 10. The opening 22 is provided by cutting away the curved portion 18 above the side wall portions 14 and 16 in the hollow tube of the partition wall runner 10. The length L3 of the opening 22 in the first direction D1 need only be long enough to allow the work of fixing the screws 20 to be performed. The width of the opening 22 in the second direction D2 is shown to be the same width W2 as the partition wall runner 10, but it may be shorter than the width W2 of the partition wall runner 10.
[0030] The length L2 of the partition wall runner 10 in the first direction D1 may be longer or shorter than the width W1 of the fire-resistant panel to be fitted later. If the length L2 of the partition wall runner 10 in the first direction D1 is shorter than the width W1 of the fire-resistant panel, one fire-resistant panel may be fitted to multiple partition wall runners 10. If the length L2 of the partition wall runner 10 in the first direction D1 is longer than the width W1 of the fire-resistant panel, multiple fire-resistant panels may be fitted to one partition wall runner 10. In this case, it is preferable that the partition wall runner 10 has multiple openings 22, and that each of the multiple openings 22 is fixed with a screw 20.
[0031] Fig. 3A is a plan view showing a partition wall runner 10A according to one embodiment of the present invention. Fig. 3B is an end view of the partition wall runner 10A cut along line B1-B2. The partition wall runner 10A shown in Figs. 3A and 3B is the same as the partition wall runner 10 except for the number of openings 22, so the descriptions in Figs. 2A to 2C should be taken into consideration.
[0032] 3A and 3B, a plurality of openings 22-1 and 22-2 are provided in the curved portion 18 of the partition wall runner 10A. Furthermore, through holes 24-1 and 24-2 are provided in the bottom surface portion 12. Furthermore, at the opening 22-1 of the partition wall runner 10A, the bottom surface portion 12 and the floor substrate 302 are fixed together by a screw 20-1 inserted through the through hole 24-1, and at the opening 22-2, the bottom surface portion 12 and the floor substrate 302 are fixed together by a screw 20-2 inserted through the through hole 24-1.
[0033] In this embodiment, a partition wall runner 10A shown in Figures 3A and 3B is used. Although not shown in Figure 1, a plurality of openings 22 are provided in the area where the fire-resistant panels 100-1 and 100-2 are fitted.
[0034] <3. Fire-resistant panel structure> Fig. 4 is a horizontal cross-sectional view of the fire-resistant panel 100 according to one embodiment of the present invention. Fig. 4 corresponds to a cross-section of the fire-resistant panel 100 shown in Fig. 1 taken along line C1-C2 passing through the connectors 166 and 168.
[0035] The fire-resistant panel 100 includes a honeycomb material 102, non-combustible boards 104, 106, non-combustible boards 108, 112, and channel steel 142, 144. The honeycomb material 102 has a first surface 102a and a second surface 102b opposite the first surface 102a. The non-combustible board 104 has a first surface 104a and a second surface 104b opposite the first surface 104a. The non-combustible board 106 has a first surface 106a and a second surface 106b opposite the first surface 106a.
[0036] The non-combustible board 108 covers the first surface 104a of the non-combustible board 104. The non-combustible board 112 covers the first surface 106a of the non-combustible board 106. The honeycomb material 102 is provided between the non-combustible board 108 and the non-combustible board 112. The channel steel 142 is provided between the non-combustible board 108 and the non-combustible board 112, and extends along the side surface 102c that is continuous with the first surface 102a of the honeycomb material 102. The channel steel 144 is provided between the non-combustible board 108 and the non-combustible board 112, and extends along the side surface 102d that is continuous with the first surface 102a of the honeycomb material 102. The opening of the channel steel 142 is provided in a position facing the opening of the channel steel 144, with the honeycomb material 102 in between.
[0037] In other words, the honeycomb material 102 is sandwiched between the two non-combustible boards 108 and 112. Furthermore, the two non-combustible boards 108 and 112 are sandwiched between the two non-combustible boards 104 and 106. In this manner, by sandwiching the non-combustible board 108 between the honeycomb material 102 and the non-combustible board 104, and sandwiching the non-combustible board 112 between the honeycomb material 102 and the non-combustible board 106, the fire resistance of the fire-resistant panel 100 can be improved.
