太原西山七里沟石炭系煤系页岩组成结构及热解特征分析Carboniferous Coal Measures Shale Composition, Structural and Pyrolysis Features Analysis in Qiligou, Xishan Coalfield, Taiyuan
李晨雅,王传格,曾凡桂
摘要(Abstract):
以太原西山煤田七里沟石炭系煤系页岩为研究对象,采用X射线衍射(XRD)、傅里叶变换红外光谱(FTIR)和热重质谱(TG-MS)研究其矿物组成、结构特征及热解行为。结果表明:(1)东大窑段底部页岩中黏土矿物含量最高,对热解生烃的促进作用最大;(2)畔沟段、晋祠段和毛儿沟段页岩为Ⅲ型干酪根,东大窑段页岩均为Ⅱ型干酪根。畔沟段页岩中芳香类化合物含量最多,东大窑段底部页岩的生烃潜力‘A’最大,脂肪结构最为富集;(3)400℃之前,毛儿沟段页岩的热失重量最大,C_2H_6生成强度最大,受沉积环境影响,产生大量含硫气体;400~650℃,东大窑段底部页岩的热失重量最大,CH_4等烃类气体生成强度最大;650~950℃,畔沟段页岩的热失重量较大,生成大量H_2和C_6H_6;(4)样品的热解参数与其结构参数有关,随着脂肪结构占比和生烃潜力"A"的增大,400~650℃的热失重量增大;随着芳香结构占比和芳香缩聚程度指数DOC_1的增大,650~950℃的热失重量分段性增大;随着有机质成熟度‘C’的增大,最大热失重速率峰温分段性减小。
关键词(KeyWords): 煤系页岩;生烃潜力;矿物组成;结构特征;热解;气态产物
基金项目(Foundation): 2018年太原理工大学教学改革创新项目:基于综合能力培养的煤岩与煤化学实践教学改革与探索;; NSFC-山西煤基低碳联合基金(U1510102):炼焦煤的多尺度结构特征及其与热解反应性之间关系的实验与分子模拟
作者(Author): 李晨雅,王传格,曾凡桂
参考文献(References):
- [1]贾承造,郑民,张永峰.中国非常规油气资源与勘探开发前景[J] .石油勘探与开发,2012,39(2):129-136.
- [2]戴金星,倪云燕,吴小奇.中国致密砂岩气及在勘探开发上的重要意义[J] .石油勘探与开发,2012,39(3):257-264.
- [3]邹才能,杨智,朱如凯,等.中国非常规油气勘探开发与理论技术进展[J] .地质学报,2015,89(6):979-1007.
- [4]Wu Dun,Liu Guijian,Sun Ruoyu,et al.Investigation of Structural Characteristics of Thermally Metamorphosed Coal by FTIR Spectroscopy and X-ray Diffraction[J].Energy & Fuels,2013,27(10):5823-5830.
- [5]Grzegorz P Lis,Maria Mastalerz,Arndt Schimmelmann,et al.FTIR absorption indicesfor thermal maturity in comparison with vitrinite reflectance R0 in type-II kerogens from Devonian black shales[J].Organic Geochemistry,2005,36(11):1533-1552.
- [6]Ganz H,Kalkreuth W.Application of infrared spectroscopy to the classification of kerogentypes and the evaluation of source rock and oil shale potentials[J].Fuel,1987,66(5):708-711.
- [7]Wu Dun,Zhang Wenyong.Evolution Mechanism of Macromolecular Structure in Coal during Heat Treatment:Based on FTIR and XRD In Situ Analysis Techniques[J].Journal of Spectroscopy,2019(2019):1-18.
- [8]于聪,胡国艺,陈瑞银.不同煤系烃源岩热解气地球化学差异及其在苏里格气田的应用[J].天然气地球科学,2019,30(1):133-142.
- [9]Wang Jun,Wang Qingbin,Wang Feilong,et al.Gold tube pyrolysis study of source rock hydrocarbon generation in Bozhong area,offshore Bohai BayBasin[J].petroleum geology & experiment,2017,39(3):423-430.
- [10]Liu Jianliang,Liu Keyu,Liu Chang.Quantitative evaluation of gas generation from the Upper Paleozoic coal,mudstone and limestone source rocks in the Ordos Basin,China[J].Journal of Asian Earth Sciences,2019(178):224-241.
- [11]李增学,魏久传,王明镇,等.华北南部晚古生代陆表海盆地层序地层格架与海平面变化[J].岩相古地理,1996,16(5):1-11.
