Zhongqian Ling
China Jiliang University
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Featured researches published by Zhongqian Ling.
Environmental Science & Technology | 2014
Min Kuang; Zhihua Wang; Yanqun Zhu; Zhongqian Ling; Zhengqi Li
A 600 MW(e) down-fired pulverized-coal supercritical boiler, which was equipped with a deep-air-staging combustion system for reducing the particularly high NOx emissions, suffered from the well-accepted contradiction between low NOx emissions and high carbon in fly ash, in addition to excessively high gas temperatures in the hopper that jeopardized the boilers safe operations. Previous results uncovered that under low-NOx conditions, strengthening the staged-air effect by decreasing the staged-air angle and simultaneously increasing the staged-air damper opening alleviated the aforementioned problems to some extent. To establish low-NOx and high-burnout circumstances and control the aforementioned hopper temperatures, a further staged-air retrofit with horizontally redirecting staged air through an enlarged staged-air slot area was performed to greatly strengthen the staged-air effect. Full-load industrial-size measurements were performed to confirm the availability of this retrofit. The present data were compared with those published results before the retrofit. High NOx emissions, low carbon in fly ah, and high hopper temperatures (i.e., levels of 1036 mg/m(3) at 6% O2, 3.72%, and about 1300 °C, respectively) appeared under the original conditions with the staged-air angle of 45° and without overfire air (OFA) application. Applying OFA and reducing the angle to 20° achieved an apparent NOx reduction and a moderate hopper temperature decrease while a sharp increase in carbon in fly ash (i.e., levels of 878 mg/m(3) at 6% O2, about 1200 °C, and 9.81%, respectively). Fortunately, the present staged-air retrofit was confirmed to be applicable in regulating low-NOx, high-burnout, and low hopper temperature circumstances (i.e., levels of 867 mg/m(3) at 6% O2, 5.40%, and about 1100 °C, respectively).
Environmental Science & Technology | 2014
Min Kuang; Zhengqi Li; Zhihua Wang; Xinjing Jing; Chunlong Liu; Qunyi Zhu; Zhongqian Ling
Deep-air-staging combustion conditions, widely used in tangential-fired and wall-arranged furnaces to significantly reduce NOx emissions, are premature up to now in down-fired furnaces that are designed especially for industry firing low-volatile coals such as anthracite and lean coal. To uncover combustion and NOx emission characteristics under deep-air-staging conditions within a newly operated 600 MWe down-fired furnace and simultaneously understand the staged-air effect on the furnace performance, full-load industrial-size measurements taken of gas temperatures and species concentrations in the furnace, CO and NOx emissions in flue gas, and carbon in fly ash were performed at various staged-air damper openings of 10%, 20%, 30%, and 50%. Increasing the staged-air damper opening, gas temperatures along the flame travel (before the flame penetrating the staged-air zone) increased initially but then decreased, while those in the staged-air zone and the upper part of the hopper continuously decreased and increased, respectively. On opening the staged-air damper to further deepen the air-staging conditions, O2 content initially decreased but then increased in both two near-wall regions affected by secondary air and staged air, respectively, whereas CO content in both two regions initially increased but then decreased. In contrast to the conventional understanding about the effects of deep-air-staging conditions, here increasing the staged-air damper opening to deepen the air-staging conditions essentially decreased the exhaust gas temperature and carbon in fly ash and simultaneously increased both NOx emissions and boiler efficiency. In light of apparently low NOx emissions and high carbon in fly ash (i.e., 696-878 mg/m(3) at 6% O2 and 9.81-13.05%, respectively) developing in the down-fired furnace under the present deep-air-staging conditions, further adjustments such as enlarging the staged-air declination angle to prolong pulverized-coal residence times in the furnace should be considered to improve the deep-air-staging combustion configuration.
Applied Energy | 2017
Zhongqian Ling; Bo Ling; Min Kuang; Zhengqi Li; Ye Lu
Applied Thermal Engineering | 2014
Min Kuang; Zhengqi Li; Zhongqian Ling; Xianyang Zeng
Applied Thermal Engineering | 2015
Zhongqian Ling; Xianyang Zeng; Tao Ren; Hong Xu
Fuel | 2014
Min Kuang; Zhengqi Li; Zhongqian Ling; Xianyang Zeng
Energy & Fuels | 2014
Min Kuang; Zhengqi Li; Zhongqian Ling; Zhuofu Chen; Danyan Yuan
Energy & Fuels | 2013
Min Kuang; Zhengqi Li; Xinjing Jing; Xianyang Zeng; Loufeng Zhao; Zhongqian Ling
Energy Conversion and Management | 2014
Min Kuang; Zhengqi Li; Zhongqian Ling; Xinjing Jing; Qunyi Zhu
Energy | 2017
Min Kuang; Qunyi Zhu; Zhongqian Ling; Shuguang Ti; Zhengqi Li