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Course code: 000669
School of Engineering
GEOP028 - PVT Properties of Reservoir Fluids
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Currently, this course is conducted only in an intracorporate format.
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What this course about?

The Training Programme on PVT Properties of Reservoir Fluids is a comprehensive and meticulously designed course tailored for professionals in the oil and gas industry. This program delves deep into the critical aspects of pressure-volume-temperature (PVT) properties and their profound impact on reservoir evaluation, production optimization, and overall reservoir management.

Participants will embark on a structured journey, beginning with the fundamentals of reservoir fluid composition and phase behavior. The course progresses through advanced topics such as equations of state (EOS), laboratory PVT analysis, and empirical correlations for fluid property predictions. Special emphasis is placed on practical applications, enabling attendees to integrate laboratory results, fluid sampling techniques, and computational models into real-world reservoir management scenarios.

In addition to technical rigor, this training addresses key challenges associated with special fluid behaviors, including retrograde gases, volatile oils, and gas hydrates. Participants will gain insights into the development and tuning of EOS models, hydrocarbon characterization procedures, and strategies to ensure flow assurance. The program concludes with an exploration of the applications of PVT data in simulation, reserves prediction, and facility design.

This training is ideal for reservoir engineers, petroleum engineers, field operators, and anyone involved in fluid characterization and reservoir performance. With a blend of theoretical knowledge, case studies, and hands-on examples, participants will leave equipped to handle complex reservoir fluid challenges, optimize operations, and enhance decision-making in their professional roles.

By fostering a deeper understanding of PVT properties and their applications, this program empowers professionals to contribute to the efficiency, safety, and profitability of oil and gas operations worldwide.

Who is this course for?
This course is designed for professionals involved in the oil and gas industry who are responsible for reservoir evaluation, fluid characterization, and production optimization. Ideal participants include:
• Reservoir Engineers engaged in reservoir modeling, simulation, and management.
• Petroleum Engineers focusing on production, injection, and enhanced oil recovery (EOR) techniques.
• PVT Engineers/Analysts specializing in pressure-volume-temperature analysis and fluid behavior.
• Production Engineers managing production operations and optimizing surface facilities.
• Geoscientists involved in fluid characterization and compositional analysis.
• Laboratory Technicians conducting PVT experiments and fluid sampling.
• Field Engineers overseeing well operations and fluid handling.
• Engineering Managers leading teams involved in reservoir and production engineering.
• Students and Academics pursuing advanced studies or research in petroleum engineering and related fields.
What will you learn?
  • Identify and categorize the various components of naturally occurring petroleum fluids, including hydrocarbons and non-hydrocarbon compounds
  • Describe the phase behavior of single and multi-component reservoir fluids, including pure substances, binary mixtures, and complex multi-component systems
  • Utilize both ideal and real gas equations of state to evaluate gas-liquid equilibria, phase boundaries, and perform flash equilibrium calculations
  • Determine and interpret PVT properties of natural gas and black oil, including formation volume factors, solution gas-oil ratios, and viscosity
  • Implement effective well sampling techniques and analyze PVT laboratory data to predict reservoir performance and reserves
  • Apply empirical correlations for black oils, retrograde gases, and volatile oils to estimate PVT properties and perform equilibrium ratio calculations
  • Execute hydrocarbon characterization procedures such as gas chromatography (GC), true boiling point (TBP) analysis, and splitting/lumping techniques for accurate reservoir fluid modeling
  • Develop reservoir fluid characterization models using EOS, perform EOS tuning to match laboratory data, and apply these models in reservoir simulations
  • Address challenges associated with retrograde gases, volatile oils, gas hydrates, and oilfield waters, implementing strategies for flow assurance and production optimization
  • Incorporate PVT analysis results into reservoir simulation models, material balance calculations, and surface facility design to enhance reservoir management and decision-making
Course outline
  • Overview of Reservoir Fluids
  • Components of Naturally Occurring Petroleum Fluids
  • Identifying Components
  • The Five Types of Reservoir Fluids
  • Compositional Gradients in Reservoirs
  • Phase Behavior of Pure Substances
  • Phase Behavior of Binary and Multicomponent Mixtures
  • Miscibility Concepts
  • Ideal Gas Law
  • Real Gases and Deviations from Ideal Behavior
  • Cubic Equations of State (EOS)
  • Evaluation of Phase Boundaries
  • Flash Equilibrium Calculations with EOS
  • PVT Properties of Natural Gas
  • PVT Properties of Black Oil
  • Recombination Calculations
  • Well Sampling Techniques
  • Laboratory PVT Studies
  • Swelling Tests and Minimum Miscibility Pressure (MMP)
  • Application of Laboratory PVT Studies to Predict Reserves
  • Retrograde Gases
  • Volatile Oils
  • Application to Reservoir Management
  • Properties of Black Oils – Correlations
  • Retrograde Gases and Volatile Oils – Correlations
  • Gas-Liquid Equilibrium
  • Surface Separation
  • Equilibrium Ratio Correlations (K-values)
  • Gas Chromatography (GC) and True Boiling Point (TBP) Analysis
  • Physical Properties of SCN and MCN Groups
  • Splitting and Lumping Techniques
  • Physical Properties Assignment
  • EOS Tuning and Matching
  • Application of EOS in Reservoir Simulation
  • Hydrocarbon Characterization for EOS Models
  • Properties of Oilfield Waters
  • Gas Hydrates
  • Impact on PVT Behavior
Eni
Total
Eni
Endesa
Shell
Chevron
Gas Natural
Iberdrola
Eni
Inpex
Eni
Exonmobile

