Mostrando entradas con la etiqueta Fuidos de Perforación. Mostrar todas las entradas
Mostrando entradas con la etiqueta Fuidos de Perforación. Mostrar todas las entradas

DESCARGAR REOLOGIA E HIDRAULICA DEL DRILLING FLUID MANUAL

jueves, 26 de marzo de 2009


VERSION ESPAÑOL

A estas altas horas de la noche para terminar el día voy a postear el capítulo 5 del Drilling Fluid Manual que también lo he subido completo al blog, pero la diferencia radica en que este capítulo se encuentra absolutamente en español. Es un muy buen capítulo para aquellos que se encuentren llevando el curso de Fluidos de Perforación o alguno similar y sobretodo aquellos que lleven con el profe Canto. Lo subo a sugerencia nuevamente de mi amigo Guffy.



PERFORACIÓN EN TALARA

domingo, 8 de marzo de 2009
En este video nos encontramos en una perforación de GMP en Diciembre del 2008 en el lote I - Talara. 
Bajo un inexorable sol, estudiantes petroleros escuchan a uno de los Ingenieros a cargo de la perfo, la voz de su instrucción tiene como fondo el rudo sonido de las motores que alimentan de energía a todo el equipo de la perforación.
Entre los equipos que se pueden apreciar se encuentran la torre de perforación, la cantina de lodos, las zarandas, los desarenadores, etc.; entre los insumos, las decenas de sacos de baritina, bentonita y demás aditivos. 
La perforación tuvo como objetivo la formación Mogollón a más de 6 mil pies y en el fondo podemos apreciar el típico panorama desértico de Talara en las afueras de la ciudad. 
ENGLISH VERSION
In this video we are in a hole of GMP in December 2008 in Lot I - Talara. Under a relentless sun, students listen to an oil of Engineers in charge of drilling, the voice of their education background is the sound of heavy fuel engines that power the entire team of drilling. The equipment can be seen are the rig, the canteen of sludge, the shaking, the desanding, etc.. Among the inputs, the dozens of sacks of barite, bentonite and other additives. The drilling was aimed at training Mogollón over 6 thousand feet in depth and we can appreciate the typical landscape of Talara desert on the outskirts of the city. Notice: This is only a literal translation, so could be some mistakes.

LANDFARMING


El proceso de Landfarming es una tecnología de remediación biológica de los suelos contaminados, sólidos producidos de la perforación de lodos, o material con características de suelo mediante la cual los microorganismos generan materiales inocuos para el ambiente, o subproductos estabilizados que no representan peligro.

Durante la operación de Landfarming los materiales contaminados son esparcidos en una superficie de suelo, o son extraídos del lugar y apilados sobre una superficie impermeable (fosas de volúmenes considerable) para evitar contaminación de las capas de suelo o aguas que se encuentran por debajo. Las poblaciones de microorganismos naturales del suelo (bacterias, hongos, protozoarios) crecen en el material usando el contaminante como fuente de alimento, transformándolo en productos inocuos.

La marcha del proceso se estimula, monitorea y controla mediante los siguientes parámetros:

Mezclado (rastreo)

  • Sistema de colección de lixiviados (arena o grava)
  • Cubierta impermeable del suelo (arcilla o geomembrana)
  • Contenido de humedad (irrigación de agua)
  • Nivel de oxigenación (rastreo o ventilación forzada)
  • Nutriente (se añaden Macro elementos según la necesidad)

Equipo y requerimientos del terreno:

El Landfarming utiliza equipos agrícolas comerciales tales como tractores, arados, mangueras de riego, y aspersores relativos. La tecnología requiere de extensas áreas abiertas donde dispersar el material para crear las unidades de tratamiento, y estas áreas deben ser preparadas para que tengan un drenaje adecuado, acceso de los equipos y para el manejo de los materiales.

ENGLISH VERSION

LANDFARMING
The process is a technology landfarming biological remediation of contaminated soils, solids produced from the drilling mud, or material characteristics of soil microorganisms which generate environment-friendly materials, or products that are not stabilized danger. During the operation landfarming of contaminated materials are scattered over an area of soil, or are taken from the place and stacked on an impervious surface (pits considerable volumes) to avoid contamination of the layers of soil or water which is below. Natural populations of soil microorganisms (bacteria, fungi, protozoa) grow into the material using the contaminant as a food source, making it a safe product. The process is encouraged, monitored and controlled using the following parameters: Mixing (tracking)
Leachate collection system (sand or gravel)

Impervious cover of the soil (clay or geomembrane)
Moisture content (irrigation water)
Level of oxygenation (crawl or ventilation)
Nutrients (Macro elements are added as needed)
Equipment and requirements of the field:
The commercial landfarming used farm equipment such as tractors, plows, irrigation hoses and sprinklers on. The technology requires large open areas where they disperse the material to create handling units, and these areas should be prepared to have an adequate drainage, access and equipment for handling materials.

