EP3387271A1 - Shallow undercut concrete anchor - Google Patents
Shallow undercut concrete anchorInfo
- Publication number
- EP3387271A1 EP3387271A1 EP16873814.4A EP16873814A EP3387271A1 EP 3387271 A1 EP3387271 A1 EP 3387271A1 EP 16873814 A EP16873814 A EP 16873814A EP 3387271 A1 EP3387271 A1 EP 3387271A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- anchor
- plug
- sleeve
- concrete
- legs
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04C—STRUCTURAL ELEMENTS; BUILDING MATERIALS
- E04C5/00—Reinforcing elements, e.g. for concrete; Auxiliary elements therefor
- E04C5/08—Members specially adapted to be used in prestressed constructions
- E04C5/12—Anchoring devices
- E04C5/125—Anchoring devices the tensile members are profiled to ensure the anchorage, e.g. when provided with screw-thread, bulges, corrugations
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04B—GENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
- E04B1/00—Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
- E04B1/38—Connections for building structures in general
- E04B1/48—Dowels, i.e. members adapted to penetrate the surfaces of two parts and to take the shear stresses
- E04B1/483—Shear dowels to be embedded in concrete
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04B—GENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
- E04B1/00—Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
- E04B1/62—Insulation or other protection; Elements or use of specified material therefor
- E04B1/92—Protection against other undesired influences or dangers
- E04B1/98—Protection against other undesired influences or dangers against vibrations or shocks; against mechanical destruction, e.g. by air-raids
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04C—STRUCTURAL ELEMENTS; BUILDING MATERIALS
- E04C5/00—Reinforcing elements, e.g. for concrete; Auxiliary elements therefor
- E04C5/08—Members specially adapted to be used in prestressed constructions
- E04C5/12—Anchoring devices
- E04C5/122—Anchoring devices the tensile members are anchored by wedge-action
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04G—SCAFFOLDING; FORMS; SHUTTERING; BUILDING IMPLEMENTS OR AIDS, OR THEIR USE; HANDLING BUILDING MATERIALS ON THE SITE; REPAIRING, BREAKING-UP OR OTHER WORK ON EXISTING BUILDINGS
- E04G21/00—Preparing, conveying, or working-up building materials or building elements in situ; Other devices or measures for constructional work
- E04G21/12—Mounting of reinforcing inserts; Prestressing
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04B—GENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
- E04B1/00—Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
- E04B1/02—Structures consisting primarily of load-supporting, block-shaped, or slab-shaped elements
- E04B1/04—Structures consisting primarily of load-supporting, block-shaped, or slab-shaped elements the elements consisting of concrete, e.g. reinforced concrete, or other stone-like material
- E04B1/06—Structures consisting primarily of load-supporting, block-shaped, or slab-shaped elements the elements consisting of concrete, e.g. reinforced concrete, or other stone-like material the elements being prestressed
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04C—STRUCTURAL ELEMENTS; BUILDING MATERIALS
- E04C5/00—Reinforcing elements, e.g. for concrete; Auxiliary elements therefor
- E04C5/01—Reinforcing elements of metal, e.g. with non-structural coatings
- E04C5/06—Reinforcing elements of metal, e.g. with non-structural coatings of high bending resistance, i.e. of essentially three-dimensional [3D] extent, e.g. lattice girders
- E04C5/0645—Shear reinforcements, e.g. shearheads for floor slabs
Definitions
- Post-tensioned (PT) slabs are typically flat slabs, band beam slabs or
- PT slabs offer the thinnest slab type, as the tensile stress to which the slab is exposed is limited by a compressive wire system. Longer spans can be achieved due to pre-stress, which can be used to counteract deflections.
- the slabs are pre-stressed by cables/wires that pass through the slabs.
- PT slabs are becoming more widely used for a number of reasons. Slabs can be thinner which will usually result in cost savings at least as a result of using less cement. In addition, less material necessarily means that the slabs are more environmentally friendly. Thinner lighter slabs lend to faster and easier construction/erection processes. Furthermore, PT slab concrete structures can usually bear load sooner than other conventional load bearing structures if not immediate. In fact, PT slabs are already the most common type of reinforcing floors (e.g., in high-rise construction and parking garages).
