PRECAST CONCRETE BUILDING ELEMENTS AND ASSEMBLIES THEREOF, AND RELATED METHODS
20180282993 ยท 2018-10-04
Inventors
Cpc classification
E04C5/0627
FIXED CONSTRUCTIONS
International classification
E04C5/06
FIXED CONSTRUCTIONS
Abstract
An assembly of concrete structural elements includes a precast concrete lower column, a precast concrete column capital supported on an upper end of the lower column, at least one precast concrete beam supported by the precast column capital, at least one slab supported by the at least one beam, an upper column extending above the lower column, and a poured concrete lap splice connecting the lower and upper columns, a volume of the lap splice being at least partially defined by the lower column, the column capital, the beam, the slab and the upper column. A method of making a lap splice comprises embedding splice reinforcement in each of opposed end of a pair of concrete structural elements such that the splice reinforcement extends out of each approximately as far as the structural reinforcement and overlaps the structural reinforcement within the opposed ends.
Claims
1. An assembly of concrete structural elements comprising: a precast concrete lower column; a precast concrete column capital supported on an upper end of the lower column; at least one precast concrete beam supported on the precast column capital; at least one slab supported by the at least one beam; an upper column extending above the lower column; and a poured concrete lap splice connecting the lower and upper columns; wherein a first portion of the lap splice overlaps with respective reinforcements of the lower column and the upper column, and a second portion of the lap splice extends into an interior volume of the column capital.
2. The assembly of claim 1, wherein a height of the second portion of the lap splice between the lower and upper columns is approximately equal to a combined height of the column capital, the beam and the slab.
3. The assembly of claim 1, wherein the slab is precast.
4. The assembly of claim 1, wherein the slab is cast in place above the at least one beam.
5. The assembly of claim 1, wherein the lap splice includes overlapping column reinforcement and splice reinforcement, the column and splice reinforcement extending from opposing ends of the lower and upper columns and partially overlapping therein.
6. The assembly of claim 5, wherein a length of the overlap between the column and splice reinforcement within the opposing ends of the upper and lower columns is approximately equal to a height of the lap splice between the lower and upper columns.
7. The assembly of claim 6, wherein the height of the lap splice between the lower and upper columns is approximately equal to a combined height of the column capital, the beam and the slab.
8. The assembly of claim 1, further comprising at least one pair of stabilizing connectors extending from opposing ends of the upper and lower columns connected by a splice bar embedded within the lap splice between the lower and upper columns.
9. The assembly of claim 1, further comprising a poured footing supporting a lower end of the lower column.
10. The assembly of claim 9, wherein the poured footing structurally ties the lower column to an underlying slab.
11. An assembly method for concrete structural elements, the method comprising: arranging a precast concrete column capital defining an interior volume on an upper end of a vertical concrete first column such that reinforcement extending from the first column extends into the interior volume of the column capital; supporting at least one precast concrete beam on an edge of the column capital; and pouring the interior volume of the column capital with concrete.
12. The method of claim 11, further comprising attaching support blocks around the upper end of the first column prior to arranging the column capital thereon, the support blocks supporting the column capital.
13. The method of claim 12, wherein the support blocks are adhered to the first column.
14. The method of claim 12, wherein the support blocks are polystyrene.
15. The method of claim 12, wherein the support blocks are braced before supporting the beam on the edge of the column capital and the pouring of the interior volume of the column capital is performed after supporting the beam on the edge thereof.
16. The method of claim 11, wherein a portion of the pouring of the interior volume of the column capital is performed before supporting the beam on the edge thereof.
17. The method of claim 11, further comprising arranging a precast concrete second column above the first column.
18. The method of claim 17, wherein the pouring of the interior volume of the column capital with concrete includes filling a vertical space between the upper end of the first column and a lower end of the second column.