SAUDI ARAMCO DRILLING MANUAL

jueves, 5 de marzo de 2009


  • General Information
  • Drilling Practices
  • Drilling Fluids
  • Completion Practices
  • Wireline Logging and Explosives
  • Well Testing
  • Fishing
  • Health, Safety and Enviromental Issues
  • Appendix
ENGLISH VERSION
Engineering Drilling Books

CLASSIFICATION OF FLUID SYSTEMS

viernes, 27 de febrero de 2009

BASIC SYSTEM CLASSIFICATION

WATER-BASED SYSTEMS

Non-dispersed. These systems include spud muds, natural muds and other lightly treated systems that are generally used for shallow wells or top-hole drilling. Thinners and dispersants are not added to disperse drill solids and clay particles.

Dispersed. At greater depths, where higher densities are required, or where hole conditions may be problematic, muds are often dispersed, typically with lignosulfonates, lignites or tannins. These and similar products are effective deflocculants and filtrate reducers. Potassium-containing chemicals are frequently used to provide greater shale inhibition. Specialized chemicals are also added to adjust or maintain specific mud properties.

Calcium treated. Divalent cations, such as calcium and magnesium, when added to a freshwater drilling mud, inhibit formation clay and shale swelling. High levels of soluble calcium are used to control sloughing shale and hole enlargement, and to prevent formation damage. Hydrated lime (calcium hydroxide), gypsum (calcium sulfate) and calcium chloride are principal ingredients of calcium systems.

Calcium-treated muds resist salt and anhydrite contamination but are susceptible to gelation and solidification at high temperatures.

High-performance water-based muds (HPWBM). These are usually reformulated polymer systems containing system-specific products to deliver shale stability, clay and cuttings inhibition, lubricity and high ROP, while minimizing bit balling/accretion and downhole torque problems. Some HPWBM use borehole stabilizing products to reduce pore pressure transmission similar to oil-based muds. Therefore, HPWBM are suitable to use whenever environmental liabilities and associated waste management costs limit the application of OBM/SBM.

Low solids. Listings include systems in which the amount (volume) and type of solids are controlled. Total solids should not range higher than about 6% to 10% by volume. Clay solids should be some 3% or less and exhibit a ratio of drilled solids to bentonite of less than 2:1. Low-solids systems typically use polymer additive as a viscosifier or bentonite extender and are non-dispersed. One primary advantage of low-solids systems is that they significantly improve drilling penetration rate.

Polymer/PA/PHPA. Muds incorporating generally long-chain, high-molecular-weight polymers are used to either encapsulate drill solids to prevent dispersion and coat shales for inhibition, or for increasing viscosity and reducing fluid loss. Various polymers are available for these purposes, including cellulose, natural gum-based products, and acrylamide. Frequently, inhibiting salts, such as KCl or NaCl, are used to provide greater shale stability in all of these fluids. These systems usually contain a minimum amount of bentonite and may be sensitive to divalent cations, such as calcium and magnesium. Most polymers have temperature limits below 300°F but, under certain conditions, may be used in hotter wells. A special class of water-based muds use partially-hydrolyzed polyacrylamide (PHPA) as an additive, either to encapsulate drill solids or to extend bentonite clay in a low-solids mud.

Saltwater systems. Several mud systems are included in this classification. Saturated salt systems are used to drill salt formations. Lower levels are usually referred to as brackish or seawater systems. Saltwater muds are usually prepared from brackish, seawater or produced-water sources and dry sodium chloride (or other salts, such as potassium chloride used for shale inhibition), are added to achieve desired salinity. Various specialty products, such as attapulgite, CMC, starch and others, are used to increase viscosity for hole-cleaning properties and to reduce fluid loss.

