Liu Quanyou
Chinese Academy of Sciences
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Publication
Featured researches published by Liu Quanyou.
Chinese Journal of Geochemistry | 2005
Shi Ji’an; Zhao Xin; Wang Qi; Liu Quanyou
In this paper a thermogravimetry-differential thermal analysis method coupled with chromatography (TG-DTA-GC) has been adopted to simulate the generation of gaseous hydrocarbons from different hydrocarbon source rocks such as coals, mudstones, and carbonate rocks with different maturities. The temperature programming for thermal simulation experiment is 20°C/min from ambient temperature to 700°C. As viewed from the quantities and composition of generated gaseous hydrocarbons at different temperatures, it is shown that low-mature coal has experienced the strongest exothermic reaction and the highest loss of weight in which the first exothermic peak is relatively low. Low-mature coal samples have stronger capability of generating gaseous hydrocarbons than high-mature samples. The amounts and composition of gaseous hydrocarbons generated are closely related not only to the abundance of organic carbon in source rocks, but also to the type of kerogen in the source rocks, and their thermal maturity. In the present highly mature and over-mature rock samples organic carbon, probably, has already been exhausted, so the production of gaseous hydrocarbons in large amounts is impossible. The contents of heavy components in gaseous hydrocarbons from the source rocks containing type- I and -II kerogens are generally high; those of light components such as methane and ethane in gaseous hydrocarbons from the source rocks with III-type kerogens are high as well. In the course of thermal simulation of carbonate rock samples, large amounts of gaseous hydrocarbons were produced in a high temperature range.In this paper a thermogravimetry-differential thermal analysis method coupled with chromatography (TG-DTA-GC) has been adopted to simulate the generation of gaseous hydrocarbons from different hydrocarbon source rocks such as coals, mudstones, and carbonate rocks with different maturities. The temperature programming for thermal simulation experiment is 20°C/min from ambient temperature to 700°C. As viewed from the quantities and composition of generated gaseous hydrocarbons at different temperatures, it is shown that low-mature coal has experienced the strongest exothermic reaction and the highest loss of weight in which the first exothermic peak is relatively low. Low-mature coal samples have stronger capability of generating gaseous hydrocarbons than high-mature samples. The amounts and composition of gaseous hydrocarbons generated are closely related not only to the abundance of organic carbon in source rocks, but also to the type of kerogen in the source rocks, and their thermal maturity. In the present highly mature and over-mature rock samples organic carbon, probably, has already been exhausted, so the production of gaseous hydrocarbons in large amounts is impossible. The contents of heavy components in gaseous hydrocarbons from the source rocks containing type- I and -II kerogens are generally high; those of light components such as methane and ethane in gaseous hydrocarbons from the source rocks with III-type kerogens are high as well. In the course of thermal simulation of carbonate rock samples, large amounts of gaseous hydrocarbons were produced in a high temperature range.
Natural Gas Geoscience | 2006
Liu Quanyou
Natural Gas Geoscience | 2006
Liu Quanyou
Chinese Journal of Geochemistry | 2004
Liu Quanyou; Liu Wenhui
Archive | 2017
Meng Qingqiang; Liu Quanyou; Zhu Dongya; Zhang Dianwei; Jin Zhijun; Sun Dongsheng
Archive | 2017
Meng Qingqiang; Liu Quanyou; Zhu Dongya; Sun Yipu; Zhang Dianwei; Jin Zhijun; Sun Dongsheng
Archive | 2017
Liu Quanyou; Meng Qingqiang; Zhu Dongya; Zhang Dianwei; Jin Zhijun; Sun Dongsheng
Archive | 2017
Zhu Dongya; Ning Lirong; Meng Qingqiang; Liu Quanyou; Zhang Dianwei; Sun Dongsheng; Zhou Yan; Chen Weijun
Archive | 2017
Meng Qingqiang; Liu Quanyou; Zhu Dongya; Zhang Dianwei; Jin Zhijun; Sun Dongsheng
Archive | 2017
Meng Qingqiang; Zhu Dongya; Liu Quanyou; Zhang Dianwei; Jin Zhijun; Sun Dongsheng