CA2869050C - Moment-resisting joint and system - Google Patents
Moment-resisting joint and system Download PDFInfo
- Publication number
- CA2869050C CA2869050C CA2869050A CA2869050A CA2869050C CA 2869050 C CA2869050 C CA 2869050C CA 2869050 A CA2869050 A CA 2869050A CA 2869050 A CA2869050 A CA 2869050A CA 2869050 C CA2869050 C CA 2869050C
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- Canada
- Prior art keywords
- chord
- connector node
- transferring assembly
- framing member
- channel
- Prior art date
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- Bridges Or Land Bridges (AREA)
- Joining Of Building Structures In Genera (AREA)
- Rod-Shaped Construction Members (AREA)
Abstract
Description
Field of the Invention
Background of the Invention
4,965,903/6,308,357 / 6,631,530 and 5,924,152.
[0006] Most of the time, fusion welding is employed to assemble such structures.
However, it is well known in literature that aluminum fusion welding partially anneals the weld zone by creating a heat-affected-zone on the base metal which decreases its ultimate and yield strengths (example can be read in Dispersoid-Free Zones in the Heat-Affected Zone of Aluminum Alloy Welds--B. C. MEYER, H. DOYEN, D.
Priority date: 12 May 2005 Pending USPTO: 60/679,884 Revision : -Date = 2007/11/05 EMANOWSKI, G. TEMPUS, T. HIRSCH, and P. MAYR). The present invention allows the fabrication of such structure using the full strength of aluminum because no welding for the main bearing structure would be required anymore. As an additional feature, the invention could allow anodizing, bake paint finished and easy transportation of all components to the erection site. The fabrication of all components could also be made by numerically controlled technologies that could increase accuracy as well as minimizing the fabrication time. Most of these additional features are not always possible for conventional aluminum welded structures since large structures request special transportation or would not fit into anodizing baths or on automated bake paint lines.
Objects of the Invention
_ ' = Avoiding the creation of a heat-affected-zone for the main bearing elements;
= No certified welders are required to assemble the structure;
= Very long span possible due to the light weight of aluminum;
= Allowing architectural finishes such as anodizing, bake paint finishes and others;
= Pre-engineered structures that minimize the engineering design costs;
= Off-the-shelf elements that allow a structure to be shipped within few working days compared to weeks or months for a regular welded structure;
= Pre-fabricated elements with numeric controlled technologies reduces labour costs and poor accuracy;
= Decreasing assembly costs because the structure can be assembled quickly with minimal labour as well as a minimum number of fasteners;
= Ease of transportation (or exportation) allows all elements to be shipped on regular bundles or pallets independently of the final size of the complete structure.
Summary of the Invention [0013A] According to one aspect, the present invention relates to a moment transferring assembly, comprising: a) a connector node element having a plurality of cavities; b) a plurality of framing members for mounting to the connector node element into respective ones of the cavities; c) each framing member being generally elongated and having an end portion insertable into a respective cavity; d) a mechanical fastener for mounting between the connector node element and the framing member and capable of being fastened to maintain the connector node element and the framing member engaged with one another; e) wherein the connector node element includes a channel for receiving therein an elongated load carrying chord; 1) wherein the mechanical fastener has a tool engaging head located for access by a tool through the channel such that when the elongated load carrying chord is received in the channel removal of the head to separate the framing member from the connector node element is precluded.
[0013B] According to another aspect, the present invention relates to a moment transferring assembly, comprising: a) a connector node element having a plurality of cavities; b) a plurality of framing members for mounting to the connector node element into respective ones of the cavities; c) each framing member being generally elongated and having an end portion insertable into a respective cavity; d) a mechanical fastener for mounting between the connector node element and the framing member and capable of being fastened to maintain the connector node element and the framing member engaged with one another; e) wherein the connector node element includes a channel for receiving therein an elongated load carrying chord; f) wherein the mechanical fastener has a tool engaging head and when the elongated load carrying chord is received in the channel the tool engaging head is adjacent the load carrying chord such that the mechanical fastener is precluded from backing out.