OIL-BASED MUDS (OBM)
Oil-based systems are used in various applications, where fluid stability and inhibition are necessary, such as high-temperature wells, deep holes, and where sticking and hole stabilization are problems. They consist of two types of systems:

  1. Invert emulsion muds are water-in-oil emulsions, typically with calcium chloride brine as the emulsified phase and oil as the continuous phase. They may contain as much as 50% brine in the liquid phase. Relaxed, invert emulsion muds are a “relaxed” emulsion, and have lower electrical stabilities and higher fluid-loss values. Concentration of additives and brine content/salinity are varied to control rheological, filtration and emulsion stability.
  2. Oil-based muds are formulated with only oil as the liquid phase and are often used as coring fluids. Although these systems pick up water from the formation, no additional water or brine is added. All oil systems require higher additional gelling agents for viscosity. Specialized oil-based mud additives include: emulsifiers and wetting agents (commonly fatty acids and amine derivatives) for viscosity; high-molecular-weight soaps; surfactants; amine treated organic materials; organo clays and lime for alkalinity.

COMPLETION FLUIDS
Solids-free and typically formulated with aqueous salts, these fluids can achieve a wide density range by incorporating the appropriate salt (halides, bromides and formate brine) without using conventional weighting materials. They are usually designed to match specific reservoir criteria, taking into account critical factors like ESD, contamination risks and crystallization temperatures.

HPHT SPECIALTY PRODUCTS
Specifically designed for high-pressure, high-temperature and hostile environments where conventional drilling fluids are impractical or uneconomical. They address safety and environmental compliance, lost circulation, decreased penetration rates, acid gases, and determination of downhole pressure, while allowing for more flexible tool and downhole-equipment selection.

RESERVOIR DRILL-IN FLUIDS (RDF)
These have the properties of a good drilling fluid and a completion fluid. Its primary attribute is the development of a filter cake which effectively prevents formation damage and is easily removed, with filtrate and filter cake being compatible with the completion process. They are usually composed of biopolymers and bridging materials and are designed to match specific reservoir criteria.

SYNTHETIC FLUIDS (SBM)
These are designed to mirror oil-based mud performance, without the environmental hazards. Primary synthetic fluids are esters, ethers, poly alpha olefins and isomerized alpha olefins. They can be discharged offshore, and are non-sheening and biodegradable.

WELLBORE CLEAN-UP
These products are designed to remove mud and mud particles that are attached to the casing or become a part of the filter cake while drilling. They are usually part of aqueous and non-aqueous spacers and cleaners to ensure smooth displacement, optimal contact times and reduced disposal costs.

IR, MIST, FOAM AND GAS
Four basic operations are included in this specialized category. These include: 1) Dry air drilling, which involves injecting dry air or gas into the wellbore at rates capable of achieving annular velocities that will remove cuttings; 2) Mist drilling, which involves injecting a foaming agent into the air stream that mixes with produced water and coats the cuttings to prevent mud rings, allowing drill solids to be removed; 3) Foam uses surfactants and possibly clays or polymers to form a high carrying-capacity foam; and 4) Aerated fluids rely on mud with injected air (which reduces hydrostatic head) to remove drilled solids from the wellbore.

LIBROS DE INGENIERIA DE PERFORACION

sábado, 21 de febrero de 2009
Con la entrada de este post doy inicio a una recopilación de libros sobre Perforación en las cuales tambien incluiré libros de Fluidos de Perforación o también conocidos como Lodos para conocer más a fondo el arte de la perforación xD ... Bueno aqui les dejo con el primer libro sobre Fluidos de Perforación:



  • Introduction
  • Functions
  • Testing
  • Basic Chemistry
  • Rheology and Hydraulics
  • Polymer Chemistry and Applications
  • Filtration Control
  • Solids Control
  • Engineering Calculations
  • Water-Base Systems
  • Non-Aqueous Emulsions
  • Oil-Base Systems
  • Synthetic Systems
  • Lost Circulation
  • Stuck Pipe
  • Shale and Wellbore Stability
  • Pressure Prediction
  • Pressure Control
  • Corrosion
  • Barite Sag
  • Reservoir Drill
  • Deepwater
  • Health, Safety and Enviromental
  • Glossary
ENGLISH VERSION
DRILLING ENGINEERING BOOKS

RECUPERACIÓN Y REUTILIZACIÓN DE FLUIDOS DE PERFORACIÓN

sábado, 31 de enero de 2009


Primer Paso : Ruptura de la Emulsión
Segundo Paso : Recuperación de los Fluidos de Perforación
Tercer Paso : Procesamiento del agua separada

English Version
Recovery and reuse of Drilling fluids.
First step: Broken emulsion. Second step: Drilling fluids recovery. Third step: Water process