Board material mounting structure
The mounting structure for radiation-shielding boards on steel frames ensures strong attachment and maintains radiation shielding by equating the mass of the raised reinforcing portion to the board mass, addressing joint weakness and shielding loss in conventional methods.
Patent Information
- Application Number
- JP2022020789
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-02-14
- Publication Date
- 2025-09-29
- Estimated Expiration
- 2042-02-14
AI Technical Summary
Conventional methods of attaching radiation-shielding boards to light-gauge steel frames in medical facilities risk reducing the radiation shielding function at the joints between board materials.
A mounting structure that includes a steel base material, board materials, a metal reinforcing member with a raised portion, and fastening members, where the mass of the raised portion per unit area equals or exceeds the mass of the board per unit area, ensuring the mounting strength while maintaining radiation shielding functionality.
The structure maintains the radiation shielding function at the joints and enhances mounting strength, improving construction efficiency and stability.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a mounting structure for a board material. [Background technology]
[0002] The board joint fittings for connecting board materials described in Patent Document 1 are fittings that connect and fix base board materials that serve as the base for interior finishing materials, and are equipped with a base plate that is placed across the back edge of adjacent base board materials, and a fin portion that is formed by cutting and raising a part of the base plate and is sandwiched between adjacent base board materials. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Patent Publication No. 2021-173040 Summary of the Invention [Problem to be solved by the invention]
[0004] Conventionally, medical facilities have used partition walls constructed by attaching boards to a light-gauge steel frame (steel base material) as a base. These partition walls use boards with radiation shielding properties, and these boards are attached to the light-gauge steel frame using fastening members such as screws.
[0005] Here, there is a risk that the radiation shielding function may be reduced at the joints between the pair of board materials.
[0006] The objective of the present disclosure is to ensure the mounting strength when attaching board materials to steel base materials using fastening members, while preventing a decrease in radiation shielding function at the joints between a pair of board materials. [Means for solving the problem]
[0007] The mounting structure for boards according to the first aspect comprises a steel base material, a pair of board materials arranged with their end faces facing each other and with their ends attached to the steel base material, a metal reinforcing member having a flat portion sandwiched between the steel base material and the board materials and a plate-shaped raised portion rising from the flat portion and being arranged in the joint portion of the pair of board materials, and a fastening member that is screwed from the surface of the board material through the board material into the flat portion and the steel base material to mount the board material to the steel base material, and is characterized in that when the density of the raised portion is d1, the raised height of the raised portion is h1, the density of the board material is d2, and the thickness of the board material is t1, the following formula (1) holds:
[0008] d1×h1≧d2×t1 (1)
[0009] The configuration according to the first aspect satisfies the above-mentioned formula (1). That is, the mass of the raised portion per unit area as viewed in the thickness direction of the board is equal to or greater than the mass of the board per unit area as viewed in the thickness direction of the board. Meanwhile, the fastening members that attach the board to the steel base material are screwed into the flat portion and the steel base material through the board material.
[0010] This ensures the mounting strength for attaching the board material to the steel base material, while preventing a decrease in radiation shielding function at the joints between the pair of board materials.
[0011] The mounting structure for board material of the second aspect is characterized in that, in the mounting structure for board material described in the first aspect, the top surface of the raised portion and the surface of the board material are arranged in the same plane shape.
[0012] According to the second aspect, the top surfaces of the raised portions and the surface of the board are arranged in the same plane, which improves the radiation shielding function of the joints compared to when the top surfaces of the raised portions are recessed relative to the surface of the board.
[0013] The mounting structure for board material according to the third aspect is characterized in that, in the mounting structure for board material described in the first or second aspect, the reinforcing material extends along the joint portion, and markings are provided at predetermined intervals on the top surface of the raised portion.
