Anchoring System & Method of Use
20170073959 ยท 2017-03-16
Inventors
Cpc classification
F16B13/124
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
E04B1/41
FIXED CONSTRUCTIONS
F16B13/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An anchoring system is disclosed, having an anchor where one end is plurality of prongs configured to expand and retain a substrate when engaged by a threaded rod pin and the other end is a partially threaded opening configured to engage the threaded rod pin. The threaded rod pin has a section of exterior threading that will engage with both the coupler and the anchor. A drill depth measuring guide having a hollow threaded holder to accept a dill bit. The holder has a setscrew to secure it to the drill bit and an exterior threaded cylinder to matingly engage a locking nut and a collar that can be threaded onto the holder at various locations to allow for different drill depths.
Claims
1. An anchoring system comprising: a. a generally cylindrical anchor having an aperture therethrough, comprising a distal end having a plurality of prongs wherein the prongs are configured to expand outward and a proximal end having threading on a wall of the aperture; b. a hexagonal coupler having a threaded opening at a distal and proximal end; c. a threaded rod pin having a threaded proximal end adapted to engage the threaded proximal end of the anchor as well as the threaded proximal end of the coupler and a protruding distal end configured to penetrate between the prongs.
2. The anchoring system of claim 1 wherein the prongs are defined by longitudinal cuts in the distal end of the anchor, and the prongs are configured to expand outward when penetrated by the protruding end of the threaded rod pin.
3. The anchoring system of claim 1 further comprising a spline socket wherein the spline socket is configured to rotate the coupler.
4. The anchoring system of claim 1 wherein the plurality of prongs has a textured exterior surface.
5. The anchoring system of claim 1 wherein the coupler further comprises a threaded opening at a proximal end to receive a threaded rod.
6. The anchoring system of claim 4 further comprising a separator that bisects the proximal and distal ends of the coupler.
7. The anchoring system of claim 1 wherein the protruding distal end of the threaded rod pin is smooth.
8. The anchoring system of claim 1 wherein the anchor has four prongs.
9. A drill depth guide apparatus comprising: a. a cylindrical holder having an aperture therethrough, the holder comprising a first end and a second end wherein a surface of the holder is threaded; b. a collar comprising a threaded aperture adapted to fit over the second end of the holder; c. a collar lock comprising a threaded aperture adapted to matingly engage with the thread holder, wherein the nut is configured to lock the collar on the holder.
10. The depth guide apparatus of claim 6 wherein the holder further comprises a head having the set screw at the first end configured to retain the holder on a drill shank
11. The depth guide apparatus of claim 6 further comprising as externally-threaded cylinder adapted to matingly engage with the collar.
12. A method for installing an anchoring system comprising the steps of: a. drilling a hole into a substrate; b. inserting an anchor having expansion prongs at a distal end, wherein the anchor is inserted distal-end first c. inserting a threaded rod pin into the proximal end of the anchor d. affixing a coupler to the rod pin, wherein the coupler is rotated to rotate the rod pin d. rotating the rod pin into the anchor such that the threaded rod pin penetrates the anchor expanding the prongs outward thereby engaging the substrate
13. The method of claim 9 further comprising the step of selecting a drill depth measuring guide.
14. The method of claim 10 further comprising the steps of threading a collar on the drill depth guide apparatus to adjust a drill depth and fixing the collar by tightening a nut against the collar.
15. The method of claim 12 wherein once threaded the coupler protrudes from the substrate.
16. The method of claim 12 wherein a spline socket is used to rotate the coupler onto the threaded rod pin.
17. The method of claim 13 further comprising threading a threaded rod into the coupler.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] For a more complete understanding of the present invention, the objects and advantages thereof, reference is now made to the ensuing descriptions taken in connection with the accompanying drawings briefly described as follows.
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0017] Preferred embodiments of the present invention and their advantages may be understood by referring to FIGS. (1-6) wherein like reference numerals refer to like elements.
[0018] With reference to
[0019] With reference to
[0020] With reference to
[0021] In one embodiment of the present invention, the coupler 30 is permanently attached to the threaded rod pin 20 whereby the coupler 30threaded rod pin 20 is used to engage the anchor 2 and then be removed from the anchor such that the coupler 30threaded rod pin 20 can be used to engage multiple different anchors.
In Use
[0022] In use, the drill depth measuring guide 45 is used in conjunction with a drilling tool to create a hole is a solid substrate to a desired depth and diameter. In one embodiment, the dimensions of the anchor are known and a user would select the drill depth guide with sleeve 50 that is permanently fixed at a set depth on a drill bit. A hole is then created in the substrate and an anchor 2 is placed therein with the prongs 5 being inserted into the hole. The threaded rod pin 20 is then inserted into the second end 4 of the anchor 2 such that the threaded end 22 contacts the interior partially threaded aperture of the anchor 2. The coupler 30 is then threaded onto the exposed second end 4 and rotated such that the coupler 30 matingly engages the threaded rod pin 20. The first end 21 of the threaded rod pin 20 will proceed to the first end 3 of the anchor 2 where it exert a force onto the sloped interior surface of the prongs thereby resulting in the transfer of force and outward expansion of the prongs 5 onto the adjacent walls of the hole. Such outward expansion will result in a frictional interaction between the knurled or textured exterior surface of the prongs with the walls of the hole. This interaction ultimately sets the anchoring apparatus 1 in a desired and static location.
[0023] In another embodiment, the adjustable drill depth apparatus is used to create a hole in the substrate by first sliding a drill bit through the threaded holder 65 and tightening the setscrew onto the drill bit. Then, threading the locking nut 70 onto the externally-threaded cylinder 61. The collar 60 is then threaded onto the externally-threaded cylinder 61 of the threaded holder 65 until the desired drill depth was exposed. Finally, the locking nut 70 is tightened against the collar such that it locks the collar in place. The anchor 2 is then oriented such that the first end 3 leads as the entire anchor 2 is placed therein. Next, the threaded rod pin 20 is placed into the second end 4 of the anchor 2. The coupler 30 is then rotated onto the second end 22 of the threaded rod pin 20 such that the threaded aperture of the coupler 30 matingly engages the threaded rod pin 20. After the coupler 30 has engaged the threaded rod pin 20, the coupler 30 is continually rotated such that the first end 21 of the threaded rod pin matingly engages the second end 4 of the anchor 2. The first end 21 of the threaded rod pin 20 will proceed to the first end 3 of the anchor 2 where it exert a force onto the sloped interior surface of the prongs 5 thereby resulting in the transfer of force and outward expansion of the prongs 5 onto the adjacent walls of the hole. Such outward expansion will result in a frictional interaction between the knurled or textured exterior surface of the prongs with the walls of the hole. This interaction ultimately sets the anchoring apparatus 1 in a desired and static location.
[0024] In another embodiment, the spline socket 75 is used to rotate the coupler 30. The tail end 80 of the spline socket is inserted into a drill. The head 85 of the spline socket is then positioned to address the coupler 30. The couple 30 enters the head 85 of the spline socket 75. The spline socket 75 is then rotated such that the interior surfaces 90 engage the coupler 30 and transfer the rotational forces from the drill through the spline socket 75 to the coupler 30. The spline socket 75 continuously rotates the coupler 30 and threaded rod pin 20 into the anchor 2 until the prongs 5 are sufficiently engaged with the hole.
[0025] The invention has been described herein using specific embodiments for the purposes of illustration only. It will be readily apparent to one of ordinary skill in the art, however, that the principles of the invention can be embodied in other ways. Therefore, the invention should not be regarded as being limited in scope to the specific embodiments disclosed herein, but instead as being fully commensurate in scope with the following claims.