Showing posts with label carbon capture. Show all posts
Showing posts with label carbon capture. Show all posts

Thursday, November 21, 2013

SaskPower CO2 Capture Project Update

Hitachi today announced that construction has begun on a Carbon Capture Test Facility ("CCTF") designed to capture CO2 emissions from coal-fired power plants. Hitachi and its partner, Saskatchewan Power Corporation ("SaskPower"), agreed to build this demonstration project in March of 2012. The construction work is expected to be completed during the fall of 2014, and the CCTF will be operational by the end of that year. The goal of the demonstration project is to determine the necessary properties required to scale up to a large, commercial-size facility, and demonstration tests will be conducted to comprehensively evaluate the facility's overall reliability and economic feasibility.
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Tuesday, May 14, 2013

Texas CCUS Project Officially Up and Running

WASHINGTON — The Energy Department’s Acting Assistant Secretary for Fossil Energy Christopher Smith attended last week's dedication ceremony at the Air Products and Chemicals hydrogen production facilities in Port Arthur, Texas. Supported by a $284 million Energy Department investment, the company has successfully begun capturing carbon dioxide from industrial operations and is now using that carbon for enhanced oil recovery (EOR) and securely storing it underground. This first-of-a-kind, breakthrough project advances carbon capture, utilization and storage technologies and demonstrates the potential to safely secure carbon dioxide pollution underground while providing an economic benefit and increasing our energy security.

At full-scale operation, more than 90 percent of the carbon dioxide from the product stream of two methane steam reformers — or approximately one million metric tons of carbon dioxide per year — will be delivered for sequestration and EOR, which will lead to an estimated annual increase in oil production of 1.6 to 3.1 million barrels from the West Hastings oil field located about 20 miles south of Houston, Texas.

“The Energy Department is investing in cutting-edge technologies that will help us safely and more sustainably develop all of America’s rich energy resources,” said Acting Assistant Secretary for Fossil Energy Christopher Smith. “This groundbreaking project demonstrates the potential to produce economic benefits and increase our energy security while greatly reducing the environmental impacts of our fossil energy use.”

The two retrofitted Air Products and Chemicals plants produce commercial bulk hydrogen primarily for use at the nearby Valero refinery. The approximately $431 million project, supported by $284 million from the Energy Department, included retrofitting the plants with an innovative system that separates carbon dioxide from the steam reformer product gas during hydrogen production, followed by compression and drying processes. The Energy Department investment also helped construct a 13.1-mile-long feeder that connects the two plants to an existing 325-mile, 24-inch carbon dioxide pipeline, Denbury’s Green Pipeline, that begins in Louisiana and ends at the West Hastings field. Careful carbon dioxide monitoring, verification, and accounting activities to ensure the injected carbon dioxide remains in the underground geologic formation will take place throughout the lifetime of the project.

The first plant has been capturing carbon dioxide since December 2012, while the second plant completed construction in February and began carbon capture operations in March.  Both units are now operating at full capacity.  Over 222,000 tons of carbon dioxide have been captured and provided for storage as of early May.

The Port Arthur project is part of the Energy Department’s broader efforts to leverage cutting-edge research to show that not only can Carbon Capture and Storage (CCS) technology help industry make fossil energy use cleaner, safer and more sustainable, it also shows promise as a method to extract more, hard-to-access and presently untapped fossil energy resources. By putting the captured carbon dioxide to use, Carbon Capture, Utilization and Storage (CCUS) provides an additional business and market case for companies to pursue the environmental benefits of CCS.

To learn more about CCUS, watch the short video HERE

Source: NETL

Friday, March 1, 2013

NETL Updates Membrane CO2 Capture Research

Membranes offer a potential low-maintenance and economical method for gas separations from power plant flue gas streams. Polymer membranes and supported liquid membranes show great promise to solve problems in the area of clean energy production. Carbon dioxide, a greenhouse gas, is a principal by-product of energy production from fossil fuels. Capturing CO2 from power plant flue gas streams is critical to the goal of reducing the nation’s carbon footprint and preserving the environment. Currently, there is no technology that can meet the goals for carbon capture as set forth by the U.S. Department of Energy. These goals are 90% capture of the CO2with a less than 35% increase in the cost of energy.

The National Energy Technology Laboratory (NETL) is pursuing the development of both polymeric and supported ionic liquid membranes for CO2 capture. Development of adequate membrane technology requires equipment capable of rapidly measuring membrane performance. Typical membrane testing equipment operates under either constant pressure or constant volume conditions. Constant pressure instruments pass feed gas over one side of the membrane and a sweep gas over the other side of the membrane.

The feed gas is comprised of the gases which are to be separated while the sweep gas is inert and serves the purpose of carrying away the gas that passes through the membrane (i.e. , the separated gas). By carrying away the separated gas, the sweep gas allows for increased efficiency of the separation. Constant volume instruments are set up with a membrane separating a pressurized vessel and an evacuated vessel. The pressurized vessel contains the gases which are being separated. As the gases permeate through the membrane, the pressure in the evacuated vessel will increase. The rate of pressure increase permits a determination of the ability of the membrane to separate the gases.

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Monday, February 18, 2013

Australian Scientists Report New CCS Technology

In a study published recently in Angewandte Chemie, Australian scientists from Monash University and the Commonwealth Scientific and Industrial Research Organisation report the discovery of a photosensitive metal organic framework (MOF) – a class of materials known for its exceptional capacity to store gases. The authors say this has created a powerful and cost-effective new tool to capture and store, or potentially recycle, carbon dioxide. By using sunlight to release the stored carbon, the new material reportedly overcomes the problems of expense and inefficiency associated with current, energy-intensive methods of carbon capture. Current technologies use liquid capture materials that are then heated in a prolonged process to release the carbon dioxide for storage. Read more  Read more

Sunday, February 10, 2013

New Natural Gas Power Plants to Use CO2 Capture

Summit Power Group,  a Seattle-based developer of low-carbon power projects, and the technology company The Linde Group have announced they have teamed up to develop commercial-scale natural gas fired power plants that will capture up to ninety percent (90%) of the carbon dioxide (CO2) that would otherwise have been emitted. According to a Summit press release, the new power plants will combine well-established and commercially proven natural gas-fired power plant technology with proven carbon capture technology.

Both Summit and Linde are already active in developing power projects with CO2 capture where the  CO2 can be either geologically sequestered in depleted gas fields and deep saline formations, or  injected into depleting oilfields. Summit is currently developing two major coal gasification projects  that will capture 90% of the CO2 they produce, namely the Texas Clean Energy Project (TCEP) in the United States and the Captain Clean Energy Project (CCEP) in the United Kingdom. Linde is a major technology provider, engineering and construction contractor, and long-term operations and  maintenance provider to TCEP.

Summit and Linde have identified several suitable U.S. locations for this new type of power plant.  Key locations are those where the ultra-low carbon electric power can be sold to utilities and large consumers, and suitable geological sequestration sites are available for the injection of CO2 underground.  The companies believe revenue earned from the productive use of captured CO2, for example in oilfields, will reduce and in some cases may eliminate any environmental cost premium that CO2 capture imposes on power plants.

The two companies plan to announce their first such project in the coming months.

Source: Summit Power Group

Tuesday, February 5, 2013

FutureGen Moves Forward in Illinois

WASHINGTON – Following the successful completion of the first phase, the Energy Department today announced the beginning of Phase II of project development with a new cooperative agreement between the FutureGen Industrial Alliance and the Department of Energy for an innovative carbon capture and storage (CCS) project in Illinois.

In cooperation with the FutureGen project partners, the Department of Energy is investing in the upgrade of a coal-fired power plant in Meredosia, Ill. with oxy-combustion technology to capture more than 1 million tons of CO2 each year—more than 90 percent of the plant’s carbon emissions. Other emissions will also be reduced to near-zero levels. Instead of capturing CO2 in the presence of a large amount of nitrogen, the oxy-combustion approach extracts the oxygen from air before combustion, greatly reducing the cost of carbon capture at the exhaust stack. This project will test oxygen separation technology and exhaust processing technology after combustion at power plant scales. Using proven pipeline technology, the CO2 will then be safely transported and securely stored underground at a nearby storage site. This groundbreaking project will help pave the way for other cleaner and more sustainable advanced coal-burning power plants.

The completion of the FutureGen 2.0 project’s first phase included important technical and financial milestones like the identification of a sequestration site in Morgan County, preliminary characterization and test drilling, and a commitment from the Illinois Commerce Commission to cover the FutureGen 2.0 project’s output under its power purchasing plans. The cooperative agreement announced today with the FutureGen Industrial Alliance will build on these successes to begin preliminary design, pre-construction and engineering for the retrofitted, near-zero emission coal-fired power plant.

Source: DOE

Wednesday, January 30, 2013

Ohio State CCS Project Update

Washington, D.C. — Researchers at The Ohio State University (OSU) have successfully completed more than 200 hours of continuous operation of their patented Coal-Direct Chemical Looping (CDCL) technology - a one-step process to produce both electric power and high-purity carbon dioxide (CO2). The test, led by OSU Professor Liang-Shih Fan, represents the longest integrated operation of chemical looping technology anywhere in the world to date.

The test was conducted at OSU’s 25 kilowatt thermal (kWt) CDCL combustion sub-pilot unit under the auspices of DOE’s Carbon Capture Program, which is developing innovative environmental control technologies to foster the use of the nation’s vast coal reserves. Managed by the Office of Fossil Energy’s National Energy Technology Laboratory, the program’s specific goal is to develop CO2 capture and compression technologies that can reduce the capital cost and energy penalty of CO2 capture by more than half—equivalent to CO2 capture at less than $40 per metric ton—when integrated into a new or existing coal fired power plant. The successful test moves chemical-looping a step closer to full scale.

Chemical looping is an advanced technology that offers several advantages over traditional combustion. In a chemical-looping system, a metal oxide, such as an iron oxide, provides the oxygen for combustion. The metal oxide releases its oxygen in a fuel reactor with a reducing atmosphere, and the oxygen reacts with the fuel. The reduced metal cycles back to an oxidation chamber where the metal oxide is regenerated by contact with air. The metal oxide is then reintroduced into the fuel reactor, thus completing the loop. Since CO2 separation occurs simultaneously with coal conversion, chemical looping offers a low-cost scheme for carbon capture. The process can produce power, synthesis gas, or hydrogen in addition to high-purity CO2.

OSU reports that the CDCL plant’s 200+ hours of operation, using metallurgical coke and subbituminous and lignite coals, shows the robustness of its novel moving-bed design and non-mechanical valve operation. The combination resulted in nearly 100 percent solid fuel conversion and a CO2 stream more than 99 percent pure, making it applicable to CO2 enhanced oil recovery operations.

The OSU project is expected to benefit the DOE Carbon Capture Program by identifying oxygen carriers and a chemical looping process having the potential to control multiple pollutants, including sulfur dioxide (SO2) and nitrogen oxides (NOx), along with CO2. OSU research aims to identify potential barriers and optimize the CDCL technology and provide realistic data for future technological and economic analysis.

In addition to DOE, OSU is partnering on the project with the Ohio Department of Development, Babcock & Wilcox Power Generation Group, Inc., CONSOL Energy Inc., and Clear Skies Consulting LLC.

In a related project, DOE’s National Carbon Capture Center in Wilsonville, Ala., will serve as the host site for the construction and operation of a fully integrated 250 kWt pressurized syngas chemical looping pilot unit starting this year. The facility will be used to further prove the operability and economic feasibility of OSU’s advanced chemical looping technologies.

Source: NETL

Tuesday, January 29, 2013

SaskPower CCUS Project Update

According to a Reuters report yesterday, the carbon capture facility being constructed by Saskatchewan's SaskPower at the Boundary Dam power station will be ready to launch by April 2014.  SaskPower is doing a $1.24 billion retrofit of the 45-year-old plant to capture one million tonnes a year of carbon dioxide as well as sulphur dioxide. When completed, Boundary Dam will be the world's first coal-fired power plant with a commercial scale carbon capture component. SaskPower officials believe the addition of carbon capture will reduce the total power output of the plant by approximately 25 percent, according to Reuters. Officials also stated that the cost of retrofitting the plant, which will reduce CO2 emissions by approximately 90 percent, were approximately the same as constructing a comparable plant powered by natural gas. SaskPower announced last month that it has agreed to sell the captured CO2 to Canadian oil company Cenovus Energy for use in enhaced oil recovery. Read more

CCUS/EOR Project Begins in Texas

Washington, D.C. — A breakthrough carbon capture, utilization, and storage (CCUS) project in Texas has begun capturing carbon dioxide (CO2) and piping it to an oilfield for use in enhanced oil recovery (EOR). 

The project at Air Products and Chemicals hydrogen production facility in Port Arthur, Texas, is significant for demonstrating both the effectiveness and commercial viability of CCUS technology as an option in helping mitigate atmospheric CO2 emissions. Funded in part through the American Recovery and Reinvestment Act (ARRA), the project is managed by the U.S. Department of Energy (DOE) Office of Fossil Energy’s National Energy Technology Laboratory. DOE is collaborating with industry in cost-sharing arrangements to demonstrate these next-generation technologies.  

This event marks a milestone in DOE’s Industrial Carbon Capture and Storage (ICCS) program: progressing beyond research and development to a demonstration scale that can be readily replicated and deployed into commercial practice within the industry. Goals of the ICCS program are to mitigate climate change through CCUS; create jobs; and position the United States as a world leader in carbon capture technologies.  

In the Air Products project, CO2 that would ordinarily be released to the atmosphere is separated from the gas stream of one of the company’s steam methane reformers using a gas-separation technology called "vacuum swing adsorption." After compression and drying, the CO2 purity is greater than 97 percent, concentrated from an initial 10–20 percent. The CO2 is then transported through Denbury Green Pipeline – Texas, LLC’s pipeline for injection into the Denbury Onshore operated West Hastings Unit, an EOR project in Texas.

When an oil well begins "playing out," not enough oil is pumped to make it worthwhile to continue using the well, and the well is closed or "shut in," even though much of the original oil in the field remains in the formation. Several methods of enhanced oil recovery have been developed to recover this remaining oil, including pumping CO2 down to the oil reservoir. In the Port Arthur project, a monitoring, verification, and accounting program will ensure that the injected CO2 remains underground, safely and permanently trapped in the same geologic formation that confined the oil brought to the surface in the demonstration. 

In 2009, during the first phase of DOE’s ICCS program, 12 projects were chosen to receive ARRA funding to expedite or carry out large-scale CCUS from industrial sources. After 7 months, a competitive evaluation was undertaken, and in 2010, Air Products was selected as one of three companies to enter Phase 2 and continue receiving funding for a commercial demonstration project.  

Specific advantages of the Air Products demonstration project include:

• Capturing approximately 1 million metric tons of CO2 per year that would otherwise be released into the atmosphere; and 

• Recovering 1.6-3.1 million additional barrels of domestic oil annually. 

When other companies join with Air Products and begin CO2 capture and utilization, these numbers will increase. Air Products plans to begin CO2 capture at a second steam methane reformer within its Port Arthur facility in the next several months. 

Source: NETL

Thursday, January 24, 2013

Canadian Government Invests in CCS Company

Quebec-based CO2 Solutions Inc. today announced that the Canadian government has made a $4.7 million investment to support the development of the company's enzyme-enabled carbon capture technology in the Alberta oil sands.  CO2 Solutions is developing carbon capture technology for use in oil sands production, including in-situ methods and bitumen upgrading. According to a company press release, results from the project will also support the broader application of CO2 Solutions' technology in other natural gas combustion sources, such as gas-fired power plants. CO2 Solutions’ management anticipates the overall cost of the project to be $7.5 million. The company announced earlier this month that it will receive $348,000 in nonreimbursable funding from Canada’s Industrial Research Assistance Program. The funding will be used to support the ongoing development of CO2 Solutions’ technology, including enzyme evolution and enzyme management process optimization work and will be disbursed over the next twelve months.

Source: CO2 Solutions

Thursday, December 27, 2012

U.S. DOE Plans CO2 Capture Training Simulator

Washington, DC — A new U.S. Department of Energy (DOE) cooperative research and development agreement to develop, test, and deploy a dynamic simulator and operator training system (OTS) could eventually help commercialize important carbon capture technologies at the nation’s power plants.

The high-fidelity, real-time OTS for a generic supercritical once-through (SCOT) pulverized-coal power plant will be installed at the National Energy Technology Laboratory’s (NETL’s) Advanced Virtual Energy Simulation Training and Research (AVESTAR) Center in Morgantown, W.Va. It will be used for collaborative research, industry workforce training, and engineering education on SCOT plant operations and control under the agreement signed with Invensys Operations Management.

The SCOT dynamic model will be designed to include all process- and heat-integration connections to post-combustion CO2-capture, -compression, and -utilization processes, allowing it to serve as the baseline power plant model for DOE’s Carbon Capture Simulation Initiative (CCSI). The NETL-led CCSI is a partnership among national laboratories, industry, and academic institutions geared toward developing and deploying state-of-the-art computational modeling and simulation tools to accelerate the commercialization and widespread use of carbon-capture technologies at the nation’s power plants. By developing effective strategies for the operation and control of carbon-capture technologies, CCSI is expected to have a significant impact on the extent and rate at which commercial-scale capture processes will be scaled-up, deployed, and used. 

Working in collaboration with NETL, Invensys will develop the SCOT dynamic simulator/OTS using Invensys’ SimSci-Esscor® DYNSIM® dynamic simulation software and Wonderware® InTouch® operator training interface software . NETL and Invensys previously collaborated on the high-fidelity, full-scope, real-time dynamic simulator/OTS for an integrated gasification combined cycle (IGCC) power plant with CO2 capture that is currently deployed at the AVESTAR Center. The IGCC dynamic simulator also utilizes Invensys Operations Management’s software, ensuring that both simulators will efficiently coexist on the AVESTAR computer hardware.

The SCOT dynamic simulator developed under this agreement will enable the AVESTAR Center to provide a virtual test bed for optimizing the operation and control of post-combustion CO2-capture technologies. Ultimately, the collaborative research conducted through this partnership will be used to accelerate progress toward achieving operational excellence for SCOT pulverized-coal power plants with carbon capture.

Source: DOE

Wednesday, December 26, 2012

Cenovus to Buy SaskPower's CO2 for EOR

SaskPower, Saskatchewan's electric utility, announced last week that it has reached an agreement with Cenovus Energy for the purchase of carbon dioxide (CO2) from SaskPower’s carbon capture and storage facility now under construction at Boundary Dam Power Station, near Estevan, Saskatchewan.

Cenovus will purchase the full volume, approximately one million tonnes per year, of the CO2 captured at SaskPower’s facility and use it for enhanced oil recovery at a project operated by Cenovus on behalf of its partners near Weyburn, Saskatchewan. SaskPower’s facility is the world’s first and largest coal-fired integrated carbon capture and storage project.

The long-term contract with Cenovus was signed at the completion of an extensive sales process. Cenovus expects to be ready to accept the CO2 when SaskPower’s integrated carbon capture and storage facility goes into commercial operation on or about April 1, 2014.

Source: SaskPower

Thursday, December 13, 2012

Using Lime for Carbon Capture

Researchers in Spain and Germany are testing carbon capture technology that uses lime-derived material in place of traditional amine-based solvents. The lime material reportedly absorbs more carbon dioxide per unit of weight than its amine counterparts and costs less than half as much to use, partly because the lime-based process uses bed reactors that are easier and less expensive to install than the scrubbing towers used with amine-based technology. Read more

Friday, December 7, 2012

U.K. Report Shows Hydrogen Potential in CCS

A new report from the U.K.-based Institution of Gas Engineers & Managers (IGEM) highlights the potential for using hydrogen to reduce carbon dioxide emissions and improve the efficiency of renewable technologies, including wind and solar power. The report explores how hydrogen can be used as a carrier to store energy produced from a wide range of primary sources, and to power applications including electric vehicles, heating and power generation.
For example, the authors explain how excess electrical output from solar and wind facilities can be used to produce hydrogen, which can be transported and used later to produce heat or electricity with zero carbon emissions, reducing dependency on fossil fuels. Similarly, they say storing and transferring energy using hydrogen could support and complement other technologies to combat climate change for instance carbon capture and storage technology

Wednesday, November 21, 2012

DOE Approves Funding for CO2 Capture Technology

Washington, D.C. — A promising post combustion membrane technology that can separate and capture 90 percent of the carbon dioxide (CO2) from a pulverized coal plant has been successfully demonstrated and received Department of Energy (DOE) approval to advance to a larger-scale field test.

In an $18.75 million project funded by the American Recovery and Reinvestment Act of 2009, Membrane Technology and Research Inc. (MTR) and its partners tested the Polaris™ membrane system, which uses a CO2-selective polymeric membrane (micro-porous films which act as semi-permanent barriers to separate two different mediums) material and module to capture CO2 from a plant’s flue gas. Post-combustion separation and capture of CO2 is challenging due to the low pressure and diluted concentration of CO2 in the waste stream; trace impurities in the flue gas that affect removal processes; and the amount of energy required for CO2 capture and compression.

Because the Polaris membranes are 10 times more permeable to CO2 than conventional materials (reducing the membrane area required), and use a slipstream of combustion air as a sweep gas, the system has great potential for reduced energy requirements, reasonable capture costs and greater efficiencies for post-combustion capture, all important factors for retrofitting existing coal-based plants.

Demonstrating and further validating this innovative, cost-effective membrane CO2 separation process at the 1 megawatt equivalent (MWe) pilot scale is expected to be a major step toward meeting DOE’s program goals of capturing more than 90 percent of CO2 from flue gas with less than a 35 percent increase in the cost of electricity. Consequently, MTR will now begin fabricating a 1-megawatt (MW) system capable of meeting this goal from a 20-ton-per-day slipstream of coal-fired flue gas.

The 1-MW system will be tested at DOE’s National Carbon Capture Center (NCCC) in Wilsonville, Ala., beginning in 2013. The Post-Combustion Carbon Capture Center at the NCCC enables testing and integration of advanced CO2-capture technologies, at scale, using flue gas from Alabama Power’s Gaston power plant Unit 5, an 880-megawatt supercritical pulverized coal unit. Data generated in a 6-month field test of the 1-megawatt system will be used by MTR to develop a preliminary 20-megawatt full-scale commercial design in cooperation with their partners, Vectren and WorleyParsons. 
 
In addition to MTR, other collaborators on the three-year project include the Babcock & Wilcox Company, Electric Power Research Institute, and Southern Company. Objectives of the project, part of DOE’s Clean Coal Research Program portfolio, include reducing the capital cost, footprint, and energy penalty for CO2 capture in conventional coal-fired power plants, compared to existing commercial systems.

Source: NETL

Friday, November 16, 2012

OSU Scientists Report New CO2 Capture Membrane


Schematic of Ohio State’s hybrid membrane structure for separating CO<sub>2</sub> from flue gas. Integrating inorganic porous structures together with a polymer cover layer enables the design of novel high-performance membranes.
Washington, D.C. — In a project funded by the U.S.Department of Energy’s Office of Fossil Energy (FE), researchers at The Ohio State University have developed a groundbreaking new hybrid membrane that combines the separation performance of inorganic membranes with the cost-effectiveness of polymer membranes. The breakthrough technology has vast commercial potential for use at coal-fired power plants with carbon capture, utilization, and storage (CCUS), a key element in national efforts to mitigate climate change.

Before the carbon dioxide (CO2) generated at a power plant can be securely stored or put to beneficial use, it must first be separated from the flue gas stream. Unfortunately, the energy cost of current separation technologies is too high to make rapid commercial deployment of CCUS technologies feasible. To overcome this barrier, high-performance membrane separation is a focus of FE’s Carbon Capture Program, under which the Ohio State project is managed. The program supports the DOE goal of cost-effective deployment of CCUS technologies within 10 years to position the United State as a leader in the global clean energy race.

Membranes consist of thin layers of either polymer (organic, plastic) or inorganic (metal, ceramic) materials that are permeable to the molecules they are meant to capture, such as water, CO2, or oxygen. The layers are generally deposited on a membrane support structure. Polymer membranes are mass produced and very cost effective, while inorganic membranes are expensive to produce but exhibit much better performance.

To illustrate how membranes are more energy efficient than other separation methods, scientists sometimes use a familiar substance: seawater. Pure water can be obtained by boiling the seawater and condensing the salt-free vapor, but boiling requires heat, which means using energy. Alternatively, membrane processes for separating salt from water don’t require heat, making them more cost effective and environmentally friendly. Separating CO2 from flue gas is similar. Energy is still required for pre- and post-separation processes, such as compressing the gas, but for the key process of separating the CO2, new membrane technologies pioneered by FE’s National Energy Technology Laboratory (NETL) and its research partners are designed to eliminate most of the energy costs.

Ohio State’s new hybrid membrane consists of a thin, inorganic "zeolite Y" layer sandwiched between an inorganic intermediate and a polymer cover. These three layers sit atop a polymer support, which in turn rests on a woven backing. According to NETL project manager José Figueroa, "Combining inorganic and organic membrane materials in a hybrid configuration is a breakthrough that could potentially lower costs associated with clean coal technologies."

Ohio State researchers realized a first prototype by combining new nanotechnology characterization and fabrication methods with state-of-the-art manufacturing techniques. In the laboratory, they were able to slash the zeolite Y growth rate from 8 hours to less than 15 minutes and reduce ceramic processing time from 43 hours to 20 minutes, resulting in inorganic/organic membrane development within one hour. They have also achieved adhesion of the inorganic intermediate layer onto a polymer support.

The Ohio State team, which has emphasized the membrane’s broader separation applications in their reports, received funding for the project beginning October 1, 2011, and presented their first results at the NETL Carbon Capture and Storage meeting July 9–12, 2012. The promising results follow previous success the team has had in making continuous, intact inorganic layers on polymer supports and developing new membrane-production techniques.

Source: NETL

Monday, November 12, 2012

Australian Scientists Announce New Capture Method

Australian scientists have devised a carbon capture method that uses the equivalent of a molecular trap door to separate carbon dioxide from other gases. Using a synthesized material called chabazite zeolite the researchers are able to separate molecules based on their properties rather than their size. The material can separate CO2 from gas streams at a wide range of temperatures and pressures and has excellent potential for separating CO2 from power station flue gases and natural gas production, according to the researchers, who add that the high selectivity and lower energy requirement of the capture material provide the potential to reduce the cost of gas separation. Read more

Saturday, November 3, 2012

U.S. NETL CO2 Capture Sorbent Summary

Carbon dioxide (CO2) is considered one of the major greenhouse gases affecting climate change. An estimated one-third of anthropogenic CO2 emissions to the atmosphere results from the combustion of fossil fuels used for electricity generation. One technique for preventing CO2 emissions from entering the atmosphere is to capture and concentrate it for beneficial re-use or permanent storage in a geologic formation, assuaging a major concern with the continued use of abundant fuel sources that are domestically available.

Capture and separation of CO2 can be achieved by using solvents, cryogenic techniques, membranes, or solid sorbents. Large-scale operation of any of these technologies is energy intensive when applied to capturing CO2 from the combustion stream or flue gas, where it accounts for only about 15 percent of the volume. While wet scrubbing systems using regenerable, amine-based, solvents are the most commercially advanced, they are extremely energy intensive due in part to the large amount of processing water involved.

The NETL Basic Immobilized Amine Sorbent (BIAS) process is a "dry" sorbent-based CO2 capture technology that is both technically and economically viable for removing CO2 at low concentration from flue gas streams. The technology uses a sorbent made from an amine that is synthesized for high carbon dioxide selectivity and polymerized around a high surface area silica gel for ease of handling. The amine releases adsorbed carbon dioxide when heated at steam temperatures and can then be reconditioned as a solvent with no need for water.

Independent laboratory testing of over 100 sorbents demonstrated that NETL BIAS sorbents had the best overall performance. BIAS sorbents showed the greatest working capacity, a measure of the net ability of the sorbent to absorb CO2, were readily regenerated by heating, and had among the lowest projected regeneration energies—the amount of energy necessary to desorb CO2 from the sorbents.

An initial systems analysis indicates that solid sorbents, such as BIAS sorbents, could adsorb CO2 over a range of temperatures typically encountered downstream of flue gas desulfurization units in coal-burning power plants, and with their relatively low heat capacities would reduce the energy required for regeneration by 40 percent. Moreover, compared to state-of-the-art alternatives, BIAS sorbents are more thermally stable, exhibit little or no degradation , and produce less corrosion, eliminating the need for corrosion inhibitors. All these advantages combined to earn NETL BIAS sorbents a 2012 R&amp;D 100 award, which recognizes 100 most technologically significant products introduced into the marketplace over the past year. Members of the award-winning NETL BIAS team are: McMahan Gray, Henry Pennline, Daniel Fauth, James Hoffman, and Kevin Resnik.

Source: NETL

Monday, October 15, 2012

New U.S. DOE Report on Coal-Fired Carbon Capture

Morgantown, W.Va. — Development of new carbon-capture-ready coal-fired power plants are essential to keeping coal, a proven domestic resource, in the domestic energy mix, according to a report released by the U.S. Department of Energy (DOE). Although recent low natural gas prices have favored natural gas combined cycle (NGCC) for new fossil-fuel-fired power plants, the report asserts that it is reasonable to expect gas prices to rise; in this event, retaining the ability to use coal through systems that are constructed ready to capture carbon dioxide (CO2) will be essential for our nation’s continued economic prosperity.

The new report, Techno-Economic Analysis of CO2 Capture-Ready Coal-Fired Power Plants, provides findings from a study conducted by analysts at DOE’s National Energy Technology Laboratory (NETL). The authors evaluated options for new supercritical pulverized coal plants that capture CO2, as would be required under a new rule proposed in April 2012 by the U.S. Environmental Protection Agency (EPA). The proposed rule, Standards of Performance for Greenhouse Gas Emissions for New Stationary Sources: Electric Utility Generating Units, would restrict CO2 emissions from newly constructed power plants to 1,000 pounds of CO2 per megawatt-hour.

Coal-fired units would be allowed to meet the new standard either by (1) including CO2-capture technology during initial plant construction and controlling CO2 emissions from the start of operations, or (2) constructing the unit to allow for future integration of CO2-capture technology, and then controlling CO2 emissions at a level that would meet the standard, on average, over a 30‑year period. The latter compliance option, which assumes that carbon capture begins after the first 10 years of operations, is the focus of the NETL study.

The analysis showed that the economics of a CO2-capture-ready unit can be competitive with other baseload generation options, such as NGCC or nuclear. Given reasonable assumptions about advances that are likely to occur with CO2-capture technology, along with an additional revenue stream from CO2 sales for enhanced oil recovery, a supercritical CO2-capture-ready unit is competitive with NGCC at natural gas prices as low as $7.75 per million Btu. In addition, the capital cost savings of a CO2-capture-ready unit could be as much as 50–60 percent compared to new nuclear generation, according to several recent cost estimates of actual nuclear projects.

Source: NETL

Wednesday, September 26, 2012

New Carbon Capture Bill Introduced

A bill introduced in the U.S. Senate last week would modify the existing carbon capture and storage tax incentive, which provides a credit of $10 per ton of industrial carbon dioxide used in enhanced oil recovery projects and $20 per ton for carbon dioxide placed directly in secure geological storage. The goal of the bill, which was co-authored by Senator Kent Conrad (D-ND), Senator Mike Enzi (R-WY) and Senator Jay Rockefeller (D-WV), is to make the tax credit easier to access for CO2 emitters.

Senator Conrad said this bill reflects the recommendations of the National Enhanced Oil Recovery Initiative (NEORI) for spurring new enhanced oil recovery projects. The NEORI is a working group of almost 30 energy industry members, state regulators, and environmental group members and was co-founded by the Great Plains Institute and the Center for Climate and Energy Solutions.

The Department of Energy estimates that standard oil production techniques leave as much as 80 percent of the original oil in place. Employing carbon dioxide in enhanced oil recovery could lead to a potential 67 billion barrels of economically recoverable oil — an increase of 45 billion barrels from the 22 billion barrels of current U.S. proven oil reserves, according to the National Energy Technology Lab. Read more