Method of producing high-strength carbonated building products

By carbonizing building products with CO2 and aging them in water, the method enhances strength and durability while reducing energy and material intensity, addressing the limitations of existing carbonate-cured products.

WO2026071913A1PCT designated stage Publication Date: 2026-04-02PUBLIC JOINT STOCK COMPANY GAZPROM NEFT
View PDF 5 Cites 0 Cited by

Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-09-29
Publication Date
2026-04-02

AI Technical Summary

Technical Problem

Existing methods for producing carbonate-cured building products suffer from low strength, high energy consumption, and high production costs due to energy-intensive curing methods and the use of autoclave equipment, leading to short service life and significant metal consumption.

Method used

A method involving the use of crushed metallurgical slag and sludge as binders, carbonization with CO2 at atmospheric pressure, and subsequent aging in an aqueous medium to form nanoscale calcium carbonate crystals and enhance strength, eliminating the need for aggressive alkaline solutions and reducing energy consumption.

Benefits of technology

The method achieves high strength characteristics of 90-95 MPa with reduced water absorption and increased frost resistance, lowering production costs by minimizing equipment corrosion and energy use.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure RU2025050316_02042026_PF_FP_ABST
    Figure RU2025050316_02042026_PF_FP_ABST
Patent Text Reader

Abstract

The invention relates to the production of building products with enhanced strength and can be used in the building industry to produce various building products. More particularly, the invention relates to the field of producing carbon-cured products from metallurgical process waste and carbon dioxide. The technical result of the invention consists in increasing the strength characteristics of building products. Moreover, this technical result can be achieved without increasing energy consumption or material intensity. The technical result is achieved as a result of a method of producing high-strength carbonated building products which includes preparing and mixing raw materials, specifically mineral raw materials and metallurgical process waste, adding water, moulding, carrying out forced carbonation and subsequently holding the resulting products in an aqueous environment for a period of from 12 to 28 days.
Need to check novelty before this filing date? Find Prior Art

Description

[0001] Method for the production of high-strength carbonized building products

[0002] A method for producing high-strength carbonized building products is claimed.

[0003] PURPOSE AND SCOPE OF APPLICATION.

[0004] The invention relates to the production of high-strength building products and can be used in the construction industry for the production of various building components. Specifically, the invention relates to the production of carbonate-hardened products from metallurgical residual products, particularly metallurgical slags and sludges, and carbon dioxide. It is aimed at solving the fundamental problem of reducing the carbon footprint of the economy, particularly in the oil and gas refining, metallurgy, and construction industries. It is based on the development of scientific and technological foundations for the absorption and binding of anthropogenic CO2 by various metallurgical slags and sludges as a result of their processing into raw materials for building materials and products.In addition to solving the problem of CO2 utilization, the invention can be used in the production of concrete products, bricks, paving slabs, as well as in the construction of buildings and structures that require the use of materials with increased strength and durability.

[0005] LEVEL OF TECHNOLOGY

[0006] Solutions for the production of carbonized building materials are known from the prior art.

[0007] In particular, prior art discloses solutions that utilize by-products or secondary products of metallurgical production (in particular slags and sludges) as raw materials. In the Arcelormittal solution according to the invention [WO 2019064052, published 04.04.2019], molten steelmaking slag containing at least 2% by weight of free lime is solidified to produce solidified slag particles having a diameter of less than 1 mm. During solidification, the molten steelmaking slag is brought into contact with at least one first carbonization gas. The solidified slag particles are cooled to a temperature of 300°C or lower at a rate of 1 to 100°C / min, wherein during cooling, the solidified slag particles are brought into contact with at least one second carbonization gas.A device for continuously producing solidified steelmaking slag comprises a closed chamber containing a solidification device, a device for injecting a first carbonization gas, a device for injecting a second carbonization gas, a lower porous wall, and a device for injecting a third carbonization gas through the lower porous wall. This ensures the production of solidified slag with a low free lime content while maintaining a short processing time.

