1. A method for treating a surface, the method comprising:
providing a liquid composition comprising:
a hypohalite or hypohalous acid; and
a soluble salt of 2,4,6 mesitylene sulfonate; and
25% to 98% water; and
contacting said composition with a surface, wherein said composition treats the surface.
2. The method of claim 1, wherein the soluble salt of 2,4,6 mesitylene sulfonate is an alkali metal salt of 2,4,6 mesitylene sulfonate.
3. The method of claim 1, wherein the soluble salt of 2,4,6 mesitylene sulfonate is sodium 2,4,6 mesitylene sulfonate.
4. The method of claim 1, wherein the composition comprises a buffer.
5. The method of claim 4, wherein the composition comprises a surfactant.
6. The method of claim 5, wherein the composition an anionic surfactant.
7. The method of claim 6, wherein the composition comprises a carbonate buffer.
8. The method of claim 1, wherein the composition does not comprise sodium xylene sulfonate, sodium para-toluene sulfonate (Na-PTSA), naphthalene sulfonate, benzene sulfonate, and chloro benzene sulfonate.
9. The method of claim 1, wherein the composition may be substantially free of sodium 2,4,5 mesitylene sulfonate, 2,3,5 mesitylene sulfonate or combinations thereof.
10. A method for cleaning a surface, the method comprising:
providing a liquid composition comprising:
a hypohalite or hypohalous acid;
a soluble salt of 2,4,6 mesitylene sulfonate;
a buffer; and
25% to 98% water; and
contacting said composition with a surface, wherein said composition cleans the surface.
11. The method of claim 10, wherein the buffer is selected from the group consisting of carbonates, bicarbonates, borates, phosphates, silicates, borates, and combinations thereof.
12. The method of claim 10, wherein the buffer is a carbonate.
13. The method of claim 10, wherein the composition comprises from about 0.01% to about 10% by weight of the buffer.
14. The method of claim 10, wherein the composition does not comprise sodium xylene sulfonate, sodium para-toluene sulfonate (Na-PTSA), naphthalene sulfonate, benzene sulfonate, and chloro benzene sulfonate.
15. The method of claim 10, wherein the composition may be substantially free of sodium 2,4,5 mesitylene sulfonate, 2,3,5 mesitylene sulfonate or combinations thereof.
16. A method for bleaching a surface, the method comprising:
providing a liquid composition comprising:
a hypohalite or hypohalous acid;
a soluble salt of 2,4,6 mesitylene sulfonate;
a surfactant; and
25% to 98% water; and
contacting said composition with a surface, wherein said composition bleaches the surface.
17. The method of claim 16, wherein the surfactant is selected from the group consisting of anionic surfactants, cationic surfactants, nonionic surfactants, amphoteric surfactants, zwitterionic surfactants, and combinations thereof.
18. The method of claim 16, wherein the surfactant is an anionic surfactant.
19. The method of claim 16, wherein the composition does not comprise sodium xylene sulfonate, sodium para-toluene sulfonate (Na-PTSA), naphthalene sulfonate, benzene sulfonate, and chloro benzene sulfonate.
20. The method of claim 16, wherein the composition may be substantially free of sodium 2,4,5 mesitylene sulfonate, 2,3,5 mesitylene sulfonate or combinations thereof.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A geothermal grout composition, comprising:
a first component, wherein the first component comprises a source of reactive silica and alumina, and wherein the source of reactive silica and alumina comprises about 70% to 95% of the composition;
a second component selected from at least one of: cement, lime, hydrated lime, lime kiln dust, cement kiln dust, calcium sulfate, and any combination thereof, wherein the second component comprises about 5% to 30% of the composition; and
a third component, wherein the third component comprises a carbon additive, wherein the carbon additive comprises about 0% to 40% of the composition.
2. The geothermal grout composition of claim 1, wherein the source of reactive silica and alumina is selected from at least one of: fly ash, blast furnace slag, natural pozzolans, and any combination of fly ash and blast furnace slag.
