Composition including cured geopolymer particles, and methods of making and using thereof
A composition can include cured geopolymer particles and a particulate cementitious material. The cured geopolymer particles and the particulate cementitious material are a mixed blend. The composition also relates to methods of making and using thereof.
1 . A composition, comprising:
cured geopolymer particles, wherein the cured geopolymer particles comprise an aluminosilicate, a metal hydroxide, and a metal silicate; and
a particulate cementitious material,
wherein the cured geopolymer particles are cured and ground prior to contacting with the particulate cementitious material are to form a mixed blend.
2 . The composition of claim 1 , wherein the particulate cementitious material comprises a pozzolanic material selected from the group consisting of Trass flour, recycled glass, fly ash, bottom ash, cenospheres, glass bubbles, slag, clays, calcined clays, partially calcined clays, kaolinite clays, lateritic clays, illite clays, crystalline silica, silica flour, cement kiln dust, volcanic rock, natural pozzolans, mine tailings, diatomaceous earth, zeolite, shale, ground vitrified pipe, agricultural waste ash, ground granulated blast furnace slag, bentonite, pumice, and any combination thereof.
3 . The composition of claim 1 , wherein the particulate cementitious material comprises an additive selected from the group consisting of quartz flour, bulk flow enhancer, aggregate, additional cured geopolymer particles, filler, and any combination thereof.
4 . The composition of claim 1 , wherein the particulate cementitious material comprises a Portland cement, a volcanic rock, a fly ash, or any combination thereof.
5 . The composition of claim 1 , wherein the composition is a Portland cement blend.
6 . The composition of claim 5 , wherein the Portland cement blend comprises about 27 to about 50 percent, by weight, the Portland cement.
7 . The composition of claim 1 , wherein the composition has a moisture content of about 0.1 to about 1,000 parts per million by weight (ppmw).
8 . The composition of claim 1 , wherein the cured geopolymer particles have a particle size of about 0.1 nanometer (nm) to about 1,000 nm.
9 . The composition of claim 1 , wherein the cured geopolymer particles have a particle size of about 1 micron (μm) to about 1,000 μm.
10 . The composition of claim 1 , wherein the cured geopolymer particles comprise an aluminosilicate with a molar ratio of SiO 2 to Al 2 O 3 of about 5.0:1.0 to about 1.0:2:0.
11 . The composition of claim 1 , wherein the cured geopolymer particles comprise about 1 weight percent (wt. %) to about 70 wt. %, based on a total weight of the composition.
12 . The composition of claim 1 , wherein the particulate cementitious material comprises a Portland cement.
13 . The composition of claim 1 , wherein the metal hydroxide comprises sodium hydroxide and the metal silicate comprises sodium silicate.
14 . The composition of claim 1 , wherein a precursor of the cured geopolymer particles is not calcined.
15 . A method of making the composition of claim 1 , comprising:
contacting the cured geopolymer particles and the particulate cementitious material to form a mixed particulate blend.
16 . The method of claim 15 , wherein the cured geopolymer particles are not calcined.
17 . The method of claim 15 , wherein the cured geopolymer particles are made by a process comprising:
contacting the aluminosilicate, the metal hydroxide, the metal silicate, and water to form a mixture; and
curing the mixture at about 100° C. to about 600° C. for at least about 24 hour (hr) to obtain a cured geopolymer; and
reducing a size of the cured geopolymer to obtain cured geopolymer particles.
18 . A wellbore servicing fluid comprising the composition of claim 1 and an aqueous fluid.
19 . The wellbore servicing fluid of claim 18 , wherein the wellbore servicing fluid comprises about 10% to about 110% cured geopolymer particles by weight of the blend excluding the cured geopolymer particles (BWOB-ECGP).
20 . The wellbore servicing fluid of claim 18 , wherein the wellbore servicing fluid has an apparent viscosity less than about 1,500 cP, as measured by a rheometer in accordance with test standard API-RP-10B-2, at a shear rate of about 50 to about 1,200 per second in a substantially laminar flow for transporting loss circulation materials.
21 . The wellbore servicing fluid of claim 18 , wherein the wellbore servicing fluid has an apparent viscosity of about 200 cP to about 400 cP as measured by a rheometer in accordance with test standard API-RP-10B-2, at a shear rate of about 50 to about 1,200 per second in a substantially laminar flow for transporting loss circulation materials.
22 . The wellbore servicing fluid of claim 18 , further comprising allowing the wellbore servicing fluid to set, wherein the wellbore servicing fluid sets in about 25% less time than an otherwise identical wellbore servicing fluid absent the cured geopolymer particles at a set time of about 50 psi as measured for compressive strength by an Ultrasonic Cement Analyzer (UCA).
23 . The wellbore servicing fluid of claim 18 , wherein the wellbore servicing fluid sets at a bottom hole static temperature of about 10° C. to about 60° C.
24 . A method of servicing a wellbore penetrating a subterranean formation, comprising:
placing the wellbore servicing fluid of claim 18 into the wellbore; and
allowing the wellbore servicing fluid to form a set cement.