A Corrugated Construction Element
20200087913 ยท 2020-03-19
Inventors
Cpc classification
International classification
E04C2/32
FIXED CONSTRUCTIONS
E04B2/78
FIXED CONSTRUCTIONS
Abstract
A corrugated construction element (100) for drywall and ceiling construction is disclosed. The corrugated construction element (100) comprises a base profile (101) connected to at least one leg profile (102a) or (102b). The base profile (101) and/or at least one leg profile (102a) or (102b) comprise an array of angular corrugations (110) extending across their surface in a non-parallel direction to the principal axis L of the corrugated construction element (100). The disclosure also relates to an apparatus and a method for forming a corrugated profile (770).
Claims
1-22. (canceled)
23. A corrugated construction element having a base profile connected to at least one leg profile, wherein at least one of the base profile and at least one leg profile comprise an array of angular corrugations extending across their surface in a non-parallel direction to the principal axis L of the corrugated construction element covering a surface area greater than 25% and less than or equal to 100% of the total surface area of the corrugated construction element, wherein the array of angular corrugations on the at least one leg profile is at an angle Y ranging between 15 and 75 from the principal axis L of the corrugated construction element.
24. The corrugated construction element as claimed in claim 23, wherein the array of angular corrugations cover a surface area greater than 50% and less than 75% of the total surface area of the corrugated construction element.
25. The corrugated construction element as claimed in claim 23, wherein the array of angular corrugations is V-shaped, wherein the bottom of the V-shaped corrugations is curved or pointed.
26. The corrugated construction element as claimed in claim 25, wherein the array of V-shaped angular corrugations have an angle X ranging between 30 and 150.
27. The corrugated construction element as claimed in claim 23, wherein the at least one leg profile, is non-coplanar to the base profile.
28. The corrugated construction element as claimed in claim 23, wherein each corrugation in the array of angular corrugations consists of a V-shaped groove.
29. The corrugated construction element as claimed in claim 28, wherein each V-shaped groove 120 consists of peaks and/or troughs that are sharp, blunt or curved.
30. The corrugated construction element as claimed in claim 23, wherein the array of angular corrugations has a pitch P ranging between 2 mm and 6 mm.
31. The corrugated construction element as claimed in claim 23, wherein one or more V-shaped cross sections of the array of angular corrugations has a height H ranging between 0.1 mm and 1 mm.
32. The corrugated construction element as claimed in claim 23, wherein the first leg profile and the second leg profile have different heights from each other such that two identical corrugated construction elements can be joined to form a rectangular corrugated construction element.
33. A wall construction comprising: a frame comprising: a plurality of corrugated construction elements as claimed in claim 23; a floor channel configured to receive a first end of each of the plurality of corrugated construction elements; and a ceiling channel spaced apart from the floor channel, wherein the ceiling channel is configured to receive a second end opposite to the first end of each of the corrugated construction elements in a horizontal plane, wherein the floor channel and the ceiling channel are made from the corrugated construction elements and wherein the plurality of corrugated construction elements are vertically and/or horizontally disposed at a predetermined distance between the floor channel and the ceiling channel.
34. An apparatus for forming a sheet material into a profile comprising an array of angular corrugations extending across at least 25% of the surface of the profile of the corrugation construction element as claimed in claim 23, the apparatus comprising: a first roller comprising: a first corrugation region for forming one part of a first set of angular corrugations, and a second corrugation region for forming one part of a second set of angular corrugations; and a second roller comprising: a third corrugation region for forming the other part of the first set of angular corrugations, and a fourth corrugation region for forming the other part of the second set of angular corrugations; wherein the first roller and second roller are configured to mate with each other and wherein the angle between the first set of angular corrugations and the second set of angular corrugations ranges between 30-150 degrees.
35. The apparatus as claimed in claim 34, wherein the first and third corrugation regions are co-operable and consist of V-shaped grooves that correspond with each other.