[0013C] According to still another aspect, the present invention relates to a modular load bearing lattice structure, comprising: a) a first chord; b) a second chord; c) a plurality of connector node elements mounted on the second chord, each connector node element comprising: a channel receiving the second chord therein; and a plurality of cavities; d) framing members linking the connector node elements to the first chord, wherein: each framing member is generally elongated and has an end portion inserted in a respective one of the cavities of a respective one of the connector node elements; a mechanical fastener is mounted between the framing member and the respective one of connector 3a node elements and fastened to maintain the framing member and the respective one of the connector node elements engaged with one another; and the mechanical fastener has a tool engaging head located for access by a tool through the channel of the respective one of the connector node elements such that, with the second chord received in the channel if the respective one of the connector node elements, removal of the tool engaging head to separate the framing member from the respective one of the connector node elements is precluded.
[0013D] According to yet another aspect, the present invention relates to a modular load bearing lattice structure, comprising: a) a first chord; b) a second chord; c) a plurality of connector node elements mounted on the second chord, each connector node element comprising: a channel receiving the second chord therein; and a plurality of cavities; d) framing members linking the connector node elements to the first chord, wherein: each framing member is generally elongated and has an end portion inserted in a respective one of the cavities of a respective one of the connector node elements; a mechanical fastener is mounted between the framing member and the respective one of connector node elements and fastened to maintain the framing member and the respective one of the connector node elements engaged with one another; and the mechanical fastener has a tool engaging head and, with the elongated second chord received in the channel of the respective one of the connector node elements, the tool engaging head is adjacent the second chord such that the mechanical fastener is precluded from backing out.
[0013E] According to a further aspect, the present invention relates to a set of molded elongated structural members for constructing a structure, each molded elongated structural member of the set of molded elongated structural members comprising: a) an external wall defining a hollow interior of the molded elongated structural member; and b) a core located in the hollow interior and molded with the external wall, the core including: i. a fastening portion defining an opening for receiving a threaded fastener fastening the molded elongated structural member to an adjacent part of the structure; and ii. a plurality of web portions connecting the fastening portion to the external wall and 3b =
spaced apart from one another so as to partition the hollow interior into a plurality of hollow spaces.
[0013F] According to yet a further aspect, the present invention relates to a structural system comprising: a) a node connector including a plurality of cavities; and b) a plurality of molded elongated structural members for mounting to the node connector into respective ones of the cavities, each molded elongated structural member of the plurality of molded elongated structural members comprising: i. an external wall defining a hollow interior of the molded elongated structural member; and ii. a core located in the hollow interior and molded with the external wall, the core including: a fastening portion defining an opening for receiving a threaded fastener fastening the molded elongated structural member to the node connector; and a plurality of web portions connecting the fastening portion to the external wall and spaced apart from one another so as to partition the hollow interior into a plurality of hollow spaces.
[0013G] According to still a further aspect, the present invention relates to a bridge comprising: a) a first chord; b) a second chord; and c) a plurality of molded elongated structural members interconnecting the first chord and the second chord, each molded elongated structural member of the plurality of molded elongated structural members comprising: i. an external wall defining a hollow interior of the molded elongated structural member; and ii. a core located in the hollow interior and molded with the external wall, the core including: a fastening portion receiving a threaded fastener fastening the molded elongated structural member to the first chord; and a plurality of web portions connecting the fastening portion to the external wall and spaced apart from one another so as to partition the hollow interior into a plurality of hollow spaces.
[0013H] According to another aspect, the present invention relates to a set of molded elongated structural members for constructing a structure, each molded elongated structural member of the set of elongated structural members comprising: a) an external wall defining a hollow interior of the molded elongated structural member; and b) a core 3c located in the hollow interior and molded with the external wall, the core including a fastening portion defining an opening for receiving a threaded fastener fastening the molded elongated structural member to an adjacent part of the structure, the hollow interior of the molded elongated structural member including a hollow space between the external wall and the fastening portion.
