Curing-drying model and its applications

US2017102373A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2017102373-A1
Application numberUS-201615290328-A
CountryUS
Kind codeA1
Filing dateOct 11, 2016
Priority dateOct 8, 2015
Publication dateApr 13, 2017
Grant date

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  1. Title

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  2. Abstract

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  5. First independent claim

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Abstract

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The invention encompasses methods to control the curing of a CO 2 Composite Material (CCM) and processes that use such equipment to cure the CCM. The method provides a way to compute the expected water distribution in an uncured porous concrete product based on a set of environmental conditions on.

First claim

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What is claimed is: 1 . A method to control a set of environmental conditions for curing a porous concrete product in a CO 2 gas, comprising the steps of: measuring a value of a property of an uncured porous concrete product under a first set of environmental conditions; supplying said measured value of said property of said uncured porous concrete product to a calculation model that operates on a general purpose programmable computer; supplying said first set of environmental conditions to said calculation model; operating said calculation model to generate a calculated water distribution in said uncured porous concrete product under said first set of environmental conditions; comparing said calculated water distribution in the porous concrete product to a preferred water distribution to obtain a difference between said calculated water distribution in the porous concrete product and said preferred water distribution; in the event that said difference between said calculated water distribution in the porous concrete product and said preferred water distribution is smaller than a predetermined limit: performing at least one of recording as a result said set of adjusted environmental conditions that produce a calculated water distribution in the porous concrete product that differs from the preferred water distribution by less than said predetermined limit, transmitting said result to a data handling system, or displaying said result to a user; in the event that said difference between said calculated water distribution in the porous concrete product and said preferred water distribution is not smaller than said predetermined limit: adjusting one or more of said first set of environmental conditions to generate a subsequent set of adjusted environmental conditions; supplying said subsequent set of adjusted environmental conditions to the calculation model; operating said calculation model to generate a subsequent calculated water distribution in the porous concrete product under said subsequent set of adjusted environmental conditions; comparing said subsequent calculated water distribution in the porous concrete product to said preferred water distribution to obtain a difference between said subsequent calculated water distribution in the porous concrete product and said preferred water distribution; in the event that said difference between said subsequent calculated water distribution in the porous concrete product and said preferred water distribution is not smaller than said predetermined limit, repeating the steps of adjusting one or more environmental conditions, supplying, operating, and comparing until a difference between a further calculated water distribution in the porous concrete product and said preferred water distribution is smaller than said predetermined limit, and then performing at least one of recording as a result said set of adjusted environmental conditions that produce a calculated water distribution in the porous concrete product that differs from the preferred water distribution by less than said predetermined limit, transmitting said result to a data handling system, or displaying said result to a user; and in the event that said difference between said subsequent calculated water distribution in the porous concrete product and said preferred water distribution is smaller than said predetermined limit: performing at least one of recording as a result said set of adjusted environmental conditions that produce a calculated water distribution in the porous concrete product that differs from the preferred water distribution by less than said predetermined limit, transmitting said result to a data handling system, or displaying said result to a user. 2 . The method to determine a set of environmental conditions for curing a porous concrete product in a CO 2 gas of claim 1 , wherein said property of an uncured porous concrete product is at least one of a water permeability, a porosity, a residual saturation, a sample dimension, a drying side and a critical Relative Humidity. 3 . The method to determine a set of environmental conditions for curing a porous concrete product in a CO 2 gas of claim 1 , wherein said set of preferred environmental conditions includes at least one of a mass transfer coefficient, a relative humidity profile, a temperature profile and a pressure. 4 . The method to determine a set of environmental conditions for curing a porous concrete product in a CO 2 gas of claim 3 , wherein said temperature profile comprises a temperature in the range of 30° C. to 90° C. 5 . The method to determine a set of environmental conditions for curing a porous concrete product in a CO 2 gas of claim 1 , wherein said water distribution in said porous concrete product is a first surface saturation level in the range of 0.05 to 0.8. 6 . The method to determine a set of environmental conditions for curing a porous concrete product in a CO 2 gas of claim 1 , wherein said water distribution in said porous concrete product is a second surface saturation level in the range of 0.05 to 0.8. 7 . The method to determine a set of environmental conditions for curing a porous concrete product in a CO 2 gas of claim 1 , further comprising the step of applying said subsequent set of environmental conditions to a curing apparatus in a curing process.

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What does patent US2017102373A1 cover?
The invention encompasses methods to control the curing of a CO 2 Composite Material (CCM) and processes that use such equipment to cure the CCM. The method provides a way to compute the expected water distribution in an uncured porous concrete product based on a set of environmental conditions on.
Who is the assignee on this patent?
Solidia Technologies Inc
What technology area does this patent fall under?
Primary CPC classification G01N33/383. Mapped technology areas include Physics.
When was this patent published?
Publication date Thu Apr 13 2017 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).