36. The apparatus as claimed in claim 34, wherein the second and fourth corrugation regions are co-operable and consist of V-shaped grooves that correspond with each other.
37. A method of manufacturing a profile comprising an array of angular corrugations extending across at least 25% of the surface of the profile of a corrugation construction element as claimed in claim 23, the method comprising providing an a apparatus comprising: a first roller comprising: a first corrugation region for forming one part of a first set of angular corrugations, and a second corrugation region for forming one part of a second set of angular corrugations; and a second roller comprising: a third corrugation region for forming the other part of the first set of angular corrugations, and a fourth corrugation region for forming the other part of the second set of angular corrugations; wherein the first roller and second roller are configured to mate with each other and wherein the angle between the first set of angular corrugations and the second set of angular corrugations ranges between 30-150 degrees; and passing a sheet material between the first roller and second roller of the apparatus, wherein the sheet is pressed against the V-shaped grooves present in the corrugation regions of the first roller and second roller.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Embodiments are illustrated by way of example and are not limited to those shown in the accompanying figures.
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[0035] Skilled artisans appreciate that elements in the figures are illustrated for simplicity and clarity and have not necessarily been drawn to scale. For example, the dimensions of some of the elements in the figures may be exaggerated relative to other elements to help to improve understanding of embodiments of the invention.
DETAILED DESCRIPTION
[0036] Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or similar parts. Embodiments disclosed herein are related to a corrugated construction element.
[0037]
[0038] The first set of angular corrugation D1 and second set of angular corrugations D2 run angularly (at an angle Y from the principal axis of the corrugated profile L) from the edges of the corrugated profile 770 towards its center. Each angular corrugation from the first set of angular corrugations D1 meets with a corresponding angular corrugation from the second set of angular corrugations D2 to form an angle X between them. The angle X is measured in the plane of the corrugated profile 770. In one embodiment of the disclosure, the angle X between the first set of angular corrugations D1 and the second set of angular corrugations D2 ranges from 30 to 150.
[0039] In one specific embodiment of the disclosure, the angle X between the first set of angular corrugations D1 and the second set of angular corrugations D2 is 90. In one other embodiment, the angle X between the first set of angular corrugations D1 and the second set of angular corrugations D2 is 45. The angle X between the first set of angular corrugations D1 and the second set of angular corrugations D2 may be varied between 30 and 150 depending on the desired strength and stiffness required for the wall or ceiling construction.
[0040]
[0041] In one embodiment of the present disclosure, the first set of angular corrugations D1 and second set of angular corrugations D2 cover a surface area greater than 25% and less than or equal to 100% of the total surface area of the corrugated profile 770. In one other embodiment, the first set of angular corrugations D1 and second set of angular corrugations D2 cover a surface area greater than 50% and less than or equal to 75% of the total surface area of the corrugated profile 770.
[0042]
[0043]
[0044] The base profile 101 and the first leg profile 102a comprise an array of angular corrugations 110. The array of angular corrugations 110 comprises V-shaped grooves 120. The array of angular corrugations 110 extends across the surface of the corrugated construction element 100 in a non-parallel direction to the principal axis L of the corrugated construction element 100. In one embodiment of the disclosure, the array of angular corrugations 110 covers a surface area greater than 25% and less than or equal to 100% of the total surface area of the corrugated construction element 100. In one other embodiment of the disclosure, the array of angular corrugations 110 covers a surface area greater than 50% and less than or equal to 75% of the total surface area of the corrugated wall construction element 100. In yet another embodiment of the present disclosure, the array of angular corrugations 110 is continuous throughout the surface area of the corrugated construction element 100.