3. The geothermal grout composition of claim 1, wherein the source of reactive silica and alumina contains about 20% to 100% reactive amorphous aluminosilicate.
4. The geothermal grout composition of claim 1 further comprising an additional component, wherein the additional component is an iron compound selected from at least one of: hematite (Fe2O3), magnetiteferrite spinel (Fe3O4), metallic iron (Fe), and any combination thereof.
5. The geothermal grout composition of claim 1 further comprising an additional component, wherein the additional component is a calcium sulfate compound selected from at least one of: calcium sulfate or anhydrite (CaSO4), calcium sulfate dihydrate or gypsum (CaSO4.2H2O), calcium sulfate hemihydrate (CaSO4.12H2O), and any combination thereof.
6. The geothermal grout composition of claim 1, further comprising a first additional component, wherein the first additional component is an iron compound selected from at least one of: hematite (Fe2O3), magnetiteferrite spinel (Fe3O4), metallic iron (Fe), and any combination thereof; and a second additional component wherein the second additional component is a calcium sulfate compound selected from at least one of: calcium sulfate or anhydrite (CaSO4), calcium sulfate dihydrate or gypsum (CaSO4.2H2O), calcium sulfate hemihydrate (CaSO4.12H2O), and any combination thereof.
7. The geothermal grout composition of claim 1, where the composition exhibits at least one of: thermal conductivity, sealant properties, minimal shrinkage, low permeability, strength, and acceptable rheology.
8. The geothermal grout composition of claim 1, where the composition is suitable for commercial and residential use.
9. A geothermal grout composition, comprising:
a first component comprising a source of reactive silica and alumina, wherein the source of reactive silica and alumina comprises about 70% to 95% of the composition, the first component further comprising carbon, the carbon being about 0% to 40% of the composition; and
a second component selected from at least one of: cement, lime, hydrated lime, lime kiln dust, cement kiln dust, calcium sulfate, and any combination thereof, wherein the second component comprises about 5% to 30% of the composition.
10. The geothermal grout composition of claim 9, wherein the first component further comprises at least one of: fly ash, blast furnace slag, natural pozzolans, and any combination of fly ash, blast furnace slag, and natural pozzolans.
11. A method, comprising the step of:
mixing a first component with a second component and a third component to yield a geothermal grout composition, wherein the first component comprises a source of reactive silica and alumina, and wherein the source of reactive silica and alumina comprises about 70% to 95% of the composition, and the second component is selected from at least one of: cement, lime, hydrated lime, lime kiln dust, cement kiln dust, calcium sulfate, and any combination thereof, wherein the second component comprises about 5% to 30% of the composition, and the third component comprises a carbon additive, wherein the carbon additive comprises about 0% to 40% of the composition.
12. A method, comprising the steps of:
obtaining a first component, wherein the first component comprises a source of reactive silica and alumina, and wherein the source of reactive silica and alumina comprises about 70% to 95% of the composition;
obtaining a second component selected from at least one of: cement, lime, hydrated lime, lime kiln dust, cement kiln dust, calcium sulfate, and any combination thereof, wherein the second component comprises about 5% to 30% of the composition;
obtaining a third component, wherein the third component comprises a carbon additive, wherein the carbon additive comprises about 0% to 40% of the composition; and
mixing the first component, the second component, and the third component.
13. The method of claim 12, wherein the step of mixing the first component, the second component and the third component further comprises mixing the first component, the second component and the third component in a batch weighing system.
14. The method of claim 11, further comprising mixing the composition comprised of the first component, the second component, and the third component with water and injecting the composition into at least one bored hole in the surface of the earth so that the composition surrounds at least a portion of a pipe of a loop of a geothermal heat pump system.
15. The method of claim 12, further comprising mixing the composition comprised of the first component, the second component, and the third component with water and injecting the composition into at least one bored hole in the surface of the earth so that the composition surrounds at least a portion of a pipe of a loop of a geothermal heat pump system.