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Petroleum Engineering Course
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Petroleum Engineering Course

Master the full technical scope of petroleum engineering, from reservoir rock properties and well logging to drilling design, production optimisation, and enhanced oil recovery. This course delivers rigorous, industry-aligned training built on real engineering workflows and quantitative methods. Whether you're entering the oil and gas industry or advancing your technical career, this is the comprehensive foundation you need.

Dedika for students

What your team will master:

This course covers every core discipline a working petroleum engineer needs to master. You will learn to evaluate reservoir rock and fluid properties, interpret wireline logs, and apply material balance and decline curve analysis to estimate reserves. Drilling engineering modules walk you through well planning, casing design, and well control. Completion and stimulation sections cover hydraulic fracturing, perforation design, and acidizing. You will also study production engineering, EOR methods, petroleum economics, unconventional resources, and digital oilfield technologies, giving you a complete, job-ready skill set.

How your team learns practically Petroleum Engineering Course

How your team practises Petroleum Engineering Course

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Course content

8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Petroleum Engineering

  • Lesson 1 • Health, Safety, and Environmental Basics

    Introduces hazard identification, regulatory frameworks, and environmental obligations in petroleum operations. Grounds all technical work in responsible practice.

  • Lesson 2 • Properties of Reservoir Fluids

    Defines crude oil, natural gas, and water properties relevant to engineering calculations. Links fluid behaviour to production and processing decisions.

  • Lesson 3 • Units, Measurements, and Industry Standards

    Establishes consistent use of field and SI units, conversion factors, and reporting conventions. Ensures accuracy in all subsequent engineering calculations.

  • Lesson 4 • The Global Petroleum Industry

    Covers industry structure, major players, and the upstream-midstream-downstream value chain. Establishes the professional context for all subsequent technical content.

  • Lesson 5 • Petroleum Geology Fundamentals

    Introduces sedimentary basins, source rocks, traps, and seals. Provides the geological framework needed to understand reservoir formation and hydrocarbon accumulation.

Chapter 2See details

Reservoir Rock and Fluid Properties

  • Lesson 1 • PVT Analysis and Fluid Sampling

    Covers pressure-volume-temperature relationships, formation volume factors, and solution gas-oil ratio. Provides data inputs for reservoir simulation and production forecasting.

  • Lesson 2 • Porosity Concepts and Measurement

    Defines total, effective, and secondary porosity and explains laboratory and log-based measurement methods. Connects pore volume to storage capacity calculations.

  • Lesson 3 • Rock Compressibility and Geomechanics Basics

    Introduces pore compressibility, effective stress, and their impact on reservoir performance. Prepares students for compaction drive and subsidence analysis.

  • Lesson 4 • Fluid Saturation and Capillary Pressure

    Explains water, oil, and gas saturation distribution and capillary pressure curves. Establishes the basis for fluid contact determination and irreducible saturation.

  • Lesson 5 • Permeability and Fluid Flow

    Applies Darcy's law to single-phase flow and introduces absolute, effective, and relative permeability. Links permeability to production rate potential.

Chapter 3See details

Well Logging and Formation Evaluation

  • Lesson 1 • Net Pay Determination and Log Synthesis

    Applies cutoffs for porosity, saturation, and shale volume to define net pay intervals. Integrates all log types into a composite petrophysical model.

  • Lesson 2 • Porosity Logs

    Interprets neutron, density, and sonic logs to calculate porosity and identify gas zones. Builds on rock property concepts from the previous chapter.

  • Lesson 3 • Gamma Ray and Lithology Logs

    Uses gamma ray, spontaneous potential, and photoelectric logs to identify lithology and shale volume. Provides the first step in net pay determination.

  • Lesson 4 • Fundamentals of Well Logging

    Explains the purpose of well logging, tool conveyance methods, and log quality control. Establishes the workflow for integrating logs with core and test data.

  • Lesson 5 • Resistivity Logs and Water Saturation

    Applies Archie's equation and resistivity logs to calculate water saturation in clean and shaly sands. Directly supports hydrocarbon volume estimation.

Chapter 4See details

Reservoir Engineering Principles

  • Lesson 1 • Reserves Classification and Estimation

    Explains proved, probable, and possible reserves categories and volumetric estimation methods. Aligns with international reserves reporting standards.

  • Lesson 2 • Decline Curve Analysis

    Applies exponential, hyperbolic, and harmonic decline models to production data. Provides practical tools for reserves estimation and production forecasting.

  • Lesson 3 • Material Balance Equation

    Derives and applies the general material balance equation (MBE) for oil and gas reservoirs. Enables estimation of original hydrocarbons in place from production data.

  • Lesson 4 • Drive Mechanisms and Recovery Factors

    Identifies solution gas, gas cap, water, and compaction drives and their effect on recovery efficiency. Connects drive type to production strategy selection.