- Figure 1 shows a PT slab having wire passing through it which wires are secured and tensioned at outer ends of the slab.
- the anchors support various systems such as plumbing or electrical equipment.
- an anchor may be secured in a PT slab which forms the ceiling in a building (e.g., a parking deck) so that a threaded rod can be supported from the anchor which threaded rod in turn supports piping for the building's sprinkler system.
- anchors may be positioned before the concrete is poured and thereby are cast in place.
- Post cast anchors are available in the industry that require drilling into the set concrete, inserting an anchor, and expanding the anchor to grip and secure itself in the hole.
- the cables/wires that pass through the concrete are generally close to the surface of the concrete. Specifically, wire can be located as close as 1 or 2 inches from the slab concrete surface. Therefore, the location of and depth to which holes can be drilled for insertion of post cast anchors is limited.
- the present invention discloses a shallow undercut concrete anchor capable of resisting large loads while requiring a 3 ⁇ 4" embedment depth of less.
- an anchor system for securing an object (e.g. a pipe system) to a structure (e.g., a parking deck or slab of a high rise or other building).
- the system includes a concrete structure including a cylindrical opening in the concrete surface thereof.
- the concrete cylindrical opening can include an open end and a closed end.
- the system also uses an anchor which includes a sleeve and a plug.
- the sleeve includes at least two legs extending toward a first end of the sleeve and the sleeve also includes a second end.
- the sleeve further including a cylindrical through opening from the first end to the second end.
- the plug includes a first end and a second end and the plug also includes an increasing diameter portion disposed toward a first end of the plug.
- the plug including a locking opening.
- the second end of the plug is received in the cylindrical through opening until the increasing diameter portion engages the legs.
- the locking opening of the plug is accessible through the cylindrical through opening at the second end of the sleeve.
- the concrete cylindrical opening includes a cylindrical wall having a radius and a depth of approximately 3 ⁇ 4" or less.
- the anchor via the first ends of the sleeve and plug respectively is received in the concrete cylindrical opening to approximately the depth. After installation, legs of the sleeve extend radially outward past the wall and the increasing diameter portion prevents inward movement of the legs to lock the sleeve and the plug in turn in the concrete cylindrical opening.
- dynamic loading on the plug e.g., via a threaded rod
- dynamic loading on the plug when the anchor is in use generates a dynamic radially outward force on the legs to secure the anchor in the concrete hole.
- Figure 1 shows an embodiment of the general concept of the type of slab in which the present invention anchor can be installed.
- Figure 2 shows a cross-sectional view of an embodiment of a conventional anchor for use in the slab of Figure 1.
- Figure 3 shows a bottom perspective view of an embodiment of the anchor of the pre sen t in ven tion .
- Figure 4 shows a cross-sectional view of the preset anchor of Figure 3.
- Figure 5A shows a perspective view of an embodiment of a sleeve of the anchor of Figure 3.
- Figure 5B shows a front view of the anchor of Figure 3.
- Figure 5C shows a cross sectional view of the sleeve of the anchor of figure 3.
- Figure 5D shows an enlarged cross sectional view of a portion of the sleeve of the anchor of Figure 3.
- Figure 6A shows a perspective view of the plug of the anchor of Figure 3.
- Figure 6B shows a side view of the plug of the anchor of Figure 3.
- Figure 6C shows a cross-sectional view of the plug of the anchor of Figure 3.
- Figure 7A shows a graph of load vs. displacement of the anchor of Figure 2.
- Figure 7B shows a graph of another load vs. displacement of the anchor of Figure 2.
- Figure 7C shows yet another graph of load vs. displacement of the anchor of Figure 2
- Figure 8A shows an exploded drilling and setting system of the anchor of Figure 3.
- Figure 8B shows an assembled dri lling and setting system of the anchor of Figure
- Figure 8C shows a side perspective view of the anchor of Figure 3 in the post set configuration.
