Carbonizable cement compositions and calcium silicate-based concrete for improving strength development

DE602018086582T2Active Publication Date: 2025-10-22CARBICRETE INC
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Patent Information

Application Number
DE602018086582
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2017-11-21
Filing Date
2018-11-21
Publication Date
2025-10-22
Estimated Expiration
2038-11-21

AI Technical Summary

Technical Problem

Existing carbonatable calcium silicate-based cements and concretes require improvements in strength development, and traditional Portland cement production is energy-intensive and contributes significantly to greenhouse gas emissions.

Method used

Incorporation of specific additives, such as organic molecules with amine groups, during the preparation of calcium silicate-based cement compositions, followed by carbonation with CO2 to form a structure with a core of unreacted calcium silicate, a silica-rich layer, and an exterior calcium carbonate layer, enhancing bonding strength.

Benefits of technology

The method improves the strength development of calcium silicate-based cements and concretes while reducing CO2 emissions and energy consumption, forming a robust composite material with a unique microstructure.

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Description

FIELD OF THE INVENTION

[0001] The present invention relates to carbonatable calcium silicate-based cements and concretes, which result in concrete compositions that have an improved strength development.BACKGROUND OF THE INVENTION

[0002] Concrete is the most consumed man-made material in the world. Precast concrete products, such as pavers, blocks, hollow core slabs, roof tiles, aerated concrete blocks, etc., are widely used in construction, pavements and landscaping, to infrastructure and transportation.

[0003] A typical concrete product is made by mixing water and aggregates such as sand and crushed stone with Portland cement, a synthetic material made by burning a mixture of ground limestone and clay, or materials of similar composition in a rotary kiln at a sintering temperature of around 1,450°C. Portland cement manufacturing is not only an energy-intensive process, but also one that releases considerable quantities of greenhouse gas (CO 2 ). The cement industry accounts for approximately 5% of global anthropogenic CO 2 emissions. More than 60% of such CO 2 comes from the chemical decomposition or calcination of limestone.

[0004] Recently, a revolutionary form of cement that is based on carbonatable calcium silicate materials has emerged as a promising substitute to traditional cement and concrete products. Production of carbonatable calcium silicate-based cements and concrete products involves significantly reduced CO 2 emissions and energy consumption. In addition, this new cement sequesters CO 2 when cured into concrete products because CO 2 is needed to react with the carbonatable calcium silicate materials during the curing process to form concrete products.

[0005] However, even with these revolutionary forms of cements, users are always waiting for solutions to improve strength development of concrete products.

[0006] US 6 048 393 A relates to enhancing the compressive strength of cements after 1, 3, 7 and 28 days following hydration and to improving porosity and finished surfaces of the hardened cements and concretes made therefrom. The improved cements are prepared using certain hydroxylamine additives in amounts of up to 0.1% which preferably are added during grinding of the cement in which case the amines further act as grinding aids.

[0007] EP 2 105 419 A1 describes a belite-calcium sulphoaluminate-ferrite (BCSAF) cement composition comprising: a BCSAF clinker which clinker has the following mineralogical composition, based on the total weight of the clinker: 5 to 25%, preferably 10 to 20%, of a calcium aluminoferrite phase having the general formula C 2 A x F (1-x) , wherein X is from 0.2 to 0.8; 15 to 35% of a calcium sulphoaluminate phase; 40 to 75% ofbelite (C 2 S); from 0.01 to 10% in total of one or more minor phases selected from calcium sulphates, alkali metal sulphates, perovskite, calcium aluminates, gehlenite, free lime and periclase and / or a vitreous phase; a water-soluble calcium salt; and an alkanolamine.

[0008] WO 2005 / 092818 A1 describes a multiple mode cement set accelerating agent. The accelerating agent includes a carrier fluid component having accelerator properties and CO 2 gas sequestered in the carrier fluid. The accelerator components of the carrier fluid speed up the cement setting reaction. Additionally, CO 2 gas is released from the carrier fluid during cement hydration to further accelerate the hydration reaction.BRIEF DESCRIPTION OF THE DRAWINGS

[0009] Figure 1: Effect of gypsum content in the cement composition This graph shows the preferred gypsum content that corresponds to a binder composed of approximated 97 wt. % of Cement 1 and 3 wt. % gypsum in the presence of TEA.DETAILED DESCRIPTION OF THE INVENTION

[0010] The present invention is defined by independent claim 1. The dependent claims depict other embodiments of the invention.

[0011] The invention provides novel non-hydraulic cement compositions of carbonatable calcium silicate-based cements and concretes for improving strength development of calcium silicate-based cements and concretes. These improvements are achieved through the use of specific additives, included during the preparation of the cement or the concrete compositions.

[0012] Provided as an example useful for understanding the invention are calcium silicate-based cement compositions. These cement compositions comprise a plurality of calcium silicate cement particles, a first additive, and optionally a second additive. The calcium silicate cement of the invention is carbonatable and preferably comprises CaO and SiO 2 in a CaO to SiO 2 percentage by weight of oxides ratio of from about 0.7 to 1.8, more preferably 0.7 to 1.5, even more preferably of 0.8 to 1.2.

[0013] In an exemplary embodiment, the calcium silicate cement comprises from 30 to 55 %wt. SiO 2 ; from 40 to 55 %wt. CaO relative to the total weight of oxide and optionally further comprises from 1 to 8 %wt. Al 2 O 3 ; from 0.1 to 5 %wt. Fe 2 O 3 ; and / or from 0.1 to 2.5 %wt. MgO relative to the total weight of oxide. The calcium silicate cement of the invention may optionally further comprise from 0.01 to 10 %wt.SO 3 ; from 0.01 to 0.5 %wt. Na 2 O; from .0.1 to 2 %wt.K 2 O; from 0.01 to 0.5 %wt. TiO 2 ; from 0.01 to 1 %wt. P 2 O 5 ; and / or from 0.01 to 0.5 %wt. Mn 2 O 3 relative to the total weight of oxide.

[0014] Further the calcium silicate-based concrete compositions are provided as examples useful for understanding the invention. The concrete compositions comprise a plurality of carbonatable calcium silicate cement particles, a plurality of aggregate particles, a first additive, and optionally a second additive.

