Kaisong Xiang
Central South University
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Publication
Featured researches published by Kaisong Xiang.
Environmental Science and Pollution Research | 2017
Zhilou Liu; Dongli Wang; Bing Peng; Liyuan Chai; Hui Liu; Shu Yang; Bentao Yang; Kaisong Xiang; Cao Liu
Reducing mercury emission is hot topic for international society. The first step for controlling mercury in fuel gas is to investigate mercury distribution and during the flue gas treatment process. The mercury transport and transformation in wet flue gas cleaning process of nonferrous smelting industry was studied in the paper with critical important parameters, such as the solution temperature, Hg0 concentration, SO2 concentration, and Hg2+ concentration at the laboratory scale. The mass ratio of the mercury distribution in the solution, flue gas, sludge, and acid fog from the simulated flue gas containing Hg2+ and Hg0 was 49.12~65.54, 18.34~35.42, 11.89~14.47, and 1.74~3.54%, respectively. The primary mercury species in the flue gas and acid fog were gaseous Hg0 and dissolved Hg2+. The mercury species in the cleaning solution were dissolved Hg2+ and colloidal mercury, which accounted for 56.56 and 7.34% of the total mercury, respectively. Various mercury compounds, including Hg2Cl2, HgS, HgCl2, HgSO4, and HgO, existed in the sludge. These results for mercury distribution and speciation are highly useful in understanding mercury transport and transformation during the wet flue gas cleaning process. This research is conducive for controlling mercury emissions from nonferrous smelting flue gas and by-products.
Environmental Science and Pollution Research | 2017
Hui Liu; Kaisong Xiang; Bentao Yang; Xiaofeng Xie; Dongli Wang; Cong Zhang; Zhilou Liu; Shu Yang; Cao Liu; Jianping Zou; Liyuan Chai
Converting the NO from gaseous pollutant into NH4+ through electrocatalytical reduction using cost-effective materials holds great promise for pollutant purifying and resources recycling. In this work, we developed a highly selective and stable catalyst CoSe2 nanoparticle hybridized with carbon nanotubes (CoSe2@CNTs). The CoSe2@CNTs hybrid catalysts performed an extraordinary high selectivity for NH4+ formation in NO electroreduction with minimal N2O production and H2 evolution. The specific spatial structure of CoSe2 is conductive to the predominant formation of N-H bond between the N from adsorbed NO and H and inhibition of N-N formation from adjacent adsorbed NO. It was also the first time to convert the coordinated NO into NH4+ using non-noble metal catalysis. Moreover, the original concept of employing CoSe2 as eletrocatalyst for NO hydrogenation presented in this work can broaden horizons and provide new dimensions in the design of new highly efficient catalysts for NH4+ synthesis in aqueous solution.
Environmental Science and Pollution Research | 2016
Kaisong Xiang; Hui Liu; Bentao Yang; Cong Zhang; Shu Yang; Zhilou Liu; Cao Liu; Xiaofeng Xie; Liyuan Chai; Xiaobo Min
Fuel | 2016
Bing Peng; Zhilou Liu; Liyuan Chai; Hui Liu; Shu Yang; Bentao Yang; Kaisong Xiang; Cao Liu
Fuel | 2017
Bing Peng; Zhilou Liu; Liyuan Chai; Hui Liu; Shu Yang; Bentao Yang; Kaisong Xiang; Cao Liu
Journal of Chemical Technology & Biotechnology | 2016
Liyuan Chai; Bentao Yang; Hui Liu; Kaisong Xiang; Shu Yang; Cong Peng
Industrial & Engineering Chemistry Research | 2017
Zhilou Liu; Bing Peng; Liyuan Chai; Hui Liu; Shu Yang; Bentao Yang; Kaisong Xiang; Cao Liu; Dongli Wang
Chemical Engineering and Processing | 2015
Hui Liu; Kaisong Xiang; Bentao Yang; Shu Yang; Qingzhu Li
Industrial & Engineering Chemistry Research | 2016
Bentao Yang; Liyuan Chai; Fangfang Zhu; Xu Yan; Kaisong Xiang; Hui Liu
Industrial & Engineering Chemistry Research | 2017
Bentao Yang; Liyuan Chai; Fangfang Zhu; Xu Yan; Kaisong Xiang; Zhilou Liu; Cong Zhang; Hui Liu