[0008] A device for making bricks is known [CN 112318681, published 05.02.2021]. The invention discloses a method of operating a device for producing a brick body carbonized with carbon dioxide and relates to the field of brick production for construction. The invention specifically develops two processes—pre-carbonization and secondary carbonization—so that demolding and rapid strength enhancement are smoothly completed after the brick body's shape and strength have temporarily stabilized.All systems in the device operate according to the sequence of process operations, so that loading, molding, compaction and transportation of the brick mold are carried out simultaneously, adding brick material and uniform mixing are achieved in the pre-carbonization process, productivity is increased through a two-stage process and conveying system; the upper conveyor belt and the lower conveyor belt rotate by a rotating shaft, the brick bodies are removed from the molds through spring stops in the brick molds, and the demoulding of the brick bodies and the effective cyclic use of empty brick molds are achieved through electromagnetic adsorption, release and transportation of the conveyor belts.

[0009] Also known from the prior art are solutions in which by-products or secondary products of metallurgical production, or screenings from stone mining and stone crushing, are used as raw materials. In the work "Method for the production of composite carbonized products" [RU 2642573, published 18.08.2017] describes a method for producing composite carbonized products, which includes mixing slaked calcium or dolomite lime and a carbonate filler in the form of waste from the extraction and processing of limestones of a fraction of up to 5 mm to obtain a molding mass, carbonizing the products with carbon dioxide, characterized in that the products are additionally cut, the molding mass is prepared by extrusion, extrusion molding of products from the molding mass is carried out under a pressure of 55-75 kg-s / cm2, and waste from the sawing of shell limestones or nummulitic limestones, or waste from the crushing and processing of limestone rocks into crushed stone, or waste from the crushing and processing of igneous rocks into crushed stone are used as carbonate filler.

[0010] The author's certificate "Method for manufacturing lime-sand products" [Author's certificate 330128, published 24.11.1972] describes a method for manufacturing lime-sand products by preparing a raw mix based on quicklime dolomite, molding products from the mix, followed by their heat treatment, characterized in that, in order to eliminate deformations during heat-moisture treatment, increase the mechanical strength and service life of the products, the raw mix is ​​kept for 15-20 minutes before molding, and freshly molded products are carbonized with carbon dioxide at a flow rate of 0.15-0.2 l / cm2 min, followed by heat-moisture treatment for 5-6 hours.

[0011] In another similar work by Roland BAYER and Wolfgang BURCHER, “Method for producing mineral molded articles” [RU2248952C2], a method for producing molded articles with bound phases of calcium silicate hydrate (CSH) is described, in which a mixture of raw materials from mineral components and at least one substance containing calcium that can interact with the phases of calcium silicate hydrate, at least one plasticizer and water are mixed until plasticization, condensed in a screw extruder, pressed through a die and the resulting blanks are cured by means of a hydrothermal reaction at a pressure of 8 to 25 bar and a high temperature of 180 to 240°C in a water vapor atmosphere to produce molded articles with CSH-bound phases, wherein polyethylene oxide or a cellulose ether is used as a plasticizer, which preferably has one or more substituents from the methyl, ethyl, hydroxyethyl, hydroxypropyl and sulfoethyl.

[0012] Also known from the prior art are a number of solutions related to equipment for carbonate hardening and forced carbonization of building materials.

[0013] A technical solution is known in the field of carbonization and graphitization equipment [CN219433778 (U), published 07 / 28 / 2023]. The integrated carbonization and graphitization furnace comprises a furnace body and an internal container chamber, which is located in the center of the furnace body interior. The furnace body and the outer door are connected so as to rotate relative to the inner part. A cylindrical exhaust opening is formed in the upper part of the furnace body; inlet and outlet openings for cooling water are located on the outer side door of the furnace; an air inlet opening and an air outlet opening are formed on the left and right sides of the furnace body, respectively.

[0014] The closest analogue chosen was "Method for manufacturing lime-sand products" [Author's Certificate 630236, published 10 / 30 / 1978]. The method for manufacturing lime-sand products based on quicklime or dolomite lime includes molding the products, their carbonization and subsequent hardening, characterized in that, in order to increase strength, reduce heat consumption and simplify the technology by eliminating heat and moisture treatment, subsequent hardening is carried out in an alkaline medium under normal conditions, and then the products are dried. Hardening is carried out in a recirculated sodium hydroxide solution of 0.3-0.5 normal concentration.

