科学技术与工程
科學技術與工程
과학기술여공정
SCIENCE TECHNOLOGY AND ENGINEERING
2010年
27期
6642-6647,6652
,共7页
刘栗%邱朋华%吴少华%张纪锋%秦裕琨
劉慄%邱朋華%吳少華%張紀鋒%秦裕琨
류률%구붕화%오소화%장기봉%진유곤
煤热解%TG-FTIR%动力学参数%FG-DVC
煤熱解%TG-FTIR%動力學參數%FG-DVC
매열해%TG-FTIR%동역학삼수%FG-DVC
coal pyrolysis%TG-FTIR%kinetic parameters%FG-DVC
研究煤热解时的组分析出规律对进一步研究低NO燃烧或煤粉再燃时的均相NOx还原反应来说都是非常重要的.采用TG-FTIR实验装置对两种中国烟煤在不同升温速率(10,20,50和80 ℃/min)下的失重及气体释放规律进行了研究,并将实验数据与FG-DVC软件的模拟结果进行了对比.通过对比发现,其中一种烟煤的模拟结果与实验数据比较相符,但另一种烟煤的模拟结果与实验数据偏差较大.偏差主要是由于FG-DVC模型中提供的有关动力学参数不准确所导致.基于FG-DVC模型的假设,官能团热解形成的轻气体产物的释放过程可以用一系列平行独立的单方程模型描述,应用FTIR的实验结果对热解气体组分的动力学参数进行了修正.采用修正后的动力学参数,FG-DVC能更准确的模拟该煤的热解过程.
研究煤熱解時的組分析齣規律對進一步研究低NO燃燒或煤粉再燃時的均相NOx還原反應來說都是非常重要的.採用TG-FTIR實驗裝置對兩種中國煙煤在不同升溫速率(10,20,50和80 ℃/min)下的失重及氣體釋放規律進行瞭研究,併將實驗數據與FG-DVC軟件的模擬結果進行瞭對比.通過對比髮現,其中一種煙煤的模擬結果與實驗數據比較相符,但另一種煙煤的模擬結果與實驗數據偏差較大.偏差主要是由于FG-DVC模型中提供的有關動力學參數不準確所導緻.基于FG-DVC模型的假設,官能糰熱解形成的輕氣體產物的釋放過程可以用一繫列平行獨立的單方程模型描述,應用FTIR的實驗結果對熱解氣體組分的動力學參數進行瞭脩正.採用脩正後的動力學參數,FG-DVC能更準確的模擬該煤的熱解過程.
연구매열해시적조분석출규률대진일보연구저NO연소혹매분재연시적균상NOx환원반응래설도시비상중요적.채용TG-FTIR실험장치대량충중국연매재불동승온속솔(10,20,50화80 ℃/min)하적실중급기체석방규률진행료연구,병장실험수거여FG-DVC연건적모의결과진행료대비.통과대비발현,기중일충연매적모의결과여실험수거비교상부,단령일충연매적모의결과여실험수거편차교대.편차주요시유우FG-DVC모형중제공적유관동역학삼수불준학소도치.기우FG-DVC모형적가설,관능단열해형성적경기체산물적석방과정가이용일계렬평행독립적단방정모형묘술,응용FTIR적실험결과대열해기체조분적동역학삼수진행료수정.채용수정후적동역학삼수,FG-DVC능경준학적모의해매적열해과정.
It is significant to study the components and the relevant concentration of volatile matters released during pulverized coal pyrolysis, which is fundamental for the further study of low NOx combustion and NOx reduction during coal reburning process. The devolatilisation experiments of two types of Chinese bituminous coal were performed using TG-FTIR (Thermogravimetry combined with Fourier Transform Infrared Spectroscopy) analysis. Four heating rates (10, 20, 50 and 80 ℃/min) were adopted to research the weight loss and gases evolution. The numerical simulations were performed by using FG-DVC (Functional Group and Depolymerization, Vaporization, Cross-linking) model on the experimental coals. It was indicated that the simulation results were well fitted for one of the two types of coal but not very well for another. The error was caused by the inaccuracy of the kinetic parameters of the main species provided by FG-DVC model. The kinetic parameters are then corrected by introducing FTIR results to a series of first-order formulation by assuming that the light gases evolution are parallel and independent in FG-DVC model. By adopting the corrected kinetic parameters the simulation results are agreed with experiments data much better.