IP Library Granted Patent US 12,208,564
Granted Patent B2
US 12,208,564 · App. 17/840,997 · Granted Jan 28, 2025

Multi-axial integral geogrid and methods of making and using same

Inventors: Andrew Curson (Burnley, GB); Tom-Ross Jenkins (Baildon, GB); Andrew Edward Waller (Newton le Willows, GB); Daniel John Gallagher (Adlington, GB); Daniel Mark Baker (Broomfield, CO); Manoj Kumar Tyagi (Fayetteville, GA); Joseph Cavanaugh (Cumming, GA)
Assignee: TENSAR INTERNATIONAL CORPORATION
B29C55/14B29C55/12B29D28/00E02D17/202B29L2028/00E02D2300/0084
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Quick Facts
Patent No.
US 12,208,564
App. No.
17/840,997
Granted
Jan 28, 2025
Kind
B2
Abstract

A monolayer multi-axial integral geogrid suitable for stabilizing aggregate includes a plurality of interconnected oriented strands and partially oriented junctions forming a repeating pattern of outer hexagons having an array of openings therein. Oriented ribs extending inwardly from each of said outer hexagons support and surround a smaller inner hexagon having oriented strands thus forming a plurality of trapezoidal openings and a single hexagonal opening. The oriented strands and partially oriented junctions of the outer hexagons form a plurality of linear strong axis strands that extend continuously throughout the entirety of the geogrid and form additional triangular openings. The geogrid thus includes three different repeating geometric shapes. The inner hexagons preferably also can move up and down, out of the plane of the geogrid. The multi-axial integral geogrid thus provides a geometry configured to engage with, confine and stabilize a large variety and quality of aggregates.

Claims (33)

1. A multi-axial integral geogrid comprising:

a plurality of interconnected oriented strands and partially oriented junctions forming a repeating pattern of outer hexagons having an array of openings therein,

supporting ribs extending inwardly from each of said outer hexagons to support inside each of said outer hexagons a smaller inner hexagon having an open center and oriented strands and tri-nodes, each of said tri-nodes interconnecting only one of said supporting ribs and two of said oriented strands of the inner hexagon,

said outer hexagons, said supporting ribs, and said inner hexagons defining three different geometric configurations which are repeating throughout an entirety of the geogrid, and

said oriented strands and said partially oriented junctions of said outer hexagons defining a plurality of linear strands that extend continuously throughout the entirety of the geogrid.

2. The multi-axial integral geogrid according to claim 1 , wherein the inner hexagon can deflect up and down out of a plane of the geogrid during compaction of aggregate.

3. The multi-axial integral geogrid according to claim 2 , wherein the inner hexagon can deflect up and down out of the plane of the geogrid up to about 33% of a thickness of the partially oriented junctions.

4. The multi-axial integral geogrid according to claim 1 , wherein the oriented strands have an aspect ratio of at least 1.0.

5. The multi-axial integral geogrid according to claim 4 , wherein the oriented strands have an aspect ratio of greater than about 1.5.

6. The multi-axial integral geogrid according to claim 1 , wherein the three different geometric configurations are hexagonal, trapezoidal, and triangular shapes.

7. The multi-axial integral geogrid according to claim 1 , wherein there are three continuous linear strands that extend continuously throughout the entirety of the geogrid, the three continuous linear strands being separated from each other by about 120°.

8. The multi-axial integral geogrid according to claim 1 , wherein the geogrid is a monolayer.

9. The multi-axial integral geogrid according to claim 1 , wherein the geogrid has a thickness of from about 3 mm to about 9 mm.

10. A multi-axial integral geogrid comprising:

a plurality of interconnecting oriented strands and partially oriented junctions forming a repeating pattern of a selected outer geometric shape having an array of openings therein;

said outer geometric shape supporting and surrounding a smaller inner geometric shape having a center open in an entirety, and oriented strands, which inner geometric shape is the same as or different from the outer geometric shape; and

said oriented strands and said partially oriented junctions of said outer geometric shape defining at least two sets of substantially parallel linear strands that extend continuously throughout an entirety of the multi-axial geogrid.

11. The multi-axial integral geogrid according to claim 10 , wherein the outer geometric shape and the inner geometric shape are the same, and the shape is selected from the group consisting of triangles, rectangles, squares, hexagons, and other polygonal shapes.

12. The multi-axial integral geogrid according to claim 10 , wherein the inner geometric shape is flexible or not flexible within the outer geometric shape.

13. A reinforced and stabilized composite soil structure comprising:

a mass of particulate material; and

a multi-axial integral geogrid embedded in and engaging with said particulate material and having a plurality of interconnected oriented strands and partially oriented junctions forming a repeating pattern of outer hexagons having an array of openings therein,

supporting ribs extending inwardly from each of said outer hexagons to support inside each of said outer hexagons a smaller inner hexagon having an open center and oriented strands and tri-nodes, each of said tri-nodes interconnecting only one of said supporting ribs and two of said oriented strands of the inner hexagon,

said outer hexagons, said supporting ribs, and said inner hexagons defining three different geometric configurations which are repeating throughout an entirety of the geogrid, and

said oriented strands and said partially oriented junctions of said outer hexagons defining a plurality of linear strands that extend continuously throughout the entirety of the geogrid.

14. The multi-axial integral geogrid according claim 6 , wherein the openings provide a range of interaction with granular materials of varying particles size of at least 200 mm 2 .

15. The multi-axial integral geogrid according to claim 2 , wherein the inner hexagon can deflect up and down out of the plane of the geogrid in an area of compliance on the order of about 50% to about 75% relative to a height of the partially oriented junctions.

16. A multi-axial integral geogrid comprising:

a plurality of interconnected oriented strands and partially oriented junctions forming a repeating pattern of outer hexagons having an array of openings therein,

each of said outer hexagons supporting, by oriented ribs, a smaller oriented inner geometric configuration having a center open in an entirety,

said oriented strands, said partially oriented junctions, said oriented ribs and said smaller oriented inner geometric configurations forming at least three different geometric configurations which are repeating throughout an entirety of the multi-axial geogrid, and

said oriented strands and said partially oriented junctions of said outer hexagons defining a plurality of linear strands that extend continuously throughout the entirety of the multi-axial integral geogrid.

17. The multi-axial integral geogrid according to claim 16 , wherein said three different geometric configurations are a hexagon, a trapezoid, and a triangle.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 15, 2022
From: CURSON, ANDREW; JENKINS, TOM-ROSS; WALLER, ANDREW EDWARD; GALLAGHER, DANIEL JOHN; BAKER, DANIEL MARK; TYAGI, MANOJ KUMAR; CAVANAUGH, JOSEPH
To: TENSAR INTERNATIONAL CORPORATION
Reel/Frame 060210/0942 →
Continuity (5)
Continuation 17355843 · Jun 23, 2021
Provisional Application 63154209 · Feb 26, 2021
Provisional Application 63154588 · Feb 26, 2021
Provisional Application 63043627 · Jun 24, 2020
Related Publication 20230013595A1 · Jan 19, 2023
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