[0038] As shown in FIG. 4 , the opening of the channel steel 142 faces the side surface 102c of the honeycomb material 102. Therefore, a space 154 is formed between the channel steel 142 and the side surface 102c of the honeycomb material 102. Similarly, the opening of the channel steel 144 faces the side surface 102d of the honeycomb material 102. Therefore, a space 156 is formed between the channel steel 144 and the side surface 102d of the honeycomb material 102. By providing the channel steel 142 and the channel steel 144, the strength of the fire-resistant panel 100 can be improved. Furthermore, in the event of a fire, the channel steels 142 and 144 expand due to heating. By providing the spaces 154 and 156, the expansion allowance of the channel steels 142 and 144 can be absorbed. Therefore, even if the channel steel expands during a fire, the fire-resistant panel on the side where the fire occurred can be prevented from being significantly deformed. Furthermore, by providing a U-shaped support hole member, when the decorative material, non-combustible board, and non-combustible board are fixed together with a fastener, the fastener can be firmly fixed by the flange of the channel steel.
[0039] The channel steel 142 has a web 142a extending along the first direction D1 and flanges 142b and 142c that sandwich the web 142a. The flanges 142b and 142c also extend along the first direction D1. The channel steel 144 has a channel steel 144a extending along the first direction D1 and flanges 144b and 144c that sandwich the web 144a. The flanges 144b and 144c also extend along the first direction D1.
[0040] A decorative material 114 is provided on the second surface 104b of the non-combustible board 104. A decorative material 116 is provided on the second surface 106b of the non-combustible board 106. The decorative material 114, the non-combustible board 104, the non-combustible board 108, and the flange 142b of the channel steel 142 are fixed together by a connector 162. The decorative material 114, the non-combustible board 104, the non-combustible board 108, and the flange 144b of the channel steel 144 are fixed together by a connector 164. The decorative material 116, the non-combustible board 106, the non-combustible board 112, and the flange 142c of the channel steel 142 are fixed together by a connector 166. The decorative material 116, the non-combustible board 106, the non-combustible board 112, and the flange 144c of the channel steel 144 are fixed together by a connector 168.
[0041] A recess 172 is formed by the non-combustible board 108, the web 142a of the channel steel 142, and the non-combustible board 112. A recess 174 is formed by the non-combustible board 108, the web 144a of the channel steel 144, and the non-combustible board 112. The recesses 172, 174 function as joints for connecting adjacent fire-resistant panels 100 in the first direction D1. Adjacent fire-resistant panels 100 can be joined by fitting a connecting material into the recesses 172, 174.
[0042] Fig. 5 is an elevational cross-sectional view of a fire-resistant panel according to one embodiment of the present invention. Fig. 5 corresponds to a cross section of the fire-resistant panel shown in Fig. 1 taken along line B1-B2. In Fig. 5, the fire-resistant panel 100 is cut along connectors 182 and 184. In Fig. 1, the fire-resistant panel 100 is provided with a plurality of connectors, but Fig. 5 only shows some of the connectors 182 and 184.
[0043] The elevational cross-sectional view of the fire-resistant panel 100 shown in Fig. 5 is cut at the position where the channel steel 142 is provided. As described above, a space 152 is provided between the flange 144b and the flange 144c of the channel steel 142. Therefore, in Fig. 5, the side surface 102c of the honeycomb material 102 is shown in the second direction D2 (the depth direction of the paper).
[0044] A concave fitting member 146 is provided between the noncombustible board 108 and the noncombustible board 112. The web 146a of the concave fitting member 146 has a web 146a extending along the second direction D2 and flanges 146b and 146c that sandwich the web 146a. In other words, the web 146a extends along the side surface 102e of the honeycomb material 102. The flanges 146b and 146c also extend along the second direction D2. The web 146a of the concave fitting member 146 is in contact with the side surface 102e of the honeycomb material 102.
