Optimization of in situ gasification chemical looping combustion through experimental investigations with a cold experimental system

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Abstract

In situ gasification chemical looping combustion (iG-CLC) is a promising coal combustion technology for implementing CO 2 capture with a low energy penalty. A novel iG-CLC cold experimental system was developed in the authors' previous work (Ind. Eng. Chem. Res. 2013, 52, 14208). It mainly consists of a high-flux circulating fluidized bed (HFCFB) riser as the fuel reactor and a cross-flow moving bed as the air reactor. As an extension of that work, in this study, we further optimized the iG-CLC system by redesignung the air reactor to enhance the carrying capacity of the gas flow and developing a two-stage separation system by adding a second-stage cyclone to the original first-stage inertial separator. Stability in operation and flexibility in adjusting operating parameters were achieved with the improved system. In the riser (fuel reactor), higher solids fluxes and solids holdups were achieved, which should enhance the gas-solid contact and promote the complicated heterogeneous reactions. In the moving bed (air reactor), the carrying capacity of the gas flow was significantly enhanced, which should lead to a great increase in the system power capacity. The confirmation of the ability to control the gas flow directions in the two reactors means that the gas bypassing between the two reactors can be restrained so as to ensure a high CO 2 concentration in the exhaust of the fuel reactor. The high global separation efficiency and selective separation efficiency of the new two-stage separation system for fine particles indicate that a high combustion efficiency of coal can be achieved with a hot iG-CLC system.

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Wang, X., Jin, B., Liu, H., Wang, W., Liu, X., & Zhang, Y. (2015). Optimization of in situ gasification chemical looping combustion through experimental investigations with a cold experimental system. Industrial and Engineering Chemistry Research, 54(21), 5749–5758. https://doi.org/10.1021/acs.iecr.5b00471

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