[0014] According to the configuration of the third aspect, the worker looks at the markings and screws the fastening members from the surface of the board material, through the board material, into the flat plate portion and the steel base material, so that the fastening members are positioned at predetermined intervals, eliminating the need to mark the board material in advance. [Effects of the Invention]
[0015] According to the present disclosure, it is possible to ensure the mounting strength when attaching board materials to steel base materials using fastening members, while suppressing a decrease in radiation shielding function at the joints between a pair of board materials. [Brief explanation of the drawings]
[0016] [Figure 1] 1 is an exploded perspective view showing a mounting structure for a board material according to a first embodiment of the present disclosure. [Figure 2] 1 is an exploded cross-sectional view showing a mounting structure for a board material according to a first embodiment of the present disclosure. [Figure 3] 1 is a cross-sectional view showing a mounting structure for a board material according to a first embodiment of the present disclosure. [Figure 4] 1 is a diagram showing a drill screw used in a mounting structure for a board material according to a first embodiment of the present disclosure. [Figure 5] FIG. 10 is a cross-sectional view showing a mounting structure for a board material according to a second embodiment of the present disclosure. [Figure 6] FIG. 10 is a perspective view showing a reinforcing material used in a mounting structure for a board material according to a third embodiment of the present disclosure. [Figure 7] FIG. 10 is a cross-sectional view showing a mounting structure for a board material according to a fourth embodiment of the present disclosure. [Figure 8] FIG. 10 is a cross-sectional view showing a mounting structure for a board material according to a fifth embodiment of the present disclosure. [Figure 9] FIG. 10 is a cross-sectional view showing a mounting structure for a board material according to a sixth embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0017] First Embodiment An example of a mounting structure for a board material according to a first embodiment of the present disclosure will be described with reference to Figures 1 to 4. Note that arrow H shown in the figures indicates the vertical direction, i.e., the up-down direction, arrow W indicates the horizontal direction, i.e., the width direction, and arrow D indicates the horizontal direction, i.e., the depth direction. Note that arrows H, W, and D are perpendicular to each other.
[0018] First, a partition wall 100 in which a board mounting structure 10 (hereinafter referred to as "board mounting structure 10") is used will be described.
[0019] (Partition wall 100) The partition wall 100 is used, for example, in an X-ray room or CT room that uses radiation in a medical facility, and as shown in FIG. 1, it comprises a ceiling runner 50, a floor runner 52, a plurality of studs 56, a plurality of board materials 12, a plurality of reinforcing materials 20, and drill screws 40 (see FIG. 4).
[0020] [Ceiling runner 50, floor runner 52] The ceiling runner 50 and floor runner 52 are lightweight, thin-walled channels made of lightweight steel, and extend in the width direction and are spaced apart in the vertical direction, as shown in Fig. 1. The ceiling runner 50 is attached to a concrete beam (not shown), and the floor runner 52 is attached to a concrete floor slab (not shown).
[0021] [Stud 56] The studs 56 are lightweight, thin-walled channels serving as lightweight steel frames, and as shown in Fig. 1, extend vertically between the ceiling runner 50 and the floor runner 52, with a plurality of studs provided spaced apart in the width direction. The upper ends of the studs 56 are attached to the ceiling runner 50, and the lower ends of the studs 56 are attached to the floor runner 52. The studs 56 are an example of a steel base material.
[0022] In this embodiment, the studs 56 have a density of 7.85 [g / cm 3 ] and is formed using a steel plate having a thickness of 0.8 [mm], and has a C-shaped cross section as shown in Fig. 2. Specifically, stud 56 is configured to include a plate portion 56a on the front side in the depth direction, a plate portion 56b on the rear side in the depth direction, a plate portion 56c connecting plate portions 56a and 56b, and a pair of flange portions 56d.
[0023] [Board material 12] The board material 12 is a gypsum board, and in this embodiment, the density is 1.8 [g / cm 3 ] and a thickness of 15 [mm], and as shown in Figure 1, it has a rectangular shape extending vertically when viewed from the depth direction. The density of the gypsum board is 0.65 [g / cm 3 ]~0.9〔g / cm 3 ] is often the case.