[0045] The opening of the concave fitting member 146 is fitted with the partition wall runner 10. The partition wall runner 10 extends along the second direction D2. The partition wall runner 10 is fixed to the floor substrate 302 by connectors 204. This allows the fire-resistant panel 100 to be installed in a desired location. Although not shown, the partition wall runner 10 and the floor substrate 302 are fixed together by a plurality of connectors 204 positioned at predetermined intervals.
[0046] The flange 146b of the concave fitting member 146 contacts the non-combustible board 108, and the flange 146c contacts the non-combustible board 112. The distance W3 between the flanges 146b and 146c is preferably greater than the width W2 of the partition wall runner 10.
[0047] A non-combustible board 122 is provided between the non-combustible board 108 and the non-combustible board 112. The non-combustible board 122 extends along the second direction D2. In other words, the non-combustible board 122 extends along the side surface 102f of the honeycomb material 102. The non-combustible board 122 is provided at a distance from the side surface 102f of the honeycomb material 102. In other words, a space 156 is provided that is surrounded by the side surface 102f of the honeycomb material 102, the non-combustible boards 108 and 112, and the non-combustible board 122.
[0048] A fastening angle 206 is provided to secure the fire-resistant panel 100 to the ceiling 304. The fastening angle 206, decorative material 116, non-combustible board 106, non-combustible board 112, and flange 142c of channel steel 142 are secured together by connectors 188. A backup material 208 is provided in the gap between the ceiling 304 and the fire-resistant panel 100.
[0049] Although not shown, if the length L2 of the partition wall runner 10 in the first direction D1 is shorter than the width W1 of the fire-resistant panel 100, multiple partition wall runners 10 may be fitted between the flanges 146b and 146c.
[0050] <4. Fireproof Panel Materials> Next, various materials used in the fire-resistant panel 100 according to one embodiment of the present invention will be described.
[0051] The honeycomb material 102 is used as a heat insulating material. The honeycomb material 102 does not need to have fire resistance, and any honeycomb material 102 can be used. Here, fire resistance refers to the ability to suppress the spread of a normal fire that occurs around a building. The honeycomb material 102 is made of various materials, such as non-combustible paper honeycomb material, cardboard, aluminum honeycomb material, or ceramic honeycomb material. When, for example, ceramic honeycomb material, aluminum honeycomb material, or non-combustible paper is used as the honeycomb material 102, fire resistance can be improved. The thickness of the honeycomb material is 15 mm to 50 mm, 20 mm to 50 mm, or 20 mm to 40 mm, and in this embodiment, it is 30 mm.
[0052] The shape of the cells in the cross section perpendicular to the cell extension direction (third direction D3) of the honeycomb material 102 is not particularly limited, and may be, for example, a rectangle, a hexagon, an octagon, or a combination of these shapes. The size of the cells in the cross section of the honeycomb material 102 is 5 mm to 50 mm, 10 mm to 40 mm, or 25 mm to 35 mm, and is 30 mm in this embodiment. The porosity of the honeycomb material 102 is, for example, 91% to 95%.
[0053] The honeycomb material 102 has a honeycomb structure, and more than 90% of its volume is air, which makes it possible to reduce the weight of the fire-resistant panel 100. The honeycomb structure also prevents air convection, improving the heat insulation of the fire-resistant panel 100. The honeycomb structure also provides high bending strength, and can increase strength against planar pressure.
[0054] The non-combustible boards 104, 106, 108, and 122 are made of a material that has fire-resistant properties, low heat storage, and high cooling properties. The non-combustible boards 104, 106, 108, and 122 are made of various materials, such as wood-based boards (e.g., insulation boards, cellulose fiberboards, and wood-wool cement boards) and inorganic boards (e.g., concrete, cement mortar, gypsum boards, gypsum boards, fiber-mixed gypsum boards, and calcium silicate boards). The non-combustible boards 104, 106, 108, and 122 are preferably made of a fire-resistant covering material with excellent strength and heat resistance. Examples of fire-resistant covering materials include inorganic boards (e.g., concrete, cement mortar, gypsum boards, gypsum boards, fiber-mixed gypsum boards, and calcium silicate boards). In this embodiment, calcium silicate boards are used for the non-combustible boards 104 and 106, and fiber-mixed gypsum boards are used for the non-combustible boards 108 and 122. The thickness of the non-combustible boards 104, 106, 108, 122 is 7 mm to 50 mm, 7 mm to 40 mm, or 9.5 mm to 30 mm.