[0015] PROBLEMS AND TECHNICAL RESULTS

[0016] The disadvantages of the solutions discussed include the insufficient strength of the resulting carbonate-cured products compared to the present invention. Other common drawbacks of the prior art include the use of energy-intensive curing methods (autoclave curing at pressures up to 25 bar and temperatures up to 240°C or heat-moisture curing at temperatures up to 100°C and times up to 6 hours), as well as the low mechanical strength of the resulting building products obtained with these production methods. Consequently, low strength will result in a short service life for the products, high production costs, and significant metal consumption in the production line, especially when using autoclave equipment.

[0017] This entails intense competition in the construction market for products with similar strength characteristics and comparable production costs. The disadvantages of the closest alternative include the lower strength (15.7 MPa) of the resulting carbonate-cured products compared to the present invention. Furthermore, the additional curing of the products after carbonation in a recirculated sodium hydroxide solution of 0.3-0.5% of the normal concentration necessitates a significant fleet of expensive corrosion-resistant tanks and, consequently, significant production space. Furthermore, the need to dry the products at temperatures up to 100°C after removing them from the tanks containing the sodium hydroxide solution increases overall energy consumption for production and, consequently, the cost of the finished product.

[0018] The technical result of the invention is to increase the strength characteristics of building products. Moreover, this technical result can be achieved without increasing energy consumption or material intensity.

[0019] DISCLOSURE OF THE INVENTION

[0020] The technical result is achieved by solving the problem of improving the method for producing high-strength carbonized building products through the final processing of carbonized products.

[0021] The method for producing high-strength carbonized products includes the preparation and mixing of raw materials, which are mineral raw materials and residual metallurgical products, the addition of water, molding, forced carbonization, and subsequent curing of the resulting products in an aqueous environment for a period of 12 to 28 days.

[0022] The invention is based on the technical problem of improving the method for producing high-strength carbonized building products through the final processing of the carbonized products. This technical problem is solved by the fact that in the method for producing high-strength carbonized building products, which includes molding the products by pressing from a molding raw mix, carbonization with carbon dioxide, and subsequent hardening of the products in an aqueous medium, according to the invention, the raw mix is ​​prepared on the basis of residual products of metallurgy: crushed metallurgical slag / sludge and fillers. Man-made metallurgical waste with a fraction of up to 5 mm is used as fillers, the products are molded at a specific pressing pressure of 10-30 MPa. The products obtained after molding are carbonized in a chamber at a CO2 concentration of up to 99% for 3-6 hours at atmospheric pressure and a temperature of 20-50°C.The products removed from the carbonization chamber are placed in containers with water for subsequent storage in an aqueous environment for a certain period of time (discussed in more detail in the implementation examples).

[0023] DESCRIPTION OF DRAWINGS AND DRAWINGS

[0024] The general flow chart of the process is shown in Figure 1, where:

[0025] 1 - raw material preparation unit

[0026] 2 - molding block

[0027] 3 - carbonation unit

[0028] 4 - water holding unit

[0029] 5 - finished goods warehouse

[0030] Figures 2-4 show images of products obtained according to the invention, namely bricks and paving slabs according to embodiment examples.

[0031] DETAILED DESCRIPTION OF THE INVENTION.

[0032] The following cause-and-effect relationship exists between the essential features of the invention and the technical result. The claimed method utilizes ground metallurgical slag / sludge as a binder. This binder contains significant amounts of calcium and magnesium oxides, which actively react with carbon dioxide to form nanoscale calcium carbonate crystals. As a result of this reaction, after 3-6 hours of exposure to carbonation in the chamber, the strength of the products reaches 50-60 MPa, while the structure of the products retains some ground metallurgical slag / sludge that has not undergone the carbonation reaction but possesses latent hydraulic properties. The resulting products are then placed in water-filled containers for subsequent aging in an aqueous medium for 12 to 28 days, which activates the hydration process of the ground metallurgical slag / sludge particles that have not undergone the carbonation reaction.Carbonized products are maintained in an aqueous environment under normal conditions. Due to the hydration of these particles, additional crystalline formations form in the product structure, increasing the product's strength to 90-95 MPa and reducing water absorption by 3-7%. Taken together, this interaction increases the service life of the resulting products by increasing frost resistance cycles—a property that primarily determines the durability of building products. In the claimed method, carbonization of products in a carbonation chamber is carried out without excess pressure for 3-6 hours at a temperature of 20-50°C. The temperature in the carbonation chamber rises to 50°C due to the exothermic chemical reaction of carbonation. In the claimed method, the products are maintained after carbonization in containers with ordinary tap water for 28 days.According to the prototype, the products are aged in a sodium hydroxide solution, an aggressive alkaline compound that requires corrosion-resistant containers, which increases capital investment in the equipment. The proposed method, using water as the aging medium, significantly reduces the corrosion resistance requirements for the container material and, consequently, the investment costs.

