Multi-Well Reservoir Heterogeneity and Flow Unit Characterization Using Wireline Logs, RQI, and FZI in the Niger Delta Basin, Nigeria.
Keywords:
Fluid saturation; Hydrocarbon reservoirs; Reservoir Quality Index; Flow Zone Indicator; CompartmentalizationAbstract
Reservoir heterogeneity and hydraulic flow unit characterization constitute critical
parameters in optimizing hydrocarbon recovery within structurally and stratigraphically
complex depositional systems such as the Niger Delta Basin. This study investigates
reservoir quality, compartmentalization, and flow unit architecture in the offshore
QUAC Field, Niger Delta, Nigeria, through an integrated petrophysical evaluation of
wireline log datasets acquired from three wells: QUAC-1, QUAC-2, and QUAC-3. The
workflow incorporated gamma-ray, neutron–density, sonic, and resistivity logs to
quantitatively estimate shale volume (Vsh), porosity, and permeability, while hydraulic
flow units were delineated using the Reservoir Quality Index (RQI) and Flow Zone
Indicator (FZI) techniques. Four principal reservoir zones were identified and classified
on the basis of distinct lithological and petrophysical characteristics. Computed shale
volume values range from 0.12 to 0.45, indicating moderate to high vertical heterogeneity
across the reservoir succession. RQI and FZI values cluster between 0.09–0.18 and 0.90
1.12, respectively, suggesting the predominance of moderate-quality hydraulic flow units.
Neutron–density crossplot analysis reveals the occurrence of multiple hydraulic flow
units governed by depositional facies variability and post-depositional diagenetic
modifications. Among the delineated intervals, Zone 2 across all wells represents the
cleanest, most laterally extensive, and hydrocarbon-saturated reservoir unit with
enhanced reservoir continuity and favorable petrophysical attributes. Conversely, Zone
3 consistently exhibits poor reservoir quality, characterized by elevated shale volume
values ranging from 0.38 to 0.45, thereby functioning as a potential flow barrier and non
reservoir interval. The integration of multi-log petrophysical analysis with hydraulic flow
unit classification provides a robust framework for understanding reservoir
heterogeneity and compartmentalization, thereby supporting efficient reservoir
management and strategic hydrocarbon field development.
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