[0015] In further examples useful for understanding the invention, the disclosed cements enables to produce a concrete product comprising: the cement product, wherein the cement product is cured with carbon dioxide to produce a structure comprising of a core, wherein the core comprises of a portion of the unreacted calcium silicate particle; a silica-rich layer covering at least a portion of the surface of the core; and an exterior layer covering at least a portion of the silica-rich first layer, wherein, the exterior layer comprises calcium carbonate.

[0016] The cement of the composition is non-hydraulic.

[0017] In other examples useful for understanding the invention (but not claimed) there is provided a method to increase strength of calcium silicate-based materials that has the following steps: 1. A first and potentially a second additive are added prior, during or after the grinding of a calcium silicate-based cement. 2. This calcium silicate-based composition is mixed with a plurality of aggregate particles to form a concrete composition. 3. The concrete composition has a plurality of pores and is carbonated using a greenhouse gas that contains carbon dioxide.

[0018] In other examples useful for understanding the invention (but not claimed) there is provided an alternative method to increase strength of calcium silicate-based materials, the following steps are used : 1. A calcium silicate-based cement is mixed with a plurality of aggregate particles to form a concrete composition. 2. A first and potentially a second additive in powder or liquid form are added prior or during the mixing of the cement and the plurality of aggregate particle. 3. The resulting concrete composition has a plurality of pores and is carbonated using a greenhouse gas that contains carbon dioxide.

[0019] In other examples useful for understanding the invention (but not claimed) there is provided a method for preparing a concrete product.

[0020] In a first aspect, there is provided a non-hydraulic cement comprising: a plurality of particles of a carbonatable calcium silicate cement and a first additive; wherein, the first additive is an organic molecule with at least one primary, secondary or tertiary amine group.

[0021] In a second aspect, the invention provides a concrete composition comprising: the non-hydraulic cement of the first aspect, wherein the cement is cured with carbon dioxide to produce a structure comprising of a core, wherein the core comprises of a portion of the unreacted calcium silicate particle; a silica-rich layer covering at least a portion of the surface of the core; an exterior layer covering at least a portion of the silica-rich first layer, wherein, the exterior layer comprises calcium carbonate; and a plurality of aggregate particles.

[0022] Disclosed herein as an example useful for understanding the invention (but not claimed) is a method for preparing a concrete product comprising: mixing the cement according to the invention with a plurality of aggregate particles to form a concrete product having a plurality of pores ; placing and forming the concrete product in molds ; curing the formed concrete product with carbon dioxide to produce a structure comprising of a core, wherein the core comprises a portion of the unreacted carbonatable calcium silicate particle ; a silica-rich layer covering at least a portion of the surface of the core ; and an exterior layer covering at least a portion of the silica-rich first layer, wherein, the exterior layer comprises calcium carbonate.

[0023] Disclosed, but not claimed, is a carbonatable composition comprising: Calcium silicate; One or more discrete calcium silicate phases selected from CS (wollastonite or pseudowollastonite), C3S2 (rankinite), C2S (belite, larnite, bredigite), and an amorphous calcium silicate phase at about 30%> or more by mass of the total phases; and calcium aluminate accounting for about 0.1% to about 2.5% by weight of the carbonatable composition, wherein elemental Ca and elemental Si are present in the composition at a molar ratio from about 0.8 to about 1.2; and metal oxides of Al, Fe and Mg are present in the composition at about 30% or less by mass, the first and the second additives, preferably TEA and gypsum. Precast Objects of Carbonatable Calcium Silicate Cements

[0024] The term "calcium silicate" material, as used herein, generally refers to naturally-occurring minerals or synthetic materials that are comprised of one or more of a group of calcium silicate phases. "Carbonatable", as used herein, refers to a material that is reactive with CO 2 via a carbonation reaction under a condition disclosed herein. A material is "uncarbonatable" if it is unreactive with CO 2 via a carbonation reaction under a condition disclosed herein. Exemplary carbonatable calcium silicate phases include CS (wollastonite or pseudowollastonite, and sometimes formulated CaSiO 3 or CaO·SiO 2 ), C3S2 (rankinite, and sometimes formulated as Ca 3 Si 2 O 7 or 3CaO·2SiO 2 ), C2S (belite, β-Ca 2 SiO 4 or larnite, Ca 7 Mg(SiO 4 ) 4 or bredigite, α-Ca 2 SiO 4 or γ-Ca 2 SiO 4 , and sometimes formulated as Ca 2 SiO 4 or 2CaO·SiO 2 ). Amorphous phases can also be carbonatable depending on their composition. Each of these materials may include one or more other metal ions and oxides (e.g., aluminum, magnesium, iron or manganese oxides), or blends thereof, or may include an amount of magnesium silicate in naturally-occurring or synthetic form(s) ranging from trace amount (1%) to about 50% or more by weight. Exemplary uncarbonatable or inert phases include melilite ((Ca,Na,K) 2 [(Mg, Fe 2+< ,Fe 3+< ,Al,Si) 3 O 7 ]) and crystalline silica (SiO 2 ).

[0025] The carbonatable calcium silicate phases included in the calcium silicate composition do not hydrate when exposed to water. Due to this, composites produced using a calcium silicate composition as the binding agent do not generate significant strength when combined with water. The strength generation is controlled by exposure of calcium silicate composition containing composites to specific curing regimes in the presence of CO 2 .

[0026] It should be understood that, calcium silicate compositions, phases and methods disclosed herein can be adopted to use magnesium silicate phases in addition to calcium silicate phases. As used herein, the term "magnesium silicate" refers to naturally-occurring minerals or synthetic materials that are comprised of one or more of a groups of magnesium-silicon-containing compounds including, for example, Mg 2 SiO 4 (also known as "fosterite") and Mg 3 Si 4 O 10 (OH) 2 (also known as "talc") and CaMgSiO 4 (also known as "monticellite"), each of which material may include one or more other metal ions and oxides (e.g., calcium, aluminum, iron or manganese oxides), or blends thereof, or may include an amount of calcium silicate in naturally-occurring or synthetic form(s) ranging from trace amount (1%) to about 50% by weight.

