The subject matter disclosed generally relates to improvements to energy dissipation dampers, friction couplers and friction coupler assemblies used to dissipate seismic energy and control seismic damage in building structures. More particularly, the subject matter disclosed relates to couplers and dampers used in coupling beams of reinforced concrete, precast concrete or steel building structures.
Friction damping has been widely used in the construction industry since the 1980s. The friction damping is effective for seismic control of buildings, i.e., making the buildings more resistant to forces from earthquakes. For instance, known designs of friction damping technologies are described in Canadian patent no. 1,150,474 and U.S. Pat. No. 4,409,765. Such friction damping technologies are typically installed in the bracings of the structure of the building and operate by converting seismic energy from earthquakes into friction/heat. However, there are still configurations and structures for which the known friction damping solutions are not well conceived.
There is therefore a need for improvement in the field, and solutions for particular configurations of structures for which the known friction couplers are ill-adapted.
According to an embodiment, there is provided a beam coupler to be mounted to a first beam element and to a second beam element mounted side by side, the beam coupler thereby adapted to couple the first beam element and the second beam element, wherein the first beam element and the second beam element are both in a longitudinal orientation, a coupling orientation is defined connecting the first beam to the second beam, the beam coupler comprising: a central plate to be mounted to the first beam element, the central plate comprising: two central-plate side faces in the coupling orientation; and a central-plate hole providing a passage connecting the two central-plate side faces; a pair of side plates to be mounted to the second beam element, each one of the side plates comprising: an interior face neighboring one of the two central-plate side faces; an exterior face; and a side-plate hole providing a passage connecting the interior face with the exterior face; and compression means applying an inward preload over the central plate and the side plates, the compression means comprising: a body extending through the central-plate hole and the side-plate holes, wherein at least one of a) the central-plate hole and b) the side-plate hole has an oblong shape, thereby defining an oblong hole, and wherein the oblong hole allows displacement of the body of the compression means therein upon displacement of the central plate and the side plates relative to each other resulting from a deflection of the beam elements.
According to an aspect, at least one of a) the central-plate hole and b) the side-plate hole has a circular shape.
According to an aspect, a first number of circular holes are present per plate, a second number of oblong holes are present per plate, and wherein the first number is greater than the second number.
According to an aspect, a number of oblong holes is present per plate that is at least two (2), and wherein the oblong holes are parallel to each other.
According to an aspect, the compression means comprises disk springs.
According to an aspect, the beam coupler further comprises friction pads.
According to an aspect, the oblong hole extends in the longitudinal orientation.
According to an aspect, the beam coupler further comprises compression plates to be mounted exterior to the exterior face of each of the side plates.
According to an aspect, the central plate and the side plates each comprise a mounting flange to be mounted to the beam elements.
According to an aspect, the beam coupler comprises mounting flanges to be mounted to the beam elements, and wherein the central plate and the side plates are mounted pivotally to the mounting flanges.
According to an aspect, one of the central plate and the side plates comprises a gusset.
According to an embodiment, there is provided a beam coupling assembly to be mounted to a first beam element and to a second beam element each extending in a longitudinal orientation which defines a coupling orientation toward each other while being perpendicular to the longitudinal orientation, the beam coupling assembly comprising: a first beam coupler adapted to couple the first beam element to the second beam element, the first beam coupler comprising a first-plate set comprising a plate to be mounted to the first beam element and a second-plate set comprising a plate to be mounted to the second beam element, wherein the plates of the first-plate set and of the second-plate set are mounted together to allow relative displacement therebetween; and a second beam coupler adapted to couple the first beam element to the second beam element, the second beam coupler comprising a third-plate set comprising a plate to be mounted to the first beam element and a fourth-plate set comprising a plate to be mounted to the second beam element, wherein the plates of the third-plate set and of the fourth-plate set are mounted together to allow relative displacement therebetween.
According to an aspect, each one of the first-plate set, the second-plate set, the third-plate set and the fourth-plate set comprises at least one plate.
According to an aspect, the second-plate set comprises an additional plate in comparison with the first-plate set.
According to an aspect, one of the first-plate set and of the second-plate set comprises longitudinal oblong holes providing passage through said plates.
According to an aspect, the first beam coupler and the second beam coupler each have one of the first-plate set and of the second-plate set comprising an oblong hole providing passage through said plates, wherein the oblong holes extending in non-parallel orientations relative to each other.
According to an aspect, the first beam coupler comprises: a first exterior face and a second exterior face; and compression means adapted to apply an inward preload over the first beam coupler, comprising: a body adapted to extend between the first exterior face and the second exterior face through the plates of the first set and of the second plate set.