- [12]傅雪海,张苗,张庆辉,等.山西省域石炭二叠纪煤系泥页岩气储层评价指标体系[J].煤炭学报,2018,43(6):1654-1660..
- [13]邵龙义,董大啸,李明培,等.华北石炭—二叠纪层序-古地理及聚煤规律[J].煤炭学报,2014,39(8):1725-1734.
- [14]王擎,张岩,迟铭书.干酪根热解过程中的热解特性分析[J].石油学报(石油加工) ,2017,33(3):507-514.
- [15]李术元,林世静,郭绍辉,等.矿物质对干酪根热解生烃过程的影响[J].石油大学学报(自然科学版),2002,26(1):69-71+74.
- [16]Yao Suping,Zhang Ke,Jiao Kun,et al.Evolution of coal structures:FTIR analyses of experimental simulations and naturally matured coals in the Ordos Basin,China[J].Energy Exploration & Exploitation,2011,29(1):1-20.
- [17]朱亚明,赵雪飞,高丽娟,等.FTIR分峰拟合法定量分析精制煤沥青热转化过程的结构变化[J].光谱学与光谱分析,2018,38(7):2076-2080.
- [18]李霞,曾凡桂,王威,等.低中煤级煤结构演化的FTIR表征[J].煤炭学报,2015,40(12):2900-2908.
- [19]Ganz H,Kalkreuth W.Application of infrared spectroscopy to the classification of kerogentypes and the evaluation of source rock and oil shale potentials[J].fuel,1987,66(5):708-711.
- [20]傅家漠,秦匡宗.干酪根地球化学[M].广州:广东科技出版社,1995:1-292.
- [21]熊德明,马万云,张明峰,等.干酪根类型及生烃潜力确定新方法[J].天然气地球科学,2014,25(6):898-905.
- [22]余晓露,马中良,郑伦举,等.不同热模拟方式下烃源岩干酪根演化特征红外光谱分析[J].石油实验地质,2017,39(1):134-140.
- [23]Jang Jingyu,Yang Weihua,Cheng Yuanping,et al.Molecular structure characterization of middle-high rank coal via XRD,Raman and FTIR spectroscopy:Implicationsfor coalification[J].Fuel,2019(239):559-572.
- [24]Manoj B,Kunjoman A G.Study of Stacking Structure of Amorphous Carbon by X-Ray Diffraction Technique[J].International journal of electrochemical science,2012,7(4):3127-3134.
- [25]李霞,曾凡桂,王威,等.低中煤级煤结构演化的XRD表征[J].燃料化学学报,2016,44(7):777-783.
- [26]Arenillas A,Rubiera F,Pis J J,et al.Thermal behaviour during the pyrolysis of low rank perhydrous coals[J].Journal of Analytical and Applied Pyrolysis,2003(68-69):371-385.
- [27]孙庆雷,李文,陈皓侃,等.神木煤显微组分热解的TG-MS研究[J].中国矿业大学学报,2003,32(6):68-73.
- [28]王擎,许祥成,迟铭书,等.干酪根组成结构及其热解生油特性的红外光谱研究[J].燃料化学学报,2015,43(10):1158-1166.
- [29]Han Feng,Meng Aihong,Li Qinghai.Thermal decomposition and evolved gasanalysis (TG-MS) of lignite coals from Southwest China[J].Journal of the Energy Institute,2016,89(1):94-100.
- [30]王民,董奇,卢双舫,等.松辽盆地沙河子组煤岩TG-MS实验产物特征及动力学分析[J].煤炭学报,2012,37(7):1150-1155.
- [31]Wang Min,Li Zhongsheng,Huang Wenbiao,et al.Coal pyrolysis characteristics by TG-MS and its late gas generation potential[J].Fuel,2015(156):243-253.
- [32]Zhao Yunpeng,Hu Haoquan,Jin Lijun,et al.Pyrolysis behavior of vitrinite and inertinite from Chinese Pingshuo coal by TG-MS and in a fixed bed reactor[J].Fuel Processing Technology,2011,92(4):780-786.
- [33]赵丽红,郭慧卿,马青兰.煤热解过程中气态产物分布的研究[J].煤炭转化,2007,30(1):5-9.
- [34]张双全.煤化学[M].北京:中国矿业大学出版社,2009:72-78.
- [35]孙庆雷,李文,陈皓侃,等.煤显微组分热解过程中含硫气体逸出特性[J].中国矿业大学学报,2005,34(4):518-522.