[0027] In exemplary embodiments, ground calcium silicate composition is used. The ground calcium silicate composition may have a mean particle size from about 1 µm to about 100 µm (e.g., about 1 µm to about 80 µm, about 1 µm to about 60 µm, about 1 µm to about 50 µm, about 1 µm to about 40 µm, about 1 µm to about 30 µm, about 1 µm to about 20 µm, about 1 µm to about 10 µm, about 1 µm to about 5 µm, about 5 µm to about 90 µm, about 5 µm to about 80 µm, about 5 µm to about 70 µm, about 5 µm to about 60 µm, about 5 µm to about 50 µm, about 5 µm to about 40 µm, about 10 µm to about 80 µm, about 10 µm to about 70 µm, about 10 µm to about 60 µm, about 10 µm to about 50 µm, about 10 µm to about 40 µm, about 10 µm to about 30 µm, about 10 µm to about 20 µm, about 1 µm, 10 µm, 15 µm, 20 µm, 25 µm, 30 µm, 40 µm, 50 µm, 60 µm, 70 µm, 80 µm, 90 µm, 100 µm), a bulk density from about 0.5 g / mL to about 3.5 g / mL (loose, e.g., 0.5 g / mL, 1.0 g / mL, 1.5 g / mL, 2.0 g / mL, 2.5 g / mL, 2.8 g / mL, 3.0 g / mL, 3.5 g / mL) and about 1.0 g / mL to about 1.2 g / mL (tapped), a Blaine surface area from about 150 m 2< / kg to about 700 m 2< / kg (e.g., 150 m 2< / kg, 200 m 2< / kg, 250 m 2< / kg, 300 m 2< / kg, 350 m 2< / kg, 400 m 2< / kg, 450 m 2< / kg, 500 m 2< / kg, 550 m 2< / kg, 600 m 2< / kg, 650 m 2< / kg, 700 m 2< / kg).

[0028] In exemplary embodiments of carbonation of the calcium silicate composition of the invention, ground calcium silicate particles used have a particle size having a cumulative 10% diameter greater than 1 µm in the volume distribution of the particle size distribution.

[0029] Any suitable aggregates may be used to form composite materials from the carbonatable composition of the invention, for example, calcium oxide-containing or silica-containing materials. Exemplary aggregates include inert materials such as trap rock, construction sand, pea-gravel. In certain preferred embodiments, lightweight aggregates such as perlite or vermiculite may also be used as aggregates. Materials such as industrial waste materials (e.g., fly ash, slag, silica fume) may also be used as fine fillers.

[0030] The plurality of aggregates may have any suitable mean particle size and size distribution. In certain embodiments, the plurality of aggregates has a mean particle size in the range from about 0.25 mm to about 25 mm (e.g., about 5 mm to about 20 mm, about 5 mm to about 18 mm, about 5 mm to about 15 mm, about 5 mm to about 12 mm, about 7 mm to about 20 mm, about 10 mm to about 20 mm, about 3.18 mm (1 / 82), about 6.35 mm (1 / 4"), about 9.53 mm (3 / 8"), about 19.05 mm (3 / 4").

[0031] Chemical admixtures may also be included in the composite material; for example, plasticizers, retarders, accelerators, dispersants and other rheology-modifying agents. Certain commercially available chemical admixtures such as Glenium ™< 7500 by BASF ®< Chemicals and Acumer ™< by Dow Chemical Company may also be included. In certain embodiments, one or more pigments may be evenly dispersed or substantially unevenly dispersed in the bonding matrices, depending on the desired composite material. The pigment may be any suitable pigment including, for example, oxides of various metals (e.g., black iron oxide, cobalt oxide and chromium oxide). The pigment may be of any color or colors, for example, selected from black, white, blue, gray, pink, green, red, yellow and brown. The pigment may be present in any suitable amount depending on the desired composite material, for example in an amount ranging from about 0.0% to about 10% by weight.Carbonation of Carbonatable Calcium Silicate Cements

[0032] A major utility of the carbonatable composition is that it can be carbonated to form composite materials that are useful in a variety of application.

[0033] The following reactions are believed to take place during carbonation of calcium silicate as disclosed herein.         CaSiO 3 (s) + CO 2 (g) → CaCO 3 (s) + SiO 2 (s)     (1)         Ca 3 Si 2 O 7 (s) + 3CO 2 (g) → 3CaCO 3 (s) + 2SiO 2 (s)     (2)         Ca 2 SiO 4 (s) + 2CO 2 (g) → 2CaCO 3 (s) + SiO 2 (s)     (3)

[0034] Generally, CO 2 is introduced as a gas phase that dissolves into an infiltration fluid, such as water. The dissolution of CO 2 forms acidic carbonic species (such as carbonic acid, H 2 CO 3 ) that results in a decrease of pH in solution. The weakly acidic solution incongruently dissolves calcium species from the calcium silicate phases. Calcium may be leached from calcium containing amorphous phases through a similar mechanism. The released calcium cations and the dissociated carbonate species lead to the precipitation of insoluble carbonates. Silica-rich layers are thought to remain on the mineral particles as calcium depleted layers.

[0035] The CaCO 3 produced from these or any other CO 2 carbonation reactions disclosed herein may exist as one or more of several CaCO 3 polymorphs (e.g., calcite, aragonite, and vaterite). The CaCO 3 particles are preferably in the form of calcite but may also be present as aragonite or vaterite or as a combination of two or three of the polymorphs (e.g., calcite / aragonite, calcite / vaterite, aragonite / vaterite or calcite / aragonite / vaterite).

[0036] Any suitable grade of CO 2 may be used depending on the desired outcome of carbonation. For example, industrial grade CO 2 at about 99% purity may be used, which is commercially available from a variety of different industrial gas companies, such as Praxair, Inc., Linde AG, Air Liquide, and others. The CO 2 supply may be held in large pressurized holding tanks in the form of liquid carbon dioxide regulated at a temperature such that it maintains a desired vapor pressure, for example, of approximately 2 MPa (300 PSIG) This gas is then piped to a CO 2 curing (carbonation) enclosure or chamber. In the simplest system, CO 2 is flowed through the enclosure at a controlled rate sufficient to displace the ambient air in the enclosure. In general, the purge time will depend on the size of the enclosure and the rate that CO 2 gas is provided. In many systems, this process of purging the enclosure of air can be performed in times measured in minutes to get the CO 2 concentration up to a reasonable level so that curing can be performed thereafter. In simple systems, CO 2 gas is then fed into the system at a predefined rate so to maintain a concentration of CO 2 sufficient to drive the curing reaction.

