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Methods to prevent soil erosion and stabilize seawalls

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  • Publication Date:
    September 10, 2024
  • Additional Information
    • Patent Number:
      12084,825
    • Appl. No:
      18/061295
    • Application Filed:
      December 02, 2022
    • Abstract:
      The present disclosure relates to methods of stabilizing a seawall and reducing erosion around a seawall. Disclosed herein are methods of reducing erosion around a seawall, comprising injecting an amount of a sealing material to an injection depth at each of a plurality of spaced locations along a landward side of a new seawall. Also disclosed herein are methods for forming a chemical footer for a seawall comprising injecting a polymeric material to an injection depth from 1 foot to 3 feet below the mudline at each of a plurality of spaced locations along a landward side of a seawall. Additionally described herein are methods for reinforcing a seawall, comprising injecting a polymeric material to an injection depth at a plurality of spaced locations along the landward side of the seawall, wherein the injection depth is substantially at the vertical midpoint between the mudline and the top of the seawall.
    • Inventors:
      Alchemy-Spetec LLC (Tucker, GA, US)
    • Assignees:
      Alchatek, LLC (Tucker, GA, US)
    • Claim:
      1. A method of reducing erosion around a new seawall, the method comprising: injecting an amount of a sealing material to an injection depth at each of a plurality of spaced locations along a landward side of the new seawall to form an undulating pattern, wherein the new seawall is a seawall that has been constructed within 12 months and before substantial soil erosion has occurred; and thereafter drilling or boring one or more dewatering channels that extend through the new seawall and at least a portion of the sealing material, wherein the one or more dewatering channels create paths for the flow of water such that the sealing material directs water from the landward side of the new seawall to an outlet adjacent the waterward side of the new seawall.
    • Claim:
      2. The method of claim 1 , wherein the sealing material includes a polymeric material, microfine cement, sodium silicate, an acrylic resin, or mixtures thereof.
    • Claim:
      3. The method of claim 1 , wherein the sealing material includes a polymeric material and wherein the polymeric material comprises a polyurethane.
    • Claim:
      4. The method of claim 3 , wherein the polyurethane comprises a single-component closed-cell polyurethane.
    • Claim:
      5. The method of claim 1 , wherein the sealing material is an expandable polymeric material.
    • Claim:
      6. The method of claim 1 , wherein the injecting step is performed within 1 week from the construction date of the new seawall.
    • Claim:
      7. The method of claim 1 , wherein positioning the one or more dewatering channels comprises positioning at least two dewatering channels, and wherein the injection of the sealing material occurs substantially at the horizontal midpoint between adjacent outlets in the new seawall structure.
    • Claim:
      8. The method of claim 1 , wherein the plurality of spaced locations are separated by an average distance of from 0.5 to 4 feet.
    • Claim:
      9. The method of claim 1 , wherein the injection depth is at or below the mudline.
    • Claim:
      10. The method of claim 1 , wherein the sealing material is applied in an amount of at least one gallon per vertical foot at each of the plurality of spaced locations.
    • Claim:
      11. A method of forming a chemical footer for a new seawall comprising: injecting an amount of a polymeric material to an injection depth at each of a plurality of spaced locations along a length of a landward side of the new seawall constructed without a filter fabric, wherein the new seawall is a seawall that has been constructed within 12 months and before substantial soil erosion has occurred; wherein the injection depth is from 1 foot to 3 feet below the mudline at the new seawall, and wherein the plurality of spaced locations are separated by a distance such that injections of the polymeric material at each of the plurality of spaced locations form a substantially continuous application of the polymeric material along a length of the new seawall.
    • Claim:
      12. The method of claim 11 , wherein the amount of the polymeric material comprises from 0.5 to 3 gallons of the polymeric material per horizontal foot of new seawall.
    • Claim:
      13. The method of claim 11 , wherein the plurality of spaced locations are separated by an average distance of from 0.5 to 4 feet.
    • Claim:
      14. The method of claim 11 , wherein the polymeric material comprises a polyurethane.
    • Claim:
      15. The method of claim 14 , wherein the polyurethane comprises a single-component polyurethane.
    • Claim:
      16. The method of claim 11 , wherein the polymeric material comprises an expandable polymeric material.
    • Claim:
      17. The method of claim 11 , wherein the substantially continuous application of the polymeric material is at a length of at least 6 feet of the new seawall.
    • Claim:
      18. The method of claim 11 , wherein the substantially continuous application of the polymeric material spans substantially the full length of the new seawall.
    • Claim:
      19. A method of reinforcing a new seawall with a chemical whaler, the method comprising: injecting an amount of a polymeric material to an injection depth at a plurality of spaced locations along the landward side of the new seawall constructed without a filter fabric, wherein the new seawall is a seawall that has been constructed within 12 months and before substantial soil erosion has occurred; wherein the injection depth is substantially at the vertical midpoint between the mudline and the top of the new seawall, and wherein the plurality of spaced locations are separated by a distance such that injections of the polymeric material at each of the plurality of spaced locations form a substantially continuous application of the polymeric material along the length of the new seawall.
    • Claim:
      20. The method of claim 19 , wherein the polymeric material comprises a polyurethane.
    • Claim:
      21. The method of claim 20 , wherein the polyurethane comprises a single-component closed-cell polyurethane.
    • Claim:
      22. The method of claim 19 , wherein the polymeric material comprises an expandable polymeric material.
    • Claim:
      23. The method of claim 19 , wherein the injection depth is within 2 vertical feet of the vertical midpoint between the mudline and the top of the new seawall.
    • Claim:
      24. The method of claim 19 , wherein the amount of the polymeric material comprises from 1 to 2 gallons of the polymeric material per horizontal foot of new seawall.
    • Claim:
      25. The method of claim 19 , wherein the substantially continuous application of the polymeric material is at a length of at least 6 feet of the new seawall.
    • Claim:
      26. The method of claim 19 , wherein the substantially continuous application of the polymeric material spans substantially the full length of the new seawall.
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    • Other References:
      Powell, Andy; “Stop Erosion Through Your Seawall with Polyurethane”); Jul. 2018; All (Year: 2018). cited by examiner
      Alchemy Spetec; “AP Fill 700”; Jul. 2018; All (Year: 2018). cited by examiner
      Bosboom, Judith et al.; “Seawalls”; Dec. 19, 2021; All (Year: 2021). cited by examiner
      Prime Resins; “Seawall Repair with Chemical Grouts”; Aug. 12, 2022; All (Year: 2022). cited by examiner
      Coastal Foundation Solutions; Pelican Isle Yacht Club Seawall Repair; Dec. 2, 2021; All (Year: 2021). cited by examiner
      Alchatek, Polyurethane Seawall Repair Explained; “https://www.youtube.com/watch?v=8_Y_UnrHEDQ”; Feb. 14, 2020 (Year: 2020). cited by examiner
      Alchemy Spetec; “AP Fill 720”; All; 2020 (Year: 2020). cited by examiner
      Yasser Krayem; Seawall Repair by Slab Fix; “https://www.youtube.com/watch?v=Pja_GXyeUyA”; Feb. 2, 2021 (Year: 2021). cited by examiner
      Prime Resins; Seawall Stabilization with Prime Flex 910; https://www.youtube.com/watch?v=RwK5vKCZKzE; Apr. 19, 2011 (Year: 2011). cited by examiner
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    • Primary Examiner:
      Fiorello, Benjamin F
    • Attorney, Agent or Firm:
      Meunier Carlin & Curfman LLC
    • Accession Number:
      edspgr.12084825