IP Library › Granted Patent US 11,220,460
Granted Patent B2
US 11,220,460 · App. 16/346,712 · Granted Jan 11, 2022

Multi-component mortar system

Inventors: Dorine Sautreuil (Gonneville la Mallet, FR); Maxime Liard (Saint-Louis, FR); Olivier Herr (Neuf-Marché, FR); Mohamed Cader (Cranford, NJ); Didier Lootens (Küssnacht, CH); Anne-Claire Legrain (Hoboken, NJ)
Assignee: SIKA TECHNOLOGY AG
C04B28/06B28B1/001B29C64/00B29C64/10B29C64/124B29C71/00B33Y40/10B33Y70/00C04B14/06C04B14/28C04B22/062C04B22/147C04B22/165C04B40/065C04B40/0625B33Y10/00C04B2103/12C04B2103/22C04B2111/00181Y02W30/91
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Quick Facts
Patent No.
US 11,220,460
App. No.
16/346,712
Granted
Jan 11, 2022
Kind
B2
Abstract

A multi-component mortar system including a component A and a component B wherein, component A includes aluminous cement, at least one set inhibitor, at least one mineral filler and water, and component B includes an initiator system for the set-inhibited aluminous cement, at least one mineral filler and water. The multi-component mortar system is easy to use and suitable for repair and refurbishment and particularly for printing 3D structures.

Claims (14)

1. A process for printing a 3D structure comprising the steps of

providing a multi-component mortar system comprising a component A and a component B, wherein

the component A comprises 10 to 50 weight-% aluminous cement and 30 to 78 weight-% mineral filler, based on the weight of component A, at least one set inhibitor, and water, and

the component B comprises an initiator system for the set-inhibited aluminous cement, 65 to 86 weight-% mineral filler, based on the weight of component B, and water;

mixing the components with a static or dynamic mixer and applying the mixed mortar with a robotic system to form a 3D structure; and

curing of the applied 3D structure.

2. The process for printing a 3D structure according to claim 1 , wherein the component A is free of boric acid or a salt thereof.

3. The process for printing a 3D structure according to claim 1 , wherein the component A comprises at least a phosphate-based set inhibitor.

4. The process for printing a 3D structure according to claim 1 , wherein the initiator system in component B comprises an alkaline compound selected from the group consisting of alkali hydroxide, earth alkali hydroxide, earth alkali oxides, alkali oxides, alkali silicate, alkali aluminate, amines and mixtures thereof.

5. The process for printing a 3D structure according to claim 1 , wherein the mineral filler is selected from materials of the group consisting of calcium carbonate, dolomite, titanium dioxide, silicon dioxide, fly ash, slag, river sand, sand from sediments and crushed stone and mixtures thereof.

6. The process for printing a 3D structure according to claim 1 , wherein 85 weight-% of the particles of the mineral filler in the component A and the component B are smaller than 0.3 mm.

7. The process for printing a 3D structure according to claim 1 , wherein the consistency of the component A and the component B, each separately, is paste-like with a plastic viscosity in the range of 20 to 2,000 Pa's measured with a plate-plate rheometer with plate diameter of 25 mm, 2 mm gap at a shear rate of 1 s −1 .

8. The process for printing a 3D structure according to claim 1 , wherein the component A and the component B and further components, if present, are each packed in separate containers, stored, and mixed immediately before application to produce a fast setting mortar.

9. The process for printing a 3D structure according to claim 1 , wherein the content of aluminous cement in the fresh mortar, calculated as non-hydrated aluminous cement, is from 5 to 45 weight-% based on the weight of the fresh mortar.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 15, 2019
From: SAUTREUIL, DORINE; LIARD, MAXIME; HERR, OLIVIER; CADER, MOHAMED; LOOTENS, DIDIER; LEGRAIN, ANNE-CLAIRE
To: SIKA TECHNOLOGY AG
Reel/Frame 050070/0021 →
Priority Claims (1)
EP 16196754 · Nov 1, 2016 · regional
Continuity (1)
Related Publication 20190276364A1 · Sep 12, 2019