Javascript must be enabled to continue!
Structural Characteristics and Evolution Process of the Western Slope of Xihu Sag
View through CrossRef
<p>The western slope is the most promising area for hydrocarbon accumulation in Xihu Sag. Since Cenozoic, the western slope has undergone multiple stages of evolutions, which resulted in the complex structure of the slope and complicated the hydrocarbon exploration in the study area. Based on the fine seismic interpretation, fault activation rate calculation and balanced cross section restoration, this paper analyzes the structural characteristics and evolution process of the western slope, in order to provide supports to the hydrocarbon exploration. The results show that the western slope is controlled by NNE-striking and NW-striking faults. Seperated by NW-striking faults, the western slope can be divided into sub-Hangzhou slope, sub-Pinghu north slope, sub-Pinghu south slope and sub-Tiantai slope from north to south. (1) The sub-Hangzhou slope is a faulted-step gentle slope. In faulting episode I (Cretaceous-Paleocene), the slope was controlled by step faults. In faulting episode II (Early Eocene), the slope changed from fault-controlled slope to gentle strata slope. In depressional period (Late Eocene-Middle Miocene), the slope was a gentle strata slope. (2) The sub-Pinghu north slope is a graben-horst slope. In faulting episode I (Cretaceous-Paleocene), the slope was controlled by two sets of step faults with opposite tendencies. In faulting episode II (Eocene), the slope changed from fault-controlled slope to gentle strata slope. In depressional period (Oligocene-Middle Miocene), the slope was a gentle strata slope. (3) The sub-Pinghu south slope is a faulted-step steep slope. In faulted period (Cretaceous-Paleocene), the slope was controlled by Pinghu fault and secondary step faults. In depressional period (Oligocene-Middle Miocene), the activation of Pinghu fault became weak, but this fault still divided the strata. (4) The sub-Tiantai slope is a single-fault steep slope. In faulted period (Cretaceous-Paleocene), the slope was controlled by Baoshi fault. In depressional period (Oligocene-Middle Miocene), the activation of Baoshi fault became weak, but this fault still divided the strata. Differences of structural characteristics and evolution process influence the hydrocarbon accumulation in different sub-slopes.</p>
Title: Structural Characteristics and Evolution Process of the Western Slope of Xihu Sag
Description:
<p>The western slope is the most promising area for hydrocarbon accumulation in Xihu Sag.
Since Cenozoic, the western slope has undergone multiple stages of evolutions, which resulted in the complex structure of the slope and complicated the hydrocarbon exploration in the study area.
Based on the fine seismic interpretation, fault activation rate calculation and balanced cross section restoration, this paper analyzes the structural characteristics and evolution process of the western slope, in order to provide supports to the hydrocarbon exploration.
The results show that the western slope is controlled by NNE-striking and NW-striking faults.
Seperated by NW-striking faults, the western slope can be divided into sub-Hangzhou slope, sub-Pinghu north slope, sub-Pinghu south slope and sub-Tiantai slope from north to south.
(1) The sub-Hangzhou slope is a faulted-step gentle slope.
In faulting episode I (Cretaceous-Paleocene), the slope was controlled by step faults.
In faulting episode II (Early Eocene), the slope changed from fault-controlled slope to gentle strata slope.
In depressional period (Late Eocene-Middle Miocene), the slope was a gentle strata slope.
(2) The sub-Pinghu north slope is a graben-horst slope.
In faulting episode I (Cretaceous-Paleocene), the slope was controlled by two sets of step faults with opposite tendencies.
In faulting episode II (Eocene), the slope changed from fault-controlled slope to gentle strata slope.
In depressional period (Oligocene-Middle Miocene), the slope was a gentle strata slope.
(3) The sub-Pinghu south slope is a faulted-step steep slope.
In faulted period (Cretaceous-Paleocene), the slope was controlled by Pinghu fault and secondary step faults.
In depressional period (Oligocene-Middle Miocene), the activation of Pinghu fault became weak, but this fault still divided the strata.
(4) The sub-Tiantai slope is a single-fault steep slope.
In faulted period (Cretaceous-Paleocene), the slope was controlled by Baoshi fault.
In depressional period (Oligocene-Middle Miocene), the activation of Baoshi fault became weak, but this fault still divided the strata.
Differences of structural characteristics and evolution process influence the hydrocarbon accumulation in different sub-slopes.
</p>.
Related Results
The characteristics and evolution of accommodation zone in Xihu Sag, East China Sea Shelf Basin
The characteristics and evolution of accommodation zone in Xihu Sag, East China Sea Shelf Basin
<p>Accommodation zone is an important deformation structure in sedimentary basin, which is significant to understanding the basin structure. The formation and evoluti...
Effects of Different Voltage Sag Types on Induction Motor
Effects of Different Voltage Sag Types on Induction Motor
This paper analyzes effects caused by voltage sag types A, B, C and D on induction motor based on experimental test. The effect can be investigated in term the current peaks and sp...
Quantifying provenance of soil originated from mass movement on soil reservoir-bank using rare earth elements
Quantifying provenance of soil originated from mass movement on soil reservoir-bank using rare earth elements
Abstract:The reservoir-bank collapse has caused soil erosion and bank expansion in the lower Yellow River, which seriously affects the ecological environment and agricul...
Performance Evaluation of Geometric Modification on the Stability of Road Cut Slope Using FE Based Plaxis Software
Performance Evaluation of Geometric Modification on the Stability of Road Cut Slope Using FE Based Plaxis Software
Slope failures are among the common geo-environmental natural hazards in the hilly and mountainous terrain of the world. Specially it is the major difficulty for the development of...
Zero to hero
Zero to hero
Western images of Japan tell a seemingly incongruous story of love, sex and marriage – one full of contradictions and conflicting moral codes. We sometimes hear intriguing stories ...
Self-Supervised Voltage Sag Source Identification Method Based on CNN
Self-Supervised Voltage Sag Source Identification Method Based on CNN
A self-supervised voltage sag source identification method based on a convolution neural network is proposed in this study. In addition, a self-supervised CNN (Convolutional Neural...
Form Follows Force: A theoretical framework for Structural Morphology, and Form-Finding research on shell structures
Form Follows Force: A theoretical framework for Structural Morphology, and Form-Finding research on shell structures
The springing up of freeform architecture and structures introduces many challenges to structural engineers. The main challenge is to generate structural forms with high structural...
A Joint Data-Physics-Driven Approach to Voltage Sag Source Tracing and Inversion Estimation
A Joint Data-Physics-Driven Approach to Voltage Sag Source Tracing and Inversion Estimation
With the global energy transition and the development of smart
manufacturing, modern power systems are characterized by a high
penetration of renewable energy and power electronic ...