[0055] Lightweight channel steel and C-shaped steel (lip channel steel) having a C-shape are used as the channel steels 142, 144. Channel steel and lightweight channel steel have a shape that has a web and two flanges that sandwich the web. Also, C-shaped steel has a shape that has a web, two flanges that sandwich the web, and a lip at the tip of the flange. In this embodiment, the channel steels 142, 144 are illustrated as channel steels that do not have a lip. The channel steels 142, 144 are made of various materials, for example, alloys such as aluminum, stainless steel, etc.
[0056] The concave fitting member 146 is a channel steel or a setting block. When a channel steel is used as the concave fitting member 146, the same material as the channel steels 142 and 144 is used.
[0057] The decorative materials 114, 116 are made of various materials, such as wood-based materials, ceramic-based decorative materials (ceramics), color steel sheets, galvalume steel sheets, aluminum sheets, wallpaper, etc. The thickness of the decorative materials 114, 116 is thinner than the thickness of the non-combustible boards 104, 106, and is 4 mm to 15 mm, 5 mm to 12 mm, or 8 mm to 12 mm, and is 9.5 mm in this embodiment.
[0058] In the fire-resistant panel 100, a pair of non-combustible boards 104, 106 are provided symmetrically with respect to the honeycomb material 102. The pair of non-combustible boards 104, 106 are preferably provided to be made of the same material, have the same shape, and have the same thickness.
[0059] In a fire-resistant panel 100 according to one embodiment of the present invention, a honeycomb material 102 is sandwiched between non-combustible boards 108 and 112, which are then sandwiched between non-combustible boards 104 and 106. This laminated structure of the non-combustible boards 108 and 112 and the non-combustible boards 104 and 106 improves fire resistance. It also improves the bending strength of the fire-resistant panel 100. This allows for the use of various decorative materials, such as wood-based materials and paper materials, instead of the steel decorative materials typically used in conventional sandwich panels, improving the appearance of the fire-resistant panel 100 and enhancing its design. Furthermore, this allows for a change in the design concept of sandwich panels, making them applicable to buildings requiring diverse designs.
[0060] In this embodiment, calcium silicate boards are used as the non-combustible boards 104 and 106, and fiber-mixed gypsum boards are used as the non-combustible boards 108 and 112. Calcium silicate boards have the effect of quickly reducing the temperature after being heated in the event of a fire. Furthermore, fiber-mixed gypsum boards have the effect of suppressing the temperature rise of the fire-resistant panel 100 by releasing moisture (crystal water) when heated in the event of a fire. This configuration ensures sufficient fire resistance to meet the fire resistance requirements of the fire-resistant panel 100.
[0061] According to the fire-resistant panel 100 of one embodiment of the present invention, a honeycomb material 102 is used as the heat insulating material. The honeycomb material 102 is lighter than rock wool, which has traditionally been used as a heat insulating material. Therefore, the weight of the entire fire-resistant panel 100 can be reduced. Furthermore, while having the same thermal conductivity as rock wool, CO2 emissions during its manufacture can be reduced. According to the fire-resistant panel 100 of one embodiment of the present invention, various materials can be used as the honeycomb material 102 regardless of the heat resistance temperature.
[0062] Furthermore, when gypsum boards are used as the non-combustible boards 104 and 106, moisture (crystal water) contained in the gypsum boards is released in the event of a fire, thereby suppressing the temperature rise of the fire-resistant panel 100. Furthermore, the non-combustible boards 104 and 106 may be impregnated with a flame retardant such as a phosphoric acid-based agent, thereby further improving the fire resistance performance.
