TECHNOLOGY/BUSINESS OPPORTUNITY Integrated Absorber Intercooling via Rich Solvent Stream using 3D-Printed TPMS Active Packings (Соединенные Штаты Америки - Тендер #48676281) | ||
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Страна: Соединенные Штаты Америки (другие тендеры и закупки Соединенные Штаты Америки) Номер конкурса: 48676281 Дата публикации: 30-11-2023 Источник тендера: Государственные закупки США |
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Opportunity:
Lawrence Livermore National Laboratory (LLNL), operated by the Lawrence Livermore National Security (LLNS), LLC under contract no. DE-AC52-07NA27344 (Contract 44) with the U.S. Department of Energy (DOE), is offering the opportunity to enter into a collaboration to further develop and commercialize its improved process design for a gas/liquid exchange column, which can enhance large scale capture of CO2 from power plants or industrial sources.
Background:
Most commercially available and proposed CO2 capture systems use chemical solvents in a gas-liquid exchange column to separate the CO2 gas from a mixed gas stream. One challenge with these systems is that the absorption of CO2 into the solvent generates significant amounts of heat, thus increasing the temperature of the solvent as the gas passes through the column and creating a hot zone (temperature bulge). The capacity of the solvent to absorb CO2 suffers due to the temperature increase, which reduces the system’s efficiency.
One solution to this challenge is introducing an intercooling device, typically a heat exchanger, to cool the gas. The solvent is withdrawn part way up the gas-liquid exchange column, cooled by the mechanical device, and then reinjected back into the absorption column; this describes the conventional ‘in-and-out’ intercooling method. The advantage of using this intercooling approach is it reduces to some extent the temperature bulge, thus also the required column height. However, LLNL researchers have developed a novel process design for intercooling using an ‘in-line’ method, a further improvement to efficiency over the traditional in-and-out approach.
Description:
The heart of this LLNL invention lies in combining existing concepts for absorber intercooling and packing geometry into a novel configuration that yields the benefits of in-line intercooling at reduced capital cost and equipment size. The technology utilizes LLNL-developed Triply Periodic Minimal Surface (TPMS) structures (US Patent No. 11,389,765) that are produced using additive manufacturing (AM) techniques. In the novel process design, the flowthrough in the gas-liquid exchange column remains continuous without the need for any solvent withdrawal and reintroduction as required by an in-and-out approach.
Innovatively, within a portion of the column, while the solvent and gas phases flow through one domain, a secondary cooling fluid flows through an internal, separate set of channels. The structure of the heat exchange packing allows for a large surface contact area between these two domains, which in turn should allow for very efficient removal of heat that can then be used elsewhere. Employing TPMS structural geometries improves the energy efficiency of the process while minimizing the height of the column, even more so than the traditional intercooling methods and with a smaller capital equipment outlay.
Advantages/Benefits:
Potential Applications:
Large scale carbon capture process for industrial applications (e.g., coal gasification or coal-fired power generation, ethanol production, fertilizer production, natural gas processing, refinery hydrogen production)
Development Status:
Current stage of technology development: TRL 2
LLNL has patent(s) on this invention.
IL 13594 U.S. Patent No. 11590448 System And Method For Integrated Absorber Intercooling Via Rich Solvent Stream Using 3D-Printed Active Packings published 2/28/2023
LLNL is seeking industry partners with a demonstrated ability to bring such inventions to the market. Moving critical technology beyond the Laboratory to the commercial world helps our licensees gain a competitive edge in the marketplace. All licensing activities are conducted under policies relating to the strict nondisclosure of company proprietary information.
Please visit the IPO website at https://ipo.llnl.gov/resources for more information on working with LLNL and the industrial partnering and technology transfer process.
Note: THIS IS NOT A PROCUREMENT. Companies interested in commercializing LLNLs Integrated Absorber Intercooling via Rich Solvent Stream using 3D-Printed TPMS Active Packings should provide an electronic OR written statement of interest, which includes the following:
Please provide a complete electronic OR written statement to ensure consideration of your interest in LLNLs Integrated Absorber Intercooling via Rich Solvent Stream using 3D-Printed TPMS Active Packings.
The subject heading in an email response should include the Notice ID and/or the title of LLNL’s Technology/Business Opportunity and directed to the Primary and Secondary Point of Contacts listed below.
Written responses should be directed to:
Lawrence Livermore National Laboratory
Innovation and Partnerships Office
P.O. Box 808, L-779
Livermore, CA 94551-0808
Attention: IL-13594