According to an aspect, the compression means comprises disk springs mounted exterior of one of the first exterior face and of the second exterior face.
According to an aspect, the first beam coupler and the second beam coupler are adapted to be mounted in series, whereby the first beam coupler is adapted to be mounted at a first longitudinal distance greater than zero (0) from the second beam coupler.
According to an embodiment, there is provided a beam coupler for coupling a first beam element and to a second beam element, wherein the first beam element and the second beam element are parallel to each other in a longitudinal orientation, the beam coupler comprising: plates for alternate mounting to the first beam element and the second beam element, wherein one of the plates is mounted to the first beam element and a neighboring one of the plates is mounted to the second beam element, further wherein at least one of the plates comprises oblong holes; and compression means applying an inward preload over the plates, the compression means comprising a body extending at least through the oblong holes, wherein the oblong hole allows displacement of the body of the compression means therein upon displacement of the plates relative to each other resulting from a deflection of the first beam element and the second beam element while maintaining parallelism between the first beam element and the second beam element.
Features and advantages of the subject matter hereof will become more apparent in light of the following detailed description of selected embodiments, as illustrated in the accompanying figures. As will be realized, the subject matter disclosed and claimed is capable of modifications in various respects, all without departing from the scope of the claims. Accordingly, the drawings and the description are to be regarded as illustrative in nature and not as restrictive and the full scope of the subject matter is set forth in the claims.
Further features and advantages of the present disclosure will become apparent from the following detailed description, taken in combination with the appended drawings, in which:
It will be noted that throughout the appended drawings, like features are identified by like reference numerals.
The realizations will now be described more fully hereinafter with reference to the accompanying figures, in which realizations are illustrated. The foregoing may, however, be embodied in many different forms and should not be construed as limited to the illustrated realizations set forth herein.
With respect to the present description, references to items in the singular should be understood to include items in the plural, and vice versa, unless explicitly stated otherwise or clear from the text. Grammatical conjunctions are intended to express any and all disjunctive and conjunctive combinations of conjoined clauses, sentences, words, and the like, unless otherwise stated or clear from the context. Thus, the term “or” should generally be understood to mean “and/or” and so forth.
Recitation of ranges of values and of values herein or on the drawings are not intended to be limiting, referring instead individually to any and all values falling within the range, unless otherwise indicated herein, and each separate value within such a range is incorporated into the specification as if it were individually recited herein. The words “about,” “approximately,” or the like, when accompanying a numerical value, are to be construed as indicating a deviation as would be appreciated by one of ordinary skill in the art to operate satisfactorily for an intended purpose. Ranges of values and/or numeric values are provided herein as examples only, and do not constitute a limitation on the scope of the described realizations. The use of any and all examples, or exemplary language (“e.g.,” “such as,” or the like) provided herein, is intended merely to better illuminate the exemplary realizations and does not pose a limitation on the scope of the realizations. No language in the specification should be construed as indicating any unclaimed element as essential to the practice of the realizations.
In the following description, it is understood that terms such as “first”, “second”, “top”, “bottom”, “above”, “below”, and the like, are words of convenience and are not to be construed as limiting terms.
The terms “top”, “up”, “upper”, “bottom”, “lower”, “down”, “vertical”, “horizontal”, “interior” and “exterior”, as the terms “longitudinal”, “inward” and “aside” and the like are intended to be construed in their normal meaning in relation with normal installation of the product, with understanding the orientation of the structures on which are mounted the beam coupler dampers with determine the local coordinated according to which these terms be used.
The terms “group”, “set” and alike are intended to be construed in relation with ensemble and sub-ensemble of elements, preferably of elements of the same type unless otherwise stated or clear from the context.
Further, the terms “coupled», or “coupling” as used herein can have several different meanings depending in the context in which these terms are used. For example, the terms “coupled”, or “coupling” can have a mechanical connotation. For example, as used herein, the terms “coupled”, or “coupling” can indicate that two elements or devices are directly connected to one another or connected to one another through one or more intermediate elements or devices via a mechanical element depending on the particular context.
One should further note that references numbers with apostrophes (′) are to intent to refer to particular components while the same reference numbers without apostrophes refer either to a typical component with the specific reference or to an ensemble of two or more components with the reference, based on the reference being associated with a singular term or a plural term.
In realizations, there are disclosed beam couplers for a building structure.
