US20170314254A1 - Moment resisting bi-axial beam-to-column joint connection - Google Patents

Moment resisting bi-axial beam-to-column joint connection Download PDF

Info

Publication number
US20170314254A1
US20170314254A1 US15/144,414 US201615144414A US2017314254A1 US 20170314254 A1 US20170314254 A1 US 20170314254A1 US 201615144414 A US201615144414 A US 201615144414A US 2017314254 A1 US2017314254 A1 US 2017314254A1
Authority
US
United States
Prior art keywords
column
gusset
assembly
gusset plate
gusset plates
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
Application number
US15/144,414
Inventor
David L. Houghton
Quang Minh Huynh
Behzad Rafezy
Jared J Adams
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Mitek Holdings Inc
Original Assignee
Mitek Holdings Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Mitek Holdings Inc filed Critical Mitek Holdings Inc
Priority to US15/144,414 priority Critical patent/US20170314254A1/en
Assigned to MITEK HOLDINGS, INC. reassignment MITEK HOLDINGS, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: HOUGHTON, DAVID L., RAFEZY, Behzad, ADAMS, Jared J, HUYNH, QUANG MINN
Assigned to MITEK HOLDINGS, INC. reassignment MITEK HOLDINGS, INC. CORRECTIVE ASSIGNMENT TO CORRECT THE SECOND INVENTOR NAME PREVIOUSLY RECORDED AT REEL: 038871 FRAME: 0924. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Assignors: HOUGHTON, DAVID L., RAFEZY, Behzad, ADAMS, Jared J, HUYNH, QUANG MINH
Priority to EP17167418.7A priority patent/EP3241952B1/en
Priority to CA2965456A priority patent/CA2965456C/en
Priority to AU2017202780A priority patent/AU2017202780B2/en
Priority to JP2017091316A priority patent/JP7090404B2/en
Priority to MX2017005717A priority patent/MX2017005717A/en
Publication of US20170314254A1 publication Critical patent/US20170314254A1/en
Priority to US16/264,191 priority patent/US11332920B2/en
Abandoned legal-status Critical Current

Links

Images

Classifications

    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/18Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons
    • E04B1/19Three-dimensional framework structures
    • E04B1/1903Connecting nodes specially adapted therefor
    • E04B1/1912Connecting nodes specially adapted therefor with central cubical connecting element
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/18Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons
    • E04B1/24Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons the supporting parts consisting of metal
    • E04B1/2403Connection details of the elongated load-supporting parts
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/18Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons
    • E04B1/30Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons the supporting parts being composed of two or more materials; Composite steel and concrete constructions
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K2101/00Articles made by soldering, welding or cutting
    • B23K2101/28Beams
    • B23K2201/28
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/18Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons
    • E04B1/19Three-dimensional framework structures
    • E04B2001/1957Details of connections between nodes and struts
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/18Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons
    • E04B1/19Three-dimensional framework structures
    • E04B2001/1993Details of framework supporting structure, e.g. posts or walls
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/18Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons
    • E04B1/24Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons the supporting parts consisting of metal
    • E04B1/2403Connection details of the elongated load-supporting parts
    • E04B2001/2406Connection nodes
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/18Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons
    • E04B1/24Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons the supporting parts consisting of metal
    • E04B1/2403Connection details of the elongated load-supporting parts
    • E04B2001/2415Brackets, gussets, joining plates
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/18Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons
    • E04B1/24Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons the supporting parts consisting of metal
    • E04B1/2403Connection details of the elongated load-supporting parts
    • E04B2001/2418Details of bolting
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/18Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons
    • E04B1/24Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons the supporting parts consisting of metal
    • E04B1/2403Connection details of the elongated load-supporting parts
    • E04B2001/2454Connections between open and closed section profiles
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/18Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons
    • E04B1/24Structures comprising elongated load-supporting parts, e.g. columns, girders, skeletons the supporting parts consisting of metal
    • E04B2001/2466Details of the elongated load-supporting parts
    • E04B2001/2478Profile filled with concrete