- Figure 8D shows a cross-sectional view of the anchor of Figure 3 in the post set configuration.
- Figure 8E shows a. bottom view of the anchor of Figure 3 set in a portion of
- Figure 9 shows a graph of load vs. embedment depth in un-crackecl concrete for the anchor of Figure 3.
- Figure 10 shows a graph of load vs. embedment depth in cracked concrete for the anchor of Figure 3.
- Figure 11 shows a table of values from which to determine reliability of the anchor of Figure 3 under various installation conditions.
- Figure 1 IB shows a table of values from which to determine reliability of the anchor of Figure 3 under various installation conditions.
- Figure 12 A shows a graph of load vs. displacement of the anchor of Figure 3.
- Figure 12B shows a graph of another load vs. displacement of the anchor of Figure 3,
- Figure 13A shows a graph of displacement vs. cycles for a constant 1201b load of the anchor of Fi gure 3.
- Figure 13B shows a graph of load vs. displacement for an oversized hole using the anchor of Figure 3.
- FIG. 1 shows a post stressed concrete slab unit 10.
- Slab unit 10 includes a volume (e.g., a rectangular volume) of poured and cured concrete 2(3 and a plurality of tension wires 30 passing through the concrete volume 20.
- An individual wire 40 may be disposed at different depths in the direction of thickness of the slab based on loads expected to be experienced at particular areas of the slab when installed.
- Wires anchors 50 are positioned at outer surfaces of concrete 20 and tension of wires 30 may be adjusted there. With respect to the top and bottom outer surfaces of the concrete slab 20, wire 40 may be positioned within 1 or 2 inches of the outer surfaces of the concrete.
- mini drop-in anchors utilize a friction mechanism to resist pull out failure.
- Figure 2 shows a cross section of the prior art mini drop-in anchor design. At a relatively low load the friction mechanism fails with the anchor being pulled out of the concrete hole.
- Figures 7A-7C illustrate some experimental results that show pull out failures of mini drip-in anchors at specific loads in un- cracked concrete.
- the graph in Figure 7A plots load in terms of displacement (i.e., movement of the anchor out of the hole). The graph clearly shows steady movement of the anchor out of the hole as load in the desired load range increases.
- Figures 7B and 7C show graphed results of load in terms of displacement for a desired load when mini drop-in anchors are set in cracked concrete.
- Figures 7B and 7C clearly show that the anchors reach an unacceptable displacement during the desired load range and then completely fail. There is therefore a need to develop an anchor with an embedment depth of 3 ⁇ 4" or less that can consistently bear larger loads.
- Figures 3-6 show a perspective view of the shallow undercut anchor 100 of the present invention in its assembled, but preset configuration, in this assembled configuration a plug 300 is received in a sleeve 200.
- Figure 4 shows a cross- section of the plug and sleeve anchor of Figure 3.
- Figure 5 A shows a perspective view of sleeve 200.
- Sleeve 200 is of a generally cylindrical form having an inner cylindrical surface 202 and an outer generally cylindrical surface 204 both of which define a sleeve wall 206 between.
- Inner cylindrical surface 202 includes a chamfer at its upper and lower ends for ease of insertion of plug 300 and threaded rods (described in further detail below).
- Sleeve 200 also includes an upper portion 210 and a lower portion 240. At an interface between upper portion 210 and lower portion 240 is a recessed waistband 260 in wall 206.
- Lower portion 240 includes a plurality of legs 250A-D that extend downward from recessed waistband 260. Between each pair of adjacent legs 250 is a gap 254. Gap 254 extends from lower portion 240 to upper portion 210. Specifically, gap 256 extends from a lowermost end of the legs 250 upward through recessed waistband 266 and terminating at an annular stress relief opening 256.
- Legs 250 of lower portion 240 can be said to include an upper portion 268
- Lower portion 272 includes a converging edge 274 which engages the concrete hole wall during installation.
- the shape of the converging edge (about 90°) ensures that the pressure exerted on the concrete hole wall will be large to encourage cutting into the concrete.