[0024] Furthermore, as shown in Figures 2 and 3, the pair of board materials 12 are arranged so that the end faces 12a of the board materials 12 face each other in the width direction, and the ends of the board materials 12 are attached to the plate portions 56a of the studs 56.
[0025] [Reinforcement material 20] The reinforcing member 20 is an extrusion-molded product, which extends vertically along the stud 56 as shown in FIG. 1, and is attached to the plate portion 56a of the stud 56 using an adhesive.
[0026] 2, the reinforcing member 20 has a T-shaped cross section. Specifically, the reinforcing member 20 includes a flat plate portion 22 that is attached to the plate portion 56a and has a thickness direction that corresponds to the depth direction, and a rising portion 24 that is a plate portion that rises from the flat plate portion 22 and has a thickness direction that corresponds to the width direction.
[0027] In this embodiment, the reinforcing material 20 has a density of 2.7 [g / cm 3 The flat plate portion 22 is an extrusion molded product of aluminum or aluminum alloy. The thickness of the flat plate portion 22 is 0.8 mm, and the length of the flat plate portion 22 in the width direction is the same as the length of the stud 56 in the width direction.
[0028] The raised portion 24 is disposed in the joint portion 18 of the pair of board materials 12 and is sandwiched between the pair of board materials 12. Both board surfaces of the raised portion 24 are in surface contact with the end surfaces 12a of the pair of board materials 12. The thickness of the raised portion 24 is 0.8 mm, and the height of the raised portion 24 in the depth direction (h1 shown in FIG. 2) is 10 mm or more.
[0029] The relationship between the depth of the raised portion 24 and the thickness of the board material 12 will be described in detail later.
[0030] [Drill screw 40] 2 and 3, the drill screw 40 is used to attach the board material 12 to the stud 56. In this embodiment, the drill screw 40 is a bladed drill screw, which is a fastening member known as a reamer flexible screw. The drill screw 40 is an example of a fastening member.
[0031] As shown in Fig. 4, the drill screw 40 includes a head 42, a screw portion 44, a drill portion 46, and a blade portion 48. The head 42 is dish-shaped, and the drill portion 46 is connected to the tip of the screw portion 44. The blade portions 48 are connected to the base end of the drill portion 46, and two blade portions 48 are provided, protruding in the radial direction of the drill portion 46. The outer diameter of the blade portions 48 is larger than the diameter of the screw portion 44.
[0032] In this configuration, as shown in FIGS. 2 and 3, the drill screw 40 is screwed from the surface of the board material 12 through the board material 12 into the flat plate portion 22 and the plate portion 56a of the stud 56.
[0033] Specifically, a pre-hole is formed in the board material 12 by the drill portion 46 of the rotating drill screw 40, and the outer diameter of the pre-hole is enlarged by the blade portion 48 of the drill screw 40. This forms a pilot hole in the board material 12. The pilot hole formed in the board material 12 in this manner is larger than the diameter of the thread portion 44.
[0034] Furthermore, the drill portion 46 forms pilot holes in the flat plate portion 22 of the reinforcing material 20 and the plate portion 56a of the stud 56. The pilot holes thus formed in the flat plate portion 22 and the plate portion 56a are smaller in diameter than the threaded portion 44. Meanwhile, the blade portion 48 breaks off from the drill portion 46 when it comes into contact with the flat plate portion 22 of the reinforcing material 20.
[0035] Then, the threaded portion 44 of the drill screw 40 is inserted into a pilot hole formed in the board material 12, and the threaded portion 44 of the drill screw 40 is screwed into the pilot holes formed in the flat plate portion 22 and the plate portion 56a. In this way, the board material 12 is attached to the stud 56 by the drill screw 40.
[0036] (Main part configuration) Next, the relationship between the height of the raised portion 24 in the depth direction and the thickness of the board material 12 will be described.
