STUD CONNECTION STRUCTURE FOR NOISE REDUCING WALL
20210071414 ยท 2021-03-11
Inventors
- Sang Hyuk Lee (Yongin-si, KR)
- Sang Soon Lee (Changwon-si, KR)
- Jang Pil LEE (Haman-gun, KR)
- Jong Kuk Lee (Changwon-si, KR)
Cpc classification
E04B2001/8263
FIXED CONSTRUCTIONS
F24F13/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F2013/242
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
E04B2/00
FIXED CONSTRUCTIONS
Abstract
A noise reducing wall system is provided. The noise reducing wall system includes first and second board layers facing in parallel with each other along a longitudinal direction thereof, a heat insulation member surrounded by the first and second board layers, and a stud connection structure that fastens the first and second board layers using a stud bolt passing through the heat insulation member to connect the first board layer and the second board layer. The stud bolt connects the first and second board layers in a thickness direction and has a bent portion extending in the longitudinal direction and disposed at an intermediate point in the thickness direction.
Claims
1. A noise reducing wall system comprising: first and second board layers facing in parallel each other along a longitudinal direction thereof; a heat insulation member surrounded by the first and second board layers; and a stud connection structure including a stud bolt passing through the heat insulation member to connect the first board layer and the second board layer, wherein the stud bolt connects the first board layer and the second board layer in a thickness direction of the first and second board layers and has a bent portion extending in the longitudinal direction at an intermediate position in the thickness direction, wherein the stud bolt comprises: a first linear portion extending perpendicularly to the first board layer; a second linear portion extending perpendicularly to the second board layer; and the bent portion perpendicularly connected to each of the first linear portion and the second linear portion, wherein the bent portion comprises a first bent portion connected to and bent from the first linear portion, a second bent portion connected to and bent from the second linear portion, and a transition portion extending in the thickness direction so as to connect the first bent portion and the second bent portion, wherein the first linear portion and the second linear portion are laid collinear.
2. (canceled)
3. The noise reducing wall system according to claim 1, wherein the bent portion comprises a first bent portion connecting the first linear portion and the second linear portion.
4. (canceled)
5. (canceled)
6. The noise reducing wall system according to claim 1, wherein the stud bolt comprises: a first linear portion extending perpendicularly to the first board layer; two second linear portions including a first second linear portion and a second second linear portion and perpendicularly extending to the second board layer; and the bent portion perpendicularly connected to each of the first linear portion and the two second linear portions.
7. The noise reducing wall system according to claim 6, wherein the first linear portion is arranged between the first second linear portion and the second second linear portion in the longitudinal direction.
8. The noise reducing wall structure according to claim 7, wherein the first linear portion is centered between the first second linear portion and the second second linear portion.
9. The noise reducing wall structure according to claim 7, wherein the stud bolt further comprises: a second bent portion positioned between the first second linear portion and the second second linear portion and arranged to intersect the bent portion; and two second linear portions including third second linear portions and perpendicularly extending from respective ends of the second bent portion to the second board layer.
10. The noise reducing wall structure according to claim 9, wherein the bent portion and the second bent portion orthogonally intersect each other at midpoints thereof.
11. The noise reducing wall system according to claim 1, wherein the stud bolt is fixed to the first board layer through welding and to the second board layer with a double nut.
12-17. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The above and other aspects will be more apparent from the following description of the exemplary embodiments with reference to the accompanying drawings, in which:
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
DETAILED DESCRIPTION
[0040] Various modifications may be made to the embodiments of the disclosure, and there may be various types of embodiments Thus, specific embodiments will be illustrated in drawings, and the embodiments will be described in detail in the description. However, it should be noted that the various embodiments are not for limiting the scope of the disclosure to a specific embodiment, but they should be interpreted to include all modifications, equivalents or alternatives of the embodiments included in the ideas and the technical scopes disclosed herein. Meanwhile, in case it is determined that in describing the embodiments, detailed explanation of related known technologies may unnecessarily confuse the gist of the disclosure, the detailed explanation will be omitted.
[0041] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the scope of the disclosure. As used herein, the singular forms a, an, and the are intended to include the plural forms as well unless the context clearly indicates otherwise. In this specification, terms such as comprises, includes, or have/has should be construed as designating that there are such features, regions, integers, steps, operations, elements, components, and/or a combination thereof in the specification, not to exclude the presence or possibility of adding one or more of other features, regions, integers, steps, operations, elements, components and/or combinations thereof.
[0042] Further, terms such as first, second, and so on may be used to describe a variety of elements, but the elements should not be limited by these terms. The terms are used simply to distinguish one element from other elements. The use of such ordinal numbers should not be construed as limiting the meaning of the term. For example, the components associated with such an ordinal number should not be limited in the order of use, placement order, or the like. If necessary, each ordinal number may be used interchangeably.
[0043] Hereinbelow, exemplary embodiments will be described in detail with reference to the accompanying drawings. In order to clearly illustrate the disclosure in the drawings, some of the elements that are not essential to the complete understanding of the disclosure may be omitted, and like reference numerals refer to like elements throughout the specification.
[0044]
[0045] Referring to the cross-sectional view of
[0046] Specifically, the stud connection structure included in the noise reducing wall system of the exemplary embodiment features that the stud bolt 400 connects the first board layer 100 and the second board layer 200 by passing through the wall system in the thickness direction TW and is bent at a middle portion thereof. That is, the stud bolt 400 has a bent portion 430 at an intermediate position in the thickness direction TW.
