Patent classifications
C04B40/02
CERAMIC FORGING METHOD
The present disclosure relates to a ceramic forging method, and belongs to the technical field of ceramic preparation. The ceramic forging method comprises a step of applying an oscillatory pressure to to-be-forged ceramic at a forging temperature to perform forging, In accordance with the ceramic forging method provided by the present disclosures, the deformation capacity and the deformation rate of a ceramic material are improved by changing a deformation mechanism of a ceramic material at the high temperature through oscillatory pressure, such that generation of micro fatigues inside the ceramic material and the deformation process of the material are greatly improved, then the ceramic material can reach the higher deformation rate and the larger deformation amount at lower temperature and pressure, and therefore ceramic forging can be achieved, and the cost is greatly reduced.
Method for Producing a Carbonate Bonded, Compacted Article
The method for producing a carbonate bonded, compacted article, which method comprises the steps of providing a particulate, carbonatable material; compacting the particulate material to form a compact; and carbonating said compact. The carbonation of the compact is started and subsequently continued for at least 1 hour with a low partial carbon dioxide pressure in the carbonation gas which is lower than 0.5 bars, after which carbonation of the compact is continued for at least 8 hours with a high partial carbon dioxide pressure in the carbonation gas which is higher than 0.5 bars. By carbonating in two phases with a low and a high partial carbon dioxide pressure, a higher compressive strength of the carbonated compacts can be achieved within a predetermined carbonation time, in particular within a carbonation time of about 24 hours so that every day new compacts can be carbonated.
CARBONATED COMPOSITE
The invention relates to a process for producing a composite comprising: a. providing a particulate material, wherein the particulate material comprises minerals having a content of at least 30% m/m of calcium, magnesium, aluminium, silicon, potassium or iron, or a combination of two or more thereof. b. providing an aggregate, c. providing a primary additive, wherein the primary additive comprises a sugar or derivative thereof, a polyol or derivative thereof, an organic acid, an organic acid salt or an inorganic acid, or any combination of two or more thereof, d. mixing the particulate material, the aggregate and the primary additive with water to form a mixture, and e. carbonating the mixture in the presence of carbon dioxide, wherein the concentration of carbon dioxide is greater than about 2 vol %.
SIMULTANEOUS CONDITIONING AND CURING PROCESS FOR CONCRETE PRODUCTS
A method of manufacturing a concrete product, includes: providing a composition including a binder, an aggregate, and water; mixing the binder, the aggregate, and the water to produce a concrete mixture; imparting a form to the concrete mixture to provide a formed intermediate having a first water-to-binder ratio; and concurrently conditioning and curing the formed intermediate by conditioning the formed intermediate while curing the formed intermediate, wherein the formed intermediate is concurrently cured and conditioned to obtain final water-to-binder ratio less than the first water-to-binder ratio.
Method for improving current carrying capacity of second-generation high-temperature superconducting tape
A method for improving current carrying capacity of a second-generation high-temperature superconducting tape, which includes: stretching the second-generation high-temperature superconducting tape in a high-temperature environment, and carrying out an oxygenation heat treatment on the stretched second-generation high-temperature superconducting tape The atmosphere of the high-temperature environment is oxygen, or an inert gas, or a mixture thereof, and a temperature of the high-temperature environment is 450-650° C.; and a strain for stretching ranges from 0.1% to 1%, and a time for stretching ranges from 1 minute to 100 hours. The method of the present invention is a post-processing technique for the second-generation high-temperature superconducting tape with a simple treatment process and a controllable result, and by stretching, current carrying capacity of the superconducting tape is improved and anisotropy of superconductivity is reduced.
Method for improving current carrying capacity of second-generation high-temperature superconducting tape
A method for improving current carrying capacity of a second-generation high-temperature superconducting tape, which includes: stretching the second-generation high-temperature superconducting tape in a high-temperature environment, and carrying out an oxygenation heat treatment on the stretched second-generation high-temperature superconducting tape The atmosphere of the high-temperature environment is oxygen, or an inert gas, or a mixture thereof, and a temperature of the high-temperature environment is 450-650° C.; and a strain for stretching ranges from 0.1% to 1%, and a time for stretching ranges from 1 minute to 100 hours. The method of the present invention is a post-processing technique for the second-generation high-temperature superconducting tape with a simple treatment process and a controllable result, and by stretching, current carrying capacity of the superconducting tape is improved and anisotropy of superconductivity is reduced.
Cement chemistries
A method of curing a low Ca/Mg cement composition is described that includes providing a predetermined quantity of the low Ca/Mg cement composition in uncured form; and reacting the uncured low Ca/Mg cement composition with a reagent chemical for a time sufficient to cure said cementitious material, wherein said reagent chemical is a compound synthesized from CO.sub.2 and comprises dicarboxylic acids, tricarboxylic acids, or alpha-hydroxycarboxylic acids.
Method for making carbonated precast concrete products with enhanced durability
A method for making a carbonated precast concrete product includes: obtaining a mixture including at least one binder material, an aggregate, and water; molding the mixture into a molded intermediate; demolding the molded intermediate to obtain a demolded intermediate, the demolded intermediate having a first water-to-binder ratio; conditioning the demolded intermediate to provide a conditioned article having a second water-to-binder ratio less than the first water-to-binder ratio of the demolded intermediate; moisturizing at least one surface of the conditioned article with an aqueous medium, thereby causing a weight gain of the conditioned article and providing a moisturized product, a first portion of the moisturized product having a third water-to-binder ratio greater than a fourth water-to-binder ratio of a remainder of the moisturized product; and curing the moisturized product with carbon dioxide to obtain the carbonated precast concrete product.
INTEGRATION OF DIRECT AIR CAPTURE SYSTEM INTO CO2 MINERALIZATON PROCESS OF CONCRETES AND AGGREGATES
A method of forming a concrete product includes directly capturing CO.sub.2 from a gas source, the capturing comprising contacting the gas source with an absorption solution having a solvent and a solute, wherein the solvent and/or the solute are capable of reacting with CO.sub.2 to form an anionic compound, adjusting the pH of the absorption solution electrochemically to less than about 7 to release the CO.sub.2 as a concentrated vapor containing CO.sub.2, collecting the concentrated vapor containing CO.sub.2, regenerating the solvent and/or the solute, and optionally collecting the regenerated solvent and/or solute; flowing the concentrated vapor containing CO.sub.2 through a gas processing unit to adjust at least one of a temperature, a relative humidity, or a flow rate of the concentrated vapor containing CO.sub.2; and contacting the concentrated vapor containing CO.sub.2 with a concrete component.
Carbon Dioxide Enhanced Cement
A cement composition including a hydraulic cement material, a latent-hydraulic cement material, and a non-hydraulic cement material. Also provided is a method including combining, at a jobsite, the cement composition comprising the hydraulic cement material, the latent-hydraulic cement material, and the non-hydraulic cement material with water to provide a cement slurry, and allowing the cement slurry to harden in the presence of carbon dioxide (CO.sub.2) to provide a hardened cement.