[0037] The height of the raised portion 24 in the depth direction is determined by the mass per unit area of the board material 12 as viewed in the thickness direction of the board material 12. Specifically, the mass of the raised portion 24 per unit area as viewed in the thickness direction of the board material 12 is set to be equal to or greater than the mass of the board material 12 per unit area as viewed in the thickness direction of the board material 12.
[0038] More specifically, the unit area of the board material 12 as viewed in the thickness direction is defined as m, the density of the raised portions 24 is defined as d1, and the raised height of the raised portions 24 is defined as h1. Furthermore, if the density of the board material 12 is defined as d2 and the thickness of the board material 12 is defined as t1, the height h1 is determined so that the following formula (A) holds. m×d1×h1≧m×d2×t1...Formula (A) Dividing both sides by m gives us the following equation (B). d1×h1≧d2×t1...Formula (B)
[0039] Here, the radiation shielding function improves as the mass per unit area of the component viewed from the direction of radiation transmission increases, compared to when the mass per unit area is small. In other words, when the height h1 of the raised portion 24 satisfies formula (B), the radiation shielding function of the joint portion 18 becomes equal to or better than the radiation shielding function of the board material 12.
[0040] (summary) As described above, in the board mounting structure 10, the mass of the raised portion 24 per unit area as viewed in the thickness direction of the board material 12 is equal to or greater than the mass of the board material 12 per unit area as viewed in the thickness direction of the board material 12. Also, in the board mounting structure 10, the threaded portion 44 of the drill screw 40 is screwed into the flat plate portion 22 and the plate portion 56a. This ensures the mounting strength for mounting the board material 12 to the stud 56, while preventing a decrease in the radiation shielding function at the joint portion 18 of the pair of board materials 12.
[0041] Furthermore, in the board mounting structure 10, the use of the drill screws 40 eliminates the need to drill pilot holes in the board material. This improves construction efficiency and stabilizes construction quality compared to when pilot holes are required.
[0042] Furthermore, in the board mounting structure 10, the flat plate portion 22 of the reinforcing member 20 is attached to the plate portion 56a of the stud 56, thereby increasing the strength of the base into which the drill screw 40 is screwed. As a result, the blade portion 48 comes into contact with the flat plate portion 22 of the reinforcing member 20, and the blade portion 48 can be easily broken off from the drill portion 46.
[0043] Furthermore, in the board mounting structure 10, by using the drill screw 40, the pilot hole formed in the board material 12 is larger than the diameter of the threaded portion 44. This makes it possible to prevent hairline cracks from occurring in the board material 12.
[0044] In the board mounting structure 10, the cross section of the reinforcing material 20 is T-shaped, and the rising portion 24 is sandwiched between the end faces 12a of the pair of board materials 12. This makes it possible to suppress rotation of the reinforcing material 20 when the drill screw 40 is screwed into the reinforcing material 20.
[0045] Furthermore, the board mounting structure 10 suppresses a decrease in the radiation shielding function at the joints 18 of the pair of board materials 12. This eliminates the need to apply a filler or the like for the purpose of shielding.
[0046] Furthermore, in the board mounting structure 10, the rising portion 24 is sandwiched between the end faces 12a of the pair of board materials 12. This suppresses the generation of powder caused by the board materials 12 rubbing against each other when vibrating due to an earthquake or the like, and allows the board mounting structure 10 to be used as a partition wall in a clean room.
[0047] Second Embodiment Next, an example of a mounting structure for a board material according to a second embodiment of the present disclosure will be described with reference to Fig. 5. Note that, with regard to the second embodiment, differences from the first embodiment will be mainly described.
[0048] In the board material mounting structure 110 (hereinafter referred to as "board mounting structure 110") relating to the second embodiment, as shown in Figure 5, the top surface 124a of the raised portion 124 of the reinforcing material 120 and the surface 12b of the board material 12 are arranged in a similar planar shape.
