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Basic Petroleum Engineering Course
More than 2 million students worldwide

Basic Petroleum Engineering Course

Master the full technical foundation of petroleum engineering, from subsurface geology and reservoir rock properties to drilling, completions, and enhanced recovery. This programme delivers the core principles and practical frameworks that working engineers rely on every day. Whether you are entering the industry or strengthening your technical base, this is the comprehensive resource you need.

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What you'll learn:

  • Interpret well logs and petrophysical data to identify and evaluate pay zones accurately.

  • Apply material balance equations and decline curve analysis to estimate reserves and forecast production.

  • Design drilling programmes that address casing loads, wellbore stability, and well control requirements.

  • Select and optimise completion architectures, perforation strategies, and hydraulic fracturing treatments.

  • Evaluate waterflooding, gas injection, and tertiary EOR methods to maximise field recovery factors.

  • Integrate reservoir, drilling, and production data into a structured field development plan.

How you study in practice Basic Petroleum Engineering Course

How you practise Basic Petroleum Engineering Course

For businesses looking to train their team

With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.

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Course content

8 Chapters • 39 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Petroleum Engineering

  • Lesson 1 • The Global Petroleum Industry Overview

    Maps the upstream, midstream, and downstream segments and key stakeholder roles. Provides the industry framework that anchors every technical topic in the course.

  • Lesson 2 • Subsurface Geology for Engineers

    Introduces sedimentary basins, stratigraphy, and structural traps relevant to hydrocarbon accumulation. Enables engineers to interpret geological maps and cross-sections.

  • Lesson 3 • Physical and Chemical Properties of Hydrocarbons

    Covers molecular composition, phase behaviour, and classification of crude oil and natural gas. Builds the chemical foundation required for reservoir and production analysis.

  • Lesson 4 • Units, Conversions, and Engineering Maths

    Standardises unit systems and mathematical tools used throughout petroleum engineering calculations. Prevents errors in field and office computations.

Chapter 2See details

Reservoir Rock and Fluid Properties

  • Lesson 1 • Rock Compressibility and Geomechanics Basics

    Quantifies how reservoir rock compresses under changing effective stress during production. Connects geomechanical behaviour to reservoir pressure management.

  • Lesson 2 • Permeability and Flow Capacity

    Applies Darcy's law to quantify fluid flow through porous media and introduces absolute and relative permeability. Links rock properties to production potential.

  • Lesson 3 • Capillary Pressure and Wettability

    Explains interfacial tension, wettability, and capillary pressure curves and their impact on fluid distribution. Determines initial fluid saturations and recovery efficiency.

  • Lesson 4 • Reservoir Fluid Phase Behaviour

    Analyses pressure-volume-temperature relationships for oil, gas, and water systems. Accurate PVT data is essential for reserve estimation and production forecasting.

  • Lesson 5 • Porosity and Pore Structure

    Defines total, effective, and secondary porosity and the methods used to measure them. Directly determines how much fluid a reservoir can store.

Chapter 3See details

Well Logging and Formation Evaluation

  • Lesson 1 • Porosity Logs and Lithology Identification

    Applies neutron, density, and sonic logs to derive porosity and identify rock type. Accurate lithology identification controls all subsequent petrophysical calculations.

  • Lesson 2 • Shale Volume and Net Pay Cutoffs

    Quantifies clay content using gamma ray and other indicators and applies cutoffs to define net reservoir. Directly impacts volumetric reserve calculations.

  • Lesson 3 • Resistivity and Saturation Determination

    Uses resistivity logs and Archie's equation to calculate water and hydrocarbon saturation. Saturation determination is the primary driver of reserve classification.

  • Lesson 4 • Petrophysical Interpretation Workflow

    Integrates all log measurements into a systematic workflow from raw data to reservoir description. Prepares students for full-field petrophysical studies.

  • Lesson 5 • Principles of Well Logging

    Introduces the physics behind electrical, nuclear, and acoustic logging tools and their deployment methods. Establishes the measurement basis for all formation evaluation workflows.

Chapter 4See details

Reservoir Engineering Fundamentals

  • Lesson 1 • Reservoir Drive Mechanisms

    Identifies solution gas, gas cap, water influx, compaction, and combination drives and their production signatures. Drive mechanism determines recovery efficiency and development strategy.

  • Lesson 2 • Decline Curve Analysis

    Fits exponential, hyperbolic, and harmonic decline models to production data to forecast future output. Widely used for reserve estimation and economic evaluation.

  • Lesson 3 • Material Balance Equation

    Derives and applies the general material balance equation to estimate reservoir energy and fluid influx. Validates volumetric estimates and identifies active drive mechanisms.

  • Lesson 4 • Volumetric Reserve Estimation

    Calculates original oil and gas in place using volumetric methods and introduces probabilistic reserve classification. Provides the starting point for all field development decisions.

  • Lesson 5 • Fluid Flow in Reservoirs

    Solves steady-state, pseudo-steady-state, and transient flow equations for radial and linear geometries. Provides the analytical basis for well performance and pressure analysis.

