A CONNECTOR
20240035270 ยท 2024-02-01
Inventors
Cpc classification
F16B7/185
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
This invention is about a connector, connecting bars and components, like panels and braces, in a supporting framework. The connector has a holder, having a first and a second end, the first end, connected to the connector, the second end, connected to the framework component. The connector comprises a plurality of faces, each adapted to be connected to one bar, the faces located in a corresponding plurality of faces of an imaginary polyhedron.
Claims
1. A connector and at least one holder, to be used with a plurality of bars and at least one framework component, in a supporting framework, the framework component, selected from a group, consisting of at least one cross brace, at least one panel and combinations thereof, the holder, having a first end and a second end, the first end, connected to the connector, the second end, connected to at least one of the framework components, the connector, comprising, a plurality of faces, each adapted to be connected to one bar, the faces located in a corresponding plurality of faces of an imaginary polyhedron, the connector further comprising an inner core and a plurality of receiving plates, the inner core, located in between the faces of the connector, the inner core comprising projections, each projecting toward one of the faces, each of the receiving plates, located between an adjacent couple of the projections of the inner core and connected thereto, lying parallel to an imaginary plane that passes through the longitudinal axis of each of the projections of the adjacent couple thereof, and the receiving plates, the inner core and the projections thereof, together, defining cavities, inside the imaginary polyhedron, at each corner thereof, the first end of the holder, located in a cavity, connected to the corresponding receiving plate, the connector and the holder, characterized in that, the first end of the holder, is shaped so as to adjust to the corresponding portion of the cavity, such that, when located properly, the first end of the holder is encased in the cavity, in a way, stabilizing the second end thereof, in its final position.
2. The connector and at least one holder in accordance with claim 1, wherein, the cavities and the holders are shaped in relation with each other, such that, a holder per each receiving plate can be connected concurrently.
3. The connector and at least one holder in accordance with claim 1, wherein, at least one of the receiving plates comprises a hole and the first end of the corresponding holder comprises a mating member, extending perpendicularly to the receiving plate, when the holder is placed properly and to connect the first end of the holder to the receiving plate, the mating member is inserted in the hole of the receiving plate.
4. The connector and at least one holder in accordance with claim 1, wherein, the first end of the holder is bifurcated, being a first furcation at one side of the corresponding receiving plate, a second furcation at the other side thereof.
5. The connector and at least one holder in accordance with claim 1, wherein, the first end of the holder, when located in the cavity, is connected to only one side of the corresponding receiving plate.
6. The connector and at least one holder in accordance with claim 1, wherein, the mating member of the first end of the holder is a screw.
7. A connector and at least one holder, to be used with a plurality of bars and at least one framework component, in a supporting framework, the framework component, selected from a group, consisting of at least one cross brace, at least one panel and combinations thereof, the holder, having a first end and a second end, the first end, connected to the connector, the second end, connected to at least one of the framework components, the connector, comprising, a plurality of faces, each, adapted to be connected to one bar, the faces, located in a corresponding plurality of faces of an imaginary polyhedron, the connector, further comprising an inner core and a plurality of projections, the inner core located in between the faces of the connector, each of the projections, projecting toward one of the faces, the inner core and the projections thereof, together, defining a plurality of cavities, inside the imaginary polyhedron, at each corner thereof, the connector, further comprising at least one bore on the inner core and the holder, further comprising at least one fixing member and at least one hole, the first end of the holder, located in one of the cavities, connected to the connector, by means of the fixing member, inserted through the hole on the holder into the bore of the inner core, the first end of the holder, being large enough to fill in the cavity substantially and comprising a mating face, adjusted to a surface portion of the connector, the surface portion, defining the cavity, the connector and the holder, characterized in that, when placed properly, the first end of the holder is encased in the cavity, in a way, stabilizing the second end thereof, in its final position and when the framework component applies a load to the second end of the holder, the mating face of the first end of the holder, is pressed to the surface portion of the connector, the surface portion, defining the cavity.
8. The connector and at least one holder in accordance with claim 7, wherein, a framework component is connected to the first end of the holder and the mating face of the first end of the holder, corresponding cavity and the fixing member are shaped in relation with each other, such that, when the framework component applies a load to the second end of the holder, the fixing member is subjected only to forces that forces the mating face of the first end of the holder to dislocate.
9. The connector and at least one holder in accordance with claim 7, wherein, the fixing member is elongated and the longitudinal axis of the fixing member, is parallel to an imaginary line, on which, the mating face moves while dislocation.
10. The connector and at least one holder in accordance with claim 7, wherein, the framework component is a cross-brace and when the cross-brace applies a tensile force to the second end of the holder, the fixing member is subjected to a tensile force along the longitudinal axis thereof.
11. The connector and at least one holder in accordance with claim 9, wherein, the imaginary line passes through corner and centroid of the imaginary polyhedron.