- the outer generally cylindrical surface 204 at lower portion 240 includes a V- shaped recess 264.
- V-shaped recess 264 extends between recessed waistband 260 and a. lower terminal end 273 of legs 250. Furthermore, V-shaped recess 264 extends radially inward so that a mouth of the V-shape opens radially outward creating a.
- the wall section being thinner at the point/apex of the V since generally inner cylindrical surface 202 maintains a constant radius through sleeve 201).
- the two legs of the V forming recess 264 define outer wall surface portions 269, 271 that are disposed approximately 144° apart.
- Plug 300 will now be described with reference Figures 6A-6C.
- Figure 6A shows a perspective view of plug 300 of anchor 100.
- Plug 100 is made of steel or similar strength metals or materials.
- Figures 6B and 6C show that plug 300 includes a generally cylindrical upper portion 310, a generally cylindrical lower portion 355 and an increasing diameter portion 350 connecting the lower portion 355 to the upper portion 310.
- the increasing or tapered radius portion includes a first radius and a second increased radius and upper portion 310 connects to increasing diameter portion 350 at the first diameter.
- lower portion 355 connects to increased diameter portion 350 at the second increased diameter.
- Upper portion 310 includes an outer surface 312 and an interior opening 320.
- Opening 320 includes an inner wall surface 322 which is fitted with a locking mechanism such as a female threaded (e.g., for receiving a male threaded rod). Opening 322 is further defined by a cone shaped volume or opening 323 in a bottom of opening 322. Outer surface 312 further includes a boss or projection 360 which engages with a shaped recess of sleeve 200 to secure plug 300 to sleeve 200 and keep the two parts together as an anchor until anchor 100 is to be installed.
- a locking mechanism such as a female threaded (e.g., for receiving a male threaded rod). Opening 322 is further defined by a cone shaped volume or opening 323 in a bottom of opening 322.
- Outer surface 312 further includes a boss or projection 360 which engages with a shaped recess of sleeve 200 to secure plug 300 to sleeve 200 and keep the two parts together as an anchor until anchor 100 is to be installed.
- Figure 7 A shows a graph of load vs. displacement of the prior art anchor of Figure 2 in cracked 2,500 psi concrete.
- the various trials i.e., tl-t3 show a steady undesirable displacement of the anchor out of the sleeve as load (i.e. a pulling out load) is applied. A steeper curve would be more desirable but could not be achieved with the prior art anchor solution.
- Figure 7B and 7C show graphs of load vs. displacement of the prior art anchor of Figure 2.
- FIG. 8 A shows an installation mechanism 800 with which anchor 100 of the present invention can be installed.
- installation mechanism 800 includes a drill bit mechanism 820 and an impact installation tool 840.
- Drill bit mechanism 821) includes a chuck receiving portion 822 for being received in a power tool such as a power hammer or hammer drill.
- Drill bit mechanism 820 also includes a bit 824 for drilling a suitably sized hole in concrete (e.g., a post tensioned slab).
- a flange 826 is also provided on drill bit mechanism 820 with a surface 828 for controlling a depth to which bit 824 enters the concrete and gauging the angle in which the hole is being drilled.
- Impact installation tool 840 includes a receptacle 842 for receiving bit 824 and includes a guide 844.
- Impact installation tool 840 also includes a shoulder 846 for limiting the axial d stance guide 844 is inserted into upper portion 210 anchor 100.
- FIG 8B after a hole is drilled in the concrete using drill bit mechanism 820, impact installation tool 840 is place over bit 824 until impact installation tool 840 engages surface 828.
- anchor 100 is placed over guide 844 with guide 844 being received in opening 320 of sleeve 200 until a topmost portion 850 of sleeve 200 engages shoulder 846.
- FIG. 8C shows a side view of an anchor 100 in the installed configuration
- Figure 8D shows a cross -sectional view of anchor 100 of the present invention in the installed configurat on.
- legs 250 each ride up on increasing radius portion 350 and forcing a lower portion 240 of sleeve 200 outward radially.
- bending stresses at waistband 260 increases and since the sleeve wall diameter is reduced at waistband 260, each leg begins to bend outward at waistband 260.
