CONNECTION SYSTEM FOR VOLUMETRIC MODULAR CONSTRUCTION
20220412072 · 2022-12-29
Assignee
Inventors
Cpc classification
E04B1/2403
FIXED CONSTRUCTIONS
International classification
Abstract
A modular unit connection system for jointing together pre-fabricated rectangular modular building units to form a multistory building. The building units can be completely fitted out and this connection system allows for positive structural connection using liquid grout filled columns, without bolting or welding and without the requirement for access to the connections from inside the pre-finished building module interiors. The four corner columns of the box-shaped modules are steel square hollow sections. This connection system uses a unique connector tube passing from the bottom of the column above, through a horizontal connector plate containing a guidance system and into the top of the hollow column below, and then a system of grouting the inside of the column, from an access position on top the upper most module to form the final positive structural connection.
Claims
1) A modular building column connection comprising: a concrete or grout infill inside a composite hollow steel section column; where the composite hollow steel section column comprises an internal steel protrusion from an upper column to a lower column; and which creates a structural load path for tension and shear between building modules.
2) A modular building column connection comprising: a concrete or grout infill inside a composite hollow steel section column; where the composite hollow steel section column comprises an internal steel protrusion from an upper column to a lower column; a prong; and which creates a structural load path for tension and shear between building modules.
3) A method for a modular unit connection system; comprising jointing together pre-fabricated rectangular modular building units; wherein the pre-fabricated rectangular modular building units form a multistory building; and where the building units can be completely fitted out liquid grout filled columns.
4) The method of claim 3 wherein the need for bolting or welding is eliminated.
5) The method of claim 3 wherein the requirement for access to connections from inside pre-finished building module interiors is eliminated.
6) The modular building column connection of claim 1, wherein the modules are box shaped and contain 4 corner columns.
7) The modular building column connection of claim 6 wherein the 4 corner columns are steel square hollow sections.
8) The modular building connection of claim 1, further comprising structural framing of the modules side walls, floor and ceiling.
9) The modular building connection system of claim 1, further comprising a connector tube passing from the bottom of the columns above and through a horizontal connector plate containing a guidance system and into a top region of the hollow column.
10) The modular building connection system, wherein a system of grouting of the columns from the inside from an access position located on top of an upper most region of the module whereby forming a final positive structural connection.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0046] The connection system can be employed in a variety of module designs, so long as those modules have columns along their sides or corners adjacent to a neighboring module's column. The size and shape of the in-fill beams can vary depending on the use of the module and the building's stability system. The connection system can perform as part of gravity only resisting modules, where the building has a separate lateral system, or the connection can perform as part of modules that provide the building's lateral system. The connection of beams to the column and any other in-fill framing is not discussed here since it is not part of the embodiments. For the purposes of this provisional application all diagrams shall only show the module's columns and shall omit all other beams and framing for clarity.
[0047] Referring to
[0048] Referring to
[0049] A plastic grout tube (202) is positioned inside of the column (2) creating a downward delivery path for grout inside the tube, and an upward exit path for the grout in the annulus between the tube and the column wall (203) The top of the grout tube is threaded so an operator can reach down and screw on a matching temporary extension pipe (501) from a grout pump. The tube stops at an elevation lower than the top of the column so that it does not clash with the anchor prong (205) from the column above.
[0050] The anchor prong (205) is a steel tube that is connected to the bottom of the grout pipe (202) to continue the delivery path for the grout. It is welded via the gusset plates (204) to the inside of the steel column (200). When the column is in tension, the steel prong transfers tension from the steel column (via the gusset plates) to the prong head (206). The tube also is the means of delivering the wet grout to the connection in a controlled way. (See grouting procedure,
[0051] The guidance nubs (301) are an integral part of the horizontal connector plate (300) and are used to guide the next module above into position as it is lowered on the crane. The tapered guidance fins of the module above (208) will contact these guidance nubs as the module is lowered on the crane and will force the module into the connect position relative to the horizontal connection plate.
[0052] The guidance fin plates (208) contact against the guidance nubs (301) to bring the module above into the correct position relative to the horizontal connector plate. The presence and location of fins on each of the 4 corner columns of a module will vary as per the pattern shown in
[0053] Referring to
[0054] Method of installation is discussed in the following paragraphs.
[0055] The foundation, or podium, of the building is typically of conventional construction. At the transition point to modular construction, short stub-columns which are a repeat of the top portion of a column assembly are fixed to the conventional structure in a way that is engineered for the specific forces transferred. Above the foundation the connection embodiment enables cyclical repetitive construction as follows. This description starts at a point where a level of modules has been placed and the connections at their base have been grouted (500), as per
[0056] Step 1—Survey and Shim. The tops of the columns are surveyed to understand their positional tolerance. Shims are placed on top of the columns as required.
[0057] Step 2. The horizontal connector plate (300) is placed on top of the columns and positioned (
[0058] Step 3. The module above is lowered down by crane (
[0059] Step 4. Once the crane is released, operators can stand on the roof of the module. They can visually inspect down each column via the annulus space (502) (
[0060] Step 5—Repeat Step 1.
[0061] Note that since the grout is only required for tension loads in the permanent building that are not present during construction, the grout does not have to have cured before the next module is stacked. The temporary compression forces can be carried via the steel columns alone. The following paragraphs contain a description of the structural load path through the connection. The grout is a key part of the structural load paths. It is the grout that is performing the role that it typically that of bolts and welds in conventional construction. It is the grout (being applied as a liquid) that can manage the tolerance requirements too.
[0062] Referring to
[0063] Referring to
[0064] In another embodiment, stiffener plates (601) may be added into the column. These provide additional attachment points to the flanges of beams (602) that can allow for moment continuity between beams and the columns. Without the stiffener plates, the beam webs may still be connected in a shear and axial connection arrangement with less moment resistance.
[0065] The descriptions of the various embodiments of the present invention have been presented for purposes of illustration, but are not intended to be exhaustive or limited to the embodiments disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art without departing from the scope and spirit of the described embodiments. The terminology used herein was chosen to best explain the principles of the embodiments, the practical application or technical improvement over technologies found in the marketplace, or to enable others or ordinary skill in the art to understand the embodiments disclosed herein.
[0066] When introducing elements of the present disclosure or the embodiments thereof, the articles “a,” “an,” and “the” are intended to mean that there are one or more of the elements. Similarly, the adjective “another,” when used to introduce an element, is intended to mean one or more elements. The terms “including” and “having” are intended to be inclusive such that there may be additional elements other than the listed elements.
[0067] Although this invention has been described with a certain degree of particularity, it is to be understood that the present disclosure has been made only by way of illustration and that numerous changes in the details of construction and arrangement of parts may be resorted to without departing from the spirit and the scope of the invention.