[0037] The carbonation, for example, may be carried out reacting it with CO 2 via a controlled Hydrothermal Liquid Phase Sintering (HLPS) process to create bonding elements that hold together the various components of the composite material. For example, in preferred embodiments, CO 2 is used as a reactive species resulting in sequestration of CO 2 and the creation of bonding elements in the produced composite materials with in a carbon footprint unmatched by any existing production technology. The HLPS process is thermodynamically driven by the free energy of the chemical reaction(s) and reduction of surface energy (area) caused by crystal growth. The kinetics of the HLPS process proceed at a reasonable rate at low temperature because a solution (aqueous or nonaqueous) is used to transport reactive species instead of using a high melting point fluid or high temperature solid-state medium.

[0038] Discussions of various features of HLPS, carbonatable calcium silicate-based cements, carbonation and formation of bonding elements, apparatus and processes thereof, and related topics can be found in U.S. Patent No. 8,114,367, U.S. Pub. No. US 2009 / 0143211 (Appl. Serial No. 12 / 271,566), U.S. Pub. No. US 2011 / 0104469 (Appl. Serial No. 12 / 984,299), U.S. Pub. No. 2009 / 0142578 (Appl. Serial No. 12 / 271,513), U.S. Pub. No. 2013 / 0122267 (Appl. Serial No. 13 / 411,218), U.S. Pub. No. 2012 / 0312194 (Appl. Serial No. 13 / 491,098), WO 2009 / 102360 (PCT / US2008 / 083606), WO 2011 / 053598 (PCT / US2010 / 054146), WO 2011 / 090967 (PCT / US2011 / 021623), U.S. Provisional Patent Application No. 61 / 708,423 filed October 1, 2012, and U.S. Pub. No. 2014 / 0127450 (Appl. Serial No. 14 / 045,758), U.S. Pub. No. 2015 / 0266778 (Appl. Serial No. 14 / 045,519), U.S. Pub. No. 2014 / 0127458 (Appl. Serial No. 14 / 045,766), U.S. Pub. No. 2014 / 0342124 (Appl. Serial No. 14 / 045,540), U.S. Pub. No. 2014 / 0272216 (Appl. Serial No. 14 / 207,413), U.S. Pub. No. 2014 / 0263683 (Appl. Serial No. 14 / 207,421), U.S. Pat. Publ. No. 2014 / 0314990 (Appl. Serial No. 14 / 207,920), U.S. Pat. No. 9,221,027 (Appl. Serial No. 14 / 209,238), U.S. Pub. No. 2014 / 0363665 (Appl. Serial No. 14 / 295,601), U.S. Pub. No. 2014 / 0361471 (Appl. Serial No. 14 / 295,402), U.S. Pub. No. 2016 / 0355439 (Appl. Serial No. 14 / 506,079), U.S. Pub. No. 2015 / 0225295 (Appl. Serial No. 14 / 602,313), U.S. Pub. No. 2015 / 0056437 (Appl. Serial No. 14 / 463,901), U.S. Pub. No. 2016 / 0168720 (Appl. Serial No. 14 / 584,249), U.S. Pub. No. 2015 / 0336852 (Appl. Serial No. 14 / 818,629), U.S. Pub. No. 2016 / 0031757 (Appl. Serial No. 14 / 817,193), U.S. Pub. No. 2016 / 0272544 (Appl. Serial No. 15 / 074,659), U.S. Pub. No. 2016 / 0096773 (Appl. Serial No. 14 / 874,350), U.S. Pub. No. 2016 / 0340261 (Appl. Serial No. 14 / 715,497), U.S. Pub. No. 2016 / 0272545 (Appl. Serial No. 15 / 074,692), U.S. Pub. No. 2017 / 0102373 (Appl. Serial No. 15 / 290,328), U.S. Pub. No. 2017 / 0121223 (Appl. Serial No. 15 / 335,520), U.S. Pub. No. 2017 / 0204010 (Appl. Serial No. 15 / 409,352), U.S. Pub. No. 2017 / 0253530 (Appl. Serial No. 15 / 449,736), U.S. Pub. No. 2017 / 0260096 (Appl. Serial No. 15 / 451,344), U.S. Pub. No. 2017 / 0320781 (Appl. Serial No. 15 / 587,705), U.S. Appl. Serial No. 15 / 609,908, filed May 31, 2017, U.S. Appl. Serial No. 15 / 716,392, filed September 26, 2017.Bonding Elements

[0039] The carbonation process produces a carbonated composite material that microscopically includes a plurality of bonding elements having one or more types of microstructure. Collectively, the plurality of bonding elements forms an inter-connected bonding matrix creating bonding strength and holding the composite material. For example, the microstructured bonding elements may be: a bonding element comprising a core of an unreacted carbonatable phase of calcium silicate fully or partially surrounded by a silica rich rim of varying thickness that is fully or partially encased by CaCO 3 particles; a bonding element comprising a core of silica formed by carbonation of a carbonatable phase of calcium silicate fully or partially surrounded by a silica rich rim of varying thickness that is fully or partially encased by CaCO 3 particles; a bonding element comprising a core of silica formed by carbonation of a carbonatable phase of calcium silicate and fully or partially encased by CaCO 3 particles; a bonding element comprising a core of an uncarbonatable phase fully or partially encased by CaCO 3 particles; a bonding element comprising a multi-phase core comprised of silica formed by carbonation of a carbonatable phase of calcium silicate and partially reacted calcium silicate, which multi-phase core is fully or partially surrounded by a silica rich rim of varying thickness that is fully or partially encased by CaCO 3 particles; a bonding element comprising a multi-phase core comprised of an uncarbonatable phase and partially reacted calcium silicate, which multi-phase core is fully or partially surrounded by a silica rich rim of varying thickness that is fully or partially encased by CaCO 3 particles; a bonding element comprising particles of partially reacted calcium silicate without a distinct core and silica rim encased by CaCO 3 particles; and a bonding element comprising porous particles without a distinct silica rim encased by CaCO 3 particles.

[0040] The silica rich rim generally displays a varying thickness within a bonding element and from bonding element to bonding element, typically ranging from about 0.01 µm to about 50 µm. In certain preferred embodiments, the silica rich rim has a thickness ranging from about 1 µm to about 25 µm. As used herein, "silica rich" generally refers to a silica content that is significant among the components of a material, for example, silica being greater than about 50% by volume. The remainder of the silica rich rim is comprised largely of CaCO 3 , for example 10% to about 50% of CaCO 3 by volume. The silica rich rim may also include inert or unreacted particles, for example 10% to about 50% of melilite by volume. A silica rich rim generally displays a transition from being primarily silica to being primarily CaCO 3 . The silica and CaCO 3 may be present as intermixed or discrete areas.