[0047] Improvement in sound insulation performance of the noise reducing wall system according to the exemplary embodiment will be described in detail below. The exemplary embodiment is made on the basis of a finding that the stud bolt 400 serves as a main pathway of noise from the first board layer 100 to the second board layer 200. That is, the exemplary embodiment is technologically meaningful in terms of providing a new design of a stud connection structure capable of improving sound insulation performance.
[0048] A research on noise propagation mechanisms shows that a large part of noise is propagated to a second board layer (i.e., outer wall) 200 from a first board layer (i.e., inner wall) 100 through stud bolts 400 installed to reinforce a noise reducing wall system. In other words, transference of noise to the outside of the second board layer 200 from the inside of the first board layer 100 through the stud bolts 400 is determined as a major noise leaking factor. Noise and vibration are propagated directly through the stud connection structure (i.e., the first board layer 100->the stud bolt 400->the second board layer 200), which are rigid bodies compared to the heat insulation member. For this reason, even though there is the heat insulation member 300 within the noise reducing wall system, noise and vibration cannot be sufficiently absorbed by the heat insulation member 300 surrounding the stud bolts 400.
[0049] The exemplary embodiment is based on this noise propagation mechanism described above. Thus, the newly designed stud bolt 400 has a bent portion 430 extending in the longitudinal direction LW and positioned at an intermediate point in the thickness direction TW. Due to the bent portion 430 of the stud bolt 400, a minute degree of elastic deformation in the thickness direction TW is allowed. The self-elastic deformation of the stud bolts 400 in the thickness direction TW lowers sound transmission between the first board layer 100 and the second board layer 200 through the stud bolts 400 and increases friction between the stud bolts 400 and the heat insulation member 300. However, the bent portion 430 may have a disadvantage of weakening the structural rigidity of the stud bolt 400 in the longitudinal direction LW. To compensate for this disadvantage, the stud bolt 400 used in the exemplary embodiment needs to have a larger diameter than conventional stud bolts.
[0050] As described above, the noise reducing wall system according to the exemplary embodiment differs only in the design of the stud bolt 400 from conventional sound proofing wall systems. Therefore, it is not necessary to change the overall thickness of an existing noise reducing wall, the thicknesses of first and second board layers 100 and 200, the volume (or thickness) of the heating insulation member 300, or the number and installation positions of stud bolts 400 when applying the exemplary embodiment to an existing wall system to improve sound insulation performance. Because there are few design differences in the external form between an existing noise reducing wall system and the noise reducing wall system of the exemplary embodiment, it is easy to replace the existing noise reducing wall system with the noise reducing wall system according to the exemplary embodiment. In addition, because cost increasing factors in improving sound insulation performance are limited to manufacturing of newly designed stud bolts 400 and labor work to install the new stud bolts, the exemplary embodiment has a competitive advantage in cost effectiveness over conventional ones in improving sound insulation performance.
[0051] In the noise reducing wall system according to the first form of the first exemplary embodiment illustrated in
[0052] In
[0053] Referring to
[0054] In each form of the first exemplary embodiment illustrated in
[0055]
[0056] Comparing the second form of the first exemplary embodiment, illustrated in
[0057] Referring to
[0058]
[0059] In this case, in terms of the structural balance, the two bent portions 430 can intersect orthogonally at the midpoint of each other. Because the number of second linear portions 421, 422, and 423 that can accommodate a minute elastic deformation is increased, it is possible to more effectively reduce sound transmission through the stud bolts 400.
[0060] In the first through fourth forms of the first exemplary embodiment described above, the first board layer (i.e., inner wall) 100 is a duct plate that forms an outer surface of a duct structure serving as a noise source, and the second board layer (i.e., outer wall) 200 is a liner plate. The stud bolt 400 may be fixed to the first board layer 100 through welding and to the second board layer 200 with a double nut 60. The double nut 60 means two nuts that are engaged with the stud bolt 400 on the inner surface and the outer surface of the second board layer 200, respectively. Between each of the two nuts and the second board layer 200, washers 61 are provided to accommodate the thermal expansion of the second board layer 200.
[0061]
[0062] Referring to
[0063] The second exemplary embodiment requires a larger number of stud bolts 510 and 520 than the first exemplary embodiment, but is advantageous over the first exemplary embodiment in that existing linear stud bolts can be used as they are without using the bent stud bolts 400 provided in the first exemplary embodiment. In addition, the first exemplary embodiment and the second exemplary embodiment differ in effective frequency range for which sound insulation needs to be improved. This difference will be described with reference to
[0064] Referring to
[0065] The plate 530 is fixed to either one of the first and second board layers 100 and 200 through welding and to the other one with a double nut 600. For example, the first stud bolt 510 is fixed to the first board layer 100 through welding and to the plate 530 with a double nut 60, and the second stud bolt 520 is fixed to the second board layer 200 with a double nut 60 and to the plate 530 through welding.
[0066] Referring to
[0067]
[0068] As illustrated in
[0069] While exemplary embodiments have been described with reference to the accompanying drawings, it is to be understood by those skilled in the art that various modifications in form and details may be made therein without departing from the sprit and scope as defined by the appended claims. Therefore, the description of the exemplary embodiments should be construed in a descriptive sense and not to limit the scope of the claims, and many alternatives, modifications, and variations will be apparent to those skilled in the art.