[0033] The manufacturing process consists of the operations of preparing binders and fillers, mixing these components to obtain a molding raw mix, pressing products from the raw mix, carbonization of the products with carbon dioxide in a carbonization chamber, followed by aging the resulting products in an aqueous environment to impart high strength characteristics to the products.

[0034] The preparation of binders and fillers for use in raw material compositions should include drying to a moisture content of 0-1% by weight and subsequent grinding (for binders) to obtain a powder with a specific particle surface area of ​​250 to 450 m2 / kg. Filler of up to 5 mm in size is used and is obtained by screening out large fractions of metallurgical slags and sludge or, if necessary, by grinding followed by classification and selection of the required fractions.

[0035] To prepare raw mixes, crushed binder and filler up to 5 mm in size are loaded into a high-speed mixer (homogenizer) in the required proportions and mixed. After homogenization, the required amount of water is added to the mixer, and the mixing process is repeated to evenly distribute the water throughout the mixture. If necessary, additional components, such as pigments, are added to the mixer. The prepared mixture is then fed to a press, where the products are formed. The pressed products are loaded into a carbonation chamber, where they are artificially carbonized. Forced carbonation of the products obtained after pressing is carried out in the carbonation chamber for 3 to 6 hours in an artificially created environment with a CO2 concentration ranging from 30 to 99 vol%. After carbonization, the products are removed from the chamber and placed in an aqueous medium for subsequent aging for 12 to 28 days.

[0036] Specifically, finished products are placed in an aqueous environment by completely immersing them in an open container. The container size depends on the number of products. After this time, the products reach the required characteristics and can be shipped to the customer or warehouse.

[0037] In a particular case of the invention implementation, after keeping the products in an aqueous environment for a specified time, steaming was carried out to conduct further studies of the strength of the products.

[0038] The raw material preparation unit is a platform where the following equipment, which is part of the installation, is located:

[0039] - drum dryer for drying sludge / slag and mineral raw materials; crushing, grinding and sorting complex for processing sludge / slag and mineral raw materials;

[0040] - belt and screw conveyors for feeding prepared raw materials for processing and storage;

[0041] - pneumatic transport for transporting ground raw materials to the silo;

[0042] - silo for storing ground raw materials;

[0043] - feed bins for storing mineral filler.

[0044] The molding unit includes:

[0045] - high-speed mixer-activator with a dosing complex;

[0046] - hydraulic presses for semi-dry pressing;

[0047] - robots for stacking molded products on pallets;

[0048] - water container;

[0049] Belt and screw conveyors for transporting raw materials and molding sand. The carbonization curing unit consists of a complex of carbonization chambers and a handling system for loading and unloading pallets of products and transporting the carbonized products to the packaging area.

[0050] A unit for curing carbonized products in an aqueous environment to increase their strength consists of open or closed containers in which carbonized products are placed for a specified period of time to enhance their strength. The container should be large enough to completely cover the products with water, plus an additional 10 cm of water above the top row of products.

[0051] The finished goods warehouse is a covered area. Forklifts are used for storing and loading finished goods.

[0052] EXAMPLES OF IMPLEMENTATION.

[0053] The method for producing high-strength carbonized building products is illustrated by a number of examples implemented in pilot industrial operation of the invention.

[0054] EXAMPLE 1.