[0045] The array of angular corrugations 110 is V-shaped with the bottom of the V-shaped being pointed as shown in
[0046]
[0047] In the embodiment shown in
[0048] The array of angular corrugations 110 extending on the first leg profile 102a has an angle Y from the principle axis L of the corrugated construction element 100. In one embodiment of the disclosure, the angle Y between the principle axis L of the corrugated construction element 100 and the angular corrugations 110 on the first leg profile 102a ranges from 15 to 75. In one specific embodiment, the angle Y between the principle axis L of the corrugated construction element 100 and the angular corrugations 110 on the first leg profile 102a is 45. This exemplary corrugated construction element 100 shown in
[0049] In one embodiment of the present disclosure, the angle X lies in the base profile 101 and the angle Y lies in the first leg profile 102a. In such a case the base profile 101 is provided with a first set of angular corrugations D1 and a second set of angular corrugations D2, while the first leg profile 102a is provided with only the second set of angular corrugations D2 (as shown in
[0050] Angles X and Y may be adjusted in order to obtain desired stiffness and strength. Although the present disclosure in specific embodiments teaches one or more examples of angles X and Y, alternations to angles X and Y within the claimed ranges should be understood to be encompassed within the scope of the present disclosure.
[0051] Referring to
[0052] In the corrugation construction element 100 depicted in this figure, the angle X lies in the base profile 101 and angle Y lies in the first leg profile 102a and second leg profile 102b. The base profile 101 comprises both the first set of angular corrugations D1 and second set of angular corrugations D2. The first leg profile 102a is provided with only the first set of angular corrugations D1 and the second leg profile 102b is provided with only the second set of angular corrugations D2. In one other alternative embodiment, sets of angular corrugations may meet along the base profile 101 and also along the leg profiles 102a, 102b. In such an embodiment, the corrugated construction element 100 comprises three pairs of sets of angular corrugations (D1 and D2; D1 and D2; D1, and D2). In such an embodiment, D1 and D2 meet at angle X, D1 and D2 meet at angle X and D1 and D2 meet at angle X.
[0053] Illustrated in
[0054] The array of angular corrugations 110 provided on the corrugated construction element 100 has a pitch Pthis is the distance between two consecutive peaks 140 or troughs 150 of the V-shaped grooves 120. In multiple embodiments of the present disclosure, the pitch P ranges between 2 mm and 6 mm. The array of angular corrugations 110 provided on the corrugated construction element 100 has a height H. In multiple embodiments of the present disclosure, the height H ranges between 0.1 mm and 1 mm.
[0055] In various embodiments of the present disclosure, the array of angular corrugations 110 may be provided only on the base profile 101 or only on the first leg profile 102a or only on the second leg profile 102b or combinations thereof. The exemplary corrugated construction element 100 depicted in
[0056] The exemplary corrugated construction element 100 depicted in
[0057] Illustrated in
[0058] Illustrated in
[0059]
[0060] In one embodiment, as depicted in
[0061] The disclosure also relates to a wall construction comprising a frame assembly configured from a plurality of corrugated construction elements 100. The wall may be a drywall. Illustrated in
[0062] The floor channel 520 and ceiling channel 530 are spaced apart from each other. A plurality of corrugated construction elements 100 are configured to be disposed in each of the floor channel 520 and ceiling channel 530. One end of each of the corrugated construction element 100 is disposed in the floor channel 520 and a second end opposite to the first end of each of the corrugated construction element 100 is disposed in the ceiling channel 530. The corrugated construction elements 100 are spaced apart from each other in the frame 510. In one embodiment of the present disclosure, the corrugated construction elements 100 are equidistantly spaced from each other.
[0063] Various parameters related to the corrugated construction elements 100, such as, the number of the corrugated construction element 100 in the frame 510, the width of the corrugated construction element 100, height G of the first and second leg profiles 102a, 102b of the corrugated construction element 100, vertical length of the corrugated construction element 100, cross-section of the corrugated construction element 100, spacing of the corrugated construction element 100 may suitably vary based on the type of application. For example, the parameters related to the corrugated construction elements 100 may depend on the size of the wall 500 required for the application, strength of the wall 500 etc.