Definitions

  • the present invention generally relates to a moment resisting, bi-axial beam-to-column joint connection, and more particular to a column assembly and gusset plate assembly for a bi-axial beam-to-column joint connection.
  • Hollow Structural Section (HSS) columns are structurally efficient members to use in a variety of building design applications (both structural and architectural), including moment frames.
  • traditional moment connections types that connect a wide flange (‘H’ section) beam to an HSS column involve significantly different design considerations than does connecting a wide flange beam to a wide flange column.
  • HSS wide flange
  • the main difference between an HSS and wide flange column is how the forces from the beam flanges are transferred into the column webs to be resisted as shear.
  • the web and thus the stiffness
  • HSS column In an HSS column, the forces applied to the column face must be transferred to the sidewalls, which act as the webs of the column. Due to the fact that HSS walls are generally thinner than flanges on a wide flange column, the thickness of the HSS column wall becomes a critical consideration for the strength and stiffness of a moment connection between an HSS column and a wide flange beam. Conventional methods of connecting an HHS column to a wide flange beam must rely on technically uncertain and costly means to transfer significant moment forces to the webs of HSS columns. These current methods are typically used in uniaxial moment frame applications. One such method is directly welding flanges of the wide flange beams to the thin wall flange faces of the HSS column.
  • connection Another conventional method is through-plate connections wherein the HSS column is cut in two places at each floor level to allow through plates attached to the top and bottom flanges of the wide flange beam to pass through the column. These through plates are welded along the full perimeter of the cut sections of the HSS column on both top and bottom faces of each through plate.
  • These type of connections have proven to be both costly to fabricate and uncertain in their performance when subjected to violent earthquakes.
  • the connection may be inherently susceptible to out-of-plane punching shear failures in the through-plate due to cyclic tensile forces in the column.
  • Exterior diaphragm plate connections are similar to the through-plate connections in that they use flange plates attached to the top and bottom flanges of the beam to transfer the moments.
  • the HSS column remains continuous and the top and bottom flange plates are made wider than the width of the HSS column to allow for cut openings having a perimeter that surrounds and is attached to the full perimeter of the HSS column. This connection is inherently difficult to fabricate and erect.
  • Interior diaphragm plate connections consist of shop welded plates that are cut to fit along the inside perimeter of the HSS column, therein stiffening the HSS thin wall flanges and providing a means to transfer beam flange forces to the sidewall webs of the HSS column. Top and bottom flanges of wide flange beam are directly welded to the thin wall flange faces of the column.
  • the fabrication of this connection type is difficult because of precise fit up issues and access for welding of interior diaphragm plates to inside faces of the HSS column. Performance of this connection type is correspondingly uncertain.
  • a prefabricated column assembly generally comprises a hollow tubular column having a longitudinal axis.
  • a gusset plate assembly comprises a plurality of gusset plates connected to the column and extending laterally outward from the column in planes generally parallel to the longitudinal axis of the column.
  • a first pair of the gusset plates extends laterally outward from the column along a first axis and defines a space for receiving an end portion of a first beam for mounting the first beam on the first pair of gusset plates.
  • a second pair of the gusset plates extends laterally outward from the column along a second axis that is nonparallel and non-coincident with the first axis.
  • the first and second pairs of gusset plates each intersect a single plane perpendicular to the longitudinal axis of the column.
  • the second pair of gusset plates defines a space for receiving an end portion of a second beam for mounting the second beam on the second pair of gusset plates to provide a bi-axial joint connection.
  • a gusset plate assembly for connection to a hollow tubular column to attach a beam of a building to the column generally comprises at least two metal gusset plates sized for transferring the weight of the beam of the building to the column.
  • the gusset plates are connected together in a fixed configuration with respect to each other.
  • Each gusset plate includes at least one slot mated with a slot of another of the gusset plates thereby interconnecting the gusset plates and forming the gusset plate assembly.
  • a method of assembling a prefabricated column assembly generally comprises providing a hollow tubular column.
  • a gusset plate assembly including a plurality of gusset plates is assembled by attaching at least two of the gusset plates together.
  • the gusset plate assembly is secured to the hollow tubular column to form the column assembly.
  • a first pair of the gusset plates extends laterally outward from the column along a first axis and defines a space for receiving an end portion of a first beam for mounting the first beam on the first pair of gusset plates.
  • a second pair of the gusset plates extends laterally outward from the column along a second axis.
  • the second pair of gusset plates defines a space for receiving an end portion of a second beam for mounting the second beam on the second pair of gusset plates thereby providing for bi-axial joint connection.
  • FIG. 1 is a diagrammatic perspective of a building framework
  • FIG. 1A is a fragmentary perspective of a four-sided bi-axial beam-to-column joint connection structure including a column assembly of a first embodiment
  • FIG. 2 is a perspective illustrating location of a beam assembly on a pair of column assemblies to construct the bi-axial beam-to-column joint connection structure of FIG. 1A ;
  • FIG. 3 is the bi-axial beam-to-column joint connection structure of FIG. 1A with bolts removed;
  • FIG. 4 is a fragmentary perspective of a column assembly of the bi-axial beam-to-column joint connection structure of FIG. 1A ;
  • FIG. 5 is the column assembly of FIG. 4 with angle irons removed and portions of a gusset plate assembly shown in phantom to reveal details of connection to the gusset plates to the column;
  • FIG. 6 is a top view of the column assembly of FIG. 5 ;
  • FIG. 7 is a front view of the column assembly of FIG. 5 ;
  • FIG. 8 is a horizontal section of the column assembly of FIG. 5 ;
  • FIG. 9 is a perspective of a gusset plate assembly of the column assembly of FIG. 5 ;
  • FIG. 10 is a top view of the gusset plate assembly of FIG. 9 ;
  • FIG. 11 is an enlarged fragmentary top view of a portion of FIG. 10 ;
  • FIG. 12 is a front view of a first gusset plate of the gusset plate assembly of FIG. 9 ;
  • FIG. 13 is a front view of a second gusset plate of the gusset plate assembly of FIG. 9 ;
  • FIG. 14 is a perspective illustrating interconnection of the first gusset plate to the second gusset plate
  • FIG. 15 is a perspective of the gusset plate assembly of FIG. 9 prior to welding
  • FIG. 16 is the bi-axial beam-to-column joint connection structure of FIG. 1A with cement placed in an interior of a column of the structure;
  • FIG. 17 is the bi-axial beam-to-column joint connection structure of FIG. 1A showing alternative connecting members for attaching a column assembly of the structure to a beam assembly of the structure;
  • FIG. 18 is a fragmentary perspective of a four-sided bi-axial beam-to-column joint connection structure including a column assembly of a second embodiment
  • FIG. 19 is the bi-axial beam-to-column joint connection structure of FIG. 18 with cement placed in an interior of a column of the column assembly;
  • FIG. 20 is a fragmentary perspective of a column assembly of a third embodiment for use in a bi-axial beam-to-column joint connection structure
  • FIG. 21 is a horizontal section of the column assembly of FIG. 20 ;
  • FIG. 22 is a front view of a first gusset plate of a gusset plate assembly of the column assembly of FIG. 20 ;
  • FIG. 23 is a front view of a second gusset plate of the gusset plate assembly of the column assembly of FIG. 20 ;
  • FIG. 24 is a fragmentary perspective of a column assembly of a fourth embodiment for use in a bi-axial beam-to-column joint connection structure
  • FIG. 25 is a perspective of a gusset plate assembly of the column assembly of FIG. 24 ;
  • FIG. 26 is a front view of a first gusset plate of the gusset plate assembly of FIG. 25 ;
  • FIG. 27 is a front view of a second gusset plate of the gusset plate assembly of FIG. 25 ;
  • FIG. 28 is a fragmentary perspective of a column assembly of a fifth embodiment for use in a bi-axial beam-to-column joint connection structure
  • FIG. 29 is the column assembly of FIG. 28 showing portions of gusset plates of the assembly in phantom;
  • FIG. 30 is an exploded view of the column assembly of FIG. 29 ;
  • FIG. 31 is a fragmentary perspective of a column of the column assembly of FIG. 28 ;
  • FIG. 32 is a perspective of a gusset plate assembly of the column assembly of FIG. 28 ;
  • FIG. 33 is a front view of a first gusset plate of the gusset plate assembly of FIG. 32 ;
  • FIG. 34 is a front view of a second gusset plate of the gusset plate assembly of FIG. 32 ;
  • FIG. 35 is a fragmentary perspective of a bi-axial beam-to-column joint connection structure including a column assembly of a sixth embodiment
  • FIG. 36 is a gusset plate assembly of the structure of FIG. 35 ;
  • FIG. 37 is a front view of a first gusset plate of the gusset plate assembly of FIG. 36 ;
  • FIG. 38 is a front view of a second gusset plate of the gusset plate assembly of FIG. 36 ;
  • FIG. 39 is a front view of a third gusset plate of the gusset plate assembly of FIG. 36 ;
  • FIG. 40 is a front view of a fourth gusset plate of the gusset plate assembly of FIG. 36 ;
  • FIG. 41 is a fragmentary perspective of a bi-axial beam-to-column joint connection structure including a column assembly of a seventh embodiment
  • FIG. 42 is a gusset plate assembly of the structure of FIG. 41 ;
  • FIG. 43 is a front view of a first gusset plate of the gusset plate assembly of FIG. 42 ;
  • FIG. 44 is a front view of a second gusset plate of the gusset plate assembly of FIG. 42 ;
  • FIG. 45 is a fragmentary perspective of a column assembly of an eighth embodiment for use in a bi-axial beam-to-column joint connection structure
  • FIG. 46 is a top view of the column assembly of FIG. 45 ;
  • FIG. 47 is a front view of a first gusset plate of the column assembly of FIG. 45 ;
  • FIG. 48 is a front view of a second gusset plate of the column assembly of FIG. 45 ;
  • FIG. 49 is a perspective of a gusset plate subassembly of the column assembly of FIG. 45
  • FIG. 50 is an illustration showing how to attach the first gusset plate to the second gusset plate to construct the gusset plate subassembly of FIG. 49 ;
  • FIG. 51 is a top view of the gusset plate subassembly of FIG. 49 ;
  • FIG. 52 is a fragmentary front perspective of a column assembly of a ninth embodiment for use in a bi-axial beam-to-column joint connection structure
  • FIG. 53 is a rear perspective of the column assembly of FIG. 52 ;
  • FIG. 54 is a top view of the column assembly of FIG. 52 ;
  • FIG. 55 is a perspective of a gusset plate subassembly
  • FIG. 56 is an illustration showing how to attach a first gusset plate to a second gusset plate to construct the gusset plate subassembly of FIG. 55 ;
  • FIG. 57 is a top view of the gusset plate subassembly of FIG. 55 ;
  • FIG. 58 is a fragmentary front perspective of a column assembly of a tenth embodiment for use in a bi-axial beam-to-column joint connection structure
  • FIG. 59 is a rear perspective of the column assembly of FIG. 58 ;
  • FIG. 60 is a top view of the column assembly of FIG. 58 ;
  • FIG. 60A is an enlarged fragmentary top view of a portion of FIG. 60 ;
  • FIG. 61 is a fragmentary front perspective of a column assembly of an eleventh embodiment for use in a bi-axial beam-to-column joint connection structure
  • FIG. 62 is a rear perspective of the column assembly of FIG. 61 ;
  • FIG. 63 is a top view of the column assembly of FIG. 61 ;
  • FIG. 64 is a fragmentary front perspective of a column assembly of a twelfth embodiment for use in a bi-axial beam-to-column joint connection structure;
  • FIG. 65 is a rear perspective of the column assembly of FIG. 64 ;
  • FIG. 66 is a top view of the column assembly of FIG. 64 ;
  • FIG. 67 is a fragmentary front perspective of a column assembly of a thirteenth embodiment for use in a bi-axial beam-to-column joint connection structure
  • FIG. 68 is a rear perspective of the column assembly of FIG. 67 ;
  • FIG. 69 is a top view of the column assembly of FIG. 67 ;
  • FIG. 70 is an enlarged fragmentary elevation of a portion of FIG. 69 .
  • a bi-axial beam-to-column moment-resisting joint connection structure including a column assembly of a first embodiment is generally indicated at 11 .
  • the joint connection structure may be used in the construction of a building framework 1 (see, FIG. 1 ).
  • the joint connection structure joins a column assembly 13 including a column 15 to a plurality of full-length beam assemblies 17 each including a full-length beam 19 .
  • a full-length beam is a beam that has a length sufficient to extend substantially the full-length between adjacent columns in a structure (see, FIG. 2 ).
  • a stub and link beam assembly as shown in FIGS. 5 and 16 of U.S. Pat. No.
  • the joint connection structure has a 4-sided/4-beam configuration whereby four full-length beam assemblies 17 are configured to be attached to the column assembly 13 .
  • column 15 is an HSS tube section structure having a rectangular (broadly, “polygonal”) cross section defined by four column faces 20 .
  • the beams 19 may have any suitable configuration, such as an I-beam, H-beam configuration, or hollow rectangular shape (built-up box member or HSS tube section).
  • the column 15 comprises an enclosed rectangular wall including opposing planar wall members.
  • the global moment-resisting frame design configuration of the building framework 1 can, as needed, provide a distributed moment-resisting space frame wherein all or most beam-to-column connections are moment-resisting in each principal direction of the building. This is in contrast to conventional building frameworks which may use fewer discretely located uniaxial moment frames throughout a building foot print. Therefore, the framework 1 maximizes structural redundancy in the lateral load resisting system of a multi-story building to increase resistance to progressive collapse scenarios when subjected to, for example, terrorist bomb blast and other catastrophic load environments, while minimizing the number of required moment-resisting joints to be constructed which in turn reduces construction costs.
  • the column assembly 13 includes a collar like gusset plate assembly 21 for attaching the column assembly to the beam assemblies 17 .
  • the gusset plate assembly 21 comprises a plurality of gusset plates 23 connected to the column 15 and extending laterally outward from the column.
  • the gusset plates 23 extend within planes generally parallel to a longitudinal axis of the column 15 .
  • a first pair of spaced apart parallel, vertically and horizontally extending gusset plates 23 a sandwich the column 15 and co-axially extending beams 19 .
  • the first pair of gusset plates 23 a extends laterally outward from the column 15 in opposite directions along a first axis and defines spaces for receiving end portions of beams 19 for mounting respective beam assemblies 17 to the column assembly 13 via the gusset plate assembly 21 .
  • a second pair of spaced apart parallel, vertically and horizontally extending gusset plates 23 b sandwich the column 15 and co-axially extending beams 19 .
  • the second pair of gusset plates 23 b extends laterally outward from the column 15 in opposite directions along a second axis extending orthogonally to the first axis.
  • the second pair of gusset plates 23 b defines spaces for receiving end portions of beams 19 for mounting respective beam assemblies 17 to the column assembly 13 via the gusset plate assembly 21 .
  • the first and second pairs of gusset plates each intersect a single plane perpendicular to the longitudinal axis of the column 15 .
  • the gusset plate assembly 21 is constructed and arranged so that four, co-planar beams 19 are connected to the column 15 .
  • Each of the first pair of gusset plates 23 a includes a closed interior slot 41 (broadly, “elongate opening”) having an edge defining a closed loop encompassing the slot.
  • the gusset plates 23 a each also include a pair of open slots 43 flanking the interior slot 41 ( FIG. 12 ).
  • the open slots 43 extend from a bottom of the gusset plates 23 to an interior of the gusset plates.
  • Each of the second pair of gusset plates 23 b includes a closed interior slot 45 (broadly, “elongate opening”) of substantially the same construction as the slot 41 , and a pair of open slots 47 flanking the interior slot ( FIG. 13 ).
  • the open slots 47 extend from a top of the gusset plates 23 to an interior of the gusset plates.
  • the slots 43 , 47 of the first and second pairs of gusset plates 23 a , 23 b allow the plates to be assembled as schematically illustrated in FIG. 14 .
  • the open slots 43 of the first pair of gusset plates 23 a are configured to mate with the open slots 47 of the second pair of gusset plates 23 b such that portions of the first pair of gusset plates 23 a are received in the open slots of the second pair of gusset plates, and portions of the second pair of gusset plates are received in the open slots of the first pair of gusset plates.
  • the gusset plates 23 a , 23 b intersect and extend through each other.
  • the first pair of gusset plates 23 a are attached to the second pair of gusset plates 23 b such that top and bottom edges of the first pair of gusset plates are generally flush with respective top and bottom edges of the second pair of gusset plates 23 b.
  • the interconnected pairs of gusset plates 23 a , 23 b form a collar like gusset plate assembly 21 having the appearance of a 3-dimensional pound sign defining a column passage 51 , as shown in FIG. 15 .
  • intersecting gusset plates 23 a , 23 b extend orthogonally with respect to each other.
  • the gusset plates 23 a , 23 b are welded together along vertical fillet welds 29 a extending along the intersection corners between the gusset plates, which completes the gusset plate assembly 21 .
  • Horizontal fillet welds 29 b (broadly, “first gusset plate-to-column welds”) at top and bottom edges of the gusset plates 23 a , 23 b extend transverse to the longitudinal axis of the column 15 and attach the gusset plate assembly 21 to the column.
  • fillet welds 29 c (broadly, “second gusset plate-to-column welds”) in the closed slots 41 , 45 in the gusset plates 23 a , 23 b attach the gusset plate assembly 21 to the column 15 ( FIG. 7 ).
  • double parallel vertical welds extend within and along a length of each slot 41 , 45 and connect at rounded ends of the slot, forming a continuous weld around the perimeter of the slots.
  • the slots 41 , 45 are positioned generally at a center of the column faces 20 and thus the welds 29 c within the slots 41 , 45 provide additional structure for enhancing the moment resisting capabilities of the structure.
  • horizontal cover plates 27 are disposed on top of and attached to an end of the beams 19 .
  • the cover plates 27 have a width that is greater than a width of the respective beam 19 and a horizontal spacing of the associated gusset plates 23 .
  • the configuration of the cover plates 27 allows the beams 19 to be lowered between the gusset plates 23 so that each end of the full-length beam assembly 17 is initially supported in bearing between the cover plate 27 and the top edge of the horizontal extension of the gusset plates 23 of the column assembly 13 .
  • the beams 19 are self-shoring.
  • the cover plates 27 may rest on a top face of a projecting horizontal leg of upper angle irons 31 attached to the gusset plates 23 .
  • the cover plates 27 extend along the length of their respective beams 19 and terminate just beyond the ends of the gusset plates 23 .
  • the cover plates 27 have an oblong radiused slot opening 30 extending along the length of the cover plate. It will be understood that the cover plates 27 may have other widths, configurations and slot-type oblong openings. For example, a cover plate (not shown) may have no slot opening 30 .
  • Vertical shear plates 32 are welded at 29 d to the web of the beam 17 and have holes 26 a for connection to the gusset plates 23 a , 23 b.
  • the column assembly 13 is bolted to the beam assemblies 17 by bolts 26 extending through aligned bolt holes 26 A in the assemblies.
  • bolts 26 are used to attach the upper angle irons 31 to the cover plates 27 , the lower angle irons 33 to the gusset plates 23 , and the vertical shear plates 32 to the gusset plates, all through aligned bolt holes 26 a in the respective components.
  • the joint connection structure 11 outlined above is a bi-axial beam-to-column type structure.
  • the structure 11 provides for beam assembly connection along four sides of hollow tubular column 15 .
  • each of the components of the joint connection structure 11 are made of structural steel.
  • Some of the components of the joint connection structure 11 are united by welding and some by bolting. The welding may be initially performed at a fabrication shop. The bolting may be performed at the construction site, which is the preferred option in many regions of the world.
  • the beam assembly 17 can be connected to the column assembly 13 in other suitable ways such as by welding, or in an all-bearing connection.
  • the column assembly 13 may be fabricated at a fabrication shop and later transported to the construction site.
  • the gusset plates 23 are mated with each other via the slots 43 , 47 ( FIGS. 14 and 15 ).
  • the mated gusset plates 23 are welded to each other to form the rigid gusset plate assembly 21 ( FIG. 9 ).
  • the gusset plate assembly is received on the column 15 by inserting the column in the column passage 51 of the gusset plate assembly 21 .
  • the column 15 can be turned on its side to facilitate the insertion of the column through the column passage 51 of the gusset plate assembly 21 , and to facilitate welding of the gusset plate assembly to the faces 20 of the column.
  • the gusset plate assembly 21 is then located on the column at a selected position, such as at a predetermined floor location, and welded at 29 b or otherwise attached to the faces 20 of the walls of the column 15 .
  • the gusset plate assembly is welded to the column 15 along horizontal welds 29 b located at the top and bottom of the gusset plates 23 , and along welds 29 c within slots 41 , 45 .
  • the upper angle irons 31 are welded at 29 f or otherwise attached to the gusset plates 23 .
  • the column assembly 13 can be constructed exclusively by welds.
  • the welds 29 are fillet welds. Fillet welds do not require ultra-sonic inspection which results in reduced shop fabrication costs.
  • the welds could be groove welds or stitch welds. Other welds and other forms of connection are also within the scope of the present disclosure.
  • the full-length beam assembly 17 may also be fabricated at a fabrication shop prior to being transported to the construction site.
  • the cover plates 27 are welded at 29 e or otherwise attached to the upper flange of the beam. Welding (such as by weld 29 e ) is carried out between the periphery of the slot opening 30 and the top flange of the beam 19 , and along the top flange tips of the beam on the underside of the cover plate (not shown).
  • the lower angle irons 33 are welded at 29 g or otherwise attached to the bottom flange of the beam 19 and project laterally outwardly from the beam.
  • any welds needed to form the full-length beam assembly 17 can be carried out at the shop.
  • the shop permits use of fixtures and precision manufacturing techniques to form the collar like gusset plate assembly 21 , the column assemblies 13 and the beam assemblies 17 in a highly accurate manner.
  • the welds 29 are fillet welds. Other welds and other forms of connection are also within the scope of the present disclosure.
  • the cover plate 27 and lower angle irons 33 may have other configurations than those illustrated in the current embodiment.
  • the column assembly 13 is joined to the full-length beam assemblies 17 .
  • the column assembly 13 is first erected in a vertical orientation and the ends of the full-length beam assemblies 17 are positioned horizontally and adjacent to the column assembly, so that each end of the beams is over a respective pair of gusset plates 23 .
  • the full-length beam assemblies 17 are then lowered between the gusset plates 23 until the bottom surfaces of the cover plates 27 engage the top surfaces of the upper angle irons 31 . This engagement initially locates and supports the full-length beam assemblies 17 on the column assembly 13 to facilitate shoring during erection.
  • the bi-axial beam-to-column moment-resisting joint connection structure 11 which includes full-length beam assemblies 17 , is completed exclusively through bolted connections.
  • the joint connection structure 11 is constructed without the use of welds.
  • the cover plates 27 are designed to transfer most, if not all, of the vertical shear load from the full-length beams 19 , which may eliminate the need for vertical shear plates or vertical shear elements, while also reducing material and construction costs.
  • the column assembly 13 beneficially distributes the resistance to moments applied by the beams 19 to the column 15 to all four faces 20 of the column, making it well-suited to resist bi-axial loads applied by the beams to the column, particularly in severe load events. This is made possible by the use of welded interlocked orthogonal gusset plates forming the rigid gusset plate assembly 21 that hug the sidewalls and enclose the corners of the column 15 . It will be understood that a moment applied by any one or any combination of the four beams will be transmitted by the rigid gusset plate assembly 21 to locations all around the column 15 .
  • connection to the parallel faces 20 of the column 15 provides a force couple (principally acting in shear along the length of the welds 29 b ) formed by the top and bottom horizontal welds 29 b (comprising a horizontal weld group) connecting the gusset plates 23 b to their respective adjacent faces 20 of column 15 to resist applied moment.
  • top and bottom horizontal welds 29 b of the near gusset plate 23 a facing the end of the beam comprise another horizontal weld group forming a resisting tension/compression force couple acting perpendicular to the near face 20 of the column 15 to resist applied moment.
  • the rigid gusset plate assembly 21 also transmits the moment to the opposite face 20 of the column 15 through its connection to the far gusset plate 23 a , by providing a redundant resisting tension/compression force couple (acting perpendicular to the opposite face 20 ) formed by the top and bottom horizontal welds 29 b (comprising yet another horizontal weld group) connecting the far gusset plate 23 a to the opposite face 20 to resist the applied moment.
  • the column assembly is configured to provide further moment resistance unique to bi-axial moments. It can be understood that if moments are being applied to the joint column assembly from beams 19 which are orthogonally arranged with respect to each other, the resolved moment vector would not lie in a vertical plane including the longitudinal axis of either beam. Instead, the moment vector would lie in a vertical plane somewhere in between orthogonal beams 19 , and would therefore urge the gusset plate assembly 21 to tilt on the column along a diagonal between the longitudinal axes of said orthogonal beams 19 . In this case, adjacent, near orthogonal faces 20 of the column 15 provide cooperative moment resistance.
  • the welds 29 c in the vertical slots 41 , 45 in the gusset plates 23 a , 23 b which are located at the mid-depth of the column 15 on the adjacent faces 20 orthogonal to each other, provide additional moment-resisting capacity by coupling the same vertical slot welds 29 c located in their respective slots 41 , 45 , which act together orthogonally as a vertical weld group to provide a force couple to resist the applied bi-axial moment.
  • the rigid gusset plate assembly 21 also transfers the bi-axial moments to the far orthogonal faces 20 of the column 15 , which comprises another vertical weld group to provide additional cooperative moment resistance. Both the near orthogonal faces 20 and far orthogonal faces act in concert with the moment resistance force couples described in the preceding paragraph to make the column assemblies 13 and joint connection structures 11 formed using the column assemblies remarkably robust.
  • load transfer redundancy can also be provided under severe load conditions by a ‘push/pull’ effect of opposite gusset plates 23 a (facing perpendicular to the longitudinal axis of the beam) bearing against the same opposite faces 20 of the column 15 under the applied moment.
  • opposing faces 20 of the column 15 cooperate to resist moment (under extreme load conditions) from one beam 19 , in addition to resistance provided by the welded connection of the gusset plates 23 b to the orthogonal side faces 20 of the column 15 , thereby providing redundancy in resisting applied moment.
  • the column assembly 13 is configured to resist applied moment in the way just described for moment applied for only one beam 19 , for as many as all the four beams 19 in the joint connection structure 11 made possible by bi-axial interaction of all aforementioned load transfer mechanisms.
  • Beam-to-column moment-resisting joint connection structures 11 including a column assembly 13 having a hollow tubular column 15 and the gusset plate assembly 21 described above have been shown to perform extraordinarily well during full-scale simulated earthquake testing.