[0041] The silica rich rim is also characterized by a varying silica content from bonding element to bonding element, typically ranging from about 50% to about 90% by volume (e.g., from about 60% to about 80%). In certain embodiments, the silica rich rim is generally characterized by a silica content ranging from about 50% to about 90% by volume and a CaCO 3 content ranging from about 10% to about 50% by volume. In certain embodiments, the silica rich rim is characterized by a silica content ranging from about 70% to about 90% by volume and a CaCO 3 content ranging from about 10% to about 30% by volume. In certain embodiments, the silica rich rim is characterized by a silica content ranging from about 50% to about 70% by volume and a CaCO 3 content ranging from about 30% to about 50% by volume.

[0042] The silica rich rim may surround the core to various degrees of coverage anywhere from about 1% to about 99% (e.g., about 10% to about 90%). In certain embodiments, the silica rich rim surrounds the core with a degree of coverage less than about 10%. In certain embodiments, the silica rich rim of varying thickness surrounds the core with a degree of coverage greater than about 90%.

[0043] A bonding element may exhibit any size and any regular or irregular, solid or hollow morphology, which may be favored one way or another by raw materials selection and the production process in view of the intended application. Exemplary morphologies include: cubes, cuboids, prisms, discs, pyramids, polyhedrons or multifaceted particles, cylinders, spheres, cones, rings, tubes, crescents, needles, fibers, filaments, flakes, spheres, sub-spheres, beads, grapes, granulars, oblongs, rods, ripples, etc.

[0044] The plurality of bonding elements may have any suitable mean particle size and size distribution dependent on the desired properties and performance characteristics of the composite product. In certain embodiments, for example, the plurality of bonding elements have a mean particle size in the range of about 1 µm to about 100 µm (e.g., about 1 µm to about 80 µm, about 1 µm to about 60 µm, about 1 µm to about 50 µm, about 1 µm to about 40 µm, about 1 µm to about 30 µm, about 1 µm to about 20 µm, about 1 µm to about 10 µm, about 5 µm to about 90 µm, about 5 µm to about 80 µm, about 5 µm to about 70 µm, about 5 µm to about 60 µm, about 5 µm to about 50 µm, about 5 µm to about 40 µm, about 10 µm to about 80 µm, about 10 µm to about 70 µm, about 10 µm to about 60 µm, about 10 µm to about 50 µm, about 10 µm to about 40 µm, about 10 µm to about 30 µm, about 10 µm to about 20 µm).

[0045] The inter-connected network of bonding elements (a bonding matrix) may also include a plurality of coarse or fine filler particles that may be of any suitable material, have any suitable particle size and size distribution. In certain preferred embodiments, for example, the filler particles are made from a calcium carbonate-rich material such as limestone (e.g., ground limestone). In certain materials, the filler particles are made from one or more of SiO 2 -based or silicate-based material such as quartz, mica, granite, and feldspar (e.g., ground quartz, ground mica, ground granite, ground feldspar).

[0046] In certain embodiments, filler particles may include natural, synthetic and recycled materials such as glass, recycled glass, coal slag, fly ash, calcium carbonate-rich material and magnesium carbonate-rich material.

[0047] In certain embodiments, the plurality of filler particles has a mean particle size in the range from about 5 µm to about 7 mm (e.g., about 5 µm to about 5 mm, about 5 µm to about 4 mm, about 5 µm to about 3 mm, about 5 µm to about 2 mm, about 5 µm to about 1 mm, about 5 µm to about 500 µm, about 5 µm to about 300 µm, about 20 µm to about 5 mm, about 20 µm to about 4 mm, about 20 µm to about 3 mm, about 20 µm to about 2 mm, about 20 µm to about 1 mm, about 20 µm to about 500 µm, about 20 µm to about 300 µm, about 100 µm to about 5 mm, about 100 µm to about 4 mm, about 100 µm to about 3 mm, about 100 µm to about 2 mm, about 100 µm to about 1 mm).

[0048] The weight ratio of bonding elements to filler particles may be any suitable ratios dependent on the intended application for the composite material product. For example, the weight ratio of bonding elements to filler particles may be in the range from about (50 to 99) : about (1 to 50), e.g., from about (60 to 99) : about (1 to 40), from about (80 to 99) : about (1 to 20), from about (90 to 99) : about (1 to 10), from about (50 to 90) : about (10 to 50), from about (50 to 70) : about (30 to 50). In certain embodiments depending on the application, the weight ratio of bonding elements to filler particles may be in the range from about (10 to 50) : about (50 to 90), e.g., from about (30 to 50) : about (50 to 70), from about (40 to 50) : about (50 to 60).

[0049] Additional background discussions and examples of curing systems and related topics may be found in US Pat. No. 9,221,027, U.S. Pub. No. 2015 / 0225295 (Appl. Serial No. 14 / 602,313), U.S. Pub. No. 2015 / 0336852 (Appl. Serial No. 14 / 818,629), U.S. Pub. No. 2017 / 0102373 (Appl. Serial No. 15 / 290,328).

[0050] Applicant's disclosure is described herein in preferred embodiments with reference to the Figures, in which like numbers represent the same or similar elements. Reference throughout this specification to "one embodiment," "an embodiment," or similar language means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment of the present invention. Thus, appearances of the phrases "in one embodiment," "in an embodiment," and similar language throughout this specification may, but do not necessarily, all refer to the same embodiment.

[0051] The described features, structures, or characteristics of Applicant's disclosure may be combined in any suitable manner in one or more embodiments. In the description herein, numerous specific details are recited to provide a thorough understanding of embodiments of the invention. One skilled in the relevant art will recognize, however, that Applicant's composition and / or method may be practiced without one or more of the specific details, or with other methods, components, materials, and so forth. In other instances, well-known structures, materials, or operations are not shown or described in detail to avoid obscuring aspects of the disclosure.

[0052] In this specification and the appended claims, the singular forms "a," "an," and "the" include plural reference, unless the context clearly dictates otherwise.

