Method for assembling a building using concrete columns
11808025 ยท 2023-11-07
Assignee
Inventors
Cpc classification
E04B1/167
FIXED CONSTRUCTIONS
E04B1/20
FIXED CONSTRUCTIONS
International classification
E04B1/20
FIXED CONSTRUCTIONS
Abstract
A concrete and steel insulated building is constructed by forming excavated holes and inserting into each hole a 3-dimensional reinforcing bar cage having a length so as to define reinforcement for a pile and to stand upwardly of the hole to a height above the hole to provide reinforcement for a column having a height of the building wall. The pile is formed by casting concrete into each hole around the cage and setting the material so as to define an upper surface of the pile at or above the ground. With the pile set, a formwork is defined by a series of stacked openable form components standing upwardly and a further body of concrete is cast into the formwork to form the column which is integrated with the pile by the cage. A roof and insulated walls are applied on the building supported by the columns.
Claims
1. A method for constructing a building comprising: forming a plurality of individual excavated holes each separated from and spaced from a next adjacent hole at spaced locations across an area of ground onto which the building is to be placed; inserting into each individual excavated hole a 3-dimensional reinforcing bar cage formed of connected individual bars with the cage having a length so as to extend into the individual excavated hole and so as to stand upwardly of the individual excavated hole to a height above the individual excavated hole; casting into each individual excavated hole a settable material to form a pile around the cage and setting the material so as to define an upper surface of the pile at or above the ground and so as to support the cage standing upward from the ground; with the material set, providing around the upstanding cage a formwork standing upwardly from the upper surface to a position at or adjacent a top of the cage; casting into the formwork and onto the upper surface a settable material to form a column containing the cage and standing upwardly from the upper surface of the pile; providing a roof on the building supported by the columns; and providing a wall of the building by attaching supporting members to the columns and attaching reinforcing boards so as to span between the columns and attaching insulation sheet materials to the supporting members.
2. The method according to claim 1 wherein the roof is supported from the ground only by the columns.
3. The method according to claim 1 wherein the roof is located at a top of the columns so that the columns define a height of the roof from the ground.
4. The method according to claim 1 wherein a beam is located on top of and spans between the columns so as to be carried thereby and extends along a side wall of the building.
5. The method according to claim 4 wherein the beam is metal.
6. The method according to claim 4 wherein the roof is carried on the beam.
7. The method according to claim 1 wherein the pile is cast within a form surrounding the cage.
8. The method according to claim 1 wherein the pile is cylindrical and the column is rectangular with a base of the column sitting on the upper surface of the cylindrical pile.
9. The method according to claim 1 wherein the pile includes additional reinforcing bars surrounding the cage.
10. The method according to claim 9 wherein the additional reinforcing bars are formed as a common structure with the cage for insertion as a common body into the excavated hole.
11. The method according to claim 1 wherein the supporting members are attached to the columns on an exterior surface of the columns so that the insulation sheet materials cover the exterior surface.
12. The method according to claim 1 wherein the supporting members are attached to the columns so that the insulation sheet materials are located between the columns with the exterior surface of the columns remaining exposed.
13. The method according to claim 1 wherein a cast floor is poured for the building up to a stop surface defined at the wall.
14. The method according to claim 1 wherein the formwork is supplied as a plurality of tubular form components which are stacked with one tubular form component on top of a previous tubular form component to create an elongate tubular form surrounding the cage.
15. The method according to claim 14 wherein each tubular form component can be opened to wrap around the cage before being connected to the previous tubular form component.
16. A method for constructing a building comprising: forming a plurality of excavated holes at spaced locations across an area of ground onto which the building is to be placed; inserting into each hole a 3-dimensional reinforcing bar cage formed of connected individual bars with the cage having a length so as to extend into the hole and so as to stand upwardly of the hole to a height above the hole; casting into each hole a settable material to form a pile around the cage and setting the material so as to define an upper surface of the pile at or above the ground and so as to support the cage standing upward from the ground; with the material set, providing around the upstanding cage a formwork standing upwardly from the upper surface to a position at or adjacent a top of the cage; casting into the formwork and onto the upper surface a settable material to form a column containing the cage and standing upwardly from the upper surface of the pile; providing a roof on the building supported by the columns; and providing a wall of the building by attaching supporting members to the columns and attaching reinforcing boards so as to span between the columns and attaching insulation sheet materials to the supporting members; wherein the supporting members are attached to the columns on an exterior surface of the columns so that the insulation sheet materials cover the exterior surface.
17. The method according to claim 16 wherein the formwork is supplied as a plurality of tubular form components which are stacked with one tubular form component on top of a previous tubular form component to create an elongate tubular form surrounding the cage.
18. The method according to claim 17 wherein each tubular form component can be opened to wrap around the cage before being connected to the previous tubular form component.