  • the testing included two uniaxial moment frame test specimens configured with axially-loaded thin-walled HSS columns that were moment connected to wide flange beams using all field-bolted side plate moment connection technology such as disclosed in U.S. Pat. No. 9,091,065, incorporated herein by reference.
  • the HSS columns were pre-loaded axially in compression to 40% of their nominal yield strength, since axial load can have a dominant role on local buckling of HSS shapes.
  • the applied axial load of 40% was selected based on a suite of parametric studies which concluded that this level of axial compression in steel moment frame columns envelopes approximately 95% of typical multi-story buildings.
  • An 18′′ square HSS column flange width-to-wall thickness ratio (b f /t f ) for one of two test specimens was set at 21, as compared to the maximum b f /t f limit of 13.2 allowed by AISC 358 Seismic Provisions, to ascertain if local buckling will occur using the beam-to-column side plate moment connection technology described herein.
  • the side plate test specimen consisting of a square 18′′ HSS column (HSS 18 ⁇ 18 ⁇ 3 ⁇ 4) having a b f /t f ratio of 21 , pre-loaded with an axial compression load of 40% of its nominal yield strength, and connected to a 24 ′′ deep wide flange beam (W24 ⁇ 84), was cyclically loaded to ultimate beam failure with no indications of column distress.
  • HSS 18 ⁇ 18 ⁇ 3 ⁇ 4 square 18′′ HSS column
  • W24 ⁇ 84 deep wide flange beam
  • the HSS column assembly achieved two full cycles of joint rotation at 6% radians of steel moment frame drift, compared to the industry prequalification requirement (AISC 358 Seismic Provisions) of only one full cycle at 4% radians of steel moment frame drift. Therefore, the HSS column assembly proved not only to be adequate for withstanding seismic loading, the assembly exceeded current industry standards.
  • the unique geometry and stiffness of this all shop fillet-welded and all field-bolted, bi-axial, beam-to-column moment-resisting joint connection structure 11 maximizes its performance and the broadness of its design applications, including both extreme wind and moderate-to-severe seismic conditions.
  • the all field-bolted joint connection structure 11 preserves the physical separation (or gap) between the end of a full-length beam 19 and the face of the column 15 made possible by the use of vertically and horizontally extended parallel gusset plates 23 that sandwich the column and the beam similar to prior designs which feature an all field fillet-welded joint connection structure; thus reducing the uncertainty of bending moment load transfer between a rigidly attached steel moment frame beam and column used in the past.
  • this current bi-axial application of an all field-bolted joint connection structure 11 preserves the advantage of increased beam-to-column joint stiffness, with a corresponding increase in overall steel moment frame stiffness, which results in smaller beam sizes when the building design is controlled by lateral story drift (not member strength), and hence reduced material costs.
  • this bi-axial all field-bolted joint connection structure 11 When the building design is controlled by member strength (not lateral story drift), this bi-axial all field-bolted joint connection structure 11 also reduces the beam size and the column size, and hence material quantities and cost, because its connection geometry has no net section reduction in either the beam or the column (i.e., no bolt holes through either the beam or column), thereby maintaining the full strength of the beam and column.
  • full-length beams are connected to gusset plates by bolts so that the full-length beam and gusset plates are substantially free of welded connection. It will be understood that welding the full-length beam assemblies 17 to the column assembly 13 is within the scope of that aspect of the disclosure.
  • the bi-axial beam-to-column moment-resisting joint connection structure 11 is shown with column 15 filled with concrete C.
  • Even greater load capacity and ductility can be provided, when the column 15 is filled with concrete.
  • additional ductile load carrying capacity is achieved through confining the concrete by the surrounding column section. This provides a closed jacket of steel to preclude bursting of hardened concrete when subjected to heavy axial compression.
  • the concrete provides an inherent resistance to the possibility of out-of-plane buckling of the thin side walls of the column 15 .
  • the bi-axial beam-to-column moment-resisting joint connection structure 11 is shown with upper angle irons 28 instead of cover plates 27 .
  • the angle irons 28 are in the illustrated embodiment welded to the beams 19 prior to being shipped to the construction site.
  • a bi-axial beam-to-column moment-resisting joint connection structure of a second embodiment is generally indicated at 111 .
  • the joint connection structure of the second embodiment is substantially identical to the structure 11 of the first embodiment except HSS column 15 is replaced with a built-up box column 115 .
  • Parts of the joint connection structure 111 of the second embodiment corresponding to those of the joint connection structure 11 of the first embodiment are given the same reference numeral plus “100”. Hollow steel built-up box section columns are typically used in the design of high rise buildings, specialty structures, and residential towers.
  • FIG. 19 the bi-axial beam-to-column moment-resisting joint connection structure 111 is shown with built-up box column 115 filled with concrete C.
  • a column assembly of a third embodiment is generally indicated at 213 .
  • the column assembly 213 of the third embodiment is substantially identical to the column assembly 13 of the first embodiment. Parts of the column assembly 213 of the third embodiment corresponding to those of the column assembly 13 of the first embodiment will be given the same reference numeral plus “200”. This numbering convention is repeated in subsequent embodiments.
  • the only differences between the column assembly 213 of the third embodiment and the column assembly 13 of the first embodiment is the gusset plates 223 a , 223 b of the gusset plate assembly 221 of the third embodiment each have a narrow closed slots 241 , 245 extending vertically along the gusset plates.
  • plug welds 229 c fill the narrow closed slots 241 , 245 .
  • the plug welds 229 c comprise square groove slot welds that extend along and fill the slots 241 , 245 to provide proportionally reduced moment-resisting strength as compared to the fillet welds 29 c in the slots 41 , 45 in the first embodiment.
  • the method of assembling the gusset plate assembly 221 is identical to the method of assembling the gusset plate assembly 21 of the first embodiment, and the method of constructing the column assembly 213 is otherwise identical to the method of constructing the column assembly 13 of the first embodiment. Further the column assembly 213 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • a column assembly of a fourth embodiment is generally indicated at 313 .
  • the column assembly 313 of the fourth embodiment is substantially identical to the column assembly 13 of the first and third embodiments.
  • the only difference between the two embodiments is the removal of the closed slots 41 , 45 in the gusset plates.
  • the method of assembling the gusset plate assembly 321 is identical to the method of assembling the gusset plate assembly 21 of the first embodiment, and the method of constructing the column assembly 313 is otherwise identical to the method of constructing column assembly 13 of the first embodiment.
  • the primary difference being that the gusset plate assembly 313 is not welded to the column 315 within vertical slots in the gusset plates 323 .
  • the column assembly 313 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • a column assembly of a fifth embodiment is generally indicated at 413 .
  • the column assembly 413 of the fifth embodiment is similar to the column assembly 313 of the fourth embodiment.
  • the primary difference between the two embodiments is gusset plate assembly 421 is attached to column 415 by a threaded through-rod connection, instead of being welded to the column.
  • threaded rods 461 extend through aligned rod holes 461 A in the gusset plates 423 and the column 415 to secure the gusset plate assembly 421 to the column 415 .
  • Each planar face 420 of the column 415 includes rod holes 461 A.
  • Each rod hole in a face 420 of the column 415 is axially aligned with a rod hole in an opposing face 420 of the column.
  • the gusset plates 423 have oversized rod holes 461 A configured to align with the standard rod holes 461 A in the column 415 .
  • the threaded rods 461 extend through vertically aligned oversized rod holes 461 A in the gusset plates 423 and the rod holes 461 in opposing faces of the column 415 .
  • the column 415 can be turned on its side to more easily facilitate insertion of the threaded rods 461 .
  • Rod holes 461 A in adjacent faces of the column 415 are axially offset from each other so that the threaded rods 461 extending through the adjacent sides of the column assembly will not interfere with each other.
  • the rod holes 461 A are arranged in a rectangular pattern on the faces of the column 415 and the gusset plates 423 .
  • the rod holes 461 A could be arranged in a different pattern without departing from the scope of the disclosure.
  • the gusset plate assembly 421 is also attached to the column 415 by top and bottom horizontal welds 429 b .
  • welds 429 b may be omitted within the scope of the present invention.
  • expansion bolts (not shown) may be used in place of the threaded rods 461 .
  • the expansion bolts would not extend across the column 419 , but instead would expand to bear against an inner face of the wall of the column through which the expansion bolt is passed.
  • different bolts would be used on all four faces 420 of the column 415 .
  • a bi-axial beam-to-column moment-resisting joint connection structure including a column assembly 513 of a sixth embodiment is generally indicated at 511 .
  • the joint connection structure may be used in the construction of a building framework.
  • the joint connection joins column assembly 513 including a column 515 to three full-length beam assemblies 517 including full-length beams 519 .
  • the column assembly 513 is similar to the column assembly 313 of the fourth embodiment but includes a modification to the gusset plate assembly 521 to configure the column assembly for attaching three beam assemblies 517 .
  • the gusset plate assembly 521 comprises a plurality of gusset plates 523 connected to the column 515 and extending laterally outward from the column.
  • the gusset plates 523 extend within planes generally parallel to a longitudinal axis of the column 515 .
  • a first pair of spaced apart parallel, vertically and horizontally extending gusset plates 523 a sandwich the column 515 and co-axially extending beams 519 .
  • the first pair of gusset plates 523 a extends laterally outward from the column 515 in opposite directions along a first axis and defines spaces on opposite sides of the column for receiving end portions of beams 519 for mounting respective beam assemblies 517 to the column assembly 513 via the gusset plate assembly 521 .
  • a second pair of spaced apart parallel, vertically and horizontally extending gusset plates 523 b sandwich the column 515 and a beam 519 extending orthogonally to the co-axially extending beams.
  • the second pair of gusset plates 523 b extends laterally outward from the column 515 in opposite directions along a second axis extending orthogonally to the first axis.
  • the second pair of gusset plates 23 b defines a space for receiving an end portion of beam 519 for mounting a beam assembly 517 to the column assembly 513 via the gusset plate assembly 521 .
  • the first pair of gusset plates 523 a each includes a pair of open slots 543 extending from an edge of the gusset plates 523 a to an interior of the gusset plates ( FIGS. 37 and 38 ).
  • the slots 543 are symmetrically spaced about a vertically extending centerline of the gusset plates 523 a .
  • the second pair of gusset plates 523 b each includes a pair of open slots 547 extending from an edge of the gusset plates 523 b to an interior of the gusset plates ( FIGS. 39 and 40 ).
  • the slots 547 are asymmetrically spaced about a vertically extending centerline of the gusset plates 523 b .
  • slots 547 are laterally spaced from a vertically extending centerline of the gusset plate 523 b toward one side of the gusset plate. Therefore the gusset plate 523 b extends a greater distance from one of the slots 547 , away from the other slot, than it extends from the other slot in an opposite direction.
  • the open slots 543 of the first pair of gusset plates 523 a are configured to mate with the open slots 547 of the second pair of gusset plates 523 b such that portions of the first pair of gusset plates 523 a are received in the open slots of the second pair of gusset plates, and portions of the second pair of gusset plates are received in the open slots of the first pair of gusset plates.
  • the connected gusset plates 523 a , 523 b form gusset plate assembly 521 ( FIG. 36 ).
  • the gusset plates 523 a , 523 b are welded together along vertical fillet welds 529 a extending along the intersecting corners between the gusset plates, substantially as shown in FIG. 11 for the first embodiment. It is noted that the short extension of gusset plates 523 b beyond the intersecting gusset plate 523 a provides for slots 547 to mate with interlocking slots 543 to form a controlled rigid intersection of orthogonal gusset plates that can then be welded at four locations (such as shown in FIG. 11 ). It is understood, however, that a free vertical edge of gusset plate 523 b can be made to flush up to the interior face of rearwardmost orthogonal gusset plate 523 a of FIG.
  • the first pair of gusset plates 523 a are attached to the second pair of gusset plates 523 b such that top and bottom edges of the first pair of gusset plates are generally flush with respective top and bottom edges of the second pair of gusset plates 523 b . It may be seen that the gusset plate assembly 521 forms only three spaces for receiving end portions of beam assemblies.
  • the method of assembling the gusset plate assembly 521 is identical to the method of assembling the gusset plate assembly 321 of the fourth embodiment, and the method of constructing the column assembly 513 is otherwise identical to the method of constructing the column assembly 313 of the fourth embodiment. Further the column assembly 513 can be attached to full-length beam assemblies in the same fashion as column assembly 313 of the fourth embodiment.
  • a bi-axial beam-to-column moment-resisting joint connection structure including a column assembly 613 of a seventh embodiment is generally indicated at 611 .
  • the joint connection structure may be used in the construction of a building framework.
  • the joint connection joins column assembly 613 including a column 615 to two full-length beam assemblies 617 including full-length beams 619 .
  • the column assembly 613 is similar to the column assembly 313 of the fourth embodiment but includes a modification to the gusset plate assembly 621 to configure the column assembly for attaching two orthogonal beam assemblies 617 .
  • Each of a first pair of gusset plates 623 a includes two open slots 643 extending from an edge of the gusset plates 623 a to an interior of the gusset plates ( FIG. 43 ).
  • the slots 643 are asymmetrically spaced about a vertically extending centerline of the gusset plates 623 a .
  • slots 643 are laterally spaced from a vertically extending centerline of the gusset plate 623 a toward one side of the gusset plate.
  • Each of the second pair of gusset plates 623 b includes two open slots 647 extending from an edge of the gusset plates 623 b to an interior of the gusset plates ( FIG. 44 ).
  • the slots 647 are also asymmetrically spaced about a vertically extending centerline of the gusset plates 623 b in a similar fashion to the slots 643 in the first pair of gusset plates 623 a.
  • the open slots 643 of the first pair of gusset plates 623 a are configured to mate with the open slots 647 of the second pair of gusset plates 623 b such that portions of the first pair of gusset plates 623 a are received in the open slots of the second pair of gusset plates, and portions of the second pair of gusset plates are received in the open slots of the first pair of gusset plates.
  • the connected gusset plates 623 a , 623 b form gusset plate assembly 621 .
  • the gusset plate assembly provides only two spaces for receiving ends of the beam assemblies 617 .
  • the gusset plates 623 a , 623 b are welded together along vertical fillet welds 629 a extending along the intersection corners between the gusset plates. It is noted that the short extension of gusset plates 623 b beyond the intersecting gusset plate 623 a provides for slots 647 to mate with interlocking slots 643 to form a controlled rigid intersection of orthogonal gusset plates that can then be welded at four locations (such as shown in FIG. 11 ). It is understood, however, that a free vertical edge of gusset plate 623 b can be made to flush up to the interior face of rearwardmost orthogonal gusset plate 623 a of FIG.
  • first pair of gusset plates 623 a are attached to the second pair of gusset plates 623 b such that top and bottom edges of the first pair of gusset plates are generally flush with respective top and bottom edges of the second pair of gusset plates 623 b.
  • the method of assembling the gusset plate assembly 621 is identical to the method of assembling the gusset plate assembly 321 of the fourth embodiment, and the method of constructing the column assembly 613 is otherwise identical to the method of constructing the column assembly 313 of the fourth embodiment. Further the column assembly 613 can be attached to full-length beam assemblies in the same fashion as column assembly 313 of the fourth embodiment.
  • a column assembly of an eighth embodiment is generally indicated at 713 .
  • the gusset plate assembly 721 of the eighth embodiment comprises a plurality (four) of gusset plate subassemblies 771 separately welded to column 715 .
  • Each subassembly 771 hugs its two adjacent orthogonal faces 720 of the column 715 , thereby enclosing the corner of the column, and is welded to the column.
  • the gusset plate subassemblies each include a first gusset plate 723 a and a second gusset plate 723 b .
  • Facing surfaces of adjacent gusset plates 723 a , 723 b define the spaces for receiving end portions of a beam for mounting a beam assembly to the column assembly 713 via the gusset plate assembly 721 .
  • the column assembly 713 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • Each subassembly 771 comprises the first gusset plate 723 a having an open slot 743 located closer to one side of the first gusset plate ( FIG. 47 ), and the second gusset plate 723 b having an open slot 747 located closer to one side of the second gusset plate ( FIG. 48 ).
  • the gusset plates 723 a , 723 b are attached by mating the slots 743 , 747 with each other and welding the gusset plates 723 a , 723 b together at vertical welds 729 a extending along the intersection corners between the gusset plates.
  • the assembled gusset plate subassemblies 771 have an unsymmetrical, crossed configuration (see, FIGS. 49 and 51 ).
  • the portions of the gusset plates 723 a , 723 b that define a smaller section are welded to the four corners of the column 715 , and the portions of the gusset plates that define a larger section extend laterally outward from the column.
  • the subassemblies 771 are welded to each face 720 of the column 715 along top and bottom horizontal welds 729 b and vertical welds 729 c . It will be understood that other forms of connection of the subassemblies 771 to the column 715 may be employed.
  • the gusset plates 723 a , 723 b and column 715 may have bolt holes and receive suitable fasteners such as expansion bolts to mount the subassemblies on the column.
  • the gusset plate assembly 721 beneficially distributes the resistance to moments applied by the beams (not shown) to the column 715 to all four faces 720 of the column, making it also well-suited to resist bi-axial loads applied by the beams to the column.
  • This is made possible by the use of welded interlocked orthogonal gusset plates 723 a , 723 b forming the rigid gusset plate subassemblies 771 that hug the sidewalls and can be configured to enclose all four corners of the column 715 to resist bi-axial applied moment. It will be understood that a moment applied by any one or any combination of the four beams will be transmitted by pairs of gusset plate subassemblies 771 to locations all around the column 715 .
  • the subassemblies 771 are welded to the faces 720 of the column 715 along top and bottom horizontal welds 729 b and vertical welds 729 c.
  • the subassemblies 771 cooperate to distribute load to the faces 720 of the column 715 .
  • a moment is applied to one of the subassemblies 771 ( FIG. 49 ), by a beam (not shown) connected to gusset plates 723 b , it is resisted by top and bottom horizontal welds 729 b and vertical weld 729 c which comprise a channel-shaped weld group configuration capable of transferring in-plane moment to an adjacent face 720 of column 715 parallel to the axis of the beam.
  • This in-plane moment transfer to the face 720 of the column 715 is similar to the in-plane moment transfer described in U.S. Pat. Nos.
  • top and bottom welds 729 b and vertical welds 729 c of the subassembly 771 having a gusset plate 723 a extending transverse to the longitudinal axis of the beam and connected to the near face 720 also resist the moment, forming a tension/compression force couple to transfer moment out-of-plane to the face of the column.
  • welds 729 b and 729 c (comprising a channel-shaped weld group configuration) connect the gusset plate 723 a to the near face 720 of column 715 and are capable of resisting applied out-of-plane moment via tension/compression force couple acting perpendicular to the near face of the column.
  • additional moment resisting capacity is provided in the case of a bi-axially applied moment, where the resolved moment vector would lie between two orthogonal beams and tend to tilt the gusset plate subassembly 771 on the column 715 along a diagonal between the longitudinal axes of the beams.
  • the vertical welds 729 c connecting the vertical edges of the gusset plates 723 b , 723 a to adjacent orthogonal faces 720 of the column 715 act together orthogonally as a vertical weld group to provide a force couple to resist the applied bi-axial moment. It will be appreciated that all of the subassemblies 771 may act in this manner to resist bi-axially applied moment, enclosing as many as all four corners of column 715 to act in concert with the aforementioned moment resistance force couples to make the column assembly 713 and a joint connection structure formed using the column assembly remarkably robust.
  • a column assembly of a ninth embodiment is generally indicated at 813 .
  • the column assembly 813 of the ninth embodiment is similar to the column assembly 713 of the eighth embodiment but includes a modification to the gusset plate assembly 821 to configure the column assembly 813 for attaching three beam assemblies.
  • each subassembly 871 hugs its two adjacent orthogonal faces 820 of the column 815 , thereby enclosing the corner of the column, and is welded to the column.
  • gusset plate assembly 821 of the ninth embodiment comprises two gusset plate subassemblies 871 a and 871 b of different construction.
  • Second subassembly 871 b comprises a first gusset plate 823 a having an open slot 843 located closer to one side of the first gusset plate, and a second gusset plate 823 b having an open slot 847 located closer to one side of the second gusset plate.
  • the second gusset plate 823 b of the second subassembly 871 b is smaller than the first gusset plate 823 a and has no holes for bolts or threaded rods.
  • the gusset plates 823 a , 823 b are attached by mating the slots 843 , 847 with each other and welding the gusset plates 823 a , 823 b together at vertical welds 829 a extending along the intersection corners between the gusset plates.
  • the assembled second gusset plate subassemblies 871 b have an unsymmetrical cross configuration. Portions of the gusset plates 823 a , 823 b that define a top section of the cross are welded to two adjacent corners of the column 815 , and portions of the gusset plates that define a bottom section of the cross extend laterally outward from the column.
  • Facing surfaces of adjacent gusset plates 823 a , 823 b define the spaces for receiving end portions of a beam for mounting a beam assembly to the column assembly 813 via the gusset plate assembly 821 .
  • the column assembly 813 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • a column assembly of a tenth embodiment is generally indicated at 913 .
  • the column assembly 913 of the tenth embodiment is similar to the column assembly 713 of the eighth embodiment but includes a modification to the gusset plate assembly 921 to configure the column assembly for attaching three beam assemblies.
  • the primary difference between the two embodiments is gusset plate assembly 921 of the tenth embodiment, in addition to the pair of gusset plate subassemblies 971 , includes a separate gusset plate 923 c (also forming part of the gusset plate assembly 921 ) that is not mated with another gusset plate.
  • Subassemblies 971 are similar to the subassemblies 771 in the eighth embodiment. As with the eighth embodiment, each subassembly 971 hugs its two adjacent orthogonal faces 920 of the column 915 , thereby enclosing the corner of the column, and is welded to the column. However, in each subassembly 971 the portion of the gusset plate 923 a overlying the face 920 of the column 915 is longer than the portions of the gusset plates 923 b (see, FIG. 60 ). The subassemblies 971 are welded to adjacent corners of the column 915 .
  • the separate gusset plate 923 c is welded to an opposite face of the column 915 by top and bottom horizontal welds 929 b , vertical welds 929 c , as well as by an internal, vertical corner flare bevel weld 929 h (see, FIG. 60A ). Facing surfaces of adjacent gusset plates 923 a , 923 a of the subassemblies 971 define a space for receiving an end portion of a beam for mounting a beam assembly to the column assembly 913 via the gusset plate assembly 921 . Further, facing surfaces of gusset plates 923 b and 923 c define spaces for receiving end portions of beams for mounting beam assemblies to the column assembly 913 .
  • the column assembly 913 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • a column assembly of an eleventh embodiment is generally indicated at 1013 .
  • the column assembly 1013 of the eleventh embodiment is similar to the column assembly 913 of the tenth embodiment but instead of a single gusset plate 923 c , column assembly 1013 includes two separate gusset plates 1023 d and 1023 e .
  • Subassemblies 1071 are identical to the subassemblies 971 in the tenth embodiment. Each of the subassemblies 1071 are welded to adjacent corners of the column 1015 , and hugs its two adjacent orthogonal faces 1020 of the column, thereby enclosing the corner of the column.
  • the separate gusset plates 1023 d , 1023 e are welded to the column using vertical welds 1029 c .
  • the corner welds 929 e used in the tenth embodiment, are not used in the eleventh embodiment.
  • Facing surfaces of adjacent gusset plates 1023 a , 1023 a of the subassemblies 1071 define a space for receiving an end portion of a beam for mounting a beam assembly to the column assembly 1013 via the gusset plate assembly 1021 .
  • facing surfaces of gusset plates 1023 b and 1023 d , and facing surfaces of 1023 b and 1023 e defines spaces for receiving end portions of beams for mounting beam assemblies to the column assembly 1013 .
  • the column assembly 1013 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • a column assembly of a twelfth embodiment is generally indicated at 1113 .
  • the column assembly 1113 of the twelfth embodiment is similar to the column assembly 813 of the ninth embodiment but includes a modification to the gusset plate assembly 821 to configure the column assembly for attaching two beam assemblies.
  • a first subassembly 1171 a is identical to the subassemblies 771 in the eighth embodiment.
  • Second subassemblies 1171 b are identical to the second subassemblies 871 b of the ninth embodiment.
  • Facing surfaces of adjacent gusset plates 1123 a , 1123 b , and adjacent gusset plates 1123 a , 1123 a define spaces for receiving end portions of beams for mounting beam assemblies to the column assembly 1113 via the gusset plate assembly 1121 .
  • the column assembly 1113 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • a column assembly of a thirteenth embodiment is generally indicated at 1213 .
  • the column assembly 1213 of the thirteenth embodiment is similar to the column assembly 1113 of the twelfth embodiment but instead of having the two second subassemblies 1171 b , column assembly 1213 includes two single gusset plates 1223 d and 1223 e .
  • Subassembly 1271 is similar to the subassemblies 771 in the eighth embodiment, but the portions of the gusset plates 1223 a , 1223 b adjacent the faces 1220 of the column 1215 extending over more than half the widths of the faces..
  • the single gusset plates 1223 d , 1223 e are attached to the column 1215 using vertical and horizontal welds 1229 b , 1229 c and corner flare bevel welds 1229 h . Facing surfaces of adjacent gusset plates 1223 a and 1123 d , and facing surfaces of gusset plates 1223 b and 1223 e define the spaces for receiving end portions of beams for mounting beam assemblies to the column assembly 1213 via the gusset plate assembly 1221 .
  • the column assembly 1213 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • Bi-axial, moment resisting beam-to-column joint connection structures and column assemblies that are constructed according to the principles of the present invention provide numerous unique features, benefits and advantages. Reference is made to the figures illustrating some of the embodiments to which the advantages and benefits apply.