[00131] According to yet another aspect, the present invention relates to a set of elongated structural members for constructing a structure, each elongated structural member of the set of elongated structural members being an extrusion and comprising: a) an external wall defining a hollow interior of the elongated structural member; and b) a core located in the hollow interior of the elongated structural member and extruded with the external wall, the core including a fastening portion for receiving a fastener fastening the elongated structural member to an adjacent part of the structure, the hollow interior of the elongated structural member including a hollow space between the external wall and the fastening portion.
Once the member is in place, it can be secured by a bolt, a threaded rod or any other means that will keep the member into place ideally, but not limited to, within the neutral axis region. The external wall of the element has a friction contact with the internal side cavity which will resist the compression forces or bending moments exerted onto the element therefore it can transfer such forces or moment to the node without compromising the node connection.
The interlocking connection includes at least one fastener that goes through the neutral axis of the diagonal and/or vertical struts, transversal beams as well as a minimum of fasteners to hold the connector to the bottom chord of the truss. Fasteners that secure the struts to the connector act in tension while fasteners that hold the connector to the chords act in shear. Further, the top chord is linked to the diagonal and/or vertical struts with the mean of a pin connection working in shear.
Brief Description of the Drawings
_ õ
'
2;
, . , . '
Detailed Description of the Preferred Embodiment
Fencing 20 connect to the vertical trusses on the inside as shown or eventually on the outside. A decking 21, or eventually floor boards, is placed on top of the stringers (not shown) and acts as a floor to be walked on. Ends of the bridge, when installed, are connected to respective end footings (not shown) via respective anchors (not shown).
Priority date: 12 May 2005 Pending USPTO: 60/679,884 Revision: -Date : 2007/11/05
Typical sections contemplated are 5 feet, 10 feet, 15 or 20 feet in length.
As can be seen from Fig. 2, both vertical trusses are linked to each other via a plurality of transversals 3 and diagonals 5 extending there between.
The best way to secure such diagonals and transversals inside the node connector could be done by the use of a bolt that is screwed inside the internal region 42 of the multi-hollow cavity extruded tube as shown in Fig. 16 and as shown in greater detail with reference to Figs. 8 and 10. The node connector is attached to the tension chord by a pair of bolts 34 and nuts 35 through two like pairs of holes adapted to align the node 4 and the chord 8. Both floor diagonals attach to the node connector with bolts 32 and nuts 33.
They mainly resist tension and compression forces but they also transfer some bending moment to the floor beams as well as they transfer torsion to the tension chord 8 since they stabilize the compression chord which one tend to buckle. Fig. 8 shows a view along lines A-A in Fig. 7. As it can be seen a fastener 36, generally a bolt, secures the floor beam 3 into the node 4 cavity. Bolt 34 secure the node 4 to the tension chord 8. Fig. 9 shows a view along lines B-B in Fig. 7. Fig. 10 shows a view along lines C-C
in Fig. 9.
Once again we find two fasteners, generally bolts, to secure both diagonal members 2 into the node 4 cavities.
ellipsoidal) or polygonal section (e.g. square, triangular or else).
Fig. 18 shows a view along lines E-E in Fig. 17. A rod 39 can run on or near the neutral axis of a tube. A nut 40 can give a pre-tension to maintain the tube inside the cavity with adequate pressure.
The transversals however transfer their moment to the node with the friction applied along the internal walls.
modifications may be affected therein. For example, the node resisting joint and system of the invention may be used to construct roofs and other structures using nodes to join elongated members.
Claims (32)
a) a connector node element having a plurality of cavities;
b) a plurality of framing members for mounting to the connector node element into respective ones of the cavities;
c) each framing member being generally elongated and having an end portion insertable into a respective cavity;
d) a mechanical fastener for mounting between the connector node element and the framing member and capable of being fastened to maintain the connector node element and the framing member engaged with one another;
e) wherein the connector node element includes a channel for receiving therein an elongated load carrying chord;
f) wherein the mechanical fastener has a tool engaging head located for access by a tool through the channel such that when the elongated load carrying chord is received in the channel removal of the head to separate the framing member from the connector node element is precluded.
