PAPERmaking! Vol6 Nr2 2020

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SUN ET AL .

18. Ma A, Jia Q, Su H, et al. Study of CO 2 cyclic absorption stability of CaO-based sorbents derived from lime mud purified by sucrose method. Environ Sci Pollut Res . 2016;23:2530-2536. 19. Duelli G, Bidwe AR, Papandreou I, Dieter H, Scheffknecht G. Characterization of the oxy-fired regenerator at a 10 kWth dual fluidized bed calcium looping facility. Appl Therm Eng . 2015;74:54-60. 20. Lan P, Wu S. Synthesis of a porous Nano-CaO/MgO-based CO 2 adsorbent. Chem Eng Technol . 2014;37:580-586. 21. Ma X, Li Y, Zhang W, Wang Z, Zhao J. DFT study of CO 2 ad- sorption across a CaO/Ca 12 Al 14 O 33 sorbent in the presence of H 2 O under calcium looping conditions. Chem Eng J . 2019;370:10-18. 22. Pi S, Zhang Z, He D, Qin C, Ran J. Investigation of Y2O3/MgO- modified extrusion- spheronized CaO-based pellets for high-tem- perature CO2 capture. Asia-Pac J Chem Eng . 2019;14(6):e2366. https://doi.org/10.1002/apj.2366 23. Al-Jeboori MJ, Fennell PS, Nguyen M, Feng K. Effects of different dopants and doping procedures on the reactivity of CaO-based sor- bents for CO 2 capture. Energ Fuel . 2012;26:6584-6594.

24. Xu Y, Ding H, Luo C, et al. Potential synergy of chlorine and po- tassium and sodium elements in carbonation enhancement of CaO- based sorbents. ACS Sustain Chem Eng . 2018;6:11677-11684. 25. Lu A, Lin Q, Wu S. Synergy of pore size and specific surface area on the CO 2 sorption performance of nano CaO-based sorbents. J Nanosci Nanotechno . 2019;19:3205-3209. 26. Ma X, Li Y, Yan X, Zhang W, Zhao J, Wang Z. Preparation of a morph-genetic CaO-based sorbent using paper fibre as a biotemplate for enhanced CO 2 capture. Chem Eng J . 2019;361:235-244. How to cite this article: Sun R, Xiao R, Ye J. Kinetic analysis about the CO 2 capture capacity of lime mud from paper mill in calcium looping process. Energy Sci Eng . 2020;00:1–11. https://doi.org/10.1002/ ese3.792

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