Abstract

A prefabricated column assembly includes a hollow tubular column having a longitudinal axis. A gusset plate assembly includes a plurality of gusset plates connected to the column and extending laterally outward from the column in planes generally parallel to the longitudinal axis of the column. A first pair of the gusset plates extends laterally outward from the column along a first axis and defines a space for receiving an end portion of a first beam for mounting the first beam on the first pair of gusset plates. A second pair of the gusset plates extends laterally outward from the column along a second axis that is nonparallel and non-coincident with the first axis. The second pair of gusset plates defines a space for receiving an end portion of a second beam for mounting the second beam on the second pair of gusset plates to provide a bi-axial joint connection.

Description

    FIELD OF THE INVENTION
  • The present invention generally relates to a moment resisting, bi-axial beam-to-column joint connection, and more particular to a column assembly and gusset plate assembly for a bi-axial beam-to-column joint connection.
  • BACKGROUND OF THE INVENTION
  • It has been found in a moment-resisting building having a structural steel framework, that most of the energy of an earthquake, or other extreme loading condition, is absorbed and dissipated, in or near the beam-to-column joints of the building.
  • It is desirable to achieve greater strength, ductility and joint rotational capacity in beam-to-column connections in order to make buildings less vulnerable to disastrous events. Greater connection strength, ductility and joint rotational capacity are particularly desirable in resisting sizeable moments in both the lateral and the vertical plane. That is, the beam-to-column moment-resisting connections in a steel frame building can be subjected to large rotational demands in the vertical plane due to interstory lateral building drift. Engineering analysis, design and full-scale specimen testing have determined that prior steel frame connection techniques can be substantially improved by strengthening the beam-to-column connection in a way which better resists and withstands the sizeable beam-to-column, joint rotations which are placed upon the beam and the column. That is, the beam-to-column connection must be a strong and ductile, moment-resisting connection.
  • Hollow Structural Section (HSS) columns are structurally efficient members to use in a variety of building design applications (both structural and architectural), including moment frames. However traditional moment connections types that connect a wide flange (‘H’ section) beam to an HSS column involve significantly different design considerations than does connecting a wide flange beam to a wide flange column. During loading conditions, the moments in the wide flange beams are resolved into concentrated forces at the beam flanges that must be transferred into the column. The main difference between an HSS and wide flange column is how the forces from the beam flanges are transferred into the column webs to be resisted as shear. In a wide flange column, the web (and thus the stiffness) is located at the center of the column flange. In an HSS column, the forces applied to the column face must be transferred to the sidewalls, which act as the webs of the column. Due to the fact that HSS walls are generally thinner than flanges on a wide flange column, the thickness of the HSS column wall becomes a critical consideration for the strength and stiffness of a moment connection between an HSS column and a wide flange beam. Conventional methods of connecting an HHS column to a wide flange beam must rely on technically uncertain and costly means to transfer significant moment forces to the webs of HSS columns. These current methods are typically used in uniaxial moment frame applications. One such method is directly welding flanges of the wide flange beams to the thin wall flange faces of the HSS column. This method is self-limiting when the applied moment approaches the full flexural strength of the beam because of the inherent flexibility of the thin wall thickness of the HSS flange. Therefore, the direct welding technique has limited capacity to transfer applied moment forces through out-of-plane bending and shear to the connecting webs of the HSS column.
  • Another conventional method is through-plate connections wherein the HSS column is cut in two places at each floor level to allow through plates attached to the top and bottom flanges of the wide flange beam to pass through the column. These through plates are welded along the full perimeter of the cut sections of the HSS column on both top and bottom faces of each through plate. These type of connections have proven to be both costly to fabricate and uncertain in their performance when subjected to violent earthquakes. For example, the connection may be inherently susceptible to out-of-plane punching shear failures in the through-plate due to cyclic tensile forces in the column.
  • Exterior diaphragm plate connections (also known as cut-out plates) are similar to the through-plate connections in that they use flange plates attached to the top and bottom flanges of the beam to transfer the moments. However, in the exterior diaphragm plate connection the HSS column remains continuous and the top and bottom flange plates are made wider than the width of the HSS column to allow for cut openings having a perimeter that surrounds and is attached to the full perimeter of the HSS column. This connection is inherently difficult to fabricate and erect.
  • Interior diaphragm plate connections consist of shop welded plates that are cut to fit along the inside perimeter of the HSS column, therein stiffening the HSS thin wall flanges and providing a means to transfer beam flange forces to the sidewall webs of the HSS column. Top and bottom flanges of wide flange beam are directly welded to the thin wall flange faces of the column. The fabrication of this connection type is difficult because of precise fit up issues and access for welding of interior diaphragm plates to inside faces of the HSS column. Performance of this connection type is correspondingly uncertain.
  • SUMMARY
  • In one aspect, a prefabricated column assembly generally comprises a hollow tubular column having a longitudinal axis. A gusset plate assembly comprises a plurality of gusset plates connected to the column and extending laterally outward from the column in planes generally parallel to the longitudinal axis of the column. A first pair of the gusset plates extends laterally outward from the column along a first axis and defines a space for receiving an end portion of a first beam for mounting the first beam on the first pair of gusset plates. A second pair of the gusset plates extends laterally outward from the column along a second axis that is nonparallel and non-coincident with the first axis. The first and second pairs of gusset plates each intersect a single plane perpendicular to the longitudinal axis of the column. The second pair of gusset plates defines a space for receiving an end portion of a second beam for mounting the second beam on the second pair of gusset plates to provide a bi-axial joint connection.
  • In another aspect, a gusset plate assembly for connection to a hollow tubular column to attach a beam of a building to the column generally comprises at least two metal gusset plates sized for transferring the weight of the beam of the building to the column. The gusset plates are connected together in a fixed configuration with respect to each other. Each gusset plate includes at least one slot mated with a slot of another of the gusset plates thereby interconnecting the gusset plates and forming the gusset plate assembly.
  • In still another aspect, a method of assembling a prefabricated column assembly generally comprises providing a hollow tubular column. A gusset plate assembly including a plurality of gusset plates is assembled by attaching at least two of the gusset plates together. The gusset plate assembly is secured to the hollow tubular column to form the column assembly. A first pair of the gusset plates extends laterally outward from the column along a first axis and defines a space for receiving an end portion of a first beam for mounting the first beam on the first pair of gusset plates. A second pair of the gusset plates extends laterally outward from the column along a second axis. The second pair of gusset plates defines a space for receiving an end portion of a second beam for mounting the second beam on the second pair of gusset plates thereby providing for bi-axial joint connection.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a diagrammatic perspective of a building framework;
  • FIG. 1A is a fragmentary perspective of a four-sided bi-axial beam-to-column joint connection structure including a column assembly of a first embodiment;
  • FIG. 2 is a perspective illustrating location of a beam assembly on a pair of column assemblies to construct the bi-axial beam-to-column joint connection structure of FIG. 1A;
  • FIG. 3 is the bi-axial beam-to-column joint connection structure of FIG. 1A with bolts removed;
  • FIG. 4 is a fragmentary perspective of a column assembly of the bi-axial beam-to-column joint connection structure of FIG. 1A;
  • FIG. 5 is the column assembly of FIG. 4 with angle irons removed and portions of a gusset plate assembly shown in phantom to reveal details of connection to the gusset plates to the column;
  • FIG. 6 is a top view of the column assembly of FIG. 5;
  • FIG. 7 is a front view of the column assembly of FIG. 5;
  • FIG. 8 is a horizontal section of the column assembly of FIG. 5;
  • FIG. 9 is a perspective of a gusset plate assembly of the column assembly of FIG. 5;
  • FIG. 10 is a top view of the gusset plate assembly of FIG. 9;
  • FIG. 11 is an enlarged fragmentary top view of a portion of FIG. 10;
  • FIG. 12 is a front view of a first gusset plate of the gusset plate assembly of FIG. 9;
  • FIG. 13 is a front view of a second gusset plate of the gusset plate assembly of FIG. 9;
  • FIG. 14 is a perspective illustrating interconnection of the first gusset plate to the second gusset plate;
  • FIG. 15 is a perspective of the gusset plate assembly of FIG. 9 prior to welding;
  • FIG. 16 is the bi-axial beam-to-column joint connection structure of FIG. 1A with cement placed in an interior of a column of the structure;
  • FIG. 17 is the bi-axial beam-to-column joint connection structure of FIG. 1A showing alternative connecting members for attaching a column assembly of the structure to a beam assembly of the structure;
  • FIG. 18 is a fragmentary perspective of a four-sided bi-axial beam-to-column joint connection structure including a column assembly of a second embodiment;
  • FIG. 19 is the bi-axial beam-to-column joint connection structure of FIG. 18 with cement placed in an interior of a column of the column assembly;
  • FIG. 20 is a fragmentary perspective of a column assembly of a third embodiment for use in a bi-axial beam-to-column joint connection structure;
  • FIG. 21 is a horizontal section of the column assembly of FIG. 20;
  • FIG. 22 is a front view of a first gusset plate of a gusset plate assembly of the column assembly of FIG. 20;
  • FIG. 23 is a front view of a second gusset plate of the gusset plate assembly of the column assembly of FIG. 20;
  • FIG. 24 is a fragmentary perspective of a column assembly of a fourth embodiment for use in a bi-axial beam-to-column joint connection structure;
  • FIG. 25 is a perspective of a gusset plate assembly of the column assembly of FIG. 24;
  • FIG. 26 is a front view of a first gusset plate of the gusset plate assembly of FIG. 25;
  • FIG. 27 is a front view of a second gusset plate of the gusset plate assembly of FIG. 25;
  • FIG. 28 is a fragmentary perspective of a column assembly of a fifth embodiment for use in a bi-axial beam-to-column joint connection structure;
  • FIG. 29 is the column assembly of FIG. 28 showing portions of gusset plates of the assembly in phantom;
  • FIG. 30 is an exploded view of the column assembly of FIG. 29;
  • FIG. 31 is a fragmentary perspective of a column of the column assembly of FIG. 28;
  • FIG. 32 is a perspective of a gusset plate assembly of the column assembly of FIG. 28;
  • FIG. 33 is a front view of a first gusset plate of the gusset plate assembly of FIG. 32;
  • FIG. 34 is a front view of a second gusset plate of the gusset plate assembly of FIG. 32;
  • FIG. 35 is a fragmentary perspective of a bi-axial beam-to-column joint connection structure including a column assembly of a sixth embodiment;
  • FIG. 36 is a gusset plate assembly of the structure of FIG. 35;
  • FIG. 37 is a front view of a first gusset plate of the gusset plate assembly of FIG. 36;
  • FIG. 38 is a front view of a second gusset plate of the gusset plate assembly of FIG. 36;
  • FIG. 39 is a front view of a third gusset plate of the gusset plate assembly of FIG. 36;
  • FIG. 40 is a front view of a fourth gusset plate of the gusset plate assembly of FIG. 36;
  • FIG. 41 is a fragmentary perspective of a bi-axial beam-to-column joint connection structure including a column assembly of a seventh embodiment;
  • FIG. 42 is a gusset plate assembly of the structure of FIG. 41;
  • FIG. 43 is a front view of a first gusset plate of the gusset plate assembly of FIG. 42;
  • FIG. 44 is a front view of a second gusset plate of the gusset plate assembly of FIG. 42;
  • FIG. 45 is a fragmentary perspective of a column assembly of an eighth embodiment for use in a bi-axial beam-to-column joint connection structure;
  • FIG. 46 is a top view of the column assembly of FIG. 45;
  • FIG. 47 is a front view of a first gusset plate of the column assembly of FIG. 45;
  • FIG. 48 is a front view of a second gusset plate of the column assembly of FIG. 45;
  • FIG. 49 is a perspective of a gusset plate subassembly of the column assembly of FIG. 45
  • FIG. 50 is an illustration showing how to attach the first gusset plate to the second gusset plate to construct the gusset plate subassembly of FIG. 49;
  • FIG. 51 is a top view of the gusset plate subassembly of FIG. 49;
  • FIG. 52 is a fragmentary front perspective of a column assembly of a ninth embodiment for use in a bi-axial beam-to-column joint connection structure;
  • FIG. 53 is a rear perspective of the column assembly of FIG. 52;
  • FIG. 54 is a top view of the column assembly of FIG. 52;
  • FIG. 55 is a perspective of a gusset plate subassembly;
  • FIG. 56 is an illustration showing how to attach a first gusset plate to a second gusset plate to construct the gusset plate subassembly of FIG. 55;
  • FIG. 57 is a top view of the gusset plate subassembly of FIG. 55;
  • FIG. 58 is a fragmentary front perspective of a column assembly of a tenth embodiment for use in a bi-axial beam-to-column joint connection structure;
  • FIG. 59 is a rear perspective of the column assembly of FIG. 58;
  • FIG. 60 is a top view of the column assembly of FIG. 58;
  • FIG. 60A is an enlarged fragmentary top view of a portion of FIG. 60;
  • FIG. 61 is a fragmentary front perspective of a column assembly of an eleventh embodiment for use in a bi-axial beam-to-column joint connection structure;
  • FIG. 62 is a rear perspective of the column assembly of FIG. 61;
  • FIG. 63 is a top view of the column assembly of FIG. 61;
  • FIG. 64 is a fragmentary front perspective of a column assembly of a twelfth embodiment for use in a bi-axial beam-to-column joint connection structure;
  • FIG. 65 is a rear perspective of the column assembly of FIG. 64;
  • FIG. 66 is a top view of the column assembly of FIG. 64;
  • FIG. 67 is a fragmentary front perspective of a column assembly of a thirteenth embodiment for use in a bi-axial beam-to-column joint connection structure;
  • FIG. 68 is a rear perspective of the column assembly of FIG. 67;
  • FIG. 69 is a top view of the column assembly of FIG. 67; and
  • FIG. 70 is an enlarged fragmentary elevation of a portion of FIG. 69.
  • Corresponding reference characters indicate corresponding parts throughout the drawings.
  • DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • Referring to FIGS. 1-15, a bi-axial beam-to-column moment-resisting joint connection structure including a column assembly of a first embodiment is generally indicated at 11. The joint connection structure may be used in the construction of a building framework 1 (see, FIG. 1). In the illustrated embodiment, the joint connection structure joins a column assembly 13 including a column 15 to a plurality of full-length beam assemblies 17 each including a full-length beam 19. A full-length beam is a beam that has a length sufficient to extend substantially the full-length between adjacent columns in a structure (see, FIG. 2). Thus, a stub and link beam assembly as shown in FIGS. 5 and 16 of U.S. Pat. No. 6,138,427, herein incorporated by reference, is not a full-length beam. It will be understood that the beams 19 in FIG. 1A have been broken away, but are full-length beams. In the illustrated embodiment, the joint connection structure has a 4-sided/4-beam configuration whereby four full-length beam assemblies 17 are configured to be attached to the column assembly 13. In the illustrated embodiment, column 15 is an HSS tube section structure having a rectangular (broadly, “polygonal”) cross section defined by four column faces 20. The beams 19 may have any suitable configuration, such as an I-beam, H-beam configuration, or hollow rectangular shape (built-up box member or HSS tube section). In the illustrated embodiments, the column 15 comprises an enclosed rectangular wall including opposing planar wall members.
  • The global moment-resisting frame design configuration of the building framework 1, can, as needed, provide a distributed moment-resisting space frame wherein all or most beam-to-column connections are moment-resisting in each principal direction of the building. This is in contrast to conventional building frameworks which may use fewer discretely located uniaxial moment frames throughout a building foot print. Therefore, the framework 1 maximizes structural redundancy in the lateral load resisting system of a multi-story building to increase resistance to progressive collapse scenarios when subjected to, for example, terrorist bomb blast and other catastrophic load environments, while minimizing the number of required moment-resisting joints to be constructed which in turn reduces construction costs.
  • Referring to FIGS. 5-9, 12 and 13, the column assembly 13 includes a collar like gusset plate assembly 21 for attaching the column assembly to the beam assemblies 17. The gusset plate assembly 21 comprises a plurality of gusset plates 23 connected to the column 15 and extending laterally outward from the column. The gusset plates 23 extend within planes generally parallel to a longitudinal axis of the column 15. A first pair of spaced apart parallel, vertically and horizontally extending gusset plates 23 a sandwich the column 15 and co-axially extending beams 19. The first pair of gusset plates 23 a extends laterally outward from the column 15 in opposite directions along a first axis and defines spaces for receiving end portions of beams 19 for mounting respective beam assemblies 17 to the column assembly 13 via the gusset plate assembly 21. A second pair of spaced apart parallel, vertically and horizontally extending gusset plates 23 b sandwich the column 15 and co-axially extending beams 19. The second pair of gusset plates 23 b extends laterally outward from the column 15 in opposite directions along a second axis extending orthogonally to the first axis. The second pair of gusset plates 23 b defines spaces for receiving end portions of beams 19 for mounting respective beam assemblies 17 to the column assembly 13 via the gusset plate assembly 21. The first and second pairs of gusset plates each intersect a single plane perpendicular to the longitudinal axis of the column 15. In the illustrated embodiment, the gusset plate assembly 21 is constructed and arranged so that four, co-planar beams 19 are connected to the column 15.
  • Each of the first pair of gusset plates 23 a includes a closed interior slot 41 (broadly, “elongate opening”) having an edge defining a closed loop encompassing the slot. The gusset plates 23 a each also include a pair of open slots 43 flanking the interior slot 41 (FIG. 12). The open slots 43 extend from a bottom of the gusset plates 23 to an interior of the gusset plates. Each of the second pair of gusset plates 23 b includes a closed interior slot 45 (broadly, “elongate opening”) of substantially the same construction as the slot 41, and a pair of open slots 47 flanking the interior slot (FIG. 13). The open slots 47 extend from a top of the gusset plates 23 to an interior of the gusset plates. The slots 43, 47 of the first and second pairs of gusset plates 23 a, 23 b allow the plates to be assembled as schematically illustrated in FIG. 14. The open slots 43 of the first pair of gusset plates 23 a are configured to mate with the open slots 47 of the second pair of gusset plates 23 b such that portions of the first pair of gusset plates 23 a are received in the open slots of the second pair of gusset plates, and portions of the second pair of gusset plates are received in the open slots of the first pair of gusset plates. In this way, the gusset plates 23 a, 23 b intersect and extend through each other. In the illustrated embodiment, the first pair of gusset plates 23 a are attached to the second pair of gusset plates 23 b such that top and bottom edges of the first pair of gusset plates are generally flush with respective top and bottom edges of the second pair of gusset plates 23 b.
  • The interconnected pairs of gusset plates 23 a, 23 b form a collar like gusset plate assembly 21 having the appearance of a 3-dimensional pound sign defining a column passage 51, as shown in FIG. 15. In this fashion, intersecting gusset plates 23 a, 23 b extend orthogonally with respect to each other. Referring to FIG. 9, the gusset plates 23 a, 23 b are welded together along vertical fillet welds 29 a extending along the intersection corners between the gusset plates, which completes the gusset plate assembly 21. Horizontal fillet welds 29 b (broadly, “first gusset plate-to-column welds”) at top and bottom edges of the gusset plates 23 a, 23 b extend transverse to the longitudinal axis of the column 15 and attach the gusset plate assembly 21 to the column. Additionally, fillet welds 29 c (broadly, “second gusset plate-to-column welds”) in the closed slots 41, 45 in the gusset plates 23 a, 23 b attach the gusset plate assembly 21 to the column 15 (FIG. 7). In one embodiment, double parallel vertical welds extend within and along a length of each slot 41, 45 and connect at rounded ends of the slot, forming a continuous weld around the perimeter of the slots. The majority of the length of each of the parallel welds 29 c extending along the longitudinal axis of the column. The slots 41, 45 are positioned generally at a center of the column faces 20 and thus the welds 29 c within the slots 41, 45 provide additional structure for enhancing the moment resisting capabilities of the structure.