Referring now to the drawings, and more particularly to
Each beam coupler 100 replaces a reinforced concrete, precast concrete or steel coupling beam. The beam coupler 100 of a beam coupling is mounted on a first extremity to a first one of the beam elements 50′, 50″ and on a second extremity to a second one of the beam elements 50′, 50″. The beam couplers 100 of a beam coupling are mounted to extend inwardly, toward the coupled beam elements 50′, 50″, therefore coupling the beam elements 50′, 50″.
According to a realization, a plurality of beam couplers 100 are mounted along the length or height of the beam elements 50′, 50″ (depending on orientation of the beam elements 50′, 50″), coupling the structural beam elements 50′, 50″ at different elevations from their base. According to a realization, the beam couplers 100 are mounted with a distance being defined based on the characteristics of the beam elements 50′, 50″, requirements based on location of the structure, architectural possibilities and the damping characteristics of the beam couplers 100.
Referring particularly to
Referring additionally to
As shown on
On
On
It is to be noted, as depicted on
Referring now to
According to alternative realizations, the mounting flanges 112, 122 are welded to the beam elements 50′, 50″, or mounted to the beam elements 50′, 50″ using other alternative solutions.
Referring particularly to
According to a realization (not depicted), the side plates 120 comprise a common flange 122 itself mounted to the structural beam elements 50′, 50″, with the space between the side plates 120 being preset.
According to a realization, the side plates 120 each comprise an individual flange 122 featuring mounting holes 128, with either one of the flange 122 or the beam elements 50′, 50″ comprising transversally oblong mounting holes allowing to adjust the space between the side plates 120 when mounting the beam coupler 100 to the structural beam elements 50′, 50″.
Referring now particularly to
The side plates 120 and the central plate 110 of the beam coupler 100 are mounted together using a plurality of compression means 135, e.g. bolts and nuts, with the compression means 135 comprising a body 137 (see
It is to be noted that bolts and nuts are an exemplary method of mounting the central plate 110 and the side plates 120 together, with the side plates 120 pressing opposed faces of the central plate 110. Other solutions such as threaded rods and nuts may be used. The compression means 135 are adapted to apply a preset compression to the beam coupler 100 while passing through the central plate 110 and the side plates 120 for displacement limit as will be explained below.
Further, from the illustration, one must understand that the plates 110, 120 are mounted in a neighboring fashion, the central plate 110 neighboring the side plate 120′ along the interface of the interior face 124 and the side face 114′, the central plate 110 neighboring the side plate 120″ along the interface of the interior face 125 and the side face 114″, with the exterior face 126 of the side plate 120′ and the exterior face 129 if the side plate 120″ having no neighbor and thus defining exterior faces free of neighbors.
It is to ne noted that the plates are mounted alternatively in a neighboring fashion, namely the side plate 120′ neighboring the central plate 110, and the central plate 110 neighboring the side plate 120″. In other words, in an alternative fashion refers to neighboring plates being mounted to distinct beam elements 50′ vs 50″.
It is thus to be noted that the beam coupler will feature two exterior faces, with plates neighboring therebetween.
Referring additionally to
As shown with
Referring now particularly to
In a preferred realization, oblong holes 116 are parallel to each other, thereby allowing displacement of the body 137 of the compression means 135 within the oblong holes 116 without generation of stress over the compression means 135.
According to the depicted realization, the central plate 110 feature three (3) longitudinal oblong holes 116, each allowing two (2) compression means 135 to pass therethrough. The longitudinal length 117 of the oblong holes 116 is greater than the extreme distance 127 defined by the distance between the opposed contact sides of compression means 135 designed to pass through the same oblong hole 116. Accordingly, oblong hole clearance remains, typically on both sides, in the longitudinal direction so that the compression means 135 may travel within the oblong holes 116 as the beam elements 50′, 50″ undergo deflection.
It is worth noting that determination of the number of oblong holes and the clearance provided by the oblong holes for displacements of the central plate 110 and the side plates 120 relative to each other is a question of requirements. For example, the number of oblong holes is determined by the amplitude of allowed displacement of the central plate 110 and the side plates 120 relative to each other, and by the required compression force, a.k.a. preload, to be applied to over the beam coupler 100 upon installation.
According to realizations (with some not depicted), the number of compression means 135 per oblong hole 116 is between one (1) and three (3).
According to realizations (with some not depicted), the number of oblong holes 116 is between one (1) and six (6). According to realizations, the number of oblong holes 116 is at least three (3).
Referring to
According to realizations, the central plate 110 features oblong holes 116 while the side plates 120 feature circular holes 132.
According to realizations as an example depicted on
According to a realization (not depicted), both a) the central plate 110 and b) both ones of the side plates 120 feature longitudinal oblong hole(s).