[0053] Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art. Although any methods and materials similar to those described herein can also be used in the practice or testing of the present disclosure, the preferred methods and materials are now described. Methods recited herein may be carried out in any order that is logically possible, in addition to a particular order disclosed.Compositions and method to improve the strength development of calcium silicate-based cements and concretes

[0054] The invention provides novel non-hydraulic compositions of carbonatable calcium silicate-based cements and concretes for improving strength development of calcium silicate-based cements and concretes.

[0055] In another aspect, the cement of the first aspect enables to produce a concrete composition comprising: the cement of the first aspect, wherein the cement product is cured with carbon dioxide to produce a structure comprising of a core, wherein the core comprises of a portion of the unreacted calcium silicate particle; a silica-rich layer covering at least a portion of the surface of the core; and an exterior layer covering at least a portion of the silica-rich first layer, wherein, the exterior layer comprises calcium carbonate.

[0056] In another aspect, the cement of the composition is non-hydraulic.

[0057] In one aspect, the invention provides calcium-silicate based cement compositions comprising a plurality of calcium silicate cement particles, a first additive, optionally a second additive.

[0058] These improvements are achieved through the use of specific additives, included during the preparation of the cement or the concrete compositions.

[0059] The cement compositions comprise a plurality of carbonatable calcium silicate cement particles, a first additive and a second additive.

[0060] The first additive is an organic molecule with at least one primary, secondary or tertiary amine group.

[0061] Preferably, the first additive is an organic molecule with at least one primary, secondary or tertiary amine group comprising at least one hydroxy group.

[0062] More preferably, the first additive is one or a combination of one or more hydroxyalkylamine(s) that has a maximum molar weight of 1000 g / mol.

[0063] In some embodiments, the first additive is an organic molecule having at least one primary, secondary or tertiary amine group and at least two hydroxy groups.

[0064] In some embodiments, the first additive is an organic molecule having at least one primary, secondary or tertiary amine group and at least three hydroxy groups.

[0065] In some embodiments, the first additive is selected from the group consisting of N,N bis-(2-hydroxyethyl)-2-propanolamine) (DIEPA), N, N bis-(2-hydroxypropyl)-N-(hydroxyethyl) amine (EDIPA), diethanolamine (DEA), triethanolamine (TEA), triisopropanolamine (TIPA), triethylenetetramine (TETA), triethylenepentamine (TEPA), hydroxyethyldiethylenetriamine (HEDETA), and aminoethylethanolamine (AEEA) or a combination thereof.

[0066] Preferably, the first additive is selected from the group consisting of N,N bis-(2-hydroxyethyl)-2-propanolamine) (DIEPA), triethanalomine (TEA), triisopropanolamine (TIPA) or a combination thereof.

[0067] More preferably, the first additive is selected from the group consisting of triethanalomine (TEA), triisopropanolamine (TIPA) or a combination thereof.

[0068] Even more preferably, the first additive is TEA.

[0069] Preferably, the quantity of the first additive in the cement compositions of the invention is comprised between 0.1 wt. % and 5.0 wt. % of the amount of cement, more preferably between 0.1 wt. % and 2.0 wt. % of the amount of cement.

[0070] Advantageously, the quantity of the first additive in the cement compositions of the invention is comprised between 0.1 wt. % and 0.5 wt. % of the amount of cement; between 0.1 wt. % and 0.8 wt. % of the amount of cement; between 0.1 wt. % and 1 wt. % of the amount of cement; between 0.1 wt. % and 2 wt. % of the amount of cement; between 0.1 wt. % and 5 wt. % of the amount of cement; between 0.2 wt. % and 0.5 wt. % of the amount of cement; between 0.2 wt. % and 0.8 wt. % of the amount of cement; between 0.2 wt. % and 1.0 wt. % of the amount of cement; between 0.2 wt. % and 2.0 wt. % of the amount of cement; between 0.2 wt. % and 5.0 wt. % of the amount of cement; between 0.5 wt. % and 0.8 wt. % of the amount of cement; between 0.5 wt. % and 1.0 wt. % of the amount of cement; between 0.5 wt. % and 2.0 wt. % of the amount of cement; between 0.5 wt. % and 5.0 wt. % of the amount of cement; between 1.0 wt. % and 2.0 wt. % of the amount of cement; between 1.0 wt. % and 5.0 wt. % of the amount of cement; or between 2.0 wt. % and 5.0 wt. % of the amount of cement.

[0071] In some embodiments, the second additive is a source of calcium sulfate.

[0072] Preferably, the second additive includes gypsum.

[0073] Preferably, the quantity of the second additive in the cement compositions of the invention is comprised between 0.01 wt. % and 15.0 wt. % of the amount of cement.

[0074] More preferably, the quantity of the second additive in the cement compositions of the invention is at least of 0.05%, 0.1%, 1%, 1.5%.

[0075] More preferably, the quantity of the second additive in the cement compositions of the invention is less than 10%, 5%.

[0076] Disclosed herein as an example useful for understanding the invention (but not claimed) is a method to increase strength of calcium silicate-based materials comprising the addition of the first and potentially the second additive during or after the grinding of a calcium silicate-based cement or during the mixing of the cement with a plurality of aggregate particles to form a concrete composition.

[0077] This method to increase strength of calcium silicate-based materials has the following steps: 1. the first and potentially the second additive are added prior, during or after the grinding of a calcium silicate-based cement; 2. this calcium silicate-based composition is mixed with a plurality of aggregate particles to form a concrete composition; 3. the concrete composition has a plurality of pores and is carbonated carbon dioxide.

[0078] Preferably, the quantity of first additive in the first step is comprised between 0.1 wt. % and 2.0 wt. % of the amount of cement.

[0079] In one example, the quantity of second additive in the first step is comprised between 0.01 wt. % and 15.0 wt. % of the amount of cement.

[0080] In one example, the quantity of the second additive is at least of 0.05%, 0.1%, 1%, 1.5%.

[0081] In one example, the quantity of the second additive is less than 10%, 5%.

[0082] This example of a method to increase strength of calcium silicate-based materials (not claimed) has the following steps: 1. the first and the second additives are added prior, during or after the grinding of a calcium silicate-based cement; 2. this calcium silicate-based composition is mixed with a plurality of aggregate particles to form a concrete composition; 3. the concrete composition has a plurality of pores and is carbonated using carbon dioxide.