  • Referring to FIGS. 1A-3, horizontal cover plates 27 are disposed on top of and attached to an end of the beams 19. The cover plates 27 have a width that is greater than a width of the respective beam 19 and a horizontal spacing of the associated gusset plates 23. The configuration of the cover plates 27 allows the beams 19 to be lowered between the gusset plates 23 so that each end of the full-length beam assembly 17 is initially supported in bearing between the cover plate 27 and the top edge of the horizontal extension of the gusset plates 23 of the column assembly 13. In other words, the beams 19 are self-shoring. In the illustrated embodiment, the cover plates 27 may rest on a top face of a projecting horizontal leg of upper angle irons 31 attached to the gusset plates 23. The cover plates 27 extend along the length of their respective beams 19 and terminate just beyond the ends of the gusset plates 23. The cover plates 27 have an oblong radiused slot opening 30 extending along the length of the cover plate. It will be understood that the cover plates 27 may have other widths, configurations and slot-type oblong openings. For example, a cover plate (not shown) may have no slot opening 30. Vertical shear plates 32 are welded at 29 d to the web of the beam 17 and have holes 26 a for connection to the gusset plates 23 a, 23 b.
  • The column assembly 13 is bolted to the beam assemblies 17 by bolts 26 extending through aligned bolt holes 26A in the assemblies. In particular, bolts 26 are used to attach the upper angle irons 31 to the cover plates 27, the lower angle irons 33 to the gusset plates 23, and the vertical shear plates 32 to the gusset plates, all through aligned bolt holes 26 a in the respective components.
  • The joint connection structure 11 outlined above is a bi-axial beam-to-column type structure. The structure 11 provides for beam assembly connection along four sides of hollow tubular column 15. Most preferably, each of the components of the joint connection structure 11, as well as the beam 19 and column 15, are made of structural steel. Some of the components of the joint connection structure 11 are united by welding and some by bolting. The welding may be initially performed at a fabrication shop. The bolting may be performed at the construction site, which is the preferred option in many regions of the world. However, it will be understood that the beam assembly 17 can be connected to the column assembly 13 in other suitable ways such as by welding, or in an all-bearing connection.
  • Referring to FIGS. 4, 5, and 12-16, the column assembly 13 may be fabricated at a fabrication shop and later transported to the construction site. To fabricate the column assembly 13, the gusset plates 23 are mated with each other via the slots 43, 47 (FIGS. 14 and 15). The mated gusset plates 23 are welded to each other to form the rigid gusset plate assembly 21 (FIG. 9). The gusset plate assembly is received on the column 15 by inserting the column in the column passage 51 of the gusset plate assembly 21. During construction of the column assembly 13, the column 15 can be turned on its side to facilitate the insertion of the column through the column passage 51 of the gusset plate assembly 21, and to facilitate welding of the gusset plate assembly to the faces 20 of the column. The gusset plate assembly 21 is then located on the column at a selected position, such as at a predetermined floor location, and welded at 29 b or otherwise attached to the faces 20 of the walls of the column 15. In the illustrated embodiment, the gusset plate assembly is welded to the column 15 along horizontal welds 29 b located at the top and bottom of the gusset plates 23, and along welds 29 c within slots 41, 45. The upper angle irons 31 are welded at 29 f or otherwise attached to the gusset plates 23. Thus, at the shop, the column assembly 13 can be constructed exclusively by welds. In a preferred embodiment, the welds 29 are fillet welds. Fillet welds do not require ultra-sonic inspection which results in reduced shop fabrication costs. However, the welds could be groove welds or stitch welds. Other welds and other forms of connection are also within the scope of the present disclosure.
  • Referring to FIG. 2, the full-length beam assembly 17 may also be fabricated at a fabrication shop prior to being transported to the construction site. To fabricate the full-length beam assembly 17, the cover plates 27 are welded at 29 e or otherwise attached to the upper flange of the beam. Welding (such as by weld 29 e) is carried out between the periphery of the slot opening 30 and the top flange of the beam 19, and along the top flange tips of the beam on the underside of the cover plate (not shown). The lower angle irons 33 are welded at 29 g or otherwise attached to the bottom flange of the beam 19 and project laterally outwardly from the beam. Any welds needed to form the full-length beam assembly 17 can be carried out at the shop. The shop permits use of fixtures and precision manufacturing techniques to form the collar like gusset plate assembly 21, the column assemblies 13 and the beam assemblies 17 in a highly accurate manner. In a preferred embodiment, the welds 29 are fillet welds. Other welds and other forms of connection are also within the scope of the present disclosure. The cover plate 27 and lower angle irons 33 may have other configurations than those illustrated in the current embodiment.
  • At the construction site, the column assembly 13 is joined to the full-length beam assemblies 17. The column assembly 13 is first erected in a vertical orientation and the ends of the full-length beam assemblies 17 are positioned horizontally and adjacent to the column assembly, so that each end of the beams is over a respective pair of gusset plates 23. The full-length beam assemblies 17 are then lowered between the gusset plates 23 until the bottom surfaces of the cover plates 27 engage the top surfaces of the upper angle irons 31. This engagement initially locates and supports the full-length beam assemblies 17 on the column assembly 13 to facilitate shoring during erection. To fixedly secure the assemblies 13, 17 bolts 26 are used to attach the upper angle irons 31 to the cover plates 27 and the lower angle irons 33 to the gusset plates 23 through aligned bolt holes 26A in the respective components. Thus, at the construction site, the bi-axial beam-to-column moment-resisting joint connection structure 11, which includes full-length beam assemblies 17, is completed exclusively through bolted connections. In the field, the joint connection structure 11 is constructed without the use of welds. The cover plates 27 are designed to transfer most, if not all, of the vertical shear load from the full-length beams 19, which may eliminate the need for vertical shear plates or vertical shear elements, while also reducing material and construction costs. This beam-to-column all field-bolted joint connection structure 11 employing a hollow tubular column 15 and gusset plates 23 was not appreciated in conventional joint connection structures using hollow tubular columns. It is envisioned, however, that the column assembly 13 can be welded to the beam assemblies 17 without departing from the scope of the disclosure.
  • The column assembly 13 beneficially distributes the resistance to moments applied by the beams 19 to the column 15 to all four faces 20 of the column, making it well-suited to resist bi-axial loads applied by the beams to the column, particularly in severe load events. This is made possible by the use of welded interlocked orthogonal gusset plates forming the rigid gusset plate assembly 21 that hug the sidewalls and enclose the corners of the column 15. It will be understood that a moment applied by any one or any combination of the four beams will be transmitted by the rigid gusset plate assembly 21 to locations all around the column 15. For example, when a moment is applied on one axis (e.g., as from one beam 19 connected to gusset plates 23 b), it is resisted through connections of the gusset plates 23 b to the faces 20 of the column 15 parallel to the axis of the beam in a manner similar to gusset plate connections described in U.S. Pat. Nos. 6,138,427, 7,178,296, 8,146,322, and 9,091,065. The connection to the parallel faces 20 of the column 15 provides a force couple (principally acting in shear along the length of the welds 29 b) formed by the top and bottom horizontal welds 29 b (comprising a horizontal weld group) connecting the gusset plates 23 b to their respective adjacent faces 20 of column 15 to resist applied moment. In addition, top and bottom horizontal welds 29 b of the near gusset plate 23 a facing the end of the beam comprise another horizontal weld group forming a resisting tension/compression force couple acting perpendicular to the near face 20 of the column 15 to resist applied moment. The rigid gusset plate assembly 21 also transmits the moment to the opposite face 20 of the column 15 through its connection to the far gusset plate 23 a, by providing a redundant resisting tension/compression force couple (acting perpendicular to the opposite face 20) formed by the top and bottom horizontal welds 29 b (comprising yet another horizontal weld group) connecting the far gusset plate 23 a to the opposite face 20 to resist the applied moment.
  • In addition to the foregoing moment resisting features of the column assembly 13, the column assembly is configured to provide further moment resistance unique to bi-axial moments. It can be understood that if moments are being applied to the joint column assembly from beams 19 which are orthogonally arranged with respect to each other, the resolved moment vector would not lie in a vertical plane including the longitudinal axis of either beam. Instead, the moment vector would lie in a vertical plane somewhere in between orthogonal beams 19, and would therefore urge the gusset plate assembly 21 to tilt on the column along a diagonal between the longitudinal axes of said orthogonal beams 19. In this case, adjacent, near orthogonal faces 20 of the column 15 provide cooperative moment resistance. More specifically, the welds 29 c in the vertical slots 41, 45 in the gusset plates 23 a, 23 b, which are located at the mid-depth of the column 15 on the adjacent faces 20 orthogonal to each other, provide additional moment-resisting capacity by coupling the same vertical slot welds 29 c located in their respective slots 41, 45, which act together orthogonally as a vertical weld group to provide a force couple to resist the applied bi-axial moment. The rigid gusset plate assembly 21 also transfers the bi-axial moments to the far orthogonal faces 20 of the column 15, which comprises another vertical weld group to provide additional cooperative moment resistance. Both the near orthogonal faces 20 and far orthogonal faces act in concert with the moment resistance force couples described in the preceding paragraph to make the column assemblies 13 and joint connection structures 11 formed using the column assemblies remarkably robust.
  • Concurrently, load transfer redundancy can also be provided under severe load conditions by a ‘push/pull’ effect of opposite gusset plates 23 a (facing perpendicular to the longitudinal axis of the beam) bearing against the same opposite faces 20 of the column 15 under the applied moment. Thus, opposing faces 20 of the column 15 cooperate to resist moment (under extreme load conditions) from one beam 19, in addition to resistance provided by the welded connection of the gusset plates 23 b to the orthogonal side faces 20 of the column 15, thereby providing redundancy in resisting applied moment. It will be understood that the column assembly 13 is configured to resist applied moment in the way just described for moment applied for only one beam 19, for as many as all the four beams 19 in the joint connection structure 11 made possible by bi-axial interaction of all aforementioned load transfer mechanisms.
  • Beam-to-column moment-resisting joint connection structures 11 including a column assembly 13 having a hollow tubular column 15 and the gusset plate assembly 21 described above have been shown to perform extraordinarily well during full-scale simulated earthquake testing. The testing included two uniaxial moment frame test specimens configured with axially-loaded thin-walled HSS columns that were moment connected to wide flange beams using all field-bolted side plate moment connection technology such as disclosed in U.S. Pat. No. 9,091,065, incorporated herein by reference. The HSS columns were pre-loaded axially in compression to 40% of their nominal yield strength, since axial load can have a dominant role on local buckling of HSS shapes. The applied axial load of 40% was selected based on a suite of parametric studies which concluded that this level of axial compression in steel moment frame columns envelopes approximately 95% of typical multi-story buildings. An 18″ square HSS column flange width-to-wall thickness ratio (bf/tf) for one of two test specimens was set at 21, as compared to the maximum bf/tf limit of 13.2 allowed by AISC 358 Seismic Provisions, to ascertain if local buckling will occur using the beam-to-column side plate moment connection technology described herein.
  • The side plate test specimen consisting of a square 18″ HSS column (HSS 18×18×¾) having a bf/tf ratio of 21, pre-loaded with an axial compression load of 40% of its nominal yield strength, and connected to a 24″ deep wide flange beam (W24×84), was cyclically loaded to ultimate beam failure with no indications of column distress. Thus, contrary to the industry perception that HSS type columns could not withstand seismic loading, the thin-walled HSS column assembly demonstrated extraordinary and robust cyclic performance when subjected to severe simulated earthquake loading. The HSS column assembly achieved two full cycles of joint rotation at 6% radians of steel moment frame drift, compared to the industry prequalification requirement (AISC 358 Seismic Provisions) of only one full cycle at 4% radians of steel moment frame drift. Therefore, the HSS column assembly proved not only to be adequate for withstanding seismic loading, the assembly exceeded current industry standards.
  • Further, the unique geometry and stiffness of this all shop fillet-welded and all field-bolted, bi-axial, beam-to-column moment-resisting joint connection structure 11 maximizes its performance and the broadness of its design applications, including both extreme wind and moderate-to-severe seismic conditions. In particular, the all field-bolted joint connection structure 11 preserves the physical separation (or gap) between the end of a full-length beam 19 and the face of the column 15 made possible by the use of vertically and horizontally extended parallel gusset plates 23 that sandwich the column and the beam similar to prior designs which feature an all field fillet-welded joint connection structure; thus reducing the uncertainty of bending moment load transfer between a rigidly attached steel moment frame beam and column used in the past.
  • Further, by including the vertically and horizontally extending parallel gusset plates 23 that sandwich both the columns 15 and the beams 19, this current bi-axial application of an all field-bolted joint connection structure 11 preserves the advantage of increased beam-to-column joint stiffness, with a corresponding increase in overall steel moment frame stiffness, which results in smaller beam sizes when the building design is controlled by lateral story drift (not member strength), and hence reduced material costs. When the building design is controlled by member strength (not lateral story drift), this bi-axial all field-bolted joint connection structure 11 also reduces the beam size and the column size, and hence material quantities and cost, because its connection geometry has no net section reduction in either the beam or the column (i.e., no bolt holes through either the beam or column), thereby maintaining the full strength of the beam and column.
  • In one aspect of the present disclosure, full-length beams are connected to gusset plates by bolts so that the full-length beam and gusset plates are substantially free of welded connection. It will be understood that welding the full-length beam assemblies 17 to the column assembly 13 is within the scope of that aspect of the disclosure.
  • Referring to FIG. 16, the bi-axial beam-to-column moment-resisting joint connection structure 11 is shown with column 15 filled with concrete C. Even greater load capacity and ductility can be provided, when the column 15 is filled with concrete. For example, additional ductile load carrying capacity is achieved through confining the concrete by the surrounding column section. This provides a closed jacket of steel to preclude bursting of hardened concrete when subjected to heavy axial compression. Further, the concrete provides an inherent resistance to the possibility of out-of-plane buckling of the thin side walls of the column 15.
  • Referring to FIG. 17, the bi-axial beam-to-column moment-resisting joint connection structure 11 is shown with upper angle irons 28 instead of cover plates 27. The angle irons 28 are in the illustrated embodiment welded to the beams 19 prior to being shipped to the construction site.
  • Referring to FIG. 18, a bi-axial beam-to-column moment-resisting joint connection structure of a second embodiment is generally indicated at 111. The joint connection structure of the second embodiment is substantially identical to the structure 11 of the first embodiment except HSS column 15 is replaced with a built-up box column 115. Parts of the joint connection structure 111 of the second embodiment corresponding to those of the joint connection structure 11 of the first embodiment are given the same reference numeral plus “100”. Hollow steel built-up box section columns are typically used in the design of high rise buildings, specialty structures, and residential towers. Referring to FIG. 19, the bi-axial beam-to-column moment-resisting joint connection structure 111 is shown with built-up box column 115 filled with concrete C.
  • Referring to FIGS. 20-23, a column assembly of a third embodiment is generally indicated at 213. The column assembly 213 of the third embodiment is substantially identical to the column assembly 13 of the first embodiment. Parts of the column assembly 213 of the third embodiment corresponding to those of the column assembly 13 of the first embodiment will be given the same reference numeral plus “200”. This numbering convention is repeated in subsequent embodiments. The only differences between the column assembly 213 of the third embodiment and the column assembly 13 of the first embodiment is the gusset plates 223 a, 223 b of the gusset plate assembly 221 of the third embodiment each have a narrow closed slots 241, 245 extending vertically along the gusset plates. Further, plug welds 229 c fill the narrow closed slots 241, 245. In the illustrated embodiment, the plug welds 229 c comprise square groove slot welds that extend along and fill the slots 241, 245 to provide proportionally reduced moment-resisting strength as compared to the fillet welds 29 c in the slots 41, 45 in the first embodiment. The method of assembling the gusset plate assembly 221 is identical to the method of assembling the gusset plate assembly 21 of the first embodiment, and the method of constructing the column assembly 213 is otherwise identical to the method of constructing the column assembly 13 of the first embodiment. Further the column assembly 213 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • Referring to FIGS. 24-27, a column assembly of a fourth embodiment is generally indicated at 313. The column assembly 313 of the fourth embodiment is substantially identical to the column assembly 13 of the first and third embodiments. The only difference between the two embodiments is the removal of the closed slots 41, 45 in the gusset plates. The method of assembling the gusset plate assembly 321 is identical to the method of assembling the gusset plate assembly 21 of the first embodiment, and the method of constructing the column assembly 313 is otherwise identical to the method of constructing column assembly 13 of the first embodiment. The primary difference being that the gusset plate assembly 313 is not welded to the column 315 within vertical slots in the gusset plates 323. Further, the column assembly 313 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • Referring to FIGS. 28-34, a column assembly of a fifth embodiment is generally indicated at 413. The column assembly 413 of the fifth embodiment is similar to the column assembly 313 of the fourth embodiment. The primary difference between the two embodiments is gusset plate assembly 421 is attached to column 415 by a threaded through-rod connection, instead of being welded to the column. In particular, threaded rods 461 extend through aligned rod holes 461A in the gusset plates 423 and the column 415 to secure the gusset plate assembly 421 to the column 415. Each planar face 420 of the column 415 includes rod holes 461A. Each rod hole in a face 420 of the column 415 is axially aligned with a rod hole in an opposing face 420 of the column. The gusset plates 423 have oversized rod holes 461A configured to align with the standard rod holes 461A in the column 415. The threaded rods 461 extend through vertically aligned oversized rod holes 461A in the gusset plates 423 and the rod holes 461 in opposing faces of the column 415. During construction of the column assembly 413, the column 415 can be turned on its side to more easily facilitate insertion of the threaded rods 461. Rod holes 461A in adjacent faces of the column 415, and their corresponding oversized rod holes 461A in the gusset plates 423, are axially offset from each other so that the threaded rods 461 extending through the adjacent sides of the column assembly will not interfere with each other. In the illustrated embodiment, the rod holes 461A are arranged in a rectangular pattern on the faces of the column 415 and the gusset plates 423. However, the rod holes 461A could be arranged in a different pattern without departing from the scope of the disclosure. In the illustrated embodiment, the gusset plate assembly 421 is also attached to the column 415 by top and bottom horizontal welds 429 b. However, it will be understood that the welds 429 b may be omitted within the scope of the present invention. Still further, expansion bolts (not shown) may be used in place of the threaded rods 461. The expansion bolts would not extend across the column 419, but instead would expand to bear against an inner face of the wall of the column through which the expansion bolt is passed. Thus, different bolts would be used on all four faces 420 of the column 415.