According to a realization, regardless of which one of the central plate 110 and the side plates 120 comprise(s) oblong hole(s), the compression plates 130 features circular holes for the passage of the compression means 135 therethrough.
Referring now to
Referring to
Referring now to
According to a realization, the gussets 172, 174 of the central plate 110 act as boundaries limiting displacement of the side plates 120 upon breakage of some of the compression means 135.
According to a realization, each one of the side plates 120 comprises a single-sided gusset, namely a top gusset 176 and a bottom gusset 178 defining together with the flat portion therebetween a C-shaped beam, extending sideway outward, with the interior face 124 of the side plate 120 contacting the central plate 110. According to that realization, the gussets 176, 178 act against torsion of the side plate 120 around a coupling axis (see axes on drawing page featuring
According to a realization, a plurality of beam couplers 100 can be installed side-by-side on beam elements 50′, 50″, aka in parallel, with the number of beam couplers 100 increasing control of the deflection of the beam elements 50′, 50″.
According to realizations (not depicted), the number of central plates 110 and of side plates 120 compressed together with compression means 135 is greater than one (1) and two (2), preferably with the number of side plates 120 being one more than the number of central plates 110, for instance two (2) central plates 110 and three (3) side plates 120. Accordingly, the sequence of contacting faces of plates are alternating, e.g., side plate 120|central plate 110; central plate 110|side plate 120; side plate 120|central plate 110 and central plate 110|side plate 120. Thus, according to a preferred realization, the sequence of contacts between plates starts and ends with a side plate 120, thus with one additional side plate 120 relative to the number of central plate 110.
Referring now particularly to
In the same line of thinking, still in the first beam coupler 100′, the group of plates hereinbefore individually called side plates may be called a second-plate set 190, wherein the plates 192 (herein depicted with right-sloped lines) of the second-plate set 190 are mounted to a second beam element 50″ (see
In the first beam coupler 100′, the plates 182, 192 of the first-plate set 180 and of the second-plate set 190 are mounted together to allow relative longitudinal displacement therebetween.
In the second beam coupler 100″, plate(s) 182 of a third-plate set 185 (herein depicted with left-sloped lines) is(are) mounted to the first beam element 50′ (see
Still in the second beam coupler 100″, plate(s) 192 of a fourth-plate set 195 (herein depicted with right-sloped lines) are(is) mounted to the second beam element 50″ (see
In the second beam coupler 100″, the plates 182, 192 of the third-plate set 185 and of the fourth-plate set 195 are mounted together to allow relative longitudinal displacement therebetween.
According to a realization wherein the total number of plates (plates 182 and plates 192) in the, e.g., sets 180 and 190 of a, e.g. beam coupler 100′, is even, it is a preferred realization to use compression plates 130 to help maintain alignment of the compression means 135.
According to a realization, the plates, namely the central plate(s) 110 and the side plates 120, aka plates 182, 192, are made of metallic material.
According to a realization, the compression plates 130 are made of metallic material.
According to a realization, the compression means 135 are made of metallic material.
According to a realization, the friction pads 150 are made of one of metallic material, non-metallic material, and/or coated with a friction-controlling material to obtain the desired characteristics, comprising a desired coefficient of friction.
According to a realization, at least one of the side faces 114′, 114″ of the central plate 110, aka plate 182, and the interior faces 124 of the side plates 120, aka plate(s) 192, are coated with a friction-controlling material in order for the displacement of the plates 110, 120 relative to each other to occur according to a desired coefficient of friction therebetween.
Now referring to
The beam coupler 200, according to an embodiment, comprises a central plate 210, two side plates 220′, 220″ each having an interior face 224′, 224″ interfacing with a side 214′/214″ of the central plate 210, two compression plates 230′, 230″ interfacing with the exterior face 226 of the side plates 220′, 220″, and compression means 235 adapted to exert inward force to the ordered combination of a first compression plate 230′, a first side plate 220′, the central plate 210, the second side plate 220″, and the second compression plate 230″.
The central plate 210 comprises an oblong hole 216 in the coupling orientation. Thus, the oblong hole 216 is non-parallel to (i.e., angled relative to or at a non-zero angle relative to) the longitudinal orientation of the beam elements 50′ and 50″ to which the beam coupler 200 is mounted. The oblong hole 216 provides passage to the compression means 235. The shape of the oblong hole 216 allows displacement of the compression means 235 upon displacement of the central plate 210 relative to the side plates 220′, 220″ in the coupling orientation.
