METHOD OF MODULAR BUILDING CONSTRUCTION
20240301677 ยท 2024-09-12
Inventors
Cpc classification
E04B1/3211
FIXED CONSTRUCTIONS
E04B2001/0061
FIXED CONSTRUCTIONS
International classification
Abstract
A modular building system and method of construction that includes the steps of: assembling a structure to create a framework as part of a series of modular assemblies; arranging at least one dome, where the at least one dome includes the modular assemblies, and wherein the framework supports the at least one dome; creating four quadrants within each dome which creates a domed hemisphere, wherein each quadrant shape consists of at least three equal edges in a 90-degree arc; designing a first chord factor, second chord factor and a third chord factor associated respectively with a first chord length, a second chord length and a third chord length for each quadrant, where the chords are edge lengths that determine a radius of each dome and said edge length equals a chord factor multiplied by a desired dome radius; and attaching modular connectors along edges of the modules and the modular connectors enable the connection of the modular assemblies, further where each of modular connector includes square openings positioned in the center of each modular connector.
Claims
1. A method for constructing a modular building system comprising the steps of: a. creating a framework of modular assemblies, where the modular assemblies include modules; b. implementing panels within the modules to create a building structure; c. arranging at least one dome including the modular assemblies, and wherein the framework supports the at least one dome; d. arranging four quadrants within each dome to create a domed hemisphere, wherein each quadrant shape consists of at least three equal edges in a 90-degree arc; e. designing a first chord factor, second chord factor and a third chord factor associated respectively with a first chord length, a second chord length and a third chord length for each quadrant, where the chords are edge lengths that determine a radius of each dome and said edge length equals a chord factor multiplied by a desired dome radius; and f. attaching modular connectors along edges of the modules and the modular connectors enable the connection of the modular assemblies, further where each of modular connector includes square openings positioned in the center of each modular connector.
2. The method of constructing a modular building system according to claim 1 further including the step of implementing metal channels into the framework used to adjoin members of the frame.
3. The method of constructing a modular building system according to claim 1 further including the steps of: defining an inner surface, an outer surface, insulation within the framework and a panel connector between the inner surface and the outer surface for each of the modules.
4. The method of constructing a modular building system according to claim 1 further including the steps of: a. implementing a series of holes along a top edge of each modular connector; and b. implementing a series of holes along a bottom edge of each modular connector.
5. The method of constructing a modular building system according to claim 1 further including the step of chamfering each corner of each modular connector.
6. The method of constructing a modular building system according to claim 1 further including the steps of creating two specific dome shapes for the modular building system.
7. A modular system for constructing a building comprising: a. modules for a continuous structural framework for the building, wherein the modules consist of a frame, frame corner connectors, panels, panel connectors, and can contain windows, doors or other architectural elements; b. two domes adapted to be compatible with the modular system and building construction; c. creating four quadrants within each dome which creates a domed hemisphere, wherein each quadrant shape consists of at least three equal edges in a 90-degree arc; and d. attaching modular connectors along edges of the modules and the modular connectors enable the connection of the modular assemblies, further where each of modular connector includes square openings positioned in the center of each modular connector.
8. The modular system according to claim 7, where the modules include metal channels into the framework and said metal channels are used to adjoin members of the frame.
9. The modular system according to claim 7, further including an inner surface, an outer surface and insulation within the framework and a panel connector between the inner surface and the outer surface for each of the modules.
10. The modular system according to claim 7 further including: a. a series of holes along a top edge of each modular connector; and b. a series of holes along a bottom edge of each modular connector.
11. The modular system according to claim 7 further including a chamfer on each corner of each modular connector.
12. The modular system according to claim 7 further including two specific dome shapes for the modular building system.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
[0014] The present invention relates to a modular building system that provides a system for simplified construction, expansion and renovation of buildings. The modular system of the present invention creates a system that easily provides a framework for building construction. The modular system according to the present invention includes components that are manufactured and then erected at the construction site in an efficient manner. The modular system according to the present invention includes two basic components: 1) modular assemblies (modules), and 2) module connectors that connect the modules together, forming an entire structure. This modular system allows for a predictable, efficient, and simple method of quickly erecting structures, both for exterior and interior walls.
[0015] With respect to
[0016]
[0017]
[0018]
[0019] In reference to
[0020] The module connector 632 that allows the means for connecting the modules together is shown in
[0021] The present modular construction system includes two exemplary designed dome shapes. (4) quadrants comprise a domed hemisphere. The first quadrant shape consists of (3) equal edges in a 90-degree arc. The second quadrant shape consists of (6) equal edges in a 90-degree arc. As a dome radius can vary, the edge lengths, called chords, will also vary. The constant of in each formula is the chord factor. These chord factors multiplied by the desired dome radius gives the chord lengths of a given module edge length. The advantages of these specifically designed dome shapes, are equal perimeter edges, and 90-degree quadrants allowing for a compatible interface with existing conventional construction methods. Quadrant 3 has (3) various chord lengths, and (3) different triangular modules. Quadrant 6 has (9) various chord lengths, E & J being equal, and (9) different triangular modules (some of these are mirrored).
TABLE-US-00001 Letter Dome Chord Chord Quadrant 3 Radius 3 Factors 3 Lengths 3 A 85.0015 0.51764 44.000 B 85.0015 0.70711 60.105 C 85.0015 0.65012 55.261
Chord Length=Dome Radius*Chord Factor
[0022]
[0023]
[0024] The following chart shows these relationships and formulas for quadrant 6.
TABLE-US-00002 Letter Dome Chord Chord Quadrant 6 Radius 6 Factors 6 Lengths 6 A 168.5485 .26105 44.000 B 168.5485 .36603 61.693 C 168.5485 .29973 50.519 D 168.5485 .36138 60.910 E 168.5485 .32988 55.601 F 168.5485 .30025 50.606 G 168.5485 .35024 59.033 H 168.5485 .34945 58.899 I 168.5485 .30067 50.677 J 168.5485 .32988 55.601
Chord Length=Dome Radius*Chord Factor
[0025]
[0026] This instance of the invention has been shown and described in what it considers to be the most practical and preferred embodiments. It is recognized, however, that departures may be made there from within the scope of the invention and that obvious modifications will occur to a person skilled in the art.