  • Referring to FIGS. 35-40, a bi-axial beam-to-column moment-resisting joint connection structure including a column assembly 513 of a sixth embodiment is generally indicated at 511. The joint connection structure may be used in the construction of a building framework. In the illustrated embodiment, the joint connection joins column assembly 513 including a column 515 to three full-length beam assemblies 517 including full-length beams 519. The column assembly 513 is similar to the column assembly 313 of the fourth embodiment but includes a modification to the gusset plate assembly 521 to configure the column assembly for attaching three beam assemblies 517.
  • The gusset plate assembly 521 comprises a plurality of gusset plates 523 connected to the column 515 and extending laterally outward from the column. The gusset plates 523 extend within planes generally parallel to a longitudinal axis of the column 515. A first pair of spaced apart parallel, vertically and horizontally extending gusset plates 523 a sandwich the column 515 and co-axially extending beams 519. The first pair of gusset plates 523 a extends laterally outward from the column 515 in opposite directions along a first axis and defines spaces on opposite sides of the column for receiving end portions of beams 519 for mounting respective beam assemblies 517 to the column assembly 513 via the gusset plate assembly 521. A second pair of spaced apart parallel, vertically and horizontally extending gusset plates 523 b sandwich the column 515 and a beam 519 extending orthogonally to the co-axially extending beams. The second pair of gusset plates 523 b extends laterally outward from the column 515 in opposite directions along a second axis extending orthogonally to the first axis. The second pair of gusset plates 23 b defines a space for receiving an end portion of beam 519 for mounting a beam assembly 517 to the column assembly 513 via the gusset plate assembly 521.
  • The first pair of gusset plates 523 a each includes a pair of open slots 543 extending from an edge of the gusset plates 523 a to an interior of the gusset plates (FIGS. 37 and 38). The slots 543 are symmetrically spaced about a vertically extending centerline of the gusset plates 523 a. The second pair of gusset plates 523 b each includes a pair of open slots 547 extending from an edge of the gusset plates 523 b to an interior of the gusset plates (FIGS. 39 and 40). The slots 547 are asymmetrically spaced about a vertically extending centerline of the gusset plates 523 b. In particular, for each gusset plate 523 b, slots 547 are laterally spaced from a vertically extending centerline of the gusset plate 523 b toward one side of the gusset plate. Therefore the gusset plate 523 b extends a greater distance from one of the slots 547, away from the other slot, than it extends from the other slot in an opposite direction.
  • The open slots 543 of the first pair of gusset plates 523 a are configured to mate with the open slots 547 of the second pair of gusset plates 523 b such that portions of the first pair of gusset plates 523 a are received in the open slots of the second pair of gusset plates, and portions of the second pair of gusset plates are received in the open slots of the first pair of gusset plates. The connected gusset plates 523 a, 523 b form gusset plate assembly 521 (FIG. 36). The gusset plates 523 a, 523 b are welded together along vertical fillet welds 529 a extending along the intersecting corners between the gusset plates, substantially as shown in FIG. 11 for the first embodiment. It is noted that the short extension of gusset plates 523 b beyond the intersecting gusset plate 523 a provides for slots 547 to mate with interlocking slots 543 to form a controlled rigid intersection of orthogonal gusset plates that can then be welded at four locations (such as shown in FIG. 11). It is understood, however, that a free vertical edge of gusset plate 523 b can be made to flush up to the interior face of rearwardmost orthogonal gusset plate 523 a of FIG. 36, and be welded to the face of the gusset plate without the need of a slotted interconnected interface. In that case, the slots 547 nearest the edge of the gusset plates 523 b in FIG. 40 would be eliminated and the length of the plates would be correspondingly shorter. Horizontal fillet welds 529 b at top and bottom edges of the gusset plates 523 a, 523 b attach the gusset plate assembly 521 to the column 515.
  • In the illustrated embodiment, the first pair of gusset plates 523 a are attached to the second pair of gusset plates 523 b such that top and bottom edges of the first pair of gusset plates are generally flush with respective top and bottom edges of the second pair of gusset plates 523 b. It may be seen that the gusset plate assembly 521 forms only three spaces for receiving end portions of beam assemblies.
  • The method of assembling the gusset plate assembly 521 is identical to the method of assembling the gusset plate assembly 321 of the fourth embodiment, and the method of constructing the column assembly 513 is otherwise identical to the method of constructing the column assembly 313 of the fourth embodiment. Further the column assembly 513 can be attached to full-length beam assemblies in the same fashion as column assembly 313 of the fourth embodiment.
  • Referring to FIGS. 41-44, a bi-axial beam-to-column moment-resisting joint connection structure including a column assembly 613 of a seventh embodiment is generally indicated at 611. The joint connection structure may be used in the construction of a building framework. In the illustrated embodiment, the joint connection joins column assembly 613 including a column 615 to two full-length beam assemblies 617 including full-length beams 619. The column assembly 613 is similar to the column assembly 313 of the fourth embodiment but includes a modification to the gusset plate assembly 621 to configure the column assembly for attaching two orthogonal beam assemblies 617.
  • Each of a first pair of gusset plates 623 a includes two open slots 643 extending from an edge of the gusset plates 623 a to an interior of the gusset plates (FIG. 43). The slots 643 are asymmetrically spaced about a vertically extending centerline of the gusset plates 623 a. In particular, for each gusset plate 623 a, slots 643 are laterally spaced from a vertically extending centerline of the gusset plate 623 a toward one side of the gusset plate. Each of the second pair of gusset plates 623 b includes two open slots 647 extending from an edge of the gusset plates 623 b to an interior of the gusset plates (FIG. 44). The slots 647 are also asymmetrically spaced about a vertically extending centerline of the gusset plates 623 b in a similar fashion to the slots 643 in the first pair of gusset plates 623 a.
  • The open slots 643 of the first pair of gusset plates 623 a are configured to mate with the open slots 647 of the second pair of gusset plates 623 b such that portions of the first pair of gusset plates 623 a are received in the open slots of the second pair of gusset plates, and portions of the second pair of gusset plates are received in the open slots of the first pair of gusset plates. The connected gusset plates 623 a, 623 b form gusset plate assembly 621. The gusset plate assembly provides only two spaces for receiving ends of the beam assemblies 617. The gusset plates 623 a, 623 b are welded together along vertical fillet welds 629 a extending along the intersection corners between the gusset plates. It is noted that the short extension of gusset plates 623 b beyond the intersecting gusset plate 623 a provides for slots 647 to mate with interlocking slots 643 to form a controlled rigid intersection of orthogonal gusset plates that can then be welded at four locations (such as shown in FIG. 11). It is understood, however, that a free vertical edge of gusset plate 623 b can be made to flush up to the interior face of rearwardmost orthogonal gusset plate 623 a of FIG. 42, and be welded to the face of the gusset plate without the need of a slotted interconnected interface. In that case, the slots 647 nearest the edge of the gusset plates 623 b in FIG. 44 would be eliminated and the length of the plates would be correspondingly shorter. Horizontal fillet welds 629 b at top and bottom edges of the gusset plates 623 a, 623 b attach the gusset plate assembly 621 to the column 615. In the illustrated embodiment, the first pair of gusset plates 623 a are attached to the second pair of gusset plates 623 b such that top and bottom edges of the first pair of gusset plates are generally flush with respective top and bottom edges of the second pair of gusset plates 623 b.
  • The method of assembling the gusset plate assembly 621 is identical to the method of assembling the gusset plate assembly 321 of the fourth embodiment, and the method of constructing the column assembly 613 is otherwise identical to the method of constructing the column assembly 313 of the fourth embodiment. Further the column assembly 613 can be attached to full-length beam assemblies in the same fashion as column assembly 313 of the fourth embodiment.
  • Referring to FIGS. 45-51, a column assembly of an eighth embodiment is generally indicated at 713. The gusset plate assembly 721 of the eighth embodiment comprises a plurality (four) of gusset plate subassemblies 771 separately welded to column 715. Each subassembly 771 hugs its two adjacent orthogonal faces 720 of the column 715, thereby enclosing the corner of the column, and is welded to the column. The gusset plate subassemblies each include a first gusset plate 723 a and a second gusset plate 723 b. Facing surfaces of adjacent gusset plates 723 a, 723 b define the spaces for receiving end portions of a beam for mounting a beam assembly to the column assembly 713 via the gusset plate assembly 721. The column assembly 713 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • Each subassembly 771 comprises the first gusset plate 723 a having an open slot 743 located closer to one side of the first gusset plate (FIG. 47), and the second gusset plate 723 b having an open slot 747 located closer to one side of the second gusset plate (FIG. 48). As explained previously herein, the gusset plates 723 a, 723 b are attached by mating the slots 743, 747 with each other and welding the gusset plates 723 a, 723 b together at vertical welds 729 a extending along the intersection corners between the gusset plates. The assembled gusset plate subassemblies 771 have an unsymmetrical, crossed configuration (see, FIGS. 49 and 51). The portions of the gusset plates 723 a, 723 b that define a smaller section are welded to the four corners of the column 715, and the portions of the gusset plates that define a larger section extend laterally outward from the column.
  • The subassemblies 771 are welded to each face 720 of the column 715 along top and bottom horizontal welds 729 b and vertical welds 729 c. It will be understood that other forms of connection of the subassemblies 771 to the column 715 may be employed. In one example, the gusset plates 723 a, 723 b and column 715 may have bolt holes and receive suitable fasteners such as expansion bolts to mount the subassemblies on the column.
  • The gusset plate assembly 721 beneficially distributes the resistance to moments applied by the beams (not shown) to the column 715 to all four faces 720 of the column, making it also well-suited to resist bi-axial loads applied by the beams to the column. This is made possible by the use of welded interlocked orthogonal gusset plates 723 a, 723 b forming the rigid gusset plate subassemblies 771 that hug the sidewalls and can be configured to enclose all four corners of the column 715 to resist bi-axial applied moment. It will be understood that a moment applied by any one or any combination of the four beams will be transmitted by pairs of gusset plate subassemblies 771 to locations all around the column 715. The subassemblies 771 are welded to the faces 720 of the column 715 along top and bottom horizontal welds 729 b and vertical welds 729 c.
  • The subassemblies 771 cooperate to distribute load to the faces 720 of the column 715. For example when a moment is applied to one of the subassemblies 771 (FIG. 49), by a beam (not shown) connected to gusset plates 723 b, it is resisted by top and bottom horizontal welds 729 b and vertical weld 729 c which comprise a channel-shaped weld group configuration capable of transferring in-plane moment to an adjacent face 720 of column 715 parallel to the axis of the beam. This in-plane moment transfer to the face 720 of the column 715 is similar to the in-plane moment transfer described in U.S. Pat. Nos. 6,138,427, 7,178,296, 8,146,322 and 9,091,065. The difference is that the weld group in the patents is rectangular (top and bottom horizontal welds and left and right vertical welds) rather than channel-shaped. In addition, top and bottom welds 729 b and vertical welds 729 c of the subassembly 771 having a gusset plate 723 a extending transverse to the longitudinal axis of the beam and connected to the near face 720 also resist the moment, forming a tension/compression force couple to transfer moment out-of-plane to the face of the column. These welds 729 b and 729 c (comprising a channel-shaped weld group configuration) connect the gusset plate 723 a to the near face 720 of column 715 and are capable of resisting applied out-of-plane moment via tension/compression force couple acting perpendicular to the near face of the column. In the case of a bi-axially applied moment, where the resolved moment vector would lie between two orthogonal beams and tend to tilt the gusset plate subassembly 771 on the column 715 along a diagonal between the longitudinal axes of the beams, additional moment resisting capacity is provided. The vertical welds 729 c connecting the vertical edges of the gusset plates 723 b, 723 a to adjacent orthogonal faces 720 of the column 715 act together orthogonally as a vertical weld group to provide a force couple to resist the applied bi-axial moment. It will be appreciated that all of the subassemblies 771 may act in this manner to resist bi-axially applied moment, enclosing as many as all four corners of column 715 to act in concert with the aforementioned moment resistance force couples to make the column assembly 713 and a joint connection structure formed using the column assembly remarkably robust.
  • Referring to FIGS. 52-57, a column assembly of a ninth embodiment is generally indicated at 813. The column assembly 813 of the ninth embodiment is similar to the column assembly 713 of the eighth embodiment but includes a modification to the gusset plate assembly 821 to configure the column assembly 813 for attaching three beam assemblies. As with the eighth embodiment, each subassembly 871 hugs its two adjacent orthogonal faces 820 of the column 815, thereby enclosing the corner of the column, and is welded to the column. The primary difference between the two embodiments is gusset plate assembly 821 of the ninth embodiment comprises two gusset plate subassemblies 871 a and 871 b of different construction. As before, all gusset plate subassemblies 871 a, 871 b are separately welded to column 815. First subassemblies 871 a are identical to the subassemblies 771 in the eighth embodiment. Second subassembly 871 b comprises a first gusset plate 823 a having an open slot 843 located closer to one side of the first gusset plate, and a second gusset plate 823 b having an open slot 847 located closer to one side of the second gusset plate. The second gusset plate 823 b of the second subassembly 871 b is smaller than the first gusset plate 823 a and has no holes for bolts or threaded rods. As explained in an earlier embodiment, the gusset plates 823 a, 823 b are attached by mating the slots 843, 847 with each other and welding the gusset plates 823 a, 823 b together at vertical welds 829 a extending along the intersection corners between the gusset plates. The assembled second gusset plate subassemblies 871 b have an unsymmetrical cross configuration. Portions of the gusset plates 823 a, 823 b that define a top section of the cross are welded to two adjacent corners of the column 815, and portions of the gusset plates that define a bottom section of the cross extend laterally outward from the column. Facing surfaces of adjacent gusset plates 823 a, 823 b define the spaces for receiving end portions of a beam for mounting a beam assembly to the column assembly 813 via the gusset plate assembly 821. The column assembly 813 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • Referring to FIGS. 58-60A, a column assembly of a tenth embodiment is generally indicated at 913. The column assembly 913 of the tenth embodiment is similar to the column assembly 713 of the eighth embodiment but includes a modification to the gusset plate assembly 921 to configure the column assembly for attaching three beam assemblies. The primary difference between the two embodiments is gusset plate assembly 921 of the tenth embodiment, in addition to the pair of gusset plate subassemblies 971, includes a separate gusset plate 923 c (also forming part of the gusset plate assembly 921) that is not mated with another gusset plate. Subassemblies 971 are similar to the subassemblies 771 in the eighth embodiment. As with the eighth embodiment, each subassembly 971 hugs its two adjacent orthogonal faces 920 of the column 915, thereby enclosing the corner of the column, and is welded to the column. However, in each subassembly 971 the portion of the gusset plate 923 a overlying the face 920 of the column 915 is longer than the portions of the gusset plates 923 b (see, FIG. 60). The subassemblies 971 are welded to adjacent corners of the column 915. The separate gusset plate 923 c is welded to an opposite face of the column 915 by top and bottom horizontal welds 929 b, vertical welds 929 c, as well as by an internal, vertical corner flare bevel weld 929 h (see, FIG. 60A). Facing surfaces of adjacent gusset plates 923 a, 923 a of the subassemblies 971 define a space for receiving an end portion of a beam for mounting a beam assembly to the column assembly 913 via the gusset plate assembly 921. Further, facing surfaces of gusset plates 923 b and 923 c define spaces for receiving end portions of beams for mounting beam assemblies to the column assembly 913. The column assembly 913 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • Referring to FIGS. 61-63, a column assembly of an eleventh embodiment is generally indicated at 1013. The column assembly 1013 of the eleventh embodiment is similar to the column assembly 913 of the tenth embodiment but instead of a single gusset plate 923 c, column assembly 1013 includes two separate gusset plates 1023 d and 1023 e. Subassemblies 1071 are identical to the subassemblies 971 in the tenth embodiment. Each of the subassemblies 1071 are welded to adjacent corners of the column 1015, and hugs its two adjacent orthogonal faces 1020 of the column, thereby enclosing the corner of the column. The separate gusset plates 1023 d, 1023 e are welded to the column using vertical welds 1029 c. The corner welds 929 e used in the tenth embodiment, are not used in the eleventh embodiment. Facing surfaces of adjacent gusset plates 1023 a, 1023 a of the subassemblies 1071 define a space for receiving an end portion of a beam for mounting a beam assembly to the column assembly 1013 via the gusset plate assembly 1021. Further, facing surfaces of gusset plates 1023 b and 1023 d, and facing surfaces of 1023 b and 1023 e defines spaces for receiving end portions of beams for mounting beam assemblies to the column assembly 1013. The column assembly 1013 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • Referring to FIGS. 64-66, a column assembly of a twelfth embodiment is generally indicated at 1113. The column assembly 1113 of the twelfth embodiment is similar to the column assembly 813 of the ninth embodiment but includes a modification to the gusset plate assembly 821 to configure the column assembly for attaching two beam assemblies. A first subassembly 1171 a is identical to the subassemblies 771 in the eighth embodiment. Second subassemblies 1171 b are identical to the second subassemblies 871 b of the ninth embodiment. Facing surfaces of adjacent gusset plates 1123 a, 1123 b, and adjacent gusset plates 1123 a, 1123 a, define spaces for receiving end portions of beams for mounting beam assemblies to the column assembly 1113 via the gusset plate assembly 1121. The column assembly 1113 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • Referring to FIGS. 67-70, a column assembly of a thirteenth embodiment is generally indicated at 1213. The column assembly 1213 of the thirteenth embodiment is similar to the column assembly 1113 of the twelfth embodiment but instead of having the two second subassemblies 1171 b, column assembly 1213 includes two single gusset plates 1223 d and 1223 e. Subassembly 1271 is similar to the subassemblies 771 in the eighth embodiment, but the portions of the gusset plates 1223 a, 1223 b adjacent the faces 1220 of the column 1215 extending over more than half the widths of the faces.. The single gusset plates 1223 d, 1223 e are attached to the column 1215 using vertical and horizontal welds 1229 b, 1229 c and corner flare bevel welds 1229 h. Facing surfaces of adjacent gusset plates 1223 a and 1123 d, and facing surfaces of gusset plates 1223 b and 1223 e define the spaces for receiving end portions of beams for mounting beam assemblies to the column assembly 1213 via the gusset plate assembly 1221. The column assembly 1213 can be attached to full-length beam assemblies in the same fashion as column assembly 13 of the first embodiment.
  • It will be understood that the specific connections described in each of the embodiments are interchangeable.
  • When introducing elements of the present invention or the preferred embodiments(s) thereof, the articles “a”, “an”, “the” and “said” are intended to mean that there are one or more of the elements. The terms “comprising”, “including” and “having” are intended to be inclusive and mean that there may be additional elements other than the listed elements.
  • In view of the above, it will be seen that the several objects of the invention are achieved and other advantageous results attained.
  • As various changes could be made in the above constructions, products, and methods without departing from the scope of the invention, it is intended that all matter contained in the above description and shown in the accompanying drawings shall be interpreted as illustrative and not in a limiting sense.
  • Bi-axial, moment resisting beam-to-column joint connection structures and column assemblies that are constructed according to the principles of the present invention provide numerous unique features, benefits and advantages. Reference is made to the figures illustrating some of the embodiments to which the advantages and benefits apply.