According to an embodiment, the angle of the oblong hole 216 relative to the longitudinal orientation of the beam elements 50′ and 50″ is between 20 degrees and 80 degrees. According to an embodiment, the angle of the oblong hole 216 relative to the longitudinal orientation of the beam elements 50′ and 50″ is between 30 degrees and 75 degrees. According to an embodiment, the angle of the oblong hole 216 relative to the longitudinal orientation of the beam elements 50′ and 50″ is between 40 degrees and 70 degrees. According to an embodiment, the angle of the oblong hole 216 relative to the longitudinal orientation of the beam elements 50′ and 50″ is between 50 degrees and 65 degrees.
According to a preferred realization depicted on
Still referring to
Still referring to
According to a realization, two or more beam coupling assemblies 205′, 205″ (not shown together but the beam coupling assemblies being mounted to beam elements 50′ and 50″ in a configuration equivalent to the beam couplers 100′ and 100″ on
Referring now to
The central plate 210 and the side plates 220′, 220″ of the beam coupler 200 further comprises a plate-mounting hole 242 for mounting the plates 210, 220′, 220″ to mounting flanges 240.
According to a realization, the plates 210, 220′, 220″ are mounted pivotally to the mounting flanges 240.
Referring now to
It is worth noting that alternative realizations described in relation with the beam coupler 100 are also available with the beam coupler 200.
More precisely, the beam coupler 200 may feature variations in the number of plates, the number of oblong holes, the nature of the plates featuring oblong holes, whether or not using compression plates, whether or not having plates featuring gussets, whether or not having the compression means comprising disk springs, whether or not coupling means comprising friction pads, and whether or not using plates coated with a friction-controlling material to list some. All combinations of these variations are also intended to be contemplated through the present statement.
Therefore, the beam coupler 200 is thereby contemplated to be able to encompass many variations similar to the ones described in relation with the beam coupler 100.
While preferred embodiments have been described above and illustrated in the accompanying drawings, it will be evident to those skilled in the art that modifications may be made without departing from this disclosure. Such modifications are considered as possible variants comprised in the scope of the disclosure.
This application is a divisional application of U.S. patent application Ser. No. 16/900,122 filed Jun. 12, 2022, which claims priority from U.S. provisional patent application 62/861,676 filed Jun. 14, 2019, the specifications of which are hereby incorporated herein by reference in their entireties.
Number | Name | Date | Kind |
---|---|---|---|
1945005 | Vacher | Jan 1934 | A |
1963535 | Trotter | Jun 1934 | A |
3009176 | Knocke | Nov 1961 | A |
3631910 | Crowther | Jan 1972 | A |
3828885 | Eissinger | Aug 1974 | A |
3856242 | Cook | Dec 1974 | A |
3867003 | Morton | Feb 1975 | A |
4441289 | Ikuo | Apr 1984 | A |
5112178 | Overhues | May 1992 | A |
5845438 | Haskell | Dec 1998 | A |
6516583 | Houghton | Feb 2003 | B1 |
7462007 | Sullivan | Dec 2008 | B2 |
7581913 | Ordonio, Jr. | Sep 2009 | B2 |
7647734 | Sarkisian | Jan 2010 | B2 |
7703244 | Suzuki | Apr 2010 | B2 |
7712266 | Sarkisian | May 2010 | B2 |
7784226 | Ichikawa | Aug 2010 | B2 |
7857566 | Sullivan | Dec 2010 | B2 |
8807307 | Choi | Aug 2014 | B2 |
9260860 | Mualla | Feb 2016 | B2 |
9316014 | Chou | Apr 2016 | B2 |
9580924 | Taylor | Feb 2017 | B1 |
9689173 | Wu | Jun 2017 | B2 |
10106979 | Lee | Oct 2018 | B2 |
10323430 | Pall | Jun 2019 | B1 |
10408250 | Webb | Sep 2019 | B2 |
10431945 | Baechtle | Oct 2019 | B1 |
10563418 | Pall | Feb 2020 | B2 |
20120038091 | Tagawa | Feb 2012 | A1 |
20120260585 | Mualla | Oct 2012 | A1 |
20140174002 | Mualla | Jun 2014 | A1 |
20150135611 | Beard | May 2015 | A1 |
20150184413 | Pryor | Jul 2015 | A1 |
20150284971 | Ichikawa | Oct 2015 | A1 |
20190186165 | Pall | Jun 2019 | A1 |
20190383053 | Pall | Dec 2019 | A1 |
Number | Date | Country | |
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20220364351 A1 | Nov 2022 | US |
Number | Date | Country | |
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62861676 | Jun 2019 | US |
Number | Date | Country | |
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Parent | 16900122 | Jun 2020 | US |
Child | 17865094 | US |