19. A method for constructing a building comprising: forming a plurality of excavated holes at spaced locations across an area of ground onto which the building is to be placed; inserting into each hole a 3-dimensional reinforcing bar cage formed of connected individual bars with the cage having a length so as to extend into the hole and so as to stand upwardly of the hole to a height above the hole; casting into each hole a settable material to form a pile around the cage and setting the material so as to define an upper surface of the pile at or above the ground and so as to support the cage standing upward from the ground; with the material set, providing around the upstanding cage a formwork standing upwardly from the upper surface to a position at or adjacent a top of the cage; wherein the formwork is supplied as a plurality of tubular form components which are stacked with one tubular form component on top of a previous tubular form component to create an elongate tubular form surrounding the cage; casting into the formwork and onto the upper surface a settable material to form a column containing the cage and standing upwardly from the upper surface of the pile; providing a roof on the building supported by the columns; and providing a wall of the building by attaching supporting members to the columns and attaching reinforcing boards so as to span between the columns and attaching insulation sheet materials to the supporting members.
20. The method according to claim 19 wherein each tubular form component can be opened to wrap around the cage before being connected to the previous tubular form component.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) One embodiment of the invention will now be described in conjunction with the accompanying drawings in which:
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(14) In the drawings like characters of reference indicate corresponding parts in the different figures.
DETAILED DESCRIPTION
(15) The method shown in the drawings for constructing a building includes the steps shown in
(16) A 3-dimensional reinforcing bar cage 12 is formed of connected individual reinforcing bars including longitudinal bars 121 and 122 and transverse bars 123. The longitudinal bars extend from a top end 124 of the cage to the bottom end 125. Preferably the longitudinal bars are continuous along the full length but they can also be connected end to end by welding. The transverse bars can include hoops 126 which surround external ones of the longitudinal bars to hold the structure as an integral 3 dimensional structure. The transverse bars can also include inner hoops which wrap around inner ones of the bars. Simple straight interconnecting transvers bars can also be included to provide additional strength if required. The integrated cage thus formed has a length so as to extend into the hole 10 and so as to stand upwardly of the hole to a height above the hole sufficient to define the reinforcement for the length of the column to be formed. Typical lengths therefore can be 20 feet even up to 50 feet where the pile section might be 20 feet and the column section might be between 10 and 30 feet depending on requirements for the building.
(17) The reinforcing bars in the column section thus form a rectangular cage as best shown in
(18) The additional reinforcing bars located in the pile section thus are formed as a common structure with the cage for insertion as a common body into the excavated hole.
(19) In a second step of the method, a settable material typically concrete is cast into each hole to form a pile around the cage. The concrete is formed into a cylindrical body surrounding the reinforcing bars within the hole and the material is allowed to set with the material filled and levelled to the top of the tube so as to define an upper surface of the pile at or above the ground. The cast material acts to support the cage standing upward from the ground. During installation and casting, the cage is typically supported by suitable supports to hold it vertical such as formwork or a suspension system such as a crane.
(20) With the material in the pile section set, a formwork is created around the upstanding cage standing upwardly from the upper surface to a position at or adjacent a top of the cage. A further body of concrete is cast into the formwork and onto the upper surface to form the column containing the cage and standing upwardly from the upper surface of the pile.
(21) The pile is thus cylindrical and the column is rectangular with a base of the cast column sitting on the upper surface of the cylindrical pile. The structure is integrated and reinforced by the integral cage which extends through both part of the structure.
(22) The structure thus formed is shown in
(23) The building can then be finished as described above using conventional roofing and wall techniques. As shown, a top steel W beam 42 is located at the upper end 41 of the column 40 and is cast into a top concrete cap 43 of the column so as to span from each column to the next. This provides a top flat pad 44 of the W beam along each side of the building onto which roof trusses 50 can be applied. Thus each roof truss has a top chord 51, a bottom chord 52 and intervening webs 53. The top chord 51 has a lower abutment 55 which sits on the top pad of the beam 42.
(24) On top of the chord 51 is applied an insulation layer 56 and a conventional covering 57 typically of seamed steel panels. The roof is thus supported from the ground only by the columns and is located at a top of the columns so that the columns define a height of the roof from the ground. The beam 42 is located on top of and spans between the columns so as to be carried thereby and extends along a side wall of the building.
(25) A wall structure 60 is provided by insulation 61 and a cladding layer 62. The panels 62 are carried on the columns by Z-girts fastened to the columns onto which the panels are mounted. A metal liner panel is attached to the Z girts to form the interior wall surface.
(26) In some cases the supporting members for the wall panels are attached to the columns on an exterior surface of the columns so that the insulation sheet materials cover the exterior surface. In other cases the supporting members are attached to the columns so that the insulation sheet materials are located between the columns with the exterior surface of the columns remaining exposed. In
(27) As shown in
(28) As shown in
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(30) Since various modifications can be made in my invention as herein above described, and many apparently widely different embodiments of same made within the spirit and scope of the claims without department from such spirit and scope, it is intended that all matter contained in the accompanying specification shall be interpreted as illustrative only and not in a limiting sense.