Training can take place in 4 formats:

  • Self-paced
  • Blended learning
  • Instructor-led online (webinar)
  • Instructor-led offline (classroom)

Description of training formats:

  • Self-paced learning or e-Learning means you can learn in your own time and control the amount of material to consume. There is no need to complete the assignments and take the courses at the same time as other learners.
  • Blended learning or "hybrid learning" means you can combine Self-paced learning or e-Learning with traditional instructor-led classroom or webinar activities. This approach requires physical presence of both teacher and student in physical or virtual (webinars) classrooms or workshops. Webinar is a seminar or presentation that takes place on the internet, allowing participants in different locations to see and hear the presenter, ask questions, and sometimes answer polls.
  • Instructor-led training, or ILT, means that the learning can be delivered in a lecture or classroom format, as an interactive workshop, as a demonstration under the supervision and control of qualified trainer or instructor with the opportunity for learners to practice, or even virtually, using video-conferencing tools.

When forming groups of students, special attention is paid to important criteria - the same level of knowledge and interests among all students of the course, in order to maintain stable group dynamics during training.

Group dynamics is the development of a group in time, which is caused by the interaction of participants with each other and external influence on the group. In other words, these are the stages that the training group goes through in the process of communicating with the coach and among themselves.

The optimal group size for different types of training:

  • Self-paced / E-learning: 1
  • Instructor-led off-line (classroom): 6 – 12
  • Instructor-led on-line (webinar): 6 – 12
  • Blended learning: 6 – 12
  • Workshop: 6 – 12
  • On-the-job: 2 – 4
  • Simulator: 1 – 2

Feedback in the form of assessments and recommendations is given to students during the course of training with the participation of an instructor and is saved in the course card and student profile.

In order to control the quality of the services provided, students can evaluate the quality and training programme. Forms of assessment of the quality of training differ for courses with the participation of an instructor and those that are held in a self-paced format.

For courses with an instructor, start and end dates are indicated. At the same time, it is important to pay attention to the deadlines for passing tests, exams and practical tasks. If the specified deadlines are missed, the student may not be allowed to complete the entire course programme.

A personal account is a space for storing your training preferences, test and exam results, grades on completed training, as well as your individual plan for professional and personal development.

Users of the personal account have access to articles and blogs in specialized areas, as well as the ability to rate the completed training and leave comments under the articles and blogs of our instructors and technical authors

Registered users of a personal account can have various roles, including the role of a student, instructor or content developer. However, for all roles, except for the student role, you will need to go through an additional verification procedure to confirm your qualifications.

Based on the results of training, students are issued a certificate of training. All training certificates fall into three main categories:

  • Certificate of Attendance - students who successfully completed the course but did not pass