[0064] The wall 500 may include construction boards 550 coupled to the frame 510. In one example, the construction board 550 may be a gypsum board. In an embodiment, the construction board 550 may be attached to the frame 510 on one or more sides thereof. In a preferred embodiment, the construction board 500 may be attached to the corrugated construction elements 100 of the frame 510. Any suitable fastening mechanisms, for example, screws, adhesives etc. may be used to accomplish the coupling between the frame 510 and the construction boards 550, as applicable. Further, a suitable jointing method may be used to attach the construction boards 550 to each other.
[0065] In an example, the construction board 550 may be reinforced and may include a polymeric binder and a plurality of fibres. The plurality of fibres may include glass fibres, synthetic polymer fibres or natural fibres, either separately or in combination. Further, the polymeric binder may include any of starch, synthetic material etc. In various other embodiments, the construction board 550 may include any other material such as, but not limited to, MDF, plywood, glass, metal sheet, cement, fiber cement, plastic sheet or a combination thereof.
[0066] The construction wall 500 may also include one or more insulation elements (not shown). In one embodiment, the insulation element is disposed between the frame 510 and the construction board 550. In other embodiments, the insulation element is disposed at other locations in the wall 500 based on the specific type of application. In various examples, the insulation element may include a foam material or other materials to provide any of acoustic properties, strength or other properties to the wall 500. Alternatively, the wall 500 may be configured without an insulation element.
[0067] The array of angular corrugations 110 increases the screw retention properties of the corrugated construction elements 100 for screwing the construction boards 550 to the frame 510. In some embodiments the angle Y of the angular corrugations 110 on the first and second leg profiles 102a, 102b of the floor channel 520 and ceiling channel 530 correspond to that on the vertically disposed corrugated construction elements 100 and hence help in interlocking the corrugated construction elements 100 between the floor channel 520 and the ceiling channel 530. This interlocking may help to secure the vertical element within the channel without the need for crimping, screwing or other techniques used to prevent the vertical element from moving within the channel. In the illustrated embodiment of
[0068] In one embodiment of the present disclosure, the corrugated construction elements 100 are fastened to the base profile 101 of the floor channel 520. In an example, mechanical fasteners such as, bolts, screws and the like may be used to fasten the corrugated construction elements 100 to the floor channel 520.
[0069] The present disclosure also relates to an apparatus for forming a sheet material into a corrugated profile comprising an array of angular corrugations 110. The corrugated construction element 100 of the present disclosure is formed from a flat sheet material 700. The flat sheet material 700 is typically passed through a series of consecutive pair of rollers to form a corrugated profile on the sheet material. In one embodiment of the present disclosure, the array of angular corrugations 110 extends over at least 25% of the surface area of the profile.
[0070] Illustrated in
[0071] The second roller 620 comprises a third corrugation region 630b and a fourth corrugation region 640b. The third corrugation region 630b forms the other part of the first set of angular corrugations D1 and the fourth corrugation region 640b forms one part of the second set of angular corrugations D2. The first corrugation region 630a and third corrugation region 630b are co-operable and comprise V-shaped grooves 120 that correspond with each other. Similarly, the second corrugation region 640a and fourth corrugation region 640b are co-operable and comprise V-shaped grooves 120 that correspond with each other.
[0072] In an alternate embodiment, the first roller 610 and second roller 620 may have multiple sets of first, second, third and fourth corrugation regions (630a, 630b, 640a and 640b). For example a first roller and a second roller comprising three sets of first, second, third and fourth corrugation regions viz., 630a.sub.1, 630b.sub.1, 640a.sub.1 and 640b.sub.1; 630a.sub.2, 630b.sub.2, 640a.sub.2 and 640b.sub.2; and 630a.sub.3, 630b.sub.3, 640a.sub.3 and 640b.sub.3 would produce a corrugated profile 770 with three pairs of sets of angular corrugations (D1 and D2, D1 and D2, D1 and D2). When bent into shape, such a corrugated profile would have three pairs of sets of angular corrugations such that one pair (D1 and D2) is on the base profile with angle X between them, one pair (D1 and D2) is on the first leg profile with angle X between them and one pair (D1 and D2) is on the second leg profile with angle X between them. Angles X, X and X could be the same or different from each other.