12. The connector and at least one holder in accordance with claim 7, wherein, the clearance between the fixing member and a first surface portion of the holder, defining the hole, in which, the fixing member is inserted, is larger than the clearance between the mating face and a second surface portion of the connector, defining the corresponding cavity, in a way, preventing the fixing member from being subjected to the force applied by framework component, in isolation.
13. The connector and at least one holder in accordance with claim 7, wherein, two holders are connected to a connector, such that, the first ends thereof are located in two neighboring cavities and the second ends thereof are connected to the same framework component.
14. The connector and at least one holder in accordance with claim 1, wherein, the cross braces are in the form of a rod.
15. The connector and at least one holder in accordance with claim 1, wherein, at least one cylindrical bar is connected to the connectors.
16. The connector and at least one holder in accordance with claim 1, wherein, the imaginary polyhedron is a cube.
17. The connector and at least one holder in accordance claim 7, wherein, the fixing member is a screw.
Description
4. BRIEF DESCRIPTION OF DRAWINGS
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
5. BEST MODES FOR CARRYING OUT THE INVENTION
[0022]
[0023] As shown in
[0024] The connector 101 and the holder 102 are characterized in that, the first end 107 of the holder 102, is shaped so as to adjust to the corresponding portion of the cavity, as shown in
[0025] Each of the receiving plates 111 has holes 115 and the first end 107 of the corresponding holder 102 has a mating member 116, preferably a screw 117, extending perpendicularly to the receiving plate 111. To connect the first end 107 of the holder 102 to the receiving plate 111, the mating member 116 can be inserted in the hole 115 of the receiving plate 111.
[0026] The first end 107 of the holder 102 can be bifurcated as shown in
[0027] The first end 107 of the holder 102 can have holes 123 at each furcation 118, so that, the mating member 116 can be inserted through. The connection to the receiving plate 111 can be made by a nut to be fixed at the end of the screw 117 or one of the holes 123 can be threaded to receive the screw 117. The second end 108 of the holder 102 has also a hole 122 for connection of the framework components 104.
[0028]
[0029] In some cases, it can be more practical for the holder 102 to be connected to only one side of the corresponding receiving plate 111, when located in the cavity 114, as shown in
[0030]
[0031]
[0032] The first end 203 of the holder 202 has a mating face 205, adjusted to a surface portion of the connector 101, the surface portion, defining the cavity 114. In cases, when a framework component 104 is connected to the first end 203 of the holder 202, the fixing member 207, the mating face 205 of the first end 203 of the holder 202 and the surface portion, defining the cavity 114, can be shaped in relation with each other, such that, when the framework component 104 applies a load to the second end 204 of the holder 202, the mating face 205 of the first end 203 of the holder 202, is pressed to the surface portion of the connector 101, the surface portion, defining the cavity 114 and the fixing member 207 can be subjected only to forces that forces the mating face 205 of the first end 203 of the holder 202 to dislocate. The fixing member 207 can be elongated and the longitudinal axis of the fixing member 207 can be parallel to an imaginary line, on which, the mating face 205 moves while dislocation. The imaginary line advantageously passes through corner and centroid of the imaginary polyhedron. In cases, when the framework component 104 is a cross-brace 105 and the cross-brace 105 applies a tensile force to the second end 204 of the holder 202, the invention may be used to particular advantage and the fixing member 207 can be subjected to a tensile force along the longitudinal axis thereof. Supporting only axial forces enables a fixing member 207 to be used, conveniently, with a size, small enough to be located on the holder 202, without interfering the mating member 209 and the it is inserted 208 at the second end 204 of the holder 202 without requiring an excessive elongation at the second end 204, an elongation that would serve as a lever arm which will increase the effect of the forces transmitted to the second end 204 by the framework components 104.
[0033] The clearance between the fixing member 207 and a first surface portion of the holder 202, defining the hole 206, in which, the fixing member 207 is inserted, can be larger than the clearance between the mating face 205 and a second surface portion of the connector 101, defining the corresponding cavity 114, in a way, preventing the fixing member 207 from being subjected to the force applied by the framework component 104, in isolation.
[0034] Two holders 202 can be connected to a connector 101, such that, the first ends 203 thereof are located in two neighboring cavities 114 and the second ends 204 thereof are connected to the same framework component 104. This embodiment makes a stronger base especially for cross-braces 105 that support relatively higher tensional forces.
[0035] The cross braces 105 may be in the form of compression bars as shown in
6. INDUSTRIAL APPLICABILITY
[0036] The connectors and the holders can be produced with various forms of casting. Sand casting can be used economically for most cases. In cases when surface finish is important and high load bearing capacity is crucial, precision casting can be used to provide fine surface finish and to utilize any form of steel alloys. Bars and cross braces can be produced with conventional rolling and extrusion techniques, due to the material required for them.