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

Successful Cementing Procedures Developed for Mobile Bay

View through CrossRef
ABSTRACT Many factors combine to make drilling and completing a well in Mobile Bay, offshore Alabama a difficult engineering task. Of particular concern to operators and service companies alike are hostile environmental conditions: high temperatures (375 to 450°F), extreme depths (21,000 to 25000 ft), massive translayeral salt movements, critical casing designs, critical mud and cement programs, and the possibility of encountering CO2 and H2S. Wells drilled to the Norphlet formation have proven to be particularly challenging with respect to cementing operations. An examination of cementing considerations for a typical Mobile Bay completion, with particular emphasis on the development of cement designs for long, deep liner conditions, provides insight into the current state-of-art in cementing technology, from design to job execution. Computer-aided cement job design and recently developed cementing materials have been successfully employed to achieve an effective cementing program for the difficult conditions found in the Mobile Bay Field. INTRODUCTION The offshore drilling environment of Mobile Bay presents some of the most challenging drilling and completion problems in the entire world. Deep production (below 20,000 ft), salt formations, high temperatures, and the presence of H2S and CO2 combine to push well completion technology to its limits. Well cementing is especially critical to help provide maximum protection from these hostile downhole conditions. Designing cement slurries that provide this protection has been an on-going concern for the industry. The current state-of-the-art in cementing deep, hot wells relies upon recent developments in cementing materials combined with proven, effective cementing practices to provide optimum cementing efficiency. Major features of a typical cementing program for Mobile Bay, Norphlet formation completions include salt saturated cement: slurries with recently developed additives for high temperature salt cement compositions, and spacer fluid systems for enhanced mud removal and cement bonding. Salt saturated cement slurries present special challenges in cement slurry design, especially when they must be designed for extremely high temperatures. Many standard cement additives are less effective in the presence of high salt concentrations. Recently, however, a cementing material has been developed which provides fluid loss control, dispersion, and retardation properties at high temperatures. An examination of the conditions found in Norphlet completions and the design of cement slurries for those conditions illustrate application of recently developed cementing technology for hostile well conditions. THE NORPHLET FORMATION The Norphlet section consists primarily of sandstone, occupying an apparent transition between the Jurassic and Paleozoic systems. The Norphlet conformably lies in the Upper Coachuilan Series from 'South Alabama to the offshore region. It is generally 50 to 1000 ft thick, is dark grey to black in color with fine grained sand, has good apparent porosity (approximately 177.), an average permeability of 4.69 md, Young's Modulus values range from 0.88 to 2.4 × 106 psi, and Poission's Ratio ranges from 0.18 to 0.40. 1
Title: Successful Cementing Procedures Developed for Mobile Bay
Description:
ABSTRACT Many factors combine to make drilling and completing a well in Mobile Bay, offshore Alabama a difficult engineering task.
Of particular concern to operators and service companies alike are hostile environmental conditions: high temperatures (375 to 450°F), extreme depths (21,000 to 25000 ft), massive translayeral salt movements, critical casing designs, critical mud and cement programs, and the possibility of encountering CO2 and H2S.
Wells drilled to the Norphlet formation have proven to be particularly challenging with respect to cementing operations.
An examination of cementing considerations for a typical Mobile Bay completion, with particular emphasis on the development of cement designs for long, deep liner conditions, provides insight into the current state-of-art in cementing technology, from design to job execution.
Computer-aided cement job design and recently developed cementing materials have been successfully employed to achieve an effective cementing program for the difficult conditions found in the Mobile Bay Field.
INTRODUCTION The offshore drilling environment of Mobile Bay presents some of the most challenging drilling and completion problems in the entire world.
Deep production (below 20,000 ft), salt formations, high temperatures, and the presence of H2S and CO2 combine to push well completion technology to its limits.
Well cementing is especially critical to help provide maximum protection from these hostile downhole conditions.
Designing cement slurries that provide this protection has been an on-going concern for the industry.
The current state-of-the-art in cementing deep, hot wells relies upon recent developments in cementing materials combined with proven, effective cementing practices to provide optimum cementing efficiency.
Major features of a typical cementing program for Mobile Bay, Norphlet formation completions include salt saturated cement: slurries with recently developed additives for high temperature salt cement compositions, and spacer fluid systems for enhanced mud removal and cement bonding.
Salt saturated cement slurries present special challenges in cement slurry design, especially when they must be designed for extremely high temperatures.
Many standard cement additives are less effective in the presence of high salt concentrations.
Recently, however, a cementing material has been developed which provides fluid loss control, dispersion, and retardation properties at high temperatures.
An examination of the conditions found in Norphlet completions and the design of cement slurries for those conditions illustrate application of recently developed cementing technology for hostile well conditions.
THE NORPHLET FORMATION The Norphlet section consists primarily of sandstone, occupying an apparent transition between the Jurassic and Paleozoic systems.
The Norphlet conformably lies in the Upper Coachuilan Series from 'South Alabama to the offshore region.
It is generally 50 to 1000 ft thick, is dark grey to black in color with fine grained sand, has good apparent porosity (approximately 177.
), an average permeability of 4.
69 md, Young's Modulus values range from 0.
88 to 2.
4 × 106 psi, and Poission's Ratio ranges from 0.
18 to 0.
40.
1.

Related Results

Microorganisms for Secondary Cementation: A Promising Solution for Cracks and Microchannels in Oil Well Bore Casings
Microorganisms for Secondary Cementation: A Promising Solution for Cracks and Microchannels in Oil Well Bore Casings
Abstract Secondary cementing plays a crucial role in oil and gas well operations by providing zonal isolation and ensuring the integrity of wellbore structures. Seco...
A Deep Dive on Stage Cementing Operations in Sub-Saharan Africa: A Case Study
A Deep Dive on Stage Cementing Operations in Sub-Saharan Africa: A Case Study
Abstract Cementing through weak sand and unconsolidated formations are a common occurrence in today's drilling operations. Main challenges include well control, poor...
Performance Experiment of Ultra high Temperature Cementing Slurry System
Performance Experiment of Ultra high Temperature Cementing Slurry System
Abstract The continuous development of oil and gas exploration and development to deep and ultra deep wells in China, the formation temperature is also getting higher and h...
Full Offline Well Cementing Implementation Resulting in Significant Time Savings and Improvement in Operational Efficiency
Full Offline Well Cementing Implementation Resulting in Significant Time Savings and Improvement in Operational Efficiency
Abstract The current global low oil price environment has driven many operators to consider having a quicker and more efficient operations and reduction of the well ...
Addressing Operational Complexities: Successful Zonal Isolation in Deep Production Liners Through Innovative Cementing
Addressing Operational Complexities: Successful Zonal Isolation in Deep Production Liners Through Innovative Cementing
Abstract This paper explores the complexities involved in achieving zonal isolation within deep production liners with a narrow operational window (pore-fracture pre...
Innovative and Unconventional Approach to Cementing A Ballooning Well Leading to Good Zonal Isolation
Innovative and Unconventional Approach to Cementing A Ballooning Well Leading to Good Zonal Isolation
Abstract Good cement bond log and sufficient zonal isolation are important aspects of production wells. Proper cement design and displacement are essential to ensure...
Experimental Investigation on Cementing Integrity of Oil/Gas Wells 
Experimental Investigation on Cementing Integrity of Oil/Gas Wells 
The integrity of cementing in oil and gas wells is vital for ensuring wellbore stability and preventing environmental contamination. However, the extreme conditions encountered dur...

Back to Top