[0073] Passage of the flat sheet material 700 through the successive pairs of rollers causes the angular corrugations on the base profile 101, first leg profile 102a, second leg profile 102b and flange profiles 160 (160a, 160b), 170 (170a, 170b). The pair of rollers 610 and 620 stretch the sheet material angularly and effectively increases (doubles) the thickness of the sheet material. The height H and pitch P of the array of angular corrugations created on the sheet material depends on the initial thickness of the sheet material.
[0074] For example, a flat sheet material 700 having a thickness of 0.5 mm when passed through the mating rollers 610, 620 will form a corrugated profile 770 having a thickness of lmm Such a corrugated profile 770 will have a pitch P of 3.5 mm. Similarly, a flat sheet material 700 having a thickness of 0.9 mm when passed through the mating roller 610, 620 will form a corrugated profile 770 having a thickness of 1.8 mm Such a corrugated profile 770 will have a pitch P of 4.5 mm Examples
[0075] To demonstrate reduced deflection of the corrugated construction element 100 of the present disclosure, comparative studies were carried out as described below.
[0076] All comparative examples described below present the results of simulations of three different construction elements: [0077] (1) a construction element comprising linear corrugations; [0078] (2) a construction element comprising square indentations; and [0079] (3) a corrugated construction element 100 comprising angular corrugations in accordance with the present disclosure.
[0080] The simulated construction element with linear corrugations comprises corrugations extending over the entire surface of the construction element. The linear corrugations are parallel to the principle axis of the construction element (e.g. parallel to the longest dimension of the construction element) and have a pitch of 3.5 mm and a depth of 0.5 mm.
[0081] The simulated construction element with square indentations comprises small square indentations covering the entire surface of the construction element. The small square indentations were created having a pitch of 3.3 mm, a diameter of 1.5 mm and a depth of 0.5 mm. An illustration of a portion of the surface of such a construction element with square indentations is shown in
[0082] The simulated corrugated construction element 100 in accordance with the present disclosure comprises angular corrugations over the entire surface of the construction element. The angle between the corrugations and the principle axis of the construction element was 45. The corrugations have a pitch of 3.5 mm and a depth of 0.5 mm.
[0083] Each simulated construction element is 300 mm long. Unless specified, all other parameters (e.g. dimensions and geometry) were the same for each simulated construction element.
Comparative Example 1
[0084] Simulations of deflection under lateral load condition were compared for the three construction elements described above. In the simulation, a load of 0.5 kg was applied on both the leg profiles (as shown in
TABLE-US-00001 TABLE 1 Deflection under Lateral Load Condition Sample/Test Condition Construction Construction Element with element with Corrugated Linear Square Construction Corrugations Indentations Element 100 Lateral 4.2 mm 3.81 mm 3.6 mm Deflection at
Comparative Example 2
[0085] Simulations of deflection under longitudinal load condition (as shown in
[0086] The results are shown in Table 2. The results showed that the corrugated construction element 100 of the present disclosure was stronger than the sections having square indentations but not as strong as construction elements having linear corrugations for ceiling constructions.
TABLE-US-00002 TABLE 2 Deflection under Longitudinal Load Condition Sample/Test Condition Construction Construction Element with element with Corrugated Linear Square Construction Corrugations Indentations Element 100 Longitudinal 2.95 mm 3.67 mm 3.25 mm Deflection at
Comparative Example 3
[0087] Deflection of the 1200 mm corrugated construction element 100 of the present disclosure due to self-weight, as shown in
TABLE-US-00003 TABLE 3 Deflection due to Self-Weight Sample/Test Condition Construction Construction Element with element with Corrugated Linear Square Construction Corrugations Indentations Element 100 Deflection due 0.034 mm 0.038 mm 0.035 mm to self-weight
[0088] The above results show that though construction elements with linear corrugations are stronger to longitudinal deflection and deflection due to self-weight, the corrugated construction element 100 of the present disclosure is strongest when subjected to lateral deflection that may cause the leg profiles 102a, 102b to collapse while the construction board is being screwed to the frame and may lead to instability of the construction.