[0055] Raw material base:

[0056] - prepared (crushed) nepheline sludge;

[0057] - waste nepheline sludge (without preliminary crushing);

[0058] - water;

[0059] - carbon dioxide captured from exhaust gas streams (concentration ~80 vol.%).

[0060] The production cycle for Example 1 was launched using 1,000 carbonate-hardened bricks. A sketch and general view of the brick are shown in Figure 2.

[0061] Carbonate curing mode for bricks. Forced carbonization of bricks in a chamber occurs in an artificially created environment with an elevated CO2 concentration in three stages:

[0062] 1st stage - active carbonate hardening:

[0063] - duration - 30 min,

[0064] - the amount of CO2 that needs to be supplied to the chamber is 200 kg;

[0065] 2nd stage - moderate carbonate hardening:

[0066] - duration - 90 min,

[0067] - the amount of CO2 that needs to be supplied to the chamber is 100 kg;

[0068] Stage 3 - exposure to carbon dioxide:

[0069] - duration - 120 min,

[0070] - the amount of CO2 that needs to be supplied to the chamber is 100 kg.

[0071] Once the carbonization process is complete, the finished products are immersed in water to impart strength before storage. The curing period is 28 days. The time period depends on the type of product, its dimensions, and the required strength characteristics.

[0072] Results of testing samples after 28 days of exposure in a container with distilled water before steaming.

[0073] Table 1. Strength characteristics after exposure to water. Results of testing samples after 28 days of exposure in a container with distilled water and subsequent three steaming cycles.

[0074] Table 2. Strength characteristics after exposure to water and steaming.

[0075] During tests of brick samples for silicate decomposition, no processes indicating material degradation (such as cracks or surface peeling) were detected. As can be seen from Tables 1 and 2, the water absorption by weight of the samples before and after steam curing remained virtually unchanged, and the variation in values ​​was within the experimental error. If silicate decomposition occurs within the material (the polymorphic transformation of 2CaO-SiO2 from one form to another), its water absorption should increase significantly. These tests demonstrated the resistance of the resulting carbonized brick material to silicate decomposition.

[0076] EXAMPLE 2

[0077] Similar to the first experiment, experiment 2 was conducted in which the time of exposure of carbonized products in an aqueous environment was reduced.

[0078] For this experiment, paving slabs made from steelmaking slag were chosen as the carbonized products. Raw materials:

[0079] - steelmaking slag, prepared crushed (ground);

[0080] - waste steelmaking slag of fraction 0.63-5 mm (without preliminary crushing);

[0081] - water;

[0082] - carbon dioxide captured from exhaust gas streams (concentration ~80 vol.%).

[0083] The launch of the technological cycle according to example 2 was carried out on 1000 pieces of carbonate-hardened paving slabs

[0084] The forced carbonization mode of products in the chamber takes place in an artificially created environment with an increased concentration of CO2 in three stages:

[0085] 1st stage - active carbonate hardening:

[0086] - duration - 60 min,

[0087] - the amount of CO2 that needs to be supplied to the chamber is 130 kg;

[0088] 2nd stage - moderate carbonate hardening:

[0089] - duration - 120 min,

[0090] - the amount of CO2 that needs to be supplied to the chamber is 90 kg;

[0091] Stage 3 - exposure to carbon dioxide:

[0092] - duration - 120 min,

[0093] - the amount of CO2 that needs to be supplied to the chamber is 40 kg.

[0094] Once the carbonization process is complete, the finished products are placed in an aqueous medium to impart strength before storage. The curing period lasts for 12 days. The timeframe depends on the type of product, its dimensions, and the required strength characteristics.

[0095] Results of testing samples after 12 days of exposure in a container with distilled water before steaming.

[0096] Table 3. Strength characteristics after exposure to water.

[0097] Results of testing samples after 12 days of exposure in a container with distilled water and subsequent three steaming cycles.

[0098] Table 4. Strength characteristics after exposure to water and steaming.

