Rui Shan
Tianjin University
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Publication
Featured researches published by Rui Shan.
Bioresource Technology | 2014
Guanyi Chen; Rui Shan; Jiafu Shi; Beibei Yan
In this study, waste ostrich eggshell-derived calcium oxide (denoted as CaO(OE)) particles were synthesized and explored as cost-effective catalysts for the ultrasonic-assisted transesterification of palm oil. The physicochemical properties of the resultant catalysts were characterized by XRD, N2 adsorption, XRF and Hammett indicator, while the catalytic activity was evaluated through transesterification of palm oil with methanol under ultrasonic conditions. More specifically, the CaO(OE) showed comparable catalytic activity to the one derived from commercial calcium carbonate (denoted as CaO(Lab)). Moreover, under ultrasonic conditions, the catalytic activity of CaO(OE) could be enhanced significantly. The maximum yield of fatty acid methyl esters could reach 92.7% under the optimal condition of reaction time of 60 min with ultrasonic power of 60% (120 W), methanol-to-oil ratio of 9:1, and catalyst loading of 8 wt.%. The results indicated that the CaO(OE) catalysts showed good catalytic performance and reusability, and may potentially reduce the cost of biodiesel production.
Bioresource Technology | 2015
Guanyi Chen; Jingang Yao; Jing Liu; Beibei Yan; Rui Shan
The catalytic steam gasification of bio-oil/biochar slurry (bioslurry) for hydrogen-rich syngas production was investigated in a fixed-bed reactor using LaXFeO3 (X=Ce, Mg, K) perovskite-type catalysts. The effects of elemental substitution in LaFeO3, temperature, water to carbon molar ratio (WCMR) and bioslurry weight hourly space velocity (WbHSV) were examined. The results showed that La0.8Ce0.2FeO3 gave the best performance among the prepared catalysts and had better catalytic activity and stability than the commercial 14 wt.% Ni/Al2O3. The deactivation caused by carbon deposition and sintering was significantly depressed in the case of La0.8Ce0.2FeO3 catalyst. Both higher temperature and lower WbHSV contributed to more H2 yield. The optimal WCMR was found to be 2, and excessive introducing of steam reduced hydrogen yield. The La0.8Ce0.2FeO3 catalyst gave a maximum H2 yield of 82.01% with carbon conversion of 65.57% under the optimum operating conditions (temperature=800°C, WCMR=2 and WbHSV=15.36h(-1)).
Energy Conversion and Management | 2015
Guanyi Chen; Rui Shan; Jiafu Shi; Changye Liu; Beibei Yan
Fuel | 2015
Guanyi Chen; Rui Shan; Shangyao Li; Jiafu Shi
Fuel Processing Technology | 2015
Guanyi Chen; Rui Shan; Jiafu Shi; Beibei Yan
Renewable Energy | 2016
Guanyi Chen; Jingang Yao; Jing Liu; Beibei Yan; Rui Shan
Renewable Energy | 2016
Guanyi Chen; Gang Liu; Beibei Yan; Rui Shan; Jianan Wang; Ting Li; Weiwei Xu
Energy Conversion and Management | 2016
Jingang Yao; Jing Liu; Hermann Hofbauer; Guanyi Chen; Beibei Yan; Rui Shan; Wanqing Li
Energy Conversion and Management | 2016
Beibei Yan; Ying Zhang; Guanyi Chen; Rui Shan; Wenchao Ma; Changye Liu
Energy Conversion and Management | 2016
Rui Shan; Jiafu Shi; Beibei Yan; Guanyi Chen; Jingang Yao; Changye Liu