a) a connector node element having a plurality of cavities;
b) a plurality of framing members for mounting to the connector node element into respective ones of the cavities;
c) each framing member being generally elongated and having an end portion insertable into a respective cavity;
d) a mechanical fastener for mounting between the connector node element and the framing member and capable of being fastened to maintain the connector node element and the framing member engaged with one another;
e) wherein the connector node element includes a channel for receiving therein an elongated load carrying chord;
0 wherein the mechanical fastener has a tool engaging head and when the elongated load carrying chord is received in the channel the tool engaging head is adjacent the load carrying chord such that the mechanical fastener is precluded from backing out.
a) a first chord;
b) a second chord;
c) a plurality of connector node elements mounted on the second chord, each connector node element comprising: a channel receiving the second chord therein; and a plurality of cavities;
d) framing members linking the connector node elements to the first chord, wherein:
each framing member is generally elongated and has an end portion inserted in a respective one of the cavities of a respective one of the connector node elements; a mechanical fastener is mounted between the framing member and the respective one of connector node elements and fastened to maintain the framing member and the respective one of the connector node elements engaged with one another; and the mechanical fastener has a tool engaging head located for access by a tool through the channel of the respective one of the connector node elements such that, with the second chord received in the channel of the respective one of the connector node elements, removal of the tool engaging head to separate the framing member from the respective one of the connector node elements is precluded.
a) a first chord;
b) a second chord;
c) a plurality of connector node elements mounted on the second chord, each connector node element comprising: a channel receiving the second chord therein; and a plurality of cavities;
d) framing members linking the connector node elements to the first chord, wherein:
each framing member is generally elongated and has an end portion inserted in a respective one of the cavities of a respective one of the connector node elements; a mechanical fastener is mounted between the framing member and the respective one of connector node elements and fastened to maintain the framing member and the respective one of the connector node elements engaged with one another; and the mechanical fastener has a tool engaging head and, with the elongated second chord received in the channel of the respective one of the connector node elements, the tool engaging head is adjacent the second chord such that the mechanical fastener is precluded from backing out.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA2979623A CA2979623C (en) | 2005-05-12 | 2006-05-12 | Moment-resisting joint and system |
Applications Claiming Priority (5)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US67988405P | 2005-05-12 | 2005-05-12 | |
| US60/679,884 | 2005-05-12 | ||
| US11/383,030 US7568253B2 (en) | 2005-05-12 | 2006-05-12 | Moment-resisting joint and system |
| US11/383,030 | 2006-05-12 | ||
| CA2607711A CA2607711C (en) | 2005-05-12 | 2006-05-12 | Moment-resisting joint and system |
Related Parent Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CA2607711A Division CA2607711C (en) | 2005-05-12 | 2006-05-12 | Moment-resisting joint and system |
Related Child Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CA2979623A Division CA2979623C (en) | 2005-05-12 | 2006-05-12 | Moment-resisting joint and system |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| CA2869050A1 CA2869050A1 (en) | 2006-11-16 |
| CA2869050C true CA2869050C (en) | 2017-10-10 |
Family
ID=52105672
Family Applications (2)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CA2979623A Active CA2979623C (en) | 2005-05-12 | 2006-05-12 | Moment-resisting joint and system |
| CA2869050A Active CA2869050C (en) | 2005-05-12 | 2006-05-12 | Moment-resisting joint and system |
Family Applications Before (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CA2979623A Active CA2979623C (en) | 2005-05-12 | 2006-05-12 | Moment-resisting joint and system |
Country Status (1)
| Country | Link |
|---|---|
| CA (2) | CA2979623C (en) |
Families Citing this family (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN107938840A (en) * | 2016-10-12 | 2018-04-20 | 甘秀明 | A kind of cylindrical annular self-locking node connecting structure |
-
2006
- 2006-05-12 CA CA2979623A patent/CA2979623C/en active Active
- 2006-05-12 CA CA2869050A patent/CA2869050C/en active Active
Also Published As
| Publication number | Publication date |
|---|---|
| CA2869050A1 (en) | 2006-11-16 |
| CA2979623C (en) | 2021-02-09 |
| CA2979623A1 (en) | 2006-11-16 |
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