[0083] This example of a method to increase strength of calcium silicate-based materials has the following steps: 1. TEA and gypsum are added prior, during or after the grinding of a calcium silicate-based cement; 2. this calcium silicate-based composition is mixed with a plurality of aggregate particles to form a concrete composition; 3. the concrete composition has a plurality of pores and is carbonated using carbon dioxide.

[0084] In one example y, the quantity of TEA in the first step is comprised between 0.1 wt. % and 2.0 wt. % of the amount of cement.

[0085] In one example, the quantity of gypsum in the first step is comprised between 0.01 wt. % and 15.0 wt. % of the amount of cement.

[0086] In one example, the quantity of gypsum is at least of 0.05%, 0.1%, 1%, 1.5%.

[0087] In one example, the quantity of gypsum is less than 10%, 5%.

[0088] Disclosed herein as an example useful for understanding the invention (not claimed), this method to increase strength of calcium silicate-based materials, has the following steps: 1. a calcium silicate-based cement is mixed with a plurality of aggregate particles to form a concrete composition; 2. the first and potentially the second additive are added prior or during the mixing of the cement and the plurality of aggregate particles; 3. the resulting concrete composition has a plurality of pores and are carbonated using carbon dioxide.

[0089] In one example, the quantity of first additive in the first step is comprised between 0.1 wt. % and 2.0 wt. % of the cement content.

[0090] In one example, the quantity of second additive in the first step is comprised between 0.01 wt. % and 15.0 wt. % of the amount of cement.

[0091] In one example, the quantity of the second additive is at least of 0.05%, 0.1%, 1%, 1.5%.

[0092] In one example, the quantity of the second additive is less than 10%, 5%.

[0093] This example of a method to increase strength of calcium silicate-based materials has the following steps: 1. a calcium silicate-based cement is mixed with a plurality of aggregate particles to form a concrete composition; 2. the first and the second additives are added prior or during the mixing of the cement and the plurality of aggregate particle; 3. the resulting concrete composition has a plurality of pores and are carbonated using carbon dioxide.

[0094] This example of a method to increase strength of calcium silicate-based materials has the following steps: 1. a calcium silicate-based cement is mixed with a plurality of aggregate particles to form a concrete composition; 2. TEA and gypsum are added prior or during the mixing of the cement and the plurality of aggregate particle; 3. the resulting concrete composition has a plurality of pores and are carbonated using a greenhouse gas that contains carbon dioxide.

[0095] In one example, the quantity of TEA in the second step is comprised between 0.1 wt. % and 2.0 wt. % of the amount of cement.

[0096] In one example, the quantity of gypsum in the second step is comprised between 0.01 wt. % and 15.0 wt. % of the amount of cement.

[0097] In one example, the quantity of the second additive is at least of 0.05%, 0.1%, 1%, 1.5%.

[0098] In one example, the quantity of the second additive is less than 10%, 5%.

[0099] In another example, this method to increase strength of calcium silicate-based materials, has the following steps: 1. grinding of a calcium silicate-based cement; 2. mixing of the cement with a plurality of aggregate particles to form a concrete composition; wherein one of the two additives is added prior, during or after the grinding of the calcium silicate-based cement and the other is added prior or during the mixing of the cement and the plurality of aggregate particles; 3. the resulting concrete composition has a plurality of pores and are carbonated using carbon dioxide.

[0100] In one example, the quantity of first additive is comprised between 0.1 wt. % and 2.0 wt. % of the cement content.

[0101] In one example, the quantity of second additive is comprised between 0.01 wt. % and 15.0 wt. % of the amount of cement.

[0102] In one example, the quantity of the second additive is at least of 0.05%, 0.1%, 1%, 1.5%.

[0103] In one example, the quantity of the second additive is less than 10%, 5%.

[0104] This example of a method to increase strength of calcium silicate-based materials has the following steps: 1. grinding of a calcium silicate-based cement; 2. mixing of the cement with a plurality of aggregate particles to form a concrete composition; wherein one of TEA or gypsum is added prior, during or after the grinding of the calcium silicate-based cement and the other is added prior or during the mixing of the cement and the plurality of aggregate particles; 3. the resulting concrete composition has a plurality of pores and are carbonated using carbon dioxide.

[0105] The quantity of TEA in the second step is comprised between 0.1 wt. % and 2.0 wt. % of the amount of cement.

[0106] Preferably, the quantity of gypsum in the second step is comprised between 0.01 wt. % and 15.0 wt. % of the amount of cement.

[0107] In one example, the quantity of gypsum is at least of 0.05%, 0.1%, 1%, 1.5%.

[0108] In one example, the quantity of gypsum is less than 10%, 5%.

[0109] One Example useful for understanding the invention also provides a concrete product comprising: the cement product of the invention, wherein the cement product is cured with carbon dioxide to produce a structure comprising of a core, wherein the core comprises of a portion of the unreacted calcium silicate particle; a silica-rich layer covering at least a portion of the surface of the core; and an exterior layer covering at least a portion of the silica-rich first layer, wherein, the exterior layer comprises calcium carbonate; and a plurality of aggregate particles.

[0110] Disclosed herein as an example useful for understanding the invention (not claimed) is a method for preparing a concrete product comprising: mixing the cement according to the invention with a plurality of aggregate particles to form a concrete product having a plurality of pores; placing and forming the concrete product in molds; curing the formed concrete product carbon dioxide to produce a structure comprising of a core, wherein the core comprises a portion of the unreacted carbonatable calcium silicate particle; a silica-rich layer covering at least a portion of the surface of the core; and an exterior layer covering at least a portion of the silica-rich first layer, wherein, the exterior layer comprises calcium carbonate.

[0111] Disclosed herein (but not claimed) is a carbonatable composition comprising: Calcium silicate; One or more discrete calcium silicate phases selected from CS (wollastonite or pseudowollastonite), C3S2 (rankinite), C2S (belite, larnite, bredigite), and an amorphous calcium silicate phase at about 30%> or more by mass of the total phases; and calcium aluminate accounting for about 0.1% to about 2.5% by weight of the carbonatable composition, wherein elemental Ca and elemental Si are present in the composition at a molar ratio from about 0.8 to about 1.2; and metal oxides of Al, Fe and Mg are present in the composition at about 30% or less by mass; the first and the second additives, preferably TEA and gypsum.