[0049] As a result, in the board mounting structure 110, the radiation shielding function of the joint portion 18 can be improved compared to when the top surface of the raised portion is recessed relative to the surface of the board material.
[0050] <Third embodiment> Next, an example of a mounting structure for a board material according to a third embodiment of the present disclosure will be described with reference to Fig. 6. Note that, with regard to the third embodiment, differences from the first embodiment will be mainly described.
[0051] A plurality of markings 180 are provided at predetermined intervals in the vertical direction on the top surface 24a of the raised portion 24 of the reinforcing material 170 used in the board material mounting structure 160 (hereinafter referred to as "board mounting structure 160") relating to the third embodiment.
[0052] In this embodiment, the marking 180 is formed by making scratches on the top surface 24a of the reinforcing material 170 extruded from the extrusion molding machine, the scratches extending in a direction intersecting the extrusion direction.
[0053] As a result, when the worker screws the drill screws 40 into the surface of the board material 12 while looking at the markings 180, the drill screws 40 are arranged at predetermined intervals, and there is no need to mark the board material in advance.
[0054] <Fourth embodiment> Next, an example of a mounting structure for a board material according to a fourth embodiment of the present disclosure will be described with reference to Fig. 7. Note that, with regard to the fourth embodiment, differences from the first embodiment will be mainly described.
[0055] As shown in Fig. 7, a pair of flanges 226 extending toward the rear in the depth direction are formed at both widthwise ends of the flat plate portion 22 of the reinforcing material 220 used in the board material mounting structure 210 (hereinafter referred to as "board mounting structure 210") according to the fourth embodiment. The flanges 226 are rectangular when viewed in the width direction. The flanges 226 are formed at a predetermined interval in the up-down direction.
[0056] The pair of flange portions 226 sandwich the stud 56 in the width direction, thereby improving the attachment strength of the reinforcing member 220 to the stud 56.
[0057] Since the flange portions 226 are formed at predetermined intervals in the vertical direction, the reinforcing member 220 is formed by variable extrusion.
[0058] Fifth Embodiment Next, an example of a mounting structure for a board material according to a fifth embodiment of the present disclosure will be described with reference to Fig. 8. Note that, with regard to the fifth embodiment, differences from the first embodiment will be mainly described.
[0059] As shown in Fig. 8, a pair of claws 276 that protrude toward the front in the depth direction are formed on both widthwise ends of the flat plate portion 22 of the reinforcing material 270 used in the board material mounting structure 260 (hereinafter referred to as "board mounting structure 260") according to the fifth embodiment. Furthermore, the claws 276 are triangular when viewed in the width direction. The claws 276 are formed at predetermined intervals in the up-down direction.
[0060] The pair of claws 276 dig into the rear surface of the board material 12, thereby making it possible to prevent the board material 12 from moving relative to the reinforcing material 270.
[0061] Since the claws 276 are formed at predetermined intervals in the vertical direction, the reinforcing member 270 is formed by variable extrusion.
[0062] Sixth Embodiment Next, an example of a mounting structure for a board material according to a sixth embodiment of the present disclosure will be described with reference to Fig. 9. Note that, with regard to the sixth embodiment, differences from the first embodiment will be mainly described.
[0063] A reinforcing member 320 used in a board mounting structure 310 (hereinafter referred to as "board mounting structure 310") according to the sixth embodiment is configured to include two L-shaped plate members 330, as shown in FIG.
[0064] Although the present disclosure has been described in detail with respect to specific embodiments, it is clear to those skilled in the art that the present disclosure is not limited to such embodiments and that various other embodiments are possible within the scope of the present disclosure. Modifications, deletions, additions, and combinations of the embodiments are possible as long as they do not contradict the technical ideas that can be recognized by those skilled in the art from the claims, the specification, and the drawings.
