INTERLOCKING BUILDING BLOCKS AND MORTARLESS INTERLOCKING BUILDING SYSTEM
20220064941 · 2022-03-03
Inventors
Cpc classification
E04B2/18
FIXED CONSTRUCTIONS
E04C1/00
FIXED CONSTRUCTIONS
E04B2002/0236
FIXED CONSTRUCTIONS
E04B2/26
FIXED CONSTRUCTIONS
A63H33/08
HUMAN NECESSITIES
International classification
E04B2/18
FIXED CONSTRUCTIONS
E04B2/26
FIXED CONSTRUCTIONS
Abstract
A building system comprising at least one block of claim 1 and further including at least one mortarless side panel including a finished outside surface and at least one dovetail protrusion on an opposing surface for joining the side panel to the at least one blocks, and a connector on each end of the panel for joining the side panel to other side panels, and at least one top cap including a finished top surface.
Claims
1. A mortarless interlocking building block for constructing walls and/or partitions of a building comprising: a solid moulded plastic body having a front face, a rear face, opposed top and bottom faces and opposed end faces, the opposed front and rear faces being substantially identical and including at least two vertically extending dovetail protrusions defining a dovetail recess for matingly receiving a dovetail protrusion of another building component, one of the opposed end faces having at least one vertically extending recess and the other of the end faces having at least one vertically extending protrusion for mating with a recess of another building block to interconnect adjacent blocks in end-to-end relation, and the face having at least two tubular protrusions and the bottom face having at least two tubular recesses to lock stacked building blocks.
2. The block of claim 1, further including at least one channel for receiving wiring, piping or reinforcement.
3. The block of claim 2, wherein the corners of the dovetails are rounded.
4. The block of claim 3, wherein the edges of the vertically extending protrusions are rounded.
5. The block of claim 4, wherein the edges of the tubular recesses are chamfered.
6. The block of claim 5, wherein the solid material in the block comprises a mixture of a plastic and an aggregate.
7. The block of claim 6, wherein the plastic is a recycled plastic and the aggregate is a recycled aggregate.
8. A building system comprising at least one block of claim 1 and further comprising: at least one mortarless side panel including a finished outside surface and at least one dovetail protrusion on an opposing surface for joining the side panel to the at least one blocks, and a connector on each end of the panel for joining the side panel to other side panels, and at least one top cap including a finished top surface.
9. A method of manufacturing mortarless building blocks, comprising the steps of: comminuting recycled materials, mixing comminuted materials, heating the comminuted mixture, compressing the comminuted mixture, moulding the comminuted mixture, and cooling the comminuted mixture.
10. The method of claim 9, wherein the compressing step is carried out using an auger.
Description
BRIEF DESCRIPTIONS OF DRAWINGS
[0007] For the purpose of illustrating the invention, the drawings show aspects of one or more embodiments of the invention. However, it should be understood that the present invention is not limited to the precise arrangements and instrumentalities shown in the drawings, wherein:
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DETAILED DESCRIPTION
[0026] With reference to
[0027] Referring initially to
[0028] Referring to
[0029] Referring to
[0030] The finished surfaces of the side panel and the top cap can be finished with a wide range of finishes including, but not limited to, insulation, stone textures, solar voltaic integration, or any other integration with the corresponding interlocking system.
[0031] Referring to
[0032] The building blocks 50, 60 and 2 may be joined end to end by the end dovetail protrusions in corresponding end dovetail recesses in adjacent building blocks as illustrated in
[0033] A building block according to another embodiment of the present invention is illustrated in
[0034] A building systems according to embodiments of the present invention can include a kit of building blocks, side panels and top caps, such as the kit of building components illustrated in
[0035] Building systems according to embodiments of the present invention do not require cutting, and adhesives are optional, depending on the application. Systems of the present invention can be assembled to form walls of a house or building as for example generally illustrated in
[0036] The present invention in another embodiment relates to a method of manufacture of the building components using a composite material. Referring to FIG. 18, in one embodiment, the method of forming the composite mixture material includes step 100 comminuting recycled materials including a recycled polymer material and a recycled aggregate, step 200 mixing the comminuted materials, step 300 heating the mixed materials to a temperature to melt the polymeric material to form a fused together composite material, step 400 applying a compressive stress load to the composite mixture prior to solidification, step 500 moulding the mixture and step 600 cooling the mixture. In one embodiment, the comminuted recycled materials are fed through a large format (2″ diameter or greater) heated auger or heated screw which mixes, compresses and heats the mixture across a heat spectrum from about 200° C. to about 280° C. In one embodiment, the spacing between the auger blades decreases down the line such that the composite mixture can be progressively compressed. The resulting hot mixture is then put into a mould using one of several conventional methods such as injection moulding, extrusion moulding, or press moulding, as each component of the present system may require. The heated mixture is cooled naturally and/or artificially.
[0037] In another embodiment, mixtures according to embodiments of the present invention are heated to a temperature in the range of about 190° C. to about 450° C., in a further embodiment, mixtures are heated to a temperature in the range of about 190° C. to about 280° C., and in a still further embodiment, mixtures are heated to a temperature in the range of about 300° C. to about 450° C. In a still further embodiment, shredded nylon rope can be used in a mixture according to the present invention to strengthen it. In a still further embodiment, a mixture including shredded nylon rope can be heated to a temperature in the range of about 190° C. to about 280° C.
[0038] Systems of the present invention can also be adapted to be easily incorporated into autonomous construction.
[0039] Building components according the embodiments of the present invention can be made from a composite material including of a wide range of recycled thermal plastics, including but not limited to PE, PET, and PS which are ground to about ¼ inch particles and then blended with other ground up waste aggregates, including but not limited to, recycled concrete, brick, and/or glass. UV inhibitors and fire inhibitors as well as stabilizing agents can be added as they are needed (up to 10%). In embodiments of the present invention, the building blocks are solid other than for the conduits discussed above.
[0040] The present invention in another embodiment relates to a method of manufacture of the building components using a composite material. In one embodiment, the method of forming the composite mixture material includes comminuting recycled materials including a recycled polymer material and a recycled aggregate, mixing the comminuted materials, heating the mixed materials to a temperature to melt the polymeric material to form a fused together composite material, and applying a compressive stress load to the composite mixture prior to solidification. In one embodiment, the comminuted recycled materials are fed through a large format (2″ diameter or greater) heated auger or heated screw which mixes, compresses and heats the mixture across a heat spectrum from about 200° C. to about 280° C. In one embodiment, the spacing between the auger blades decreases down the line such that the composite mixture can be progressively compressed. The resulting hot mixture is then put into a mould using one of several conventional methods such as injection moulding, extrusion moulding, or press moulding, as each component of the present system may require. The heated mixture is cooled naturally and/or artificially.