岩性油气藏 ›› 2026, Vol. 38 ›› Issue (1): 3854.doi: 10.12108/yxyqc.20260104
ZAVALA Carlos1, 刘化清2,3, 李相博2,3(
), 杨占龙2,3, 李阳1,4,5, 王菁2,3, TROBBIANI Valentin6,7, ARCURI Mariano6,7
ZAVALA Carlos1, LIU Huaqing2,3, LI Xiangbo2,3(
), YANG Zhanlong2,3, LI Yang1,4,5, WANG Jing2,3, TROBBIANI Valentin6,7, ARCURI Mariano6,7
摘要:
层序地层学理论和方法为地层分析提供了新工具,有助于深化对沉积模式和盆地演化的理解。传统的层序地层学理论中,沉积单元与部分名词术语(如层序界面、体系域、准层序等)是主要针对海相沉积系统提出的,而湖相沉积系统因受构造运动与高频气候旋回的复合控制,非海平面变化驱动,其层序地层特征的复杂程度远高于海相沉积系统。通过对不同湖盆类型的沉积体系的系统解剖,厘清了湖相沉积层序地层学的相关概念,并探讨了他旋回对湖相沉积和层序地层的控制作用以及湖盆可容纳空间类型及其对层序地层和油气成因的意义。研究结果表明:①湖泊沉积状态可划分为3种类型,即欠填充、平衡填充和过填充湖泊,不同状态下湖泊的水体盐度、沉积层序、体系域等具有显著差别。在欠填充时期,湖泊水体是完全封闭的,受高频干湿气候循环影响,湖平面波动变化较大,在潮湿期,河流可提供大量水和沉积物,湖平面上升形成湖侵域(TST),发育向上变细变薄的沉积层序单元(EDS);在干旱期,湖平面下降,湖盆边缘区域暴露,形成湖退域(RST),湖水盐度为微咸水—超咸水。在平衡填充时期,湖泊呈半封闭状态,兼具欠填充和过填充双重特征,在TST发育期,湖泊呈欠填充状态,随着河流水和沉积物的持续供给,形成向上变细的沉积层序,直到湖平面达到最大洪泛期的溢出点;在RST发育期,湖泊呈过填充状态,发育向上变粗的前积型滨岸三角洲和水下三角洲沉积,此时湖水盐度为咸水—淡水。在过填充时期,湖泊的水体环境是开放的,即湖平面始终维持在湖泊溢出点附近,注入的多余河水会通过溢出点流出,其沉积物主要形成于RST期,表现为向上变粗的前积型滨岸沉积及水下三角洲沉积,且大多数过填充湖泊为淡水湖。②构造沉降作用对于湖泊沉积物的长期保存至关重要,水和沉积物可在无沉降区暂时保存,但这些沉积物难以保存在现今地层中。沉降型湖泊发育永久性可容纳空间,悬湖发育暂时性可容纳空间,虽然悬湖无法永久保存沉积物,但其临时储存的大量水体可以瞬时决口,淹没下游沉降型湖泊,这为富含有机物页岩的发育创造了有利条件。悬湖决口形成的洪水会导致下游沉降型湖泊发生大规模快速强制性湖侵(FT),从而形成了一种与正常水及沉积物供给无关的异整合面。
中图分类号:
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