Bamboo Pole Connectors for Building Construction
20170241127 · 2017-08-24
Assignee
Inventors
Cpc classification
Y10T403/5766
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
The present invention provides a construction system for connecting bamboo segments or poles together, where the segments or poles have non-uniform diameters. The system includes elbow connectors, sleeve connectors, T-shaped connectors and six cavity connectors. Also, part of the connectors include connector segments including an opening defined by a plurality of opposingly located arms separated by one or more channels, and at least one hoop-compression clamp adapted to be positioned around the arms. The arms and hoop-compression clamp cooperate to compress the arms against the bamboo segment to secure bamboo segment within the connector opening.
Claims
1. A construction system for connecting two or more building materials having non-uniform diameters together comprising: a connector having a body that connects two opposingly located connector segments; and said connector segments including an opening adapted to receive and form a friction fit with building materials having non-uniform diameters.
2. The construction system of claim 1 wherein said opening of said connector segments is defined by a plurality of opposingly located arms separated by one or more channels; at least one hoop-compression clamp adapted to be positioned around said arms; and said arms and a hoop-compression clamp cooperate to compress said arms against the building material to secure the building material within said opening.
3. The construction system of claim 2 wherein said opening is tapered from broad, at the distal end, to narrow at the proximal end, to create a friction fit with the building material.
4. The construction system of claim 2 wherein said arms are adapted to contract producing a compressive friction force on the building materials.
5. The construction system of claim 4 wherein said channels include a scalloped section adapted to permit said arms to contract inwardly.
6. The construction system of claim 1 wherein said body includes a rigid portion located between said connector segments, said connector segments are collinear.
7. The construction system of claim 1 wherein one or more of said openings have different diameters.
8. The construction system of claim 1 wherein said body positions said connector segments into an elbow connector.
9. The construction system of claim 1 wherein said body positions said connector segments into a T-shaped connector.
10. The construction system of claim 1 wherein said body connects six connector segments.
11. The construction system of claim 11 wherein said six connector segments are located at 90-degrees to one another.
12. The construction system of claim 12 wherein at least one of said six connector segments has a larger opening that the other segments.
13. The construction system of claim 1 further including a plurality of panel clamps.
14. The construction system of claim 14 wherein said panel clamps include a plug sized to fit within a building material segment.
15. The construction system of claim 15 wherein said plugs are tapered or conical.
16. The construction system of claim 16 wherein said plugs are made of a deformable material.
17. The construction system of claim 1 further including a foundation anchor, said foundation anchor including a body and a connector segment.
18. The construction system of claim 1 further including a plurality of foundation anchors; each of said foundation anchors having a sleeve and an expansion and compression slot defining an opening, said opening adapted to receive the building material; a clamp for compressing said sleeve against said building material; and a plurality of anchor holders adapted to receive reinforcing rod.
19. The construction system of claim 1 wherein said body connects three beams and one column.
20. The construction system of claim 1 wherein said body connects three beams and two columns.
21. A construction system for connecting bamboo segments having non-uniform diameters together comprising: a plurality of sleeve connectors, each sleeve connector comprising: a body that connects opposingly located connector segments, at least one of said connector segments including an opening defined by a plurality of opposingly located arms separated by one or more channels, at least one hoop-compression clamp adapted to be positioned around said arms, and said arms and said at least one hoop-compression clamp cooperate to compress said arms against the bamboo segment to secure the bamboo segment within said opening; a plurality of elbow connectors, each elbow connector comprising: a body that connects opposingly located connector segments, at least one of said connector segments including an opening defined by a plurality of opposingly located arms separated by one or more channels, at least one hoop-compression clamp adapted to be positioned around said arms, and said arms and said at least one hoop-compression clamp cooperate to compress said arms against the bamboo segment to secure the bamboo segment within said opening; a plurality of T-shaped connectors, each T-shaped connector comprising: a body that connects opposingly located connector segments, at least one of said connector segments including an opening defined by a plurality of opposingly located arms separated by one or more channels, at least one hoop-compression clamp adapted to be positioned around said arms, and said arms and said at least one hoop-compression clamp cooperate to compress said arms against the bamboo segment to secure the bamboo segment within said opening; a plurality of connectors having a body that connects six opposingly located connector segments at right angles to one another, at least one of said connector segments including an opening defined by a plurality of opposingly located arms separated by one or more channels, at least one hoop-compression clamp adapted to be positioned around said arms, and said arms and said at least one hoop-compression clamp cooperate to compress said arms against the bamboo segment to secure the bamboo segment within said opening; a plurality of panel clamps, said panel clamps include a plug sized to fit within a bamboo segment or have connector segments adapted to secure a bamboo segment; and a plurality of foundation anchors, each of said foundation anchors having a sleeve and an expansion and compression slot defining an opening, said opening adapted to receive a bamboo segment and a clamp for compressing said sleeve against said bamboo segment, and a plurality of anchor holders adapted to receive a reinforcing rod.
22. The construction system of claim 21 wherein said slots in a set of connectors are staggered around the opening of the connector.