- the result is a sort of rotation of lower portion 240 of the sleeve where lower portion 240 is supported in the new set rotated position by plug 300's increasing diameter portion 350.
- edge 274 is forced into the surround concrete wall of the concrete hole into which the anchor is to be set.
- the forcing results from impact to sleeve 200 which urging legs 250 over increasing diameter portion 350 and outward into the concrete hole wall forcibly displacing a portion of the concrete to extend radially past the hole wall 900.
- Figure 8E shows a concrete portion broken out of a concrete slab to reveal a bottom view of a set anchor 100. Figure 8E clearly shows that after setting, edge 274 is lodged in the concrete hole 900 radially outward past the concrete hole wall.
- edge 274 This extension of edge 274 past a radial limit of hole 900 and into the concrete prevents or resists radial movement of anchor 100 over and above the simple friction resistance methods of the prior art. Furthermore, flexing back of legs 250 and thus edge 274 as an anchor pulling out load is applied is resisted or prevented by increasing diameter portion 350 and transition portion 352.
- increasing diameter portion 350 not only blocks or prevents radially inward collapsing when loading, but any further axial pull out force applied to increasing diameter portion 350 translates into a further radially outward force exerted on surface 276 of legs 250.
- increasing diameter portion 350 creates a dynamic continuous radially outward force on legs 250 rather than just a passive prevention of leg col lapse because increasing diameter portion 350 of plug 300 is free to move axially relative to legs 250 of wedged sleeve 200.
- outer wall of the second threaded end of plug 300 may have a slightly smaller radius than the adjacent
- the final installation configuration of anchor 100 has terminal end 273 of legs 250 extending down proximate or to lower end 355 of plug 300. Because lower end 355 of plug 300 is cylindrical (not tapered like 350), when leg 250 gets jammed or forced between hole 900 and lower end 340, surface 276 of lower portion 272 gets force radially over and against a diameter transition 352. Lower portion 272 also gels forced inward by wall 900. Specifically, lower portion 272 if forced or bent inward toward lower end 355. Therefore, wall 900 pushes radially inward on an end of leg 250 (e.g., at 274) as diameter transition 352 pushes radially outward.
- the present invention anchor 100 therefore provides at least two mechanisms (i.e., transferring axial plug load into outward radial force on legs and flexing of legs over transition 352) for dynamically resisting pull out displacement from hole 900.
- diameter transition 352 is positioned to engage surface 276 such that a final position of wall 269 may be generally vertical .
- inner surfaces of portions 268 and 272 rotates to engage and become supported by an angled increasing diameter portion 350 and/or a lower portion 355.
- Figure 9 shows a graph of load vs. embedment depth in im-cracked concrete for the anchor of Figure 3.
- Figure 10 shows a graph of load vs. embedment depth in cracked concrete for the anchor of Figure 3.
- Both of Figures 9 and 10 show lines defined by applicable building code equations where the present invention anchor 100 always fails at loads acceptably above code minimums for both high and low strength concretes.
- the present invention anchor is capable of developing a tensile capacity of about 455 lbs in a cracked-concrete condition, in a base material comprised of normal-weight concrete with a compressive strength of about 2500 psi; is capable of developing a shear capacity of about 985 lbs in a cracked-concrete condition, in a base material comprised of normal-weight concrete with a compressive strength of about 2500 psi; is capable of developing a tensile capacity of about 410 lbs in a seismic condition, in a base material comprised of normal-weight concrete with a compressive strength of about 2500 psi; is capable of developing a shear capacity of about 895 lbs in a seismic condition according to national code, in a base material comprised of normal-weight concrete with a compressive strength of about 2500 psi.
- National codes can be found in ICC Evaluation Service's ICC-ES Report (ESR-3912) Division: 03 00 00— Concrete Section
- Figures 11 A and 1 IB show the results of a series of reliability tests for various concrete strengths, cracked and un-cracked concretes, and for embedment depths. The data shows acceptable values in all cases.