[0063] <5. Fireproof Panel Manufacturing Method> Next, an example of a method for manufacturing the fire-resistant panel 100 will be described.
[0064] An admixture is applied to the first surface 102a and the second surface 102b of the honeycomb material 102. A non-combustible board 108 is attached to the first surface 102a of the honeycomb material 102, and a non-combustible board 112 is attached to the second surface 102b. Next, the first surface 104a of the non-combustible board 104 is attached to the non-combustible board 108, and the first surface 106a of the non-combustible board 106 is attached to the non-combustible board 112. Next, a decorative material 114 is attached to the second surface 104b of the non-combustible board, and a decorative material 116 is attached to the second surface 106b of the non-combustible board 106.
[0065] A channel steel 142 is fitted between the non-combustible board 108 and the non-combustible board 112 so as to face the side surface 102c of the honeycomb material 102. Similarly, a channel steel 144 is fitted between the non-combustible board 108 and the non-combustible board 112 so as to face the side surface 102d of the honeycomb material 102. Furthermore, a concave fitting member 146 is fitted between the non-combustible board 108 and the non-combustible board 112 on the side surface 102e of the honeycomb material 102. A web 146a of the concave fitting member 146 is provided in contact with the side surface 102e of the honeycomb material 102. A non-combustible board 122 is provided between the non-combustible board 108 and the non-combustible board 112. The non-combustible board 122 is adhered to the non-combustible board 108 and the non-combustible board 112 with a gap between the non-combustible board 122 and the side surface 102f of the honeycomb material 102.
[0066] The decorative material 114, the non-combustible board 104, the non-combustible board 108, the channel steel 142, and the honeycomb material 102 are fixed together by a plurality of fasteners. The plurality of fasteners are arranged at predetermined intervals along the first direction D1. The decorative material 116, the non-combustible board 106, the non-combustible board 112, the channel steel 144, and the honeycomb material 102 are fixed together by a plurality of fasteners. The plurality of fasteners are arranged at predetermined intervals along the first direction D1.
[0067] Through the above steps, the fire-resistant panel 100 can be manufactured.
[0068] <6. Fireproof Panel Installation Method> Next, an example of a method for installing the fire-resistant panel 100 according to one embodiment of the present invention will be described with reference to FIGS.
[0069] 6 and 7 are diagrams illustrating a method for installing the fire-resistant panel 100-1. As shown in Fig. 6, the partition wall runner 10 is fixed to the floor substrate 302 by a connector 204. The fire-resistant panel 100 is arranged so that the first surface 101a faces the floor substrate 302.
[0070] As shown in Figure 7, the flange 146c of the concave fitting member 146 of the fire-resistant panel 100 is abutted against the floor substrate, and the fire-resistant panel 100 is raised in the direction of the arrow so that the flange 146b follows the curvature of the curved portion 18 of the partition wall runner 10.
[0071] By raising the height H1 of the fire-resistant panel 100 along the third direction D3, the concave fitting member 146 of the fire-resistant panel 100 can be fitted into the partition wall runner 10.
[0072] If the partition wall runner has a square cylindrical shape, when the flange 146c is abutted against the floor substrate to raise the fire-resistant panel 100, the flange 146b may collide with the corners of the square cylindrical shape, which may damage the fire-resistant panel.
[0073] In contrast, the partition wall runner 10 according to one embodiment of the present invention has a curved portion 18 that is curved so as to connect the upper portion of the side wall portion 14 and the upper portion of the side wall portion 16. With this structure, when the fire-resistant panel 100 is raised, the flange 146b moves along the curved portion 18 of the partition wall runner 10, thereby preventing the flange 146b from colliding with the partition wall runner 10. This makes it possible to prevent damage to the fire-resistant panel 100.
[0074] Furthermore, by fitting the partition wall runner 10 into the recessed fitting member 146 provided in the recess 404c of the fire-resistant panel 100, the partition wall runner 10 is provided inside the fire-resistant panel 100. This makes it possible to suppress the spread of fire in the event of a fire, compared to when the runner is exposed from the fire-resistant panel 100.
