Structural element
A structural element ( 10 ) for forming a panel, with an upper plane ( 12 ) and lower plane ( 14 ) which are parallel and deformed along their plane at intervals by pods ( 16 ) which extrude toward the opposing plane with their internal faces mating to one another.
1. A method for producing a structural element comprising providing two sheets of material, deforming them at intervals along their lengths and widths to provide pods that protrude from respective planes of the sheets, and joining the sheets to provide a unitary component, wherein walls of the pods in both sheets slope obliquely relative to the respective plane of their respective sheet, and with the two sheets juxtaposing to each other in mirror-image, or facing, fashion, such that the pods are inwardly oriented with floors of the juxtaposed pods engaging in contact zones, whereby the pods act as interconnecting diagonal braces whereby loads on the structural element will be transmitted along surfaces of the pods in multiple directions and distributed throughout the structural element, the pods in each sheet having a close proximity to one another in order to be mechanically interdependent and so that the walls of joined pods form diamond beam formations between adjacent joined pods such that multiple diamond beam structures are formed by the diamond beam formations in the structural element in negative spaces immediately between pairs of joined pods, a slope of the walls of the diamond beam formations being straight between outwardly oriented, rounded, apexes of the diamond beam formations and the floors of the inwardly oriented pods, wherein a part of the floor of one or more of the pods is removed when, or prior to, joining the pods together, leaving a flange, and the joining of the sheets is by folding or rolling the flange, or crimping the flange, such that jointing between the two sheets takes place at or along the flange.
2. The method according to claim 1 , wherein the two sheets are deformed at the same time.
3. The method according to claim 1 , wherein the two sheets of material are made from a fibrous or a cellulose material.
4. The method according to claim 1 , wherein the two sheets of material are made from metal.
5. The method according to claim 1 , wherein the pods are formed in the sheets using a press.
6. The method according to claim 1 , wherein the pods are arranged in rows in the respective planes of the sheets.
7. The method according to claim 6 , wherein adjacent rows are staggered.
8. The method according to claim 1 , wherein the structural panel forms a top panel of a pallet.
9. The method of claim 1 , wherein when the part of the floor of one or more of the pods is removed, this leaves an annular flange by removal of a central disc.
10. A method for producing a structural panel comprising providing two sheets of sheet material, deforming them at intervals along their lengths and widths to provide pods that protrude from respective planes of the sheets, and joining the sheets to provide a unitary component, wherein the two sheets act as the tensile and compression chords for the structural panel, with the pods comprising multiple inwardly orientated pods throughout the structural panel, the inwardly orientated pods having pod apexes that are joined together, which pods have a close proximity to one another in order to be mechanically interdependent creating a double depth space-frame lattice type matrix where loads placed on a surface of the structural panel are resisted and transferred through the chords and with the inwardly oriented pods acting as interconnecting diagonal braces such that the loads are transmitted along the surface of the pods in multiple directions and distributed throughout the structural panel, wherein the walls of a side cross-section of joined pods, due to the close proximity of the pods in each sheet, form diamond beam formations between adjacent joined pods such that multiple diamond beam structures are formed by the diamond beam formations in the structural panel in the negative spaces immediately between pairs of joined pods, the walls of the diamond beam formations being straight between outwardly oriented, rounded, apexes of the diamond beam formations and the pod apexes of the inwardly oriented pods, wherein a part of the apex of one or more of the pods is removed when, or prior to, joining the pods together, leaving a flange, and the joining of the sheets is by folding or rolling the flange, or crimping the flange, such that jointing between the two sheets takes place at or along the flange.
11. The method according to claim 10 , wherein the pods are arranged in rows in the respective planes of the sheets.
12. The method according to claim 11 , wherein adjacent rows are staggered.
13. The method according to claim 10 , wherein the two sheets of material are made from a fibrous or a cellulose material.
14. The method according to claim 10 , wherein the two sheets of material are made from metal.
15. The method according to claim 10 , wherein the structural panel forms a top panel of a pallet.
16. A method of producing a structural element in the form of a structural panel, comprising providing two sheets of material, deforming them at intervals along their lengths and widths to provide pods that protrude from respective planes of the sheets, and joining the sheets to provide a unitary component, wherein the the pods form multiple inwardly orientated pods throughout the structural panel, the inward orientated pods having apexes that are joined together, which pods have a close proximity one to another in order to be mechanically interdependent so that the deformed sheets act as tensile and compression chords for the structural component by creating a double depth space-frame lattice type matrix in which loads placed on a surface of the structural panel are resisted and transferred through the chords, with the pods acting as interconnecting diagonal braces such that the loads are transmitted along the surface of the pods in multiple directions and distributed throughout the structural element, wherein walls of a side cross-section of joined pods form diamond beam formations with adjacent joined pods such that multiple diamond beam structures are formed in the structural element in the negative spaces immediately between pairs of joined pods, and wherein a part of the apex of one or more of the pods is removed, leaving a flange, and the joining of the sheets is by folding or rolling the flange, or crimping the flange, such that jointing between the two sheets takes place at or along the flange.
17. The method according to claim 16 , wherein the two sheets of material are made from a fibrous or a cellulose material.
18. The method according to claim 16 , wherein the two sheets of material are made from metal.
19. The method according to claim 16 , wherein the structural panel forms a top panel of a pallet.
20. The method of claim 16 , wherein the pods have one of the following forms:
a) the pods are frusto-conical in shape, and mouths of the pods are round and arranged in rows, adjacent rows being staggered to define a regular grid with centrelines for the pods at 120° from one another, and the pods are spaced apart by only between 1% and 11% of the pod diameter;
b) the mouths of the pods are triangular and are arranged with interfacing sides so as to occupy substantially the whole of an upper reference plane a first of the two sheets, leaving a grid for that upper reference plane where the pods meet at upper edges of the pods; or
c) the mouths of the pods are intermeshing regular hexagons and are arranged with interfacing sides so as to occupy substantially the whole of an upper reference plane a first of the two sheets, leaving a grid for the upper reference plane where the pods meet at upper edges of the pods.