Comparative Example 4
[0089] A construction element comprising square indentations and a corrugated construction element 100 of the present disclosure were placed vertically on an UTM machine and were applied with different loads. The maximum load at which the construction elements axially buckled was recorded. The results are shown in Table 4. The corrugated construction element 100 of the present disclosure axially buckled at a load of 9.20 kN which was much higher compared to the construction element with square Indentations.
TABLE-US-00004 TABLE 4 Axial Buckling Sample/Test Condition Construction element with Corrugated Square Construction Indentations Element 100 Maximum load at 6.87 9.20 which axial buckling occurred (kN)
Comparative Example 5
[0090] Three-point bending test was performed for the construction element comprising square indentations and a corrugated construction element 100 of the present disclosure by screwing together the base profiles of a pair of each of the construction elements using metal screws. A load of 1 kN was applied on the construction element comprising square indentations and a deflection of 16 mm was observed. Then the corrugated construction element 100 of the present disclosure was applied with load until a 16 mm deflection was detected. It was found that a 16 mm deflection appeared on the corrugated construction element 100 at a load of 1.2 kN. This showed the corrugated construction element 100 of the present disclosure to have 20% increased load bearing capacity.
Comparative Example 6
[0091] The shear strength of the corrugated construction element 100 of the present disclosure was measured and compared with the shear strength of the construction element comprising square indentations. The corrugated construction element 100 was found to withstand a load of 2.11 kN while the construction element comprising square indentations was found to take up a load of only 2.05 kN. Hence the improved shear strength of the corrugated construction element 100 of the present disclosure was illustrated.
INDUSTRIAL APPLICABILITY
[0092] With the implementation of the corrugated construction elements 100 of the present disclosure, quality issues associated with construction elements such as flange deflection, deflection due to self-weight, twisting and bending may be avoided. Further, using of these corrugated construction elements also increase the screw retention property and load bearing capacity of the construction elements. The array of the angular corrugations 110 provide for interlocking of vertically disposed corrugated construction elements 100 between the floor channel 520 and ceiling channel 530.
[0093] The invention also relates to a method of forming a corrugated profile 770 comprising an array of angular corrugations 110 extending across at least 25% of the surface of the sheet material 700. The method involves passing the flat sheet material 700 between the first roller 610 and second roller 620. The sheet material 700 is pressed against the V-grooves 120 present on the corrugation regions (630a, 630b, 640a, 640b) of the first roller 610 and second roller 620.
[0094] Note that not all of the activities described above in the general description or the examples are required, that a portion of a specific activity may not be required, and that one or more further activities may be performed in addition to those described. Still further, the order in which activities are listed is not necessarily the order in which they are performed.
[0095] Benefits, other advantages, and solutions to problems have been described above with regard to specific embodiments. However, the benefits, advantages, solutions to problems, and any feature(s) that may cause any benefit, advantage, or solution to occur or become more pronounced are not to be construed as a critical, required, or essential feature of any or all the claims.
[0096] The specification and illustrations of the embodiments described herein are intended to provide a general understanding of the structure of the various embodiments. The specification and illustrations are not intended to serve as an exhaustive and comprehensive description of all of the elements and features of apparatus and systems that use the structures or methods described herein. Certain features, that are for clarity, described herein in the context of separate embodiments, may also be provided in combination in a single embodiment. Conversely, various features that are, for brevity, described in the context of a single embodiment, may also be provided separately or in a sub combination. Further, reference to values stated in ranges includes each and every value within that range. Many other embodiments may be apparent to skilled artisans only after reading this specification. Other embodiments may be used and derived from the disclosure, such that a structural substitution, logical substitution, or another change may be made without departing from the scope of the disclosure. Accordingly, the disclosure is to be regarded as illustrative rather than restrictive.