[0112] The carbonatable composition of the example is suitable for carbonation with C0 2 at a temperature of about 30 °C to about 90 °C to form CaC0 3 with a mass gain of about 10% or more.EXAMPLESCarbonatable calcium silicate-based cement compositions

[0113] In the following examples, one cement is used: Cement 1. Its chemical composition is provided in table 1 below. Range of compositionsLOI (%)0 to 2SiO 2 (%)30 to 55Al 2 O 3 (%)1 to 8Fe 2 O 3 (%)0.1 to 5CaO (%)40 to 55MgO (%)0.1 to 2.5SO 3 (%)0.01 to 10Na 2 O (%)0.01 to 0.5K 2 O (%)0.1 to 2TiO 2 (%)0.01 to 0.5P 2 O 5 (%)0.01 to 1Mn 2 O 3 (%)0.01 to 0.5 Concrete composition and mixing procedure

[0114] The following concrete compositions were used to assess strength development. Table 2Concrete componentWeight (g)Cement 1417.3Gypsum73.6Normalised sand 0 / 21350TEA2.5Water186.5

[0115] The concrete compositions were prepared in a Perrier mixer, and cast in 4x4x16 cm molds, using a vibrating table. The mixing procedure was the following: 1. Mixing of all the solid components with the sand during 1 min at slow speed 2. Adding water during 30 seconds 3. Mixing another 1 min at slow speed 4. Stopping the mixing and scraping of the material on the side of the mixing bowl for 1 minute 5. Mixing at slow speed for 30 seconds 6. Mixing at fast speed for another 30 seconds.

[0116] TEA was diluted in the water, and the samples were vibrated 2 minutes in the molds. The samples were left at room temperature for 15 hours before being demolded. The samples were then carbonated at 70°C for 24h or 48h, after which the compression strength was measured.Example 1: Effect of substitution of 4 wt. % of cement by gypsum

[0117] A control concrete is compared to a concrete where 4 wt. % of the cement is replaced by gypsum. The results, given in the table below, show that gypsum addition strongly increases strength. Table 3Binder composition in used in the concreteCompressive strength after 48 hours carbonation at 70°C100 wt. % Cement 166 MPa96 wt. % Cement 1 and 4 wt. % gypsum75 MPa Example 2: Effect of calcium chloride and TEA on strength

[0118] In the following example, the same concrete composition is used with different cement compositions. Cement 1 is first compared to a cement composed to 96 wt. % Cement 1 and 4 wt. % gypsum. To this last cement composition, calcium chloride and TEA are added.

[0119] The results given in the table below show the synergistic effect of the combination of TEA and gypsum on strength development: the final strength is then higher that when Cement 1 is used without diluting it with gypsum. Table 4Binder composition in used in the concreteCompressive strength after 24 hours carbonation at 70°C100 wt. % Cement 158 MPa100 wt. % Cement 1 with another 0.5 wt.% TEA69 MPa96 wt. % Cement 1 and 4 wt. % gypsum50 MPa96 wt. % Cement 1 and 4 wt. % gypsum, with another 0.5 wt.% of calcium chloride41 MPa96 wt. % Cement 1 and 4 wt. % gypsum, with another 0.5 wt.% TEA71 MPa Example 3: Effect of gypsum content in the cement composition

[0120] The following example was prepared by using different binders where Cement 1 is replaced by gypsum, in the same concrete composition as provided above. The concretes are carbonated for 24 hours at 70°C.

[0121] The results, visible in Figure 1, show that in the presence of TEA, there is a preferred gypsum content that corresponds to a binder composed of approximated 97 wt. % of Cement 1 cement and 3 wt. % gypsum. In an exemplary composition, the maximum strength achieved is 77 MPa. Interestingly, without TEA, the addition of gypsum results in a reduced strength. These results further highlight the synergetic effect between TEA and gypsum.Example 4: Effect of TIPA in the place of TEA

[0122] In the following example, the same concrete composition is used with different amino-alcohol source compositions. Cement 1 ref. mix is compared to a cement composed of 100 wt. % Cement 1 containing 2 wt. % gypsum and another 0.5 wt. % of TIPA or TEA.

[0123] The results given in the table below show that the invention may be implemented by other source of amino-alcohol than TEA. Although the TEA and TIPA binders comprise the same mass of TEA and TIPA, it may be noted that in molar the binders comprise more TEA (0.016 mol) than TIPA (0.013 mol), which may explain the difference of reactivity. Table 5Batch%GMCompressive strength after 48 hours carbonation at 70°C100 wt. % Cement 1 ref. mix23.553 MPa100 wt. % Cement 1 containing 2 wt. % gypsum and another 0.5 wt. % TEA23.569 MPa100 wt. % Cement 1 containing 2 wt. % gypsum and another 0.5 wt. % TIPA23.061 MPa

Claims

1. A non-hydraulic cement composition comprising: - a plurality of particles of a carbonatable calcium silicate cement and - a first additive; wherein, the first additive is an organic molecule with at least one primary, secondary or tertiary amine group.

2. The non-hydraulic cement composition of claim 1, comprising a second additive wherein, the second additive is a source of calcium sulfate.

3. The non-hydraulic cement composition of claim 1, wherein, the first additive is an organic molecule with at least one primary, secondary or tertiary amine group comprising at least one hydroxy group.

4. The non-hydraulic cement composition of claim 3, wherein, the first additive is one or a combination of one or more hydroxyalkylamine(s) that has a maximum molar weight of 1000 g / mol.

5. The non-hydraulic cement composition of claim 4, wherein, the first additive is selected from the group consisting of N,Nbis-(2-hydroxyethyl)-2-propanolamine) (DIEPA), N, Nbis-(2-hydroxypropyl)-N-(hydroxyethyl) amine (EDIPA), diethanolamine (DEA), triethanolamine (TEA), triisopropanolamine (TIPA), triethylenepentamine (TEPA), hydroxyethyldiethylenetriamine (HEDETA) and aminoethylethanolamine (AEEA) or a combination thereof.

6. A concrete composition comprising: - the non-hydraulic cement composition of claims 1 to 5, wherein the cement is cured with carbon dioxide to produce a structure comprising of a core, wherein the core comprises a portion of the unreacted calcium silicate particle; - a silica-rich layer covering at least a portion of the surface of the core; and - an exterior layer covering at least a portion of the silica-rich first layer, wherein, the exterior layer comprises calcium carbonate; - and a plurality of aggregate particles.