Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Perched Water Observations in Deepwater Miocene Fields Using Well Logs, Core, and Production Data

View through CrossRef
Perched water is occasionally encountered above the main gas- or oil-water contact in stratigraphically and/or structurally complex fields. It is a consequence of localized water entrapment associated with relatively small-scale structural or stratigraphic traps during the migration process. Observations of perched water intervals and their associated transition zones in the exploration, appraisal, or production wells can challenge subsurface characterization workflows and often lead to inaccuracies in in-place volumes estimation. Perched water transition zones are commonly misinterpreted as lithological trends, while local perched contacts found at the bases of sands could be interpreted as segment or field-wide contacts. It is, therefore, important to recognize the presence of perched water and adequately characterize its impact on reservoir volumetrics and production volumes. We present examples of perched water intervals in two Miocene deepwater fields. In the first example, a clear transition zone associated with perched water is observed in a fully cored gas-bearing sand located several hundred feet above field gas-water contact. The presence of movable perched water is confirmed via direct extraction from core samples (see Fig. 1). The associated saturation profile is evaluated using logs and special core analysis measurements. The chemical composition of extracted water samples is compared with the aquifer waters. In the second example, we present a case of perched water in a reservoir located hundreds of feet above regional oil-water contact. Perched water was detected by comparing resistivity- and capillary-pressure-derived saturation profiles and confirmed with water sample analysis and production data. The field cases provide examples of movable water located high above field water contact and offer useful analogs for perched water detection in deepwater sandstones. Perched water transition zones saturation is shown to follow a normal drainage capillary pressure profile, and its chemistry differs from the aquifer waters. Perched water pools appear to have a limited volumetric footprint and do not result in large quantities of produced water; however, they still need to be accounted for as a potential risk in deepwater projects.
Title: Perched Water Observations in Deepwater Miocene Fields Using Well Logs, Core, and Production Data
Description:
Perched water is occasionally encountered above the main gas- or oil-water contact in stratigraphically and/or structurally complex fields.
It is a consequence of localized water entrapment associated with relatively small-scale structural or stratigraphic traps during the migration process.
Observations of perched water intervals and their associated transition zones in the exploration, appraisal, or production wells can challenge subsurface characterization workflows and often lead to inaccuracies in in-place volumes estimation.
Perched water transition zones are commonly misinterpreted as lithological trends, while local perched contacts found at the bases of sands could be interpreted as segment or field-wide contacts.
It is, therefore, important to recognize the presence of perched water and adequately characterize its impact on reservoir volumetrics and production volumes.
We present examples of perched water intervals in two Miocene deepwater fields.
In the first example, a clear transition zone associated with perched water is observed in a fully cored gas-bearing sand located several hundred feet above field gas-water contact.
The presence of movable perched water is confirmed via direct extraction from core samples (see Fig.
1).
The associated saturation profile is evaluated using logs and special core analysis measurements.
The chemical composition of extracted water samples is compared with the aquifer waters.
In the second example, we present a case of perched water in a reservoir located hundreds of feet above regional oil-water contact.
Perched water was detected by comparing resistivity- and capillary-pressure-derived saturation profiles and confirmed with water sample analysis and production data.
The field cases provide examples of movable water located high above field water contact and offer useful analogs for perched water detection in deepwater sandstones.
Perched water transition zones saturation is shown to follow a normal drainage capillary pressure profile, and its chemistry differs from the aquifer waters.
Perched water pools appear to have a limited volumetric footprint and do not result in large quantities of produced water; however, they still need to be accounted for as a potential risk in deepwater projects.

Related Results

The Future of Regulations for the Deepwater GOM
The Future of Regulations for the Deepwater GOM
Abstract Deepwater oil and gas activities in the U.S. Gulf of Mexico Outer ContinentalShelf (OCS) are regulated by the Minerals Management Service (MMS). The leve...
New Tendon and Riser Technologies Improve TLP Competitiveness in Ultra- Deepwater
New Tendon and Riser Technologies Improve TLP Competitiveness in Ultra- Deepwater
Abstract The extensive industry experience with design, fabrication, installation, and operation of TLPs in water depths up to 4,000 ft has demonstrated the flexi...
Selecting Seal Materials for Deepwater Completions
Selecting Seal Materials for Deepwater Completions
Abstract A variety of seal materials have been used in downhole completions since the first cement plug was invented circa 1924. That first plug had a canvas wrap...
The Deep Star Project: An Overview Of Industry Cooperation
The Deep Star Project: An Overview Of Industry Cooperation
ABSTRACT Texaco's vision for development of the deepwater in the Gulf of Mexico is closely tied to the concept of cooperation and evolution of a synergistic relat...
An Automatic Approach for Core-To-Log Depth Matching in Pre-Salt Carbonate Reservoirs
An Automatic Approach for Core-To-Log Depth Matching in Pre-Salt Carbonate Reservoirs
This study introduces an automated approach for aligning core depths with well logs. Core samples can be a very accurate and reliable source of petrophysical measurements. Converse...
The Kapitean Stage (Upper Miocene) of New Zealand
The Kapitean Stage (Upper Miocene) of New Zealand
<p>The ten chapters in this thesis are presented in the form of nine independent papers and a note. A separate abstract is given below for each chapter. I. The type section o...
Deepwater Facility Selection
Deepwater Facility Selection
Abstract A large number of factors influence the choice of production system for a particular oil and gas field. This paper outlines the key drivers that govern t...

Back to Top