[0075] Next, the fastening angle 206 is fixed so as to contact the fire-resistant panel 100 and the ceiling 304. The fastening angle 206, decorative material 116, non-combustible board 106, non-combustible board 112, and flange 142c of the channel steel 142 are fixed together with connectors 188. The fire-resistant panel 100-1 can be installed by fitting the backup material 208 into the gap formed between the ceiling 304 and the top of the fire-resistant panel 100.
[0076] (Second embodiment) The partition wall runner 10 according to one embodiment of the present invention is not limited to the fire-resistant panel 100 described in the first embodiment, but can be applied to fire-resistant panels of various configurations. In this embodiment, an example in which a partition wall structure 1000A is constructed using a fire-resistant panel 400 different from that of the first embodiment will be described with reference to Fig. 8.
[0077] Fig. 8 is a perspective view showing a partition wall structure 1000A according to one embodiment of the present invention. As shown in Fig. 8, a partition wall runner 10 is fixed to a floor substrate 302. Fire-resistant panels 400-1 and 400-2 are fitted into the partition wall runner 10.
[0078] The fire-resistant panel 400-1 has a heat-insulating layer 402, a decorative material 404, and a decorative material 406. The heat-insulating layer 402 has a first surface 402a, a second surface 402b opposite the first surface 402a, and a third surface 402c connecting the first surface 402a and the second surface 402b. A recess 402d is provided in the third surface 402c of the heat-insulating layer 402. A recessed fitting member 446 may be provided in the recess 402d of the heat-insulating layer 402. A partition wall runner 10 is fitted inside the recessed fitting member 446. In the partition wall structure 1000A, for example, the fire-resistant panels 400-1 and 400-2 are arranged side by side in the first direction D1.
[0079] The insulating layer 402 is made of a material such as a urethane-based insulating material. Various materials, such as Galvalume steel sheet (registered trademark), zinc-plated steel sheet, stainless steel sheet, and aluminum sheet, can be used for the decorative materials 404 and 406. Although not shown, a non-combustible board may be provided between the insulating layer 402 and the decorative material 404, or between the insulating layer 402 and the decorative material 406. The concave fitting member 446 has a web 446a and flanges 446b and 446c that sandwich the web 446a. The materials described for the concave fitting member 146 may be used for the concave fitting member 446.
[0080] In the recessed fitting member 446, the distance between the flanges 446b and 446c is larger than the width W2 of the partition wall runner. Furthermore, if the fire-resistant panel 400 does not have the recessed fitting member 446, the distance between the recesses 402d of the fire-resistant panel 400 in the second direction D2 is larger than the width W2 of the partition wall runner 10.
[0081] Although not shown, if the length L2 of the partition wall runner 10 in the first direction D1 is shorter than the width W1 of the fire-resistant panel 100, multiple partition wall runners 10 may be fitted between the flanges 146b and 146c.
[0082] According to the partition wall runner 10 of one embodiment of the present invention, the fire-resistant panels 400 can be fitted together regardless of the laminated structure of the fire-resistant panels 400 .
[0083] Although one embodiment of the present invention has been described above with reference to the drawings, the present invention is not limited to the above embodiment and can be modified as appropriate without departing from the spirit of the present invention. For example, a fire-resistant panel according to the present embodiment can be modified by a person skilled in the art to add, delete, or change components as appropriate, and the modifications will still fall within the scope of the present invention as long as they incorporate the gist of the present invention. Furthermore, the above-described embodiments can be combined as appropriate as long as they are not mutually inconsistent, and technical matters common to each embodiment are included in each embodiment even if not explicitly stated.