[0099] During silicate decomposition testing of paving slab samples, no processes (cracking or surface peeling) indicating material degradation were detected. As can be seen from Tables 3 and 4, water absorption by weight of the samples before and after steam curing remained virtually unchanged, and the variation in values ​​was within the experimental error. If silicate decomposition occurs within the material (the polymorphic transformation of 2CaO-SiO2 from one form to another), its water absorption should increase significantly. These tests demonstrated the resistance of the resulting carbonized slab material to silicate decomposition. The decrease in average product strength after three steam curing cycles was within the error limit and was not a consequence of a decrease in product strength.

[0100] EXAMPLE 3

[0101] To compare the results obtained after two experiments, an experiment was conducted with keeping paving slabs in an aqueous environment for 20 days.

[0102] Slag from an electrometallurgical plant was chosen as the raw material base for the production of paving slabs.

[0103] Raw material base: electric steelmaking slag, prepared crushed (ground);

[0104] - electric steelmaking waste slag of fraction 0.63-5 mm (without preliminary crushing);

[0105] - water;

[0106] - carbon dioxide captured from exhaust gas streams (concentration ~80 vol.%).

[0107] The launch of the technological cycle according to example 2 was carried out on 1000 pieces of carbonate-hardened paving slabs

[0108] The forced carbonization mode of products in the chamber takes place in an artificially created environment with an increased concentration of CO2 in three stages:

[0109] 1st stage - active carbonate hardening:

[0110] - duration - 60 min,

[0111] - the amount of CO2 that needs to be supplied to the chamber is 130 kg;

[0112] 2nd stage - moderate carbonate hardening:

[0113] - duration - 120 min,

[0114] - the amount of CO2 that needs to be supplied to the chamber is 90 kg;

[0115] 3rd stage - exposure to carbon dioxide: - duration - 120 min,

[0116] - the amount of CO2 that needs to be supplied to the chamber is 40 kg.

[0117] Once the carbonization process is complete, the finished products are immersed in water to impart strength before storage. The curing period lasts 20 days. The time frame depends on the type of product, its dimensions, and the required strength characteristics.

[0118] Results of testing samples after 20 days of exposure in a container with distilled water before steaming.

[0119] Table 5. Strength characteristics after exposure to water.

[0120] Results of testing samples after 20 days of exposure in a container with distilled water and subsequent three steaming cycles.

[0121] Table 6. Strength characteristics after exposure to water and steaming.

[0122] During silicate decomposition testing of paving slab samples, no processes (cracking or surface peeling) indicating material degradation were detected. As can be seen from Tables 5 and 6, the water absorption by weight of the samples before and after steam curing remained virtually unchanged, and the variation in values ​​was within the experimental error. If silicate decomposition occurs within the material (the polymorphic transformation of 2CaO-SiO2 from one form to another), its water absorption should increase significantly. These tests demonstrated the resistance of the resulting carbonized slab material to silicate decomposition.

Claims

Invention formula 1. The method for producing high-strength carbonized products includes the preparation and mixing of raw materials, which are mineral raw materials and residual metallurgical products, slags and sludge, the addition of water, molding, forced carbonization, followed by complete immersion of the resulting products in a container with water and maintaining the resulting products in an aqueous environment for a period of 12 to 28 days.

2. The method according to claim 1, in which the molding of the products is carried out by pressing from the molding raw material mixture.

3. The method according to claim 1, wherein carbonization is carried out for 3 to 6 hours in artificially created environments with a CO2 concentration in the range of 30 to 99 vol.%.

4. The method according to claim 1, wherein the holding is carried out in distilled water.

5. The method according to claim 1, wherein the holding in an aqueous medium is carried out under normal conditions.

6. The method according to claim 1, wherein the holding in an aqueous medium is carried out in open or closed containers.

7. The method according to paragraph 1, in which the holding in an aqueous environment is carried out with the products arranged in such a way as to ensure a water layer on top of the products or the top row of products of at least 0.1 m.

8. The method according to paragraph 1, in which the manufactured products are paving slabs or bricks.

Citation Information

Patent Citations

  • Operation method of carbon dioxide carbonized brick body manufacturing device

    CN112318681A

  • Method of manufacturing limestone walling construction materials

    RU2663887C2

  • Method of manufacturing limestone wall construction materials

    RU2673485C1

  • Crude mixture for production of carbonized construction articles

    RU2740982C1

  • Method of making lime-sand articles

    SU630236A1