Description
DETAILED DESCRIPTION OF THE INVENTION
[0025] Detailed embodiments of the present invention are disclosed herein; however, it is to be understood that the disclosed embodiments are merely exemplary of the invention, which may be embodied in various forms. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a representative basis for teaching one skilled in the art to variously employ the present invention in virtually any appropriately detailed method, structure or system. Further, the terms and phrases used herein are not intended to be limiting, but rather to provide an understandable description of the invention.
[0026] The connectors of the present invention accept the natural, non-uniform geometry of a bamboo pole or segment, as well as other natural materials, which is cylindrical, and they provide rigidity and bending moment transfer without the need for screws, bolts, nails, or other attachment devices. Moreover, the present invention may be used with building materials having non-uniform diameters from one end to the other. Attachment of the material is secured by the use of clamping segments 10 and 20 as shown in
[0027] In a preferred embodiment, which is described for use with a bamboo pole for illustrative purposes only, a clamping segment uses a combination of hoop compression and/or internal friction to secure a bamboo segment to a connector as described in detail below.
[0028]
[0029] Clamp 54 is a hoop-compression clamp that further binds the segment to the connector as result of urging arms 51 and 52 against bamboo segment 40. The use of at least one channel or slit 53 permits the arms to contract inwardly to create a rigid connection. In addition, other channels or slits may be provided as well. Similarly constructed connector segment 20 secures bamboo segment 42 in place.
[0030]
[0031] In use, a bamboo segment or pole is inserted into opening 155 until it becomes wedged in place by a friction fit. Opening 155 may be tapered from broad to narrow, as described above, to promote a friction fit. A hoop-compression clamp that further binds the segment to the connector as result of urging arms 151 and 152 against a bamboo segment may be used. The use of at least one channel or slit permits the arms to contract either inwardly or outwardly. In addition, other channels or slits may be provided as well. Similarly constructed connector segment 123 secures a bamboo segment in place.
[0032]
[0033]
[0034]
[0035] Bamboo segments 480 and 482 may be secured to the connectors by a friction fit and/or hoop-compression as described above. In other embodiments of the present invention, the diameter of a particular connector segment may be larger than the diameter of the other connectors segments to accommodate larger structural members if needed.
[0036] Also provided is foundation anchor connector 470 that has a body 471 adapted to be secured in place in a concrete foundation 472 during pouring. A connector segment 473 of a construction described above and shown in
[0037]
[0038] As shown in
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045] The present invention provides many benefits over the prior art, including, but not limited to: low manufacturing cost and low labor costs, as well as no precision is required in the connection hardware since the present invention may accommodate segments or poles having variable diameters; significant moment-resisting cross-sections at all joints is provided by clamps made from a rigid material such as light gauge steel or epoxy material as well as all materials known to those of skill in; a plurality of diameter bamboo poles intersection at any joint in a structure; does not penetrate the bamboo cross-section in any way; requires no bolts, screws, nails, or other attachment devices; and does not involve glues that are applied with high-heat to the bamboo cross-section or the bamboo material.
[0046] In an alternate embodiment, the present invention may be used to create structures from other natural building materials that do not have uniform dimensions. These materials include but are not limited to logs and planks obtained from trees.
[0047] In an alternate embodiment, the present invention provides connectors for connecting bamboo poles and/or other non-uniform materials to standard building materials such as standard wall, floor, and ceiling panels. This allows buildings and materials not constructed of bamboo to connect to the network of connected load supporting or loadbearing bamboo poles. This alternate embodiment of the present invention allows standard-design (wood, wallboard, aluminum, etc.) panels for walls, floors, and ceilings without alterations to be connected to or used on a frame consisting of bamboo beams and columns. This alternate embodiment provides benefits over prior art, specifically, but not limited to: no penetrations in the bamboo because of nails, screws, bolts, or other attachment mechanisms are required; accounts for the non-uniform cylindrical properties of the bamboo poles; and uses hoop-compression and friction as the physical mechanisms for the connections.
[0048] In yet other embodiments, the location of the slots in the bamboo pole connectors may be aligned along the neutral axis of the cross-section over which the bending stresses are minimal. On beams, under the influence of vertical loads this is the horizontal axis (on a clock at position 3 o'clock and 9 o'clock). For columns, which tend to be loaded in two directions (due to wind or earthquake loads), the connector slots would still be on the neutral axis which has the smallest bending stresses, but adjacent columns in the building could have their connector slots oriented along the perpendicular axis (at positions of 6 o'clock and 12 o'clock), where each column along a row of columns would have the connector slots placed along different neutral axes in an alternating manner to give rigidity to the whole structure in each of the two directions. In yet other embodiments, the connectors may be configured to aid in locating the slots along different neutral axes. For example, in some connectors, the slots may be located at various locations or positions around the connector, e.g., 6 o'clock and 12 o'clock and 3 o'clock and 9 o'clock. This staggering or alternating the location of the slots may be employed in the elbow, T-shaped and other connectors described herein. In other words, for sets of the same connectors, the locations or positions of the slots in a set of connectors are staggered around the opening of the connector.
[0049] While the foregoing written description enables one of ordinary skill to make and use what is considered presently to be the best mode thereof, those of ordinary skill will understand and appreciate the existence of variations, combinations, and equivalents of the specific embodiment, method, and examples herein. The disclosure should therefore not be limited by the above described embodiments, methods, and examples, but by all embodiments and methods within the scope and spirit of the disclosure.