[0084] Even if there are other effects and advantages different from those brought about by the aspects of each of the above-mentioned embodiments, those that are clear from the description in this specification or that can be easily predicted by a person skilled in the art are naturally understood to be brought about by the present invention. [Explanation of symbols]
[0085] 10: Partition wall runner, 12: Bottom surface, 14: Side wall, 16: Side wall, 18: Curved portion, 20: Screw, 22: Opening, through hole: 24, 100: Fireproof panel, 100-1: Fireproof panel, 100-2: Fireproof panel, 100a: First surface, 100-1a: First surface, 100b: Second surface, 102: Honeycomb material, 102a: First surface, 102b: second surface, 102c: side surface, 102d: side surface, 102e: side surface, 102f: side surface, 104: non-combustible board, 104a: first surface, 104b: second surface, 106: non-combustible board, 106a: first surface, 106b: second surface, 108: non-combustible board, 110: connecting material, 112: non-combustible board, 114: decorative material, 116: decorative material, 12 2: non-combustible board, 142: channel steel, 142a: web, 142b: flange, 142c: flange, 144: channel steel, 144a: web, 144b: flange, 144c: flange, 146: fitting member, 146a: web, 146b: flange, 146c: flange, 162: connector, 164: connector, 166: connector, 168: connector, 172: recess, 174: recess, 182: connector, 184: connector, 188: connector, 192: connector, 194: connector, 204: connector, 206: fastening angle, 208: backup material, 246: recess, 302: floor base material, 304: ceiling, 1000: partition wall structure, 1000A: partition wall structure
Claims
1. a heat insulating layer having a first surface, a second surface provided on the opposite side of the first surface, and a third surface connecting the first surface and the second surface; a first decorative material provided on the first surface of the heat insulating layer; a second decorative material provided on the second surface of the thermal insulation layer; and a concave fitting member having a web extending along one side of the thermal insulation layer and a first flange and a second flange sandwiching the web; a bottom surface portion extending in a first direction; a first sidewall portion rising upward from the bottom surface portion and extending in the first direction; a second side wall portion that faces the first side wall portion, rises upward from the bottom surface portion, and extends in the first direction; a first through hole is provided in a part of the bottom surface portion; a partition wall runner, the first side wall portion and the second side wall portion being provided at an interval such that they can fit into the concave fitting member of the fire-resistant panel; The partition wall structure includes a partition wall runner that is fitted into the recessed fitting member so as to provide a space below the recessed fitting member.
2. a first non-combustible board having a first surface and a second surface opposite to the first surface; a second non-combustible board having a first surface and a second surface opposite to the first surface; a third non-combustible board covering the first surface of the first non-combustible board; a fourth noncombustible board covering the first surface of the second noncombustible board; a honeycomb material provided between the third noncombustible board and the fourth noncombustible board; a concave fitting member having a web extending along one side of the honeycomb material and a first flange and a second flange sandwiching the web; a fifth noncombustible board provided at a position facing the concave fitting member across the honeycomb material, The fifth noncombustible board is a fire-resistant panel provided in contact with the third noncombustible board and the fourth noncombustible board; a bottom surface portion extending in a first direction; a first sidewall portion rising upward from the bottom surface portion and extending in the first direction; a second side wall portion that faces the first side wall portion, rises upward from the bottom surface portion, and extends in the first direction; a curved portion that is curved so as to connect an upper portion of the first side wall portion and an upper portion of the second side wall portion, a first opening that exposes a part of the bottom surface portion is provided in a part of the curved portion; a first through-hole is provided in a part of the bottom surface portion exposed by the first opening, a partition wall runner, the first side wall portion and the second side wall portion being provided at an interval such that they fit into a concave fitting member of a fire-resistant panel; The partition wall structure includes a partition wall runner and an opening of the recessed fitting member fitted into the partition wall runner.
3. The partition wall structure according to claim 2 , wherein the concave fitting member is a channel steel or a setting block.
4. a second opening is provided adjacent to the first opening and exposes a portion of the bottom surface; The partition wall structure according to claim 2 or 3, wherein a second through-hole is provided in a part of the bottom surface exposed by the second opening.
5. the first flange contacts the third noncombustible board; the second flange contacts the fourth noncombustible board; The partition wall structure according to claim 2 , wherein the distance between the first flange and the second flange is greater than the width of the partition wall runner.
6. The partition wall structure according to claim 1 , wherein a plurality of the partition wall runners are fitted between the first flange and the second flange.
Citation Information
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