[0065] Furthermore, in the above-described embodiments, the reinforcing members 20, 120, 170, 220, 270, and 320 are formed using aluminum or an aluminum alloy, but they may also be formed using other metal materials.
[0066] In the above embodiments, the reinforcing members 20, 120, 170, 220, 270, and 320 are formed using aluminum or an aluminum alloy, but other magnetizable metals may be used to magnetize the reinforcing members, which allows the reinforcing members to be easily attached to the studs 56.
[0067] Although not specifically described in the above embodiment, the second embodiment and the third embodiment may be combined, which allows the worker to easily see the marking 180.
[0068] Although not specifically described in the above embodiment, the third embodiment and the fourth embodiment may be combined. Specifically, a flange portion 226 may be formed at the position where the marking 180 is formed in the vertical direction. This makes it possible to prevent the reinforcing material 220 from floating relative to the stud 56 at the position where the board material 12 is attached to the stud 56 using the drill screw 40.
[0069] Furthermore, although not specifically described in the above embodiment, the third embodiment and the fifth embodiment may be combined. Specifically, the claw portion 276 may be formed at the position where the marking 180 is formed in the vertical direction. In this way, the claw portion 276 is provided at the position where the board material 12 is attached to the stud 56 using the drill screw 40, and the claw portion 276 can be effectively inserted into the board material 12.
[0070] Although not specifically described in the above embodiment, the corners of the board material may be chamfered and a filler may be applied to the joints 18 .
[0071] Furthermore, in the above embodiment, a gypsum board is used as the board material 12, but for example, a concrete board or the like may also be used.
[0072] Although not specifically described in the above embodiment, vertically extending joint portions and horizontally extending joint portions may intersect in a cross shape. At these intersecting portions, a pair of vertically extending reinforcing members may abut against each other, and a pair of horizontally extending reinforcing members may abut against each other. In such cases, for example, the ends of the pair of vertically extending reinforcing members may abut against each other, and the ends of the pair of horizontally extending reinforcing members may abut against the sides of the vertically extending reinforcing members.
[0073] Furthermore, although not specifically explained in the sixth embodiment, in the two L-shaped plate members 330 shown in Figure 9, the end of one of the plate members that is to be placed in the joint portion may be bent, and the bent portion may be overlapped from the outside on the end of the other plate member. [Explanation of symbols]
[0074] 10 Board material mounting structure (board mounting structure) 12 Board material 18 Joint 20 Reinforcement 22 Flat plate part 24 Start-up section 24a Top surface 40 Drill screws (an example of a fastening component) 56 Stud (an example of steel base material) 110 Board material mounting structure (board mounting structure) 120 Reinforcement 124 Start-up section 124b Top surface 160 Board material mounting structure (board mounting structure) 170 Reinforcement 180 marking 210 Board material mounting structure (board mounting structure) 220 Reinforcement 226 Flange 260 Board mounting structure (Board mounting structure) 270 Reinforcement 310 Board material mounting structure (board mounting structure) 320 Reinforcement
Claims
1. Steel substrate and A pair of board materials arranged so that their end faces face each other and their ends are attached to the steel base material; a metal reinforcing member having a flat plate portion sandwiched between the steel base material and the board material, and a plate-shaped rising portion rising from the flat plate portion and disposed in the joint portion of the pair of board materials; a fastening member that is screwed into the flat plate portion and the steel base material from the surface of the board material through the board material, and attaches the board material to the steel base material; A mounting structure for a board material in which the following formula (1) holds when the density of the raised portion is d1, the raised height of the raised portion is h1, the density of the board material is d2, and the thickness of the board material is t1. d1 × h1 ≧ d2 × t1 (1)
2. The top surface of the raised portion and the surface of the board material are arranged in the same plane shape. The board mounting structure according to claim 1.
3. The reinforcing material extends along the joint portion, Markings are provided at predetermined intervals on the top surface of the raised portion.
3. The board mounting structure according to claim 1 or 2.
Citation Information
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