  • Lesson 5 • Pressure Transient Analysis

    Introduces buildup and drawdown testing to determine permeability, skin, and reservoir boundaries. Links well test data to reservoir characterisation.

Chapter 5See details

Drilling Engineering

  • Lesson 1 • Well Planning and Trajectory Design

    Covers pore pressure prediction, fracture gradient, and wellbore trajectory design for vertical and directional wells. Establishes the engineering basis for casing and mud programmes.

  • Lesson 2 • Drilling Fluids and Hydraulics

    Explains drilling fluid functions, rheological models, and hydraulic optimisation for bit cleaning. Links fluid design to wellbore stability and formation damage prevention.

  • Lesson 3 • Well Control Principles

    Identifies kick warning signs, explains shut-in procedures, and applies the driller's and wait-and-weight methods. Prepares students to respond to well control emergencies.

  • Lesson 4 • Drill Bit Selection and ROP Optimisation

    Compares roller cone and PDC bit designs and applies weight-on-bit and RPM optimisation. Connects bit performance to overall well cost reduction.

  • Lesson 5 • Casing Design and Cementing

    Designs casing strings for burst, collapse, and tension loads and explains primary cementing objectives. Ensures wellbore integrity from surface to total depth.

Chapter 6See details

Well Completion and Stimulation

  • Lesson 1 • Fracture Design and Treatment Execution

    Applies fracture design software inputs, fluid selection, and real-time treatment monitoring. Connects design parameters to post-fracture production improvement.

  • Lesson 2 • Hydraulic Fracturing Fundamentals

    Explains fracture initiation, propagation, and proppant transport in hydraulic fracturing. Provides the physical basis for fracture design in tight and conventional reservoirs.

  • Lesson 3 • Perforating Design and Optimisation

    Covers perforation gun systems, shot density, phasing, and underbalance design. Links perforation geometry to inflow performance and skin reduction.

  • Lesson 4 • Completion Architecture and Selection

    Compares open-hole, perforated, and gravel-pack completions and their suitability for different reservoir conditions. Establishes the framework for all subsequent completion design decisions.

  • Lesson 5 • Acidising and Matrix Stimulation

    Covers acid types, wormhole propagation, and matrix acidising design for carbonates and sandstones. Complements hydraulic fracturing as an alternative stimulation method.

Chapter 7See details

Production Engineering and Artificial Lift

  • Lesson 1 • Production Troubleshooting and Surveillance

    Identifies causes of production decline including scale, wax, asphaltene, and sand production. Establishes a systematic surveillance workflow to maintain well performance.

  • Lesson 2 • Inflow Performance Relationships

    Derives Vogel, Fetkovich, and Jones IPR models for oil and gas wells. Provides the inflow side of the nodal analysis framework used throughout this chapter.

  • Lesson 3 • Gas Lift Design and Optimisation

    Designs continuous and intermittent gas lift systems including valve spacing and injection rate. Applies nodal analysis to optimise gas lift performance.

  • Lesson 4 • Nodal Analysis and System Optimisation

    Combines IPR with tubing performance curves to identify the operating point and optimise production. Enables systematic diagnosis of flow restrictions in the well system.

  • Lesson 5 • Artificial Lift Methods Overview

    Compares rod pump, ESP, gas lift, PCP, and jet pump systems by application range and economics. Guides selection of the appropriate lift method for given reservoir conditions.

Chapter 8See details

Enhanced Oil Recovery and Field Development

  • Lesson 1 • Tertiary EOR Methods

    Evaluates miscible gas, chemical (polymer, surfactant), and thermal EOR methods by mechanism and screening criteria. Provides a comparative framework for EOR selection.

  • Lesson 2 • Integrated Field Development Planning

    Combines subsurface, drilling, facilities, and economic inputs into a coherent field development plan. Culminates the core curriculum by integrating all prior engineering disciplines.

  • Lesson 3 • Secondary Recovery and Waterflooding

    Applies Buckley-Leverett theory and pattern selection to waterflood design and performance prediction. Builds directly on relative permeability and reservoir drive concepts.

  • Lesson 4 • Reservoir Simulation Fundamentals

    Introduces finite-difference simulation, grid design, and history matching for reservoir management. Enables students to use simulation as a field development planning tool.

  • Lesson 5 • EOR Screening and Feasibility

    Applies technical and economic screening criteria to rank EOR candidates for a given reservoir. Connects laboratory results to field-scale pilot design.

Certification

Your valid completion certificate

This course is for you:

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

  • Mechanical engineer: pivoting into oil and gas from another industrial sector.

  • Field technician: ready to move into a technical or analytical engineering role.

  • Energy economics student: needs a solid subsurface foundation to complement financial training.

  • Career changer: drawn to upstream energy and starting from a strong technical base.

  • Junior petroleum engineer: looking to fill gaps across disciplines beyond their specialty.

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