[0097] The description in combination with the figures is provided to assist in understanding the teachings disclosed herein, is provided to assist in describing the teachings, and should not be interpreted as a limitation on the scope or applicability of the teachings. However, other teachings can certainly be used in this application.
[0098] As used herein, the terms comprises, comprising, includes, including, has, having or any other variation thereof, are intended to cover a non-exclusive inclusion. For example, a method, article, or apparatus that comprises a list of features is not necessarily limited only to those features but may include other features not expressly listed or inherent to such method, article, or apparatus. Further, unless expressly stated to the contrary, or refers to an inclusive-or and not to an exclusive-or. For example, a condition A or B is satisfied by any one of the following: A is true (or present) and B is false (or not present), A is false (or not present) and B is true (or present), and both A and B are true (or present).
[0099] Also, the use of a or an is employed to describe elements and components described herein. This is done merely for convenience and to give a general sense of the scope of the invention. This description should be read to include one or at least one and the singular also includes the plural, or vice versa, unless it is clear that it is meant otherwise. For example, when a single item is described herein, more than one item may be used in place of a single item. Similarly, where more than one item is described herein, a single item may be substituted for that more than one item.
[0100] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. The materials, methods, and examples are illustrative only and not intended to be limiting. To the extent that certain details regarding specific materials and processing acts are not described, such details may include conventional approaches, which may be found in reference books and other sources within the manufacturing arts.
[0101] While aspects of the present disclosure have been particularly shown and described with reference to the embodiments above, it will be understood by those skilled in the art that various additional embodiments may be contemplated by the modification of the disclosed machines, systems and methods without departing from the spirit and scope of what is disclosed. Such embodiments should be understood to fall within the scope of the present disclosure as determined based upon the claims and any equivalents thereof.
LIST OF ELEMENTS
[0102] Title: A Corrugated Construction Element [0103] 100 Corrugated Construction Element [0104] 101 Base Profile [0105] 102a First Leg Profile [0106] 102b Second Leg Profile [0107] 110 Array of Angular Corrugations [0108] 120 V-groove [0109] 130 Longitudinal Bead [0110] 140 Peak of the V-groove [0111] 150 Trough of the V-groove [0112] 160a Inward Flange Profile of First Leg Profile 102a [0113] 160b Inward Flange Profile of Second Leg Profile 102b [0114] 170a Outward Flange Profile of First Leg Profile 102a [0115] 170b Outward Flange Profile of Second Leg Profile 102b [0116] 200 Rectangular Construction Element [0117] 500 Wall [0118] 510 Frame [0119] 520 Floor Channel [0120] 530 Ceiling Channel [0121] 550 Construction Boards [0122] 600 Apparatus [0123] 610 First Roller [0124] 620 Second Roller [0125] 630a First Corrugation Region [0126] 630b Third Corrugation Region [0127] 640a Second Corrugation Region [0128] 640b Fourth Corrugation Region [0129] 700 Flat Sheet Material [0130] 770 Corrugated Profile [0131] 800 Method [0132] 900 Flat Portion [0133] 1000 Simulated Suspended Ceiling System [0134] 1010 Intermediate Channel [0135] 1020 Ceiling Angle [0136] 1030 Ceiling Section [0137] D1 First set of Angular Corrugations [0138] D2 Second set of Angular Corrugations [0139] L Principal Axis of 100 [0140] P Pitch of the Angular Corrugation Array [0141] H Height of the Angular Corrugation Array [0142] G Height of Leg Profiles 102a and 102b [0143] X Angle between D1 and D2 [0144] Y Angle between Array of Angular Corrugation and Principal Axis L [0145] Z Opening Angle [0146] AA Distance between Two Consecutive Ceiling Angles [0147] BB Distance between Two Consecutive Ceiling Sections