Claims (31)

1. A prefabricated column assembly comprising:
a hollow tubular column having a longitudinal axis; and
a gusset plate assembly comprising a plurality of gusset plates connected to the column and extending laterally outward from the column in planes generally parallel to the longitudinal axis of the column, a first pair of the gusset plates extending laterally outward from the column along a first axis and defining a space for receiving an end portion of a first beam for mounting the first beam on the first pair of gusset plates, a second pair of the gusset plates extending laterally outward from the column along a second axis that is nonparallel and non-coincident with the first axis, the first and second pairs of gusset plates each intersecting a single plane perpendicular to the longitudinal axis of the column, the second pair of gusset plates defining a space for receiving an end portion of a second beam for mounting the second beam on the second pair of gusset plates to provide a bi-axial joint connection, wherein at least a portion of one of the first pair of gusset plates extends through at least one of the second pair of gusset plates.
2. (canceled)
3. The column assembly of claim 1 wherein each of the first pair of gusset plates passes through each of the second pair of gusset plates.
4. The column assembly of claim 1 wherein each of at least two of the gusset plates of the gusset plate assembly includes at least one slot for mating with the slot of the other of the at least two gusset plates for interconnecting the gusset plates to form the gusset plate assembly.
5. The column assembly of claim 4 wherein each gusset plate includes at least two slots, each slot mating with a respective one of the slots of another of the gusset plates for interconnecting the gusset plates to form the gusset plate assembly.
6. The column assembly of claim 4 wherein each slot includes a closed end and an open end, the open end receiving a portion of said another of the gusset plates for interconnecting the gusset plates to form the gusset plate assembly.
7. The column assembly of claim 4 further comprising welds connecting the gusset plates to each other, the welds extending along the slots interconnecting the gusset plates.
8. The column assembly of claim 1 wherein each gusset plate includes a plurality of holes.
9. The column assembly of claim 8 further comprising threaded rods attaching the gusset plate assembly to the column, wherein the column comprises a polygonal cross section wall including opposing planar wall members, each opposing wall member having holes therein and being in face-to-face relationship with a respective one of the gusset plates, each threaded rod extending through the holes of the opposing planar wall members and through the holes of the gusset plates opposing the planar wall members.
10. The column assembly of claim 1 wherein the gusset plate assembly is welded to the column.
11. The column assembly of claim 10 further comprising a gusset plate-to-column weld, the first gusset plate-to-column weld extending transverse to the longitudinal axis of the column.
12. The column assembly of claim 10 further comprising a first gusset plate-to-column weld connecting one of the gusset plates to the column, the first gusset plate-to-column weld extending transverse to the longitudinal axis of the column, and a second gusset plate-to-column weld connecting said one of the gusset plates to the column, the second gusset plate-to-column weld extending along the longitudinal axis of the column.
13. The column assembly of claim 1 wherein at least one of the gusset plates has an elongate opening extending parallel to the longitudinal axis of the column, the column assembly further comprising a weld in the elongate opening connecting the gusset plate to the column.
14. The column assembly of claim 13 wherein the elongate opening has an edge defining a closed loop encompassing the opening, and said weld extends along the entire edge of the elongate opening.
15. A gusset plate assembly for connection to a column to attach a beam of a building to the column, the gusset plate assembly comprising at least two metal gusset plates sized for transferring the weight of the beam of the building to the column, the gusset plates being connected together in a fixed configuration with respect to each other, each gusset plate including at least one slot mated with a slot of another of the gusset plates thereby interconnecting the gusset plates and forming the gusset plate assembly.
16. The gusset plate assembly of claim 15 wherein each gusset plate includes at least two slots, each slot mating with a slot of another of the gusset plates for interconnecting the gusset plates to form the gusset plate assembly.
17. The gusset plate assembly of claim 15 wherein each slot includes a closed end and an open end, the open end receiving a portion of said another gusset plate for interconnecting the gusset plates to form the gusset plate assembly.
18. The gusset plate assembly of claim 15 wherein each gusset plate includes a plurality of holes.
19. The gusset plate assembly of claim 15 further comprising welds connecting the gusset plates to each other, the welds extending along the slots of the gusset plates.
20. The gusset plate assembly of claim 15 wherein at least one of the gusset plates has an elongate opening therein for receiving a weld to connect the gusset plate to the hollow tubular column.
21. The gusset plate assembly of claim 20 wherein the elongate opening has an edge defining a closed loop encompassing the opening, and said weld extends continuously along the entire edge of the elongate opening.
22. A method of assembling a prefabricated column assembly comprising:
providing a hollow tubular column;
assembling a gusset plate assembly including a plurality of gusset plates by attaching at least two of the gusset plates together; and
securing the gusset plate assembly to the hollow tubular column to form the column assembly, a first pair of the gusset plates extending laterally outward from the column along a first axis and defining a space for receiving an end portion of a first beam for mounting the first beam on the first pair of gusset plates, a second pair of the gusset plates extending laterally outward from the column along a second axis, the second pair of gusset plates defining a space for receiving an end portion of a second beam for mounting the second beam on the second pair of gusset plates thereby providing for bi-axial joint connection, wherein assembling the gusset plate assembly comprises attaching each gusset plate to at least another of the gusset plates, and wherein attaching each gusset plate comprises mating slots of respective gusset plates and welding the gusset plates together.
23. (canceled)
24. (canceled)
25. The method of claim 22 wherein securing the gusset plate assembly to the hollow tubular column comprises welding the gusset plate assembly to the hollow tubular column.
26. The method of claim 25 wherein securing the gusset plate assembly to the hollow tubular column comprises forming a weld extending transverse to the longitudinal axis of the column.
27. The method of claim 25 wherein welding the gusset plate assembly to the hollow tubular column comprises forming a weld extending transverse to the longitudinal axis of the column and forming a weld extending along a longitudinal axis of the column.
28. The method of claim 22 wherein securing the gusset plate assembly to the hollow tubular column comprises attaching the gusset plate assembly to the hollow tubular column using threaded rods extending through the column and the gusset plates.
29. The method of claim 22 further comprising placing concrete into the hollow tubular column.
30. The method of claim 22 wherein securing the gusset plate assembly to the hollow tubular column to form the column assembly comprises welding at least one of the gusset plates to the column in an enclosed, elongate opening of the gusset plate, the elongate opening extending lengthwise of the column.
31. The column assembly of claim 1 wherein the gusset plate assembly defines a column passage, the hollow tubular column being received in the column passage.
US15/144,414 2016-05-02 2016-05-02 Moment resisting bi-axial beam-to-column joint connection Abandoned US20170314254A1 (en)

Priority Applications (7)

Application Number Priority Date Filing Date Title
US15/144,414 US20170314254A1 (en) 2016-05-02 2016-05-02 Moment resisting bi-axial beam-to-column joint connection
EP17167418.7A EP3241952B1 (en) 2016-05-02 2017-04-20 Moment resisting bi-axial beam-to column joint connection
CA2965456A CA2965456C (en) 2016-05-02 2017-04-27 Moment resisting bi-axial beam-to-column joint connection
AU2017202780A AU2017202780B2 (en) 2016-05-02 2017-04-27 Moment resisting bi-axial beam-to-column joint connection
JP2017091316A JP7090404B2 (en) 2016-05-02 2017-05-01 Pillar assembly and its assembly method
MX2017005717A MX2017005717A (en) 2016-05-02 2017-05-02 Moment resisting bi-axial beam-to-column joint connection.
US16/264,191 US11332920B2 (en) 2016-05-02 2019-01-31 Moment resisting bi-axial beam-to-column joint connection

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US15/144,414 US20170314254A1 (en) 2016-05-02 2016-05-02 Moment resisting bi-axial beam-to-column joint connection

Related Child Applications (1)

Application Number Title Priority Date Filing Date
US16/264,191 Continuation US11332920B2 (en) 2016-05-02 2019-01-31 Moment resisting bi-axial beam-to-column joint connection

Publications (1)

Publication Number Publication Date
US20170314254A1 true US20170314254A1 (en) 2017-11-02

Family

ID=58632216

Family Applications (2)

Application Number Title Priority Date Filing Date
US15/144,414 Abandoned US20170314254A1 (en) 2016-05-02 2016-05-02 Moment resisting bi-axial beam-to-column joint connection
US16/264,191 Active US11332920B2 (en) 2016-05-02 2019-01-31 Moment resisting bi-axial beam-to-column joint connection

Family Applications After (1)

Application Number Title Priority Date Filing Date
US16/264,191 Active US11332920B2 (en) 2016-05-02 2019-01-31 Moment resisting bi-axial beam-to-column joint connection

Country Status (6)

Country Link
US (2) US20170314254A1 (en)
EP (1) EP3241952B1 (en)
JP (1) JP7090404B2 (en)
AU (1) AU2017202780B2 (en)
CA (1) CA2965456C (en)
MX (1) MX2017005717A (en)

Cited By (34)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10006212B2 (en) * 2015-11-24 2018-06-26 Sheng-Liang Chen Assembled house
US20180238041A1 (en) * 2017-02-21 2018-08-23 Styrc Jacek Modular furniture system
US20180245331A1 (en) * 2015-08-25 2018-08-30 Henan Ocar Parker Technology Co., Ltd. Bim-based modular housing built with thin-wall channel steels
US20180291938A1 (en) * 2017-04-11 2018-10-11 Caterpillar Inc. Weld joint assembly
US20180347172A1 (en) * 2017-08-19 2018-12-06 Mohammad Ramezani Moment-resisting frame
CN109162348A (en) * 2018-10-17 2019-01-08 苏州昆仑绿建木结构科技股份有限公司 A kind of assembled bamboo hollow frame structure with prestressing force enhancing box beam
US20190106875A1 (en) * 2015-06-03 2019-04-11 Mitek Holdings, Inc. Gusset plate connection of braced beam to column
US20190136504A1 (en) * 2017-11-08 2019-05-09 Modular Steel Solutions, LLC Apparatus and systems related to modular construction
US20190186150A1 (en) * 2017-12-15 2019-06-20 Platform Manufacturing Group Modular stair system
WO2019157237A1 (en) * 2018-02-09 2019-08-15 Conxtech, Inc. Full moment connection collar systems
USD887025S1 (en) 2017-11-17 2020-06-09 2724889 Ontario Inc. Connector for a modular structure
US10745901B2 (en) * 2018-11-21 2020-08-18 Steel Worx Solutions LLC System and method of constructing a multi-story building utilizing modular components
US10876282B1 (en) * 2019-09-21 2020-12-29 Qingdao university of technology Fabricated limiting-reinforced steel-wood frosted sleeve composite joint
CN112282050A (en) * 2020-09-21 2021-01-29 泉州市元通科技服务有限公司 Can be to assembled building steel construction of junction locking
US10907343B1 (en) * 2019-02-27 2021-02-02 Qingdao university of technology Prefabricated steel-wood composite joint
US11002002B2 (en) * 2013-09-30 2021-05-11 Drew P. HENRY Hollow connector sleeve with interlocking components
CN112832575A (en) * 2020-12-28 2021-05-25 郑勇 Prefabricated assembled concrete building and design method thereof
USRE48705E1 (en) 2012-11-30 2021-08-24 Mitek Holdings, Inc. Gusset plate connection of beam to column
USD936246S1 (en) 2020-08-12 2021-11-16 2724889 Ontario Inc. Connector for a modular structure
USD936247S1 (en) 2020-08-12 2021-11-16 2724889 Ontario Inc. Connector for a modular structure
USD936859S1 (en) 2020-02-04 2021-11-23 2724889 Ontario Inc. Connector
USD936861S1 (en) 2020-08-12 2021-11-23 2724889 Ontario Inc. Connector for a modular structure
USD938068S1 (en) 2020-08-12 2021-12-07 2724889 Ontario Inc. Connector for a modular structure
USD938619S1 (en) 2020-08-12 2021-12-14 2724889 Ontario Inc. Connector for a modular structure
USD939106S1 (en) 2020-08-12 2021-12-21 2724889 Ontario Inc. Connector for a modular structure
USD938772S1 (en) 2020-02-04 2021-12-21 2724889 Ontario Inc. Connector
USD938771S1 (en) 2020-02-04 2021-12-21 2724889 Ontario Inc. Connector
USD938770S1 (en) 2020-02-04 2021-12-21 2724889 Ontario Inc. Connector
USD939731S1 (en) 2020-08-12 2021-12-28 2724889 Ontario Inc. Connector for a modular structure
USD952382S1 (en) 2020-02-04 2022-05-24 2724889 Ontario Inc. Table
USD952384S1 (en) 2020-02-04 2022-05-24 2724889 Ontario Inc. Leg
US11434633B2 (en) * 2019-05-31 2022-09-06 Charles Post System and associated methods for multistory building construction
US20220412072A1 (en) * 2021-05-12 2022-12-29 Arup IP Management Ltd. Connection system for volumetric modular construction
CN115787852A (en) * 2022-11-22 2023-03-14 中国建筑设计研究院有限公司 Rigid connection node connecting structure of cross-shaped supporting column and system thereof

Families Citing this family (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
PL236360B1 (en) * 2017-11-27 2021-01-11 Energia W Kogeneracji Ewk Spolka Akcyjna Anchoring unit
CN108797798A (en) * 2018-07-09 2018-11-13 元氏县蟠山型材结构厂 The processing method of beam column of steel structure stationary nodes and fixes sleeve
CN110965639B (en) * 2019-10-12 2021-02-23 中国建筑股份有限公司 Prefabricated assembly dry type connecting frame structure system and construction method thereof
CN110984374B (en) * 2019-12-05 2021-05-14 上海绿地建设(集团)有限公司 Special-shaped column beam column joint structure

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2036235A (en) * 1978-11-14 1980-06-25 Menelaou X Assembly of hollow elongate members
US6219989B1 (en) * 1997-09-29 2001-04-24 Shinichi Tumura Construction method of joining column and beam in building structure based on heavy-weight steel frame construction
US20060265992A1 (en) * 2005-05-24 2006-11-30 Minoru Hiragaki Joint structure of iron framework and coupling member for connecting rectangular steel beam to rectangular steel column