Chapter 5See details

Drilling Engineering Principles

  • Lesson 1 • Drill Bit Selection and Performance

    Compares roller cone and PDC bit designs and applies performance metrics to optimise rate of penetration. Bit selection significantly impacts drilling cost per foot.

  • Lesson 2 • Casing Design and Well Control

    Designs casing strings for burst, collapse, and tension loads and introduces blowout prevention principles. Well control is the primary safety discipline in drilling operations.

  • Lesson 3 • Well Planning and Trajectory Design

    Covers well objectives, target definition, and directional survey calculations for vertical and deviated wells. Trajectory design controls drilling cost and reservoir contact.

  • Lesson 4 • Drilling Fluids and Hydraulics

    Analyses drilling fluid functions, rheological properties, and hydraulic optimisation for efficient cuttings transport. Proper hydraulics prevent stuck pipe and formation damage.

  • Lesson 5 • Wellbore Stability and Cementing

    Applies stress analysis to prevent borehole collapse and evaluates cement job quality for zonal isolation. Wellbore integrity is critical for long-term well performance.

Chapter 6See details

Well Completion and Stimulation

  • Lesson 1 • Matrix Acidising and Acid Fracturing

    Designs acid treatments to remove near-wellbore damage in sandstone and carbonate reservoirs. Acidising restores or exceeds original formation permeability.

  • Lesson 2 • Completion Architecture and Perforation

    Compares open-hole, cased-hole, and sand-control completions and evaluates perforation design parameters. Completion type determines the interface between wellbore and reservoir.

  • Lesson 3 • Multistage Fracturing in Horizontal Wells

    Applies stage isolation techniques and cluster spacing optimisation for horizontal well stimulation. Multistage fracturing is the enabling technology for unconventional resource development.

  • Lesson 4 • Completion Optimisation and Evaluation

    Uses post-stimulation pressure transient analysis and production data to evaluate treatment effectiveness. Continuous optimisation improves well economics across a field.

  • Lesson 5 • Hydraulic Fracturing Design

    Covers fracture mechanics, fluid and proppant selection, and treatment schedule design for conventional and unconventional reservoirs. Hydraulic fracturing is the primary stimulation method for tight formations.

Chapter 7See details

Production Engineering and Artificial Lift

  • Lesson 1 • Inflow Performance Relationships

    Derives IPR curves for oil and gas wells using Vogel, Fetkovich, and backpressure methods. IPR defines the reservoir's ability to deliver fluids to the wellbore.

  • Lesson 2 • Artificial Lift System Selection

    Compares rod pump, ESP, gas lift, PCP, and jet pump systems against well and reservoir conditions. Correct lift selection maximises production rate and minimises operating cost.

  • Lesson 3 • Flow Assurance and Fluid Handling

    Identifies and mitigates wax, asphaltene, scale, hydrate, and corrosion threats in production systems. Flow assurance ensures continuous, safe fluid delivery from reservoir to surface.

  • Lesson 4 • Production Surveillance and Optimisation

    Uses well tests, production logging, and real-time data to monitor and optimise producing wells. Surveillance identifies underperforming wells and guides workover decisions.

  • Lesson 5 • Tubing Performance and Nodal Analysis

    Calculates multiphase pressure drop in tubing and combines IPR with tubing performance curves for nodal analysis. Nodal analysis identifies the system constraint limiting production.

Chapter 8See details

Enhanced Oil Recovery and Field Development

  • Lesson 1 • Field Development Planning

    Integrates subsurface, drilling, and surface facility constraints into a phased field development plan. The FDP translates technical analysis into an investment and production schedule.

  • Lesson 2 • Waterflooding Design and Performance

    Applies displacement efficiency, areal sweep, and vertical conformance concepts to waterflood design. Waterflooding is the most widely applied secondary recovery method.

  • Lesson 3 • Gas Injection and Miscible Flooding

    Evaluates immiscible and miscible gas injection processes including CO2, hydrocarbon, and nitrogen floods. Miscible flooding achieves higher displacement efficiency than waterflooding.

  • Lesson 4 • Reservoir Simulation Overview

    Introduces numerical simulation concepts, grid design, and history matching for reservoir performance prediction. Simulation integrates all reservoir data into a predictive model.

  • Lesson 5 • Chemical and Thermal EOR Methods

    Covers polymer, surfactant, and alkaline flooding and thermal methods including steam and in-situ combustion. Tertiary methods target residual oil after secondary recovery.

Certification

Your valid completion certificate

This course is for you:

  • Geology graduate: wants to understand the engineering side of reservoir development.

  • Mechanical engineer: transitioning into upstream oil and gas technical roles.

  • Field operations technician: building the theoretical knowledge to move into engineering.

  • Energy finance analyst: needs technical grounding to evaluate upstream project proposals.

  • Chemical engineering student: exploring petroleum as a specialised career pathway.

  • Environmental consultant: expanding expertise to include upstream oil and gas systems.

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