IP Library Granted Patent US 7,666,505
Granted Patent B2
US 7,666,505 · App. 10/648,184 · Granted Feb 23, 2010

Synthetic microspheres comprising aluminosilicate and methods of making same

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Quick Facts
Patent No.
US 7,666,505
App. No.
10/648,184
Granted
Feb 23, 2010
Kind
B2
Abstract

A synthetic microsphere having a low alkali metal oxide content and methods of forming the microsphere and its components are provided. The synthetic microsphere is substantially chemically inert and thus a suitable replacement for natural cenospheres, particularly in caustic environments such as cementitious mixtures. The synthetic microsphere can be made from an agglomerate precursor that includes an aluminosilicate material, such as fly ash, a blowing agent such as sugar, carbon black, and silicon carbide, and a binding agent. The synthetic microsphere is produced when the precursor is fired at a pre-determined temperature profile so as to form either solid or hollow synthetic microspheres depending on the processing conditions and/or components used.

Claims (21)

1. A synthetic microsphere, comprising:

a synthetic, substantially spherical wall comprising an aluminosilicate material;

wherein the microsphere has a particle diameter of greater than about 30 microns, wherein the microsphere comprises 12.8 wt. % to 40 wt. % aluminum oxide, 5.2 wt. % to 30 wt. % calcium oxide, and greater than 4 wt. % to less than about 10 wt. % sodium oxide, wherein the microsphere has a total alkali metal oxide content of less than about 10 wt. %, based on the weight of the microsphere, and wherein the microsphere has a void volume of between about 30% and 95% based on the total volume of the microsphere.

2. The synthetic microsphere of claim 1 , wherein the substantially spherical wall defines at least one inner void, wherein the at least one inner void is synthetically formed by a pre-determined amount of a blowing agent.

3. The synthetic microsphere of claim 2 , wherein the blowing agent is selected from the group consisting of powdered coal, carbon black, graphite, carbonaceous polymeric organics, oils, sugar, starch, polymeric organic oils, polyvinyl alcohol, carbonates, carbides, sulfates, sulfides, nitrides, nitrates, glycol, glycerine, and combinations thereof.

4. The synthetic microsphere of claim 2 , wherein the at least one inner void has a volume of between about 30-95% of the aggregate volume of the microsphere.

5. The synthetic microsphere of claim 1 , wherein the synthetic substantially spherical wall further comprises a binding agent.

6. The synthetic microsphere of claim 5 , wherein the binding agent is selected from the group consisting of alkali metal silicates, alkali metal aluminosilicates, alkali metal borates, alkali or alkaline earth metal carbonates, alkali or alkaline earth metal nitrates, alkali or alkaline earth metal nitrites, boric acid, alkali or alkaline earth metal sulfates, alkali or alkaline earth metal phosphates, alkali or alkaline earth metal hydroxides, sugar, ultra fine fly ash, Class C fly ash, Class F fly ash, colloidal silica, inorganic silicate cements, and combinations thereof.

7. The synthetic microsphere of claim 1 , wherein the microsphere is formulated to be substantially chemically inert in a caustic environment having a pH of about 12-14.

8. The synthetic microsphere of claim 1 , further comprising an aspect ratio of between about 0.8 and 1.

9. The synthetic microsphere of claim 1 , further comprising a wall thickness of between about 1 to 100 microns.

10. The synthetic microsphere of claim 1 , wherein the particle density of the microsphere is between about 0.1 and 2 g/cm 3 .

11. The synthetic microsphere of claim 1 , wherein the bulk density of the microsphere is less than about 1.4 g/cm 3 .

12. The synthetic microsphere of claim 1 , wherein the mass ratio of silica to alumina is greater than unity.

13. The synthetic microsphere of claim 1 , wherein the average particle diameter of the microsphere is between about 30 and 1000 microns.

14. The synthetic microsphere of claim 1 , wherein the average particle diameter of the microsphere is between about 50 and 300 microns.

15. The synthetic microsphere of claim 1 , wherein the aluminosilicate material is calcined.

16. The synthetic microsphere of claim 1 , wherein the aluminosilicate material is derived from fly ash.

17. A plurality of synthetic microspheres comprising:

12.8 wt. % to 40 wt. % aluminum oxide, 5.2 wt. % to less than about 10 wt. % sodium oxide, and an alkali metal oxide content of less than about 10 wt % based on the total weight of the micro spheres, wherein the synthetic microspheres are formulated to have a pre-selected average particle diameter of greater than about 30 microns, wherein the synthetic microspheres are formulated with aluminosilicate particles having a pre-selected average particle size range of about 0.01 to 50 microns, and wherein the synthetic microspheres each have a void volume of between about 30% and 95% based on the total volume of the microsphere.

18. The synthetic microspheres of claim 17 , wherein each synthetic microsphere has a substantially spherical outer wall defining a synthetically formed, substantially enclosedcavity therein.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 18, 2010
From: JAMES HARDIE INTERNATIONAL FINANCE B.V.
To: JAMES HARDIE TECHNOLOGY LIMITED
Reel/Frame 024103/0809 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 28, 2005
From: JAMES HARDIE RESEARCH PTY LIMITED
To: JAMES HARDIE INTERNATIONAL FINANCE B.V.
Reel/Frame 015962/0390 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 28, 2005
From: JAMES HARDIE RESEARCH PTY LIMITED
To: JAMES HARDIE INTERNATIONAL FINANCE B.V.
Reel/Frame 016353/0550 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 11, 2003
From: DATTA, AMLAN; HOJAJI, HAMID; MELMETH, DAVID L.; MCFARLANE, JAMES A.; PHAM, THINH; THOMPSON, NOEL E.; ZHANG, HUAGANG
To: JAMES HARDIE RESEARCH PTY LIMITED
Reel/Frame 014775/0398 →