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首页> 外文期刊>Organic Geochemistry: A Publication of the International Association of Geochemistry and Cosmochemistry >Impacts of source input and secondary alteration on the extended tricyclic terpane ratio: A case study from Palaeozoic sourced oils and condensates in the Tarim Basin, NW China
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Impacts of source input and secondary alteration on the extended tricyclic terpane ratio: A case study from Palaeozoic sourced oils and condensates in the Tarim Basin, NW China

机译:源输入及二次改变对延长三环萜状物比的影响:塔里木盆地古生物源油和凝聚液的案例研究

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A suite of oils and condensates from Cambrian-Ordovician sources in the cratonic region of the Tarim Basin, NW China has been characterized by gas chromatography-mass spectrometry with a focus on factors affecting the extended tricyclic terpane ratio [ETR = (C-28 + C-29) TT/Ts]. These oils and condensates show ETR values ranging from 0.3 to 12.4, suggesting variable source contributions deposited under different environmental conditions. Coupled with tri- and tetracyclic terpane distributions, ETR can be used as an organofacies discriminator. Most of the samples have high ETR values (> 2.0), a low relative abundance of the C-19 tricyclic terpane (C19TT) and the C-24 tetracyclic terpane (C24TeT) characteristic of a clastic marine depositional environment, possibly with upwelling conditions. A specific organofacies for a few samples is characterized by low ETR values (< 2.0), high C19TT/C23TT (> 0.8) and C24TeT/C26TT (> 1.0) ratios reflecting deposition under dysoxic conditions. However, various other alteration processes such as thermal maturity, thermochemical sulfate reduction (TSR), biodegradation and in-reservoir mixing probably have a significant impact on this parameter, which makes understanding the meaning of the ETR complicated. The effect of thermal maturity on ETR is minimal in the oil generation window, but the ETR values decrease dramatically at the post oil generation stage. TSR seems to preferentially lead to the loss of the C28TT and C29TT before the 18 alpha(H)-22,29,30-trisnorneohopane (Ts) and thus the ETR value decreases as TSR progresses. While the dibenzothiophene/phenanthrene ratio can help to differentiate TSR alteration from thermal cracking processes, the ETR is no longer a valid geochemical parameter when these two processes occur. ETR also increases with biodegradation. The C-28 and C29TT are more resistant to biodegradation than Ts. Supporting evidence can be derived from a positive correlation between ETR and C-29 25-norhopane to C-30 hopane ratio. In-reservoir mixing is another important alteration process which normally results in lower ETR values after a fresh charge is mixed with a biodegraded charge in a reservoir. Evaporative fractionation may also have an impact on ETR values. Some unusually high ETR values might be attributed to evaporative fractionation. The ETR values from our case study suggests that the ETR parameter is much more complicated than just being an age-diagnostic parameter. Maturation and secondary alteration processes need to be fully accounted for before the ETR can be properly applied to interpretations of depositional environment conditions such as upwelling. (C) 2017 Elsevier Ltd. All rights reserved.
机译:塔里木盆地克拉廷地区的寒武纪奥陶涅瓦科斯州的一套油和凝聚力,介绍了气相色谱 - 质谱,重点关注影响延长三环萜状物比率的因素[ETR =(C-28 + C-29)TT / TS]。这些油和冷凝水显示出0.3至12.4的ETR值,表明在不同环境条件下沉积的可变源源。与三环萜状物分布相结合,ETR可用作有机缩义鉴别器。大多数样品具有高ETR值(> 2.0),C-19三环萜状物(C19TT)的低相对丰度和碎屑海洋沉积环境的C-24四环萜酯(C24TET),可能具有升高的条件。对于少数样品的特定有机面物的特征在于低ETR值(<2.0),高C19TT / C23TT(> 0.8)和C24TET / C26TT(> 1.0)比反射沉积在Dysfisic条件下的沉积。然而,各种其他改变过程如热成熟度,热化学硫酸盐还原(TSR),生物降解和储层混合可能对该参数产生重大影响,这使得了解ETR复杂的含义。在油产生窗口中,热成熟度对ETR的影响最小,但在发油后阶段,ETR值急剧下降。 TSR似乎优先导致在18α(H)-22,29,30-3-三体团(TS)之前的C28TT和C29TT的丧失,因此ETR值随着TSR的进展而降低。虽然二苯并噻吩/菲比可以有助于将TSR改变与热裂化过程分化,但是当发生这两种过程时,ETR不再是有效的地球化学参数。 ETR也随生物降解而增加。 C-28和C29TT比TS更耐生物降解。支持证据可以源于ETR和C-29 25-20-诺霍烷至C-30欧丙烷的正相关性。储层混合是另一重要的改变过程,其通常导致在将新鲜电荷与储存器中的生物降解的电荷混合后的较低的ETR值。蒸发分馏也可能对ETR值产生影响。一些异常高的ETR值可能归因于蒸发分馏。我们的案例研究中的ETR值表明,ETR参数比仅为年龄诊断参数更复杂。成熟和二次改变过程需要在ETR可以适当地应用于诸如升值的沉积环境条件的解释之前完全占据。 (c)2017 Elsevier Ltd.保留所有权利。

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