- Figures 12A and 12B shows a graph of load vs. displacement of the present invention anchor 100 in low and high strength cracked concrete.
- the various trials i.e., lines of the graph
- the steeper curve shows the desirability of the present invention anchor 100 under the slated test conditions and which could not be achieved with the prior art anchor solution.
- Figure 13A shows a graph of displacement vs. cycles for a constant 1201b load of the anchor of Figure 3.
- the characteristic low slope behavior of the various trial graphs illustrate the hesitation of the present invention anchor 100 to pull out or to displacement, hi addition.
- Figure 13B shows a graph of load vs.
Landscapes
- Engineering & Computer Science (AREA)
- Architecture (AREA)
- Civil Engineering (AREA)
- Structural Engineering (AREA)
- Physics & Mathematics (AREA)
- Electromagnetism (AREA)
- Environmental & Geological Engineering (AREA)
- Mechanical Engineering (AREA)
- Joining Of Building Structures In Genera (AREA)
- Dowels (AREA)
Abstract
Description
Claims
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201562265212P | 2015-12-09 | 2015-12-09 | |
| US15/371,645 US20170167139A1 (en) | 2015-12-09 | 2016-12-07 | Shallow undercut concrete anchor |
| PCT/US2016/065508 WO2017100392A1 (en) | 2015-12-09 | 2016-12-08 | Shallow undercut concrete anchor |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP3387271A1 true EP3387271A1 (en) | 2018-10-17 |
| EP3387271A4 EP3387271A4 (en) | 2019-09-04 |
Family
ID=59014208
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP16873814.4A Pending EP3387271A4 (en) | 2015-12-09 | 2016-12-08 | Shallow undercut concrete anchor |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20170167139A1 (en) |
| EP (1) | EP3387271A4 (en) |
| AU (2) | AU2016365744B2 (en) |
| WO (1) | WO2017100392A1 (en) |
Families Citing this family (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| USD856787S1 (en) | 2017-09-27 | 2019-08-20 | Illinois Tool Works Inc. | Undercut anchor attachment barrel |
| US10995487B2 (en) | 2017-09-27 | 2021-05-04 | Illinois Tool Works Inc. | Undercut anchor, undercut anchor manufacturing method, and anchoring method |
| EP3564540A1 (en) | 2018-05-03 | 2019-11-06 | HILTI Aktiengesellschaft | Expansion anchor with protected optical code |
Family Cites Families (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4442646A (en) * | 1980-10-28 | 1984-04-17 | Ponteggi Est S.P.A. | Device for anchoring tensioning elements |
| MY115793A (en) * | 1995-02-17 | 2003-09-30 | Illinois Tool Works | Masonry anchor |
| FR2817303B1 (en) * | 2000-11-29 | 2004-04-23 | Prospection & Inventions | EXPANDABLE SOCKET ANKLE WITH COMPRESSIBLE PORTION |
| US8434980B2 (en) * | 2010-09-25 | 2013-05-07 | Yow Cheng Co., Ltd. | Expansible anchor assembly and its fastening adaptor |
-
2016
- 2016-12-07 US US15/371,645 patent/US20170167139A1/en not_active Abandoned
- 2016-12-08 EP EP16873814.4A patent/EP3387271A4/en active Pending
- 2016-12-08 AU AU2016365744A patent/AU2016365744B2/en active Active
- 2016-12-08 WO PCT/US2016/065508 patent/WO2017100392A1/en not_active Ceased
-
2021
- 2021-05-21 AU AU2021203281A patent/AU2021203281B2/en active Active
Also Published As
| Publication number | Publication date |
|---|---|
| AU2021203281B2 (en) | 2023-09-07 |
| AU2016365744A1 (en) | 2018-06-07 |
| AU2021203281A1 (en) | 2021-06-17 |
| AU2016365744B2 (en) | 2021-05-06 |
| EP3387271A4 (en) | 2019-09-04 |
| WO2017100392A1 (en) | 2017-06-15 |
| US20170167139A1 (en) | 2017-06-15 |
| CA3007313A1 (en) | 2017-06-15 |
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