19. A method of making a lap splice between opposed ends of adjacent concrete structural elements having structural reinforcement extending therethrough and out the opposed ends thereof, the method comprising: embedding splice reinforcement in each of the opposed ends such that the splice reinforcement extends out of each approximately as far as the structural reinforcement and overlaps the structural reinforcement within the opposed ends; and bringing the structural elements together such that the ends of the structural reinforcement and the splice reinforcement extending from the opposed ends overlap.
20. The method of claim 19, wherein a length of overlap between splice reinforcement and structural reinforcement embedded in the opposed ends is approximately equal to a length overlap of the exposed splice reinforcement and structural reinforcement.
21. The method of claim 19, further comprising arranging additional splice reinforcement within the overlap of the structural reinforcement and splice reinforcement between the opposed ends.
22. The method of claim 21, wherein a length of the additional splice reinforcement is approximately equal to a length overlap of the exposed splice reinforcement and structural reinforcement.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0022] According to an embodiment of the present invention, referring to
[0023] The precast concrete structural elements include a lower column 14, a column capital 16, beams 20, slabs 22 and upper column 24. A poured footing 26 supports a lower end of the lower column 14. With reference to
[0024] Referring to
[0025] Referring to
[0026] To support the column capital 16 before it is permanently tied to the lower column 14 and the rest of the assembly 10, support blocks 42 are glued or otherwise secured around an upper end of the lower column 14. The support blocks 42 can be made of polystyrene or other suitable material. When no longer needed, the support blocks 42 can be removed, or alternately, left in place with some finish applied thereto. To facilitate visibility, the support blocks 42 are shown extending to the edges of the column capital 16; however, this is not a design requirement. The support blocks 42 can be much smaller than the footprint of the column capital 16. Strengthening the holding power of the support blocks 42 can be performed by wrapping cellophane or other substance acting as a belt around them.
[0027] Referring to
[0028] Referring to
[0029] Referring to
[0030] The upper column 24 is arranged above the lower column 14, with upper column reinforcing 60 extending downwardly therefrom. From the foregoing, it will be appreciated that the lower column 14, column capital 16, beams 20 and slabs 22 both offer support for the upper column 24 and serve as a form for the space that needs to be poured to complete a lap splice between the respective reinforcement 32, 60. Thus, little or no additional formwork need be added, and the upper column 24 need only be lowered into the location shown in
[0031] For clarity of the illustrations, the reinforcement 32, 60 of the upper and lower columns 14, 24 is not shown in detail and every reinforcement element is not necessarily shown. Referring to
[0032] Each element of splice reinforcement 72, 74 overlaps its respective column reinforcement 32, 60 by the entire required splice length 76. Approximately one-half 80 of the overlap is within the respective column 14, 24, and one-half 82 of the overlap is outside. Thus, the effective exposed distance over which the column reinforcement 32, 60 and splice reinforcement 72, 74 is approximately one-half the full required splice length 76. An approximately 50% reduction in the required spacing for the lap splice 70 is achieved. Further reductions could be achieved by using larger diameter rebar for the splice reinforcement 72, 74 and/or by employing additional, shorter splice reinforcement sections 78 in the space 82 between the columns 14, 16. Preferably, an element of splice reinforcement 72, 74, 78 is supplied for each element of column reinforcement 32, 60.
[0033] The substantial reduction in effective lap splice 70 length achieved by the present invention can work synergistically with the assembly 10. In particular, the height of the column capital 16, beams 20 and/or slabs 22 can readily be adjusted to closely match the effective lap splice 70 length, making tying together of structural elements via a lap splice much simpler.
[0034] While the present invention can significantly reduce the required splice length, and allow other structural elements to serve as formwork for the lap splice, it may still be desirable to provide additional stability to the upper column 24 while the lap splice 70 is being poured. Referring to
[0035] Only two pairs of connectors 84 are shown in
[0036] In general, the foregoing description is provided for exemplary and illustrative purposes; the present invention is not necessarily limited thereto. Rather, those skilled in the art will appreciate that additional modifications, as well as adaptations for particular circumstances, will fall within the scope of the invention as herein shown and described and the claims appended hereto.