Family Cites Families (93)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US674752A (en) * 1900-10-29 1901-05-21 Ball Bearing Shade Roller Company Extensible shade-roller.
GB717744A (en) 1950-08-16 1954-11-03 Hills West Bromwich Ltd Improvements in, or relating to, stanchions for use in the erection of skeleton frameworks of buildings
US2868568A (en) * 1958-04-29 1959-01-13 Reinhold A Frye Knock down structures
US3203150A (en) 1961-02-27 1965-08-31 Electrolux Ab Building framework
US3382634A (en) * 1966-01-07 1968-05-14 Montague Betts Company Inc Shear head
US3691712A (en) 1969-05-13 1972-09-19 Monsanto Co Damping system
US3716957A (en) 1970-10-23 1973-02-20 J Bernardi Column flange and stiffener plate construction
BE794273A (en) * 1972-01-28 1973-05-16 World Inventions Ltd DEVICES TO CONTROL SOIL EROSION
FR2179494B1 (en) * 1972-04-10 1978-03-03 Cometube Gie
AU470726B2 (en) * 1972-04-19 1976-03-25 Industrialised Building Systems Limited Improvements in or relating to structural building panels
CH548533A (en) 1972-08-16 1974-04-30 Bbc Brown Boveri & Cie METHOD OF MANUFACTURING A GUIDE VANE FOR AN AXIALLY FLOWED TURBO MACHINE.
JPS4959307U (en) * 1972-08-30 1974-05-24
US3952472A (en) * 1972-10-05 1976-04-27 Boehmig Robert L Joint for transferring bending moments
US3855748A (en) * 1972-12-15 1974-12-24 J Thomas Playground assembly set
US3914063A (en) * 1973-05-24 1975-10-21 Unistrut Corp Space frame connecting fixture
US4014089A (en) * 1975-02-21 1977-03-29 Kajima Corporation Method of connecting beams and columns of steel frame construction
US4441289A (en) 1980-05-07 1984-04-10 Takenaka Komuten Co., Ltd. Earthquake-resistant reinforcement structure for an existing building with compression braces or tension braces
US4409765A (en) 1980-06-24 1983-10-18 Pall Avtar S Earth-quake proof building construction
CA1178775A (en) * 1982-09-28 1984-12-04 Luc Trudeau Dismantable joint arrangement
US4551960A (en) * 1983-02-14 1985-11-12 Fleishman Gregg R Space frame structural system
US4863305A (en) * 1987-10-19 1989-09-05 Schold John A Orthogonal construction joint
LU87320A1 (en) 1988-08-24 1990-03-13 Arbed ANTISISMIC METAL FRAMEWORK
US5244300A (en) 1991-02-28 1993-09-14 Lehigh University Structural connector approximating a cone of elliptical cross-section
JP2961455B2 (en) * 1991-07-23 1999-10-12 株式会社竹中工務店 Connection of steel structure and its manufacturing method
JP3426359B2 (en) 1994-08-16 2003-07-14 株式会社建築資料研究社 Beam or girder joining tool and vehicle faucet used in combination therewith
US5660017A (en) 1994-12-13 1997-08-26 Houghton; David L. Steel moment resisting frame beam-to-column connections
US5680738A (en) 1995-04-11 1997-10-28 Seismic Structural Design Associates, Inc. Steel frame stress reduction connection
US6237303B1 (en) 1995-04-11 2001-05-29 Seismic Structural Design Steel frame stress reduction connection
US7047695B2 (en) 1995-04-11 2006-05-23 Seismic Structural Design Associates, Inc. Steel frame stress reduction connection
JP3284877B2 (en) 1995-04-26 2002-05-20 日本鋼管株式会社 Joint structure of square steel tubular column and H-section beam
US6073405A (en) 1995-12-22 2000-06-13 Icf Kaiser Engineers, Inc. Fitting for effecting bolted connection between a beam and a column in a steel frame structure
US5680737A (en) * 1996-02-16 1997-10-28 Sheipline; Gary D. Structural connector hub for exhibit booths
JPH10227063A (en) * 1996-12-12 1998-08-25 Nkk Corp Joint structure of square steel pipe column and h-sectional beam
JPH10292491A (en) 1997-04-18 1998-11-04 Ig Tech Res Inc Column horizontal member connection method and joint plate structure in wooden building
JPH10317491A (en) 1997-05-21 1998-12-02 Kowa:Kk Joining structure of column member
US6022165A (en) 1997-10-30 2000-02-08 Simpson Strong-Tie Company, Inc. Rigid internal connector
JPH11200489A (en) 1997-11-13 1999-07-27 Kawasaki Steel Corp Steel pipe column having joining metallic materials and annular joining metallic material
US6138427A (en) 1998-08-28 2000-10-31 Houghton; David L. Moment resisting, beam-to-column connection
US6516583B1 (en) 1999-03-26 2003-02-11 David L. Houghton Gusset plate connections for structural braced systems
US7114300B1 (en) 1999-05-07 2006-10-03 Smart Furniture Modular construction system
JP2000336772A (en) 1999-05-25 2000-12-05 Hitachi Metals Ltd Outer diaphragm
JP2002013203A (en) 2000-06-29 2002-01-18 Uesuto:Kk Jointing structure for wooden building
US20020124520A1 (en) * 2001-02-08 2002-09-12 Arcmatic Integrated Systems, Inc. Moment resisting connection apparatus and method
FR2821395B1 (en) * 2001-02-23 2003-05-09 Atroisaxe FIXING PART FOR STORAGE AND / OR OFFICE PLATFORMS
US7497054B2 (en) 2001-06-06 2009-03-03 Nippon Steel Corporation Column-and-beam join structure
JP2002371627A (en) 2001-06-14 2002-12-26 Nippon Steel Corp Joining structure of steel column and steel beam
US6591573B2 (en) * 2001-07-12 2003-07-15 David L. Houghton Gusset plates connection of beam to column
JP2003049558A (en) 2001-08-07 2003-02-21 Kazuhiko Kasai Vibration control stud
US6837016B2 (en) 2001-08-30 2005-01-04 Simmons Robert J Moment-resistant building frame structure componentry and method
JP4693305B2 (en) 2001-08-31 2011-06-01 新日本製鐵株式会社 High-strength bolt joint structure of H-shaped cross section with friction damper
US6986204B2 (en) 2002-03-13 2006-01-17 Glenn Joseph K Method of constructing panelized roof structures
US6993880B2 (en) 2002-11-01 2006-02-07 Keymark Enterprises, Llc Apparatuses and methods for manufacture and placement of truss assemblies
US7146770B2 (en) * 2002-11-05 2006-12-12 Simmons Robert J Angle-section column-beam connector
US6837010B2 (en) 2002-12-05 2005-01-04 Star Seismic, Llc Pin and collar connection apparatus for use with seismic braces, seismic braces including the pin and collar connection, and methods
JP2004263366A (en) 2003-01-27 2004-09-24 Hiroshi Tagawa Joint structure and reinforcing structure of column and beam
JP4376088B2 (en) 2003-02-28 2009-12-02 新日本製鐵株式会社 Beam joint structure
JP4044483B2 (en) 2003-04-25 2008-02-06 新日本製鐵株式会社 Bonding structure of structures using gusset plates and buildings
US7225588B2 (en) 2003-07-08 2007-06-05 Nippon Steel Corporation Damping brace and structure
ES2253967B1 (en) * 2004-01-16 2007-03-16 Ibañez Lazurtegui, S.L. RIGID UNION SYSTEM SCREWED FOR METAL STRUCTURES.
US7178296B2 (en) 2004-03-19 2007-02-20 Houghton David L Structural joint connection providing blast resistance and a beam-to-beam connection resistant to moments, tension and torsion across a column
US7310920B2 (en) * 2004-05-06 2007-12-25 Hovey Jr David Two-way architectural structural system and modular support member
JP4649250B2 (en) 2004-11-26 2011-03-09 新日鉄エンジニアリング株式会社 Seismic reinforcement joint structure
CA2497711A1 (en) 2005-02-18 2006-08-18 Scene Ethique Inc. Mountable and demountable load-bearing structural support system
US8468775B2 (en) * 2006-03-10 2013-06-25 Willaim B. Vaughn Moment resistant building column insert system and method
US7637076B2 (en) 2006-03-10 2009-12-29 Vaughn Willaim B Moment-resistant building column insert system and method
US20080148681A1 (en) 2006-12-22 2008-06-26 Badri Hiriyur Moment frame connector
US20080178551A1 (en) * 2007-01-31 2008-07-31 Porter William H Flexible modular building framework
US7703247B2 (en) * 2007-03-16 2010-04-27 Surowiecki Matt F Sheet metal corner studs
US7712266B2 (en) 2007-05-22 2010-05-11 Skidmore Owings & Merrill Llp Seismic structural device
AU2008260527B2 (en) * 2007-05-30 2011-08-25 Conxtech, Inc. Halo/spider, full-moment, column/beam connection in a building frame
US20090025308A1 (en) 2007-07-26 2009-01-29 Deans Brian W Seismic support and reinforcement systems
US9044818B2 (en) 2007-11-08 2015-06-02 Lincoln Global, Inc. Method of welding two sides of a joint simultaneously
US8365476B2 (en) 2007-12-28 2013-02-05 Seismic Structural Design Associates, Inc. Braced frame force distribution connection
JP4203533B1 (en) 2008-03-05 2009-01-07 株式会社アイ.テック Steel column and steel beam joint structure
CN101463628B (en) 2008-04-29 2011-05-04 甘秀明 Semi-butterfly type connection clip and construction steel frame node structure
US8122671B2 (en) * 2008-08-21 2012-02-28 Mitek Holdings, Inc. Steel-frame building and method of making
US8146322B2 (en) 2008-08-21 2012-04-03 Mitek Holdings, Inc. Building structure, method of making, and components
US8205408B2 (en) * 2008-08-21 2012-06-26 Mitek Holdings, Inc. Building metal frame, and method of making, and components therefor including column assemblies and full-length beam assemblies
WO2010103842A1 (en) 2009-03-12 2010-09-16 新日本製鐵株式会社 Connection fitting, vibration damping structure, and building structure
JP2010229660A (en) 2009-03-26 2010-10-14 Kobe Steel Ltd Steel pipe column of non-diaphragm type
US8458980B2 (en) * 2009-08-07 2013-06-11 Nikolay Vaskov Ivanov Modular building construction
US20110252743A1 (en) 2010-04-19 2011-10-20 Weihong Yang Bolted Steel Connections with 3-D Jacket plates and Tension Rods
US20110280649A1 (en) * 2010-05-11 2011-11-17 William Dewson Architects Inc. Construction joints and related connectors
CN103620128B (en) 2011-02-14 2017-06-30 康斯坦丁·舒海巴 Separate type gusset plate is connected
US8640419B2 (en) * 2011-02-18 2014-02-04 Senvex Co., Ltd. Method of constructing prefabricated steel reinforced concrete (PSRC) column using angle steels and PSRC column using angle steels
US8959867B2 (en) * 2011-03-16 2015-02-24 John A. Schold Systems and methods for constructing a building structure
JP5496152B2 (en) 2011-06-27 2014-05-21 日立Geニュークリア・エナジー株式会社 Combined welding method of laser welding and arc welding of T type joint
CN103452188B (en) * 2012-04-25 2015-07-08 株式会社Drb东一 Steel frame structure using u-shaped composite beam
TWI499707B (en) 2012-05-15 2015-09-11 Univ Nat Taiwan Science Tech A joint structure which lateral deformation is restrained
JP5164294B1 (en) 2012-06-05 2013-03-21 淳致 萬谷 A kit consisting of PCa for forming a solid base rising part.
US9506239B2 (en) * 2012-11-30 2016-11-29 Mitek Holdings, Inc. Gusset plate connection in bearing of beam to column
CA2898340C (en) 2012-11-30 2018-02-13 Mitek Holdings, Inc. Gusset plate connection of beam to column
CN105888059A (en) 2014-12-19 2016-08-24 甘秀明 Annular self-locking joint connecting structure

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2036235A (en) * 1978-11-14 1980-06-25 Menelaou X Assembly of hollow elongate members
US6219989B1 (en) * 1997-09-29 2001-04-24 Shinichi Tumura Construction method of joining column and beam in building structure based on heavy-weight steel frame construction
US20060265992A1 (en) * 2005-05-24 2006-11-30 Minoru Hiragaki Joint structure of iron framework and coupling member for connecting rectangular steel beam to rectangular steel column

Cited By (54)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
USRE48705E1 (en) 2012-11-30 2021-08-24 Mitek Holdings, Inc. Gusset plate connection of beam to column
US11002002B2 (en) * 2013-09-30 2021-05-11 Drew P. HENRY Hollow connector sleeve with interlocking components
US20190106875A1 (en) * 2015-06-03 2019-04-11 Mitek Holdings, Inc. Gusset plate connection of braced beam to column
US11021865B2 (en) * 2015-06-03 2021-06-01 Mitek Holdings, Inc. Gusset plate connection of braced beam to column
US20180245331A1 (en) * 2015-08-25 2018-08-30 Henan Ocar Parker Technology Co., Ltd. Bim-based modular housing built with thin-wall channel steels
US10428515B2 (en) * 2015-08-25 2019-10-01 Henan Auspic Technology Co., Ltd. BIM-based modular housing built with thin-wall channel steels
US10006212B2 (en) * 2015-11-24 2018-06-26 Sheng-Liang Chen Assembled house
US11828056B2 (en) 2017-02-21 2023-11-28 2724889 Ontario Inc. Modular furniture system
US11214954B2 (en) 2017-02-21 2022-01-04 2724889 Ontario Inc. Modular furniture system
US20180238041A1 (en) * 2017-02-21 2018-08-23 Styrc Jacek Modular furniture system
US10858819B2 (en) * 2017-02-21 2020-12-08 2724889 Ontario Inc. Modular furniture system
US20190376272A1 (en) * 2017-02-21 2019-12-12 Styrc Jacek Modular furniture system
US20180291938A1 (en) * 2017-04-11 2018-10-11 Caterpillar Inc. Weld joint assembly
US10859103B2 (en) * 2017-04-11 2020-12-08 Caterpillar Inc. Weld joint assembly
US10626595B2 (en) * 2017-08-19 2020-04-21 Mohammad Ramezani Moment-resisting frame
US20180347172A1 (en) * 2017-08-19 2018-12-06 Mohammad Ramezani Moment-resisting frame
US20190136504A1 (en) * 2017-11-08 2019-05-09 Modular Steel Solutions, LLC Apparatus and systems related to modular construction
USD937444S1 (en) * 2017-11-17 2021-11-30 2724889 Ontario Inc. Connector for modular structure
USD887025S1 (en) 2017-11-17 2020-06-09 2724889 Ontario Inc. Connector for a modular structure
USD936860S1 (en) 2017-11-17 2021-11-23 2724889 Ontario Inc. Connector for a modular structure
USD936244S1 (en) 2017-11-17 2021-11-16 2724889 Ontario Inc. Connector for modular structure
USD929611S1 (en) 2017-11-17 2021-08-31 2724889 Ontario Inc. Connector for modular structure
US20190186150A1 (en) * 2017-12-15 2019-06-20 Platform Manufacturing Group Modular stair system
US10794062B2 (en) * 2017-12-15 2020-10-06 Emeh, Inc. Modular stair system
US20190338529A1 (en) * 2017-12-15 2019-11-07 Platform Manufacturing Group Modular stair system
US10370856B2 (en) * 2017-12-15 2019-08-06 Platform Manufacturing Group Modular stair system
GB2585579B (en) * 2018-02-09 2022-08-10 Conxtech Inc Full moment connection collar systems
US11781308B2 (en) 2018-02-09 2023-10-10 Conxtech, Inc. Full moment connection collar systems
GB2585579A (en) * 2018-02-09 2021-01-13 Conxtech Inc Full moment connection collar systems
WO2019157237A1 (en) * 2018-02-09 2019-08-15 Conxtech, Inc. Full moment connection collar systems
US11236501B2 (en) 2018-02-09 2022-02-01 Conxtech, Inc. Full moment connection collar systems
CN109162348A (en) * 2018-10-17 2019-01-08 苏州昆仑绿建木结构科技股份有限公司 A kind of assembled bamboo hollow frame structure with prestressing force enhancing box beam
US10745901B2 (en) * 2018-11-21 2020-08-18 Steel Worx Solutions LLC System and method of constructing a multi-story building utilizing modular components
US10907343B1 (en) * 2019-02-27 2021-02-02 Qingdao university of technology Prefabricated steel-wood composite joint
US11434633B2 (en) * 2019-05-31 2022-09-06 Charles Post System and associated methods for multistory building construction
US10876282B1 (en) * 2019-09-21 2020-12-29 Qingdao university of technology Fabricated limiting-reinforced steel-wood frosted sleeve composite joint
USD936859S1 (en) 2020-02-04 2021-11-23 2724889 Ontario Inc. Connector
USD952382S1 (en) 2020-02-04 2022-05-24 2724889 Ontario Inc. Table
USD952384S1 (en) 2020-02-04 2022-05-24 2724889 Ontario Inc. Leg
USD938772S1 (en) 2020-02-04 2021-12-21 2724889 Ontario Inc. Connector
USD938771S1 (en) 2020-02-04 2021-12-21 2724889 Ontario Inc. Connector
USD938770S1 (en) 2020-02-04 2021-12-21 2724889 Ontario Inc. Connector
USD939731S1 (en) 2020-08-12 2021-12-28 2724889 Ontario Inc. Connector for a modular structure
USD938068S1 (en) 2020-08-12 2021-12-07 2724889 Ontario Inc. Connector for a modular structure
USD936861S1 (en) 2020-08-12 2021-11-23 2724889 Ontario Inc. Connector for a modular structure
USD938619S1 (en) 2020-08-12 2021-12-14 2724889 Ontario Inc. Connector for a modular structure
USD939106S1 (en) 2020-08-12 2021-12-21 2724889 Ontario Inc. Connector for a modular structure
USD936247S1 (en) 2020-08-12 2021-11-16 2724889 Ontario Inc. Connector for a modular structure
USD936246S1 (en) 2020-08-12 2021-11-16 2724889 Ontario Inc. Connector for a modular structure
USD968656S1 (en) 2020-08-12 2022-11-01 2724889 Ontario Inc. Connector for a modular structure
CN112282050A (en) * 2020-09-21 2021-01-29 泉州市元通科技服务有限公司 Can be to assembled building steel construction of junction locking
CN112832575A (en) * 2020-12-28 2021-05-25 郑勇 Prefabricated assembled concrete building and design method thereof
US20220412072A1 (en) * 2021-05-12 2022-12-29 Arup IP Management Ltd. Connection system for volumetric modular construction
CN115787852A (en) * 2022-11-22 2023-03-14 中国建筑设计研究院有限公司 Rigid connection node connecting structure of cross-shaped supporting column and system thereof

Also Published As

Publication number Publication date
AU2017202780B2 (en) 2022-06-16
EP3241952B1 (en) 2022-06-08
JP7090404B2 (en) 2022-06-24
CA2965456C (en) 2021-11-16
AU2017202780A1 (en) 2017-11-16
JP2017201126A (en) 2017-11-09
EP3241952A1 (en) 2017-11-08
CA2965456A1 (en) 2017-11-02
US11332920B2 (en) 2022-05-17
MX2017005717A (en) 2018-08-20
US20190161956A1 (en) 2019-05-30

Similar Documents

Publication Publication Date Title
US11332920B2 (en) Moment resisting bi-axial beam-to-column joint connection
US10179991B2 (en) Forming column assemblies for moment resisting bi-axial beam-to-column joint connections
US11236502B2 (en) Gusset plate and column assembly for moment resisting bi-axial beam-to-column joint connections
US10094103B2 (en) Gusset plate connection of beam to column
US7637076B2 (en) Moment-resistant building column insert system and method
US11572685B2 (en) Systems and methods for fabrication and use of brace designs for braced frames
KR101920417B1 (en) Seismic retrofit structure
Aninthaneni et al. Conceptual development: Low loss precast concrete frame building system with steel connections
KR102217178B1 (en) Non-welding beam-to-column connection structure with reinforcing plate and through bolt
TWI651453B (en) Column-beam joint structure and steel reinforced concrete column
KR20210077197A (en) Colunm-beam connetion structure
NZ731363A (en) Moment resisting bi-axial beam-to-column joint connection
EP3301235B1 (en) Gusset plate and column assembly for moment resisting bi-axial beam-to-column joint connections
JP2023146343A (en) Building and its construction method
JP4379732B2 (en) Seismic reinforcement method for buildings
KR20240040449A (en) Light gauge steel frame slide joint for unit modular type house and frame structure having thereof
JPH074113A (en) Building equipped with juxtaposed multilayer earthquake-resisting walls
NZ731370A (en) Gusset plate and column assembly for moment resisting bi-axial beam-to-column joint connections
JPH08144302A (en) Frame for underground floor
JP2001193157A (en) Structure of column-beam joining part

Legal Events

Date Code Title Description
AS Assignment

Owner name: MITEK HOLDINGS, INC., DELAWARE

Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:HOUGHTON, DAVID L.;HUYNH, QUANG MINN;RAFEZY, BEHZAD;AND OTHERS;SIGNING DATES FROM 20160504 TO 20160509;REEL/FRAME:038871/0924

AS Assignment

Owner name: MITEK HOLDINGS, INC., DELAWARE

Free format text: CORRECTIVE ASSIGNMENT TO CORRECT THE SECOND INVENTOR NAME PREVIOUSLY RECORDED AT REEL: 038871 FRAME: 0924. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT;ASSIGNORS:HOUGHTON, DAVID L.;HUYNH, QUANG MINH;RAFEZY, BEHZAD;AND OTHERS;SIGNING DATES FROM 20160504 TO 20160509;REEL/FRAME:039048/0022

STPP Information on status: patent application and granting procedure in general

Free format text: FINAL REJECTION MAILED

STCB Information on status: application discontinuation

Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION