2004Energy & FuelsRequires access

Selection of Oxygen Carriers for Chemical-Looping Combustion

Juan Adánez, Luis F. de Diego, Francisco Garcı́a-Labiano, Pilar Gayán, Alberto Abad, JOSE M. PALACIOS

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Abstract

Chemical-looping combustion (CLC) has been suggested as an energetically efficient method for capture of carbon dioxide from the combustion of fuel gas. This technique involves the use of an oxygen carrier that transfers oxygen from the air to the fuel, preventing direct contact between them. The oxygen carrier is composed of a metal oxide as an oxygen source, and an inert as a binder for increasing the mechanical strength of the carrier. In this work, 240 samples composed of 40−80% of Cu, Fe, Mn, or Ni oxides on Al 2 O 3, sepiolite, SiO 2, TiO 2, or ZrO 2 were prepared by mechanical mixing as cylindrical extrudates. The samples were sintered at four temperatures between 950 and 1300 °C. The effects of the chemical nature and composition of the carrier and the sintering temperature were investigated by reactivity tests in a thermogravimetric analyzer using CH 4 as fuel, and the mechanical strength of the solids. On the basis of these properties, the most promising carriers to be used in a CLC system were selected. The best Cu-based oxygen carriers were those prepared using SiO 2 or TiO 2 as inert, and sintered at 950 °C. Among the Fe-based oxygen carriers, those prepared with Al 2 O 3 and ZrO 2 as inerts showed the best behavior. ZrO 2 was the best inert for those Mn-based oxygen carriers. Finally, TiO 2 was the best inert for those Ni-based oxygen carriers.

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What this paper is about

Chemical-looping combustion (CLC) has been suggested as an energetically efficient method for capture of carbon dioxide from the combustion of fuel gas. This technique involves the use of an oxygen carrier that transfers oxygen from the air to the fuel, preventing direct contact between them. The oxygen carrier is composed of a metal oxide as an oxygen source, and an inert as a binder for increasing the mechanical strength of the carrier. In this work, 240 samples composed of 40−80% of Cu, Fe, Mn, or Ni oxides on Al 2 O 3, sepiolite, SiO 2, TiO 2, or ZrO 2 were prepared by mechanical mixing as cylindrical extrudates. The samples were sintered at four temperatures between 950 and 1300 °C. The effects of the chemical nature and composition of the carrier and the sintering temperature were investigated by reactivity tests in a thermogravimetric analyzer using CH 4 as fuel, and the mechanical strength of the solids. On the basis of these properties, the most promising carriers to be used in a CLC system were selected. The best Cu-based oxygen carriers were those prepared using SiO 2 or TiO 2 as inert, and sintered at 950 °C. Among the Fe-based oxygen carriers, those prepared with Al 2 O 3 and ZrO 2 as inerts showed the best behavior. ZrO 2 was the best inert for those Mn-based oxygen carriers. Finally, TiO 2 was the best inert for those Ni-based oxygen carriers.

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Available abstract

Chemical-looping combustion (CLC) has been suggested as an energetically efficient method for capture of carbon dioxide from the combustion of fuel gas. This technique involves the use of an oxygen carrier that transfers oxygen from the air to the fuel, preventing direct contact between them. The oxygen carrier is composed of a metal oxide as an oxygen source, and an inert as a binder for increasing the mechanical strength of the carrier. In this work, 240 samples composed of 40−80% of Cu, Fe, Mn, or Ni oxides on Al 2 O 3, sepiolite, SiO 2, TiO 2, or ZrO 2 were prepared by mechanical mixing as cylindrical extrudates. The samples were sintered at four temperatures between 950 and 1300 °C. The effects of the chemical nature and composition of the carrier and the sintering temperature were investigated by reactivity tests in a thermogravimetric analyzer using CH 4 as fuel, and the mechanical strength of the solids. On the basis of these properties, the most promising carriers to be used in a CLC system were selected. The best Cu-based oxygen carriers were those prepared using SiO 2 or TiO 2 as inert, and sintered at 950 °C. Among the Fe-based oxygen carriers, those prepared with Al 2 O 3 and ZrO 2 as inerts showed the best behavior. ZrO 2 was the best inert for those Mn-based oxygen carriers. Finally, TiO 2 was the best inert for those Ni-based oxygen carriers.

Key concepts: Chemical looping combustion, Inert, Oxygen, Inert gas, Combustion, Thermogravimetric analysis, Oxide, Sintering

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