IP Library Granted Patent US 12680252
Granted Patent B2
US 12680252 · App. 18/574,327 · Granted Jul 14, 2026

Method for manufacturing an element comprising a grout activation cycle

Inventor: Christophe Justino (Rueil Malmaison, FR)
E02D3/12E02D2250/003E02D2300/0018
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Quick Facts
Patent No.
US 12680252
App. No.
18/574,327
Granted
Jul 14, 2026
Kind
B2
Abstract

A method for manufacturing an element in a ground comprising a drilling step during which a grout comprising a first composition is introduced and after the drilling step, at least one grout activation cycle is performed during which at least part of the grout is pumped; a second composition configured to activate the grout by reacting with the first composition in order to initiate the hardening of said grout is added to the pumped grout; then the activated grout is introduced into the excavation; and after said at least one grout activation cycle, the activated grout is allowed to harden in order to form the element in the ground.

Claims (45)

1 . A method for manufacturing an element in the ground, the method comprising:

a drilling step during which an excavation is drilled into the ground using a drilling tool, while introducing into said excavation a grout comprising a first composition;

after the drilling step, at least one grout activation cycle is performed during which:

at least part of the grout is pumped;

a second composition is added to the pumped grout configured to activate the grout by reacting with the first composition in order to initiate the hardening of said grout; then

the activated grout is introduced into the excavation; and

after said at least one grout activation cycle, the activated grout contained in the excavation is allowed to harden in order to form the element in the ground.

2 . The method according to claim 1 , further comprising a control step in which at least one physicochemical parameter of the pumped grout is measured and said at least one grout activation cycle is stopped when the value of said at least one physicochemical parameter becomes greater than a predetermined upper threshold or lower than a predetermined lower threshold.

3 . The method according to claim 2 , wherein the predetermined upper threshold, respectively the predetermined lower threshold, is determined from said at least one physicochemical parameter measured for the activated grout.

4 . The method according to claim 2 , wherein said at least one physicochemical parameter is chosen from conductivity, pH, viscosity, temperature or the concentration of a specific ion of the pumped grout.

5 . The method according to claim 2 , wherein the physicochemical parameter of the pumped grout is measured on the surface, outside the excavation.

6 . The method according to claim 2 , wherein the amount of the second composition added in the pumped grout is adjusted during said at least one grout activation cycle, as a function of said physicochemical parameter measured on the pumped grout.

7 . The method according to claim 1 , wherein said at least one grout activation cycle for grout comprises, after adding the second composition to the pumped grout, a mixing step in which the pumped grout is mixed with the second added composition, using a mixing tool.

8 . The method according to claim 7 , wherein the mixture of the pumped grout with the second composition is performed above ground and/or in the excavation.

9 . The method according to claim 1 , wherein the grout is pumped from a lower part of the excavation.

10 . The method according to claim 9 , wherein the grout is pumped near the bottom of the excavation.

11 . The method according to claim 1 , wherein the activated grout is introduced into the excavation in an upper part of said excavation.

12 . The method according to claim 1 , wherein the first composition of the grout comprises at least one non-activated aluminosilicate component or a silicate and aluminate compound.

13 . The method according to claim 12 , wherein said at least one non-activated aluminosilicate component is chosen from: a blast furnace slag, fly ash, a calcined clay, a clay of the bentonite, kaolinite, smectite, illite, attapulgite or sepiolite type, or a mixture of these.

14 . The method according to claim 13 , wherein said at least one non-activated aluminosilicate component is a calcined clay of the metakaolin or kaolin type.

15 . The method according to claim 1 , wherein the second composition comprises an alkaline preparation.

16 . The method according to claim 15 , wherein the alkaline preparation is an alkaline preparation of sodium, potassium or calcium.

17 . The method according to claim 16 , wherein the alkaline preparation is chosen from: a preparation of sodium or potassium carbonate; a preparation of sodium, potassium or calcium silicate; a preparation of sodium, potassium or calcium hydroxide; a preparation of calcium oxide; a preparation of sodium, potassium, or calcium sulphate; or quicklime, slaked lime or air lime, or a combination of these.

18 . The method according to claim 15 , wherein the second composition comprises an alkaline powder or an alkaline solution.

19 . The method according to claim 1 , wherein at least one of the first and second compositions comprises at least one adjuvant configured to delay or accelerate the hardening of the activated grout or to fluidize the activated grout.

20 . An installation for manufacturing an element in the ground, the installation comprising:

a drilling tool configured to drill an excavation in the ground;

an introduction device configured to introduce into the excavation, during drilling, a grout comprising a first composition; and

a grout activation device comprising:

a pumping means configured to pump the grout, after drilling;

a means for treating the grout configured to add into the pumped grout a second composition configured to activate the grout by reacting with the first composition in order to initiate the hardening of said grout; and

a means of introducing activated grout into the excavation.

21 . The installation according to claim 20 , further comprising a control device comprising at least a first measuring instrument configured to measure at least one physicochemical parameter of the pumped grout, the control device being configured to stop the addition of the second composition into the pumped grout when the value of said at least one physicochemical parameter becomes greater than a predetermined upper threshold or becomes lower than a predetermined lower threshold.

22 . The installation according to claim 21 , wherein said at least one first measuring instrument is disposed on the surface, outside the excavation, upstream of the grout treatment means.

23 . The installation according to claim 21 , wherein the control device comprises:

at least one second measuring instrument disposed downstream of the grout treatment means and configured to measure said at least one physicochemical parameter for the activated grout; and

a threshold determination module configured to determine the predetermined upper threshold, respectively the predetermined lower threshold, from said at least one physicochemical parameter measured for the activated grout.

24 . The installation according to claim 20 , comprising a mixing tool configured to mix the pumped grout with the second composition added.

25 . An installation for manufacturing an element in the ground, the installation comprising:

a drilling tool configured to drill an excavation in the ground;

an introduction device configured to introduce into the excavation, during drilling, a grout comprising a first composition; and

a grout activation device configured to:

pump the grout, after drilling;

add into the pumped grout a second composition configured to activate the grout by reacting with the first composition in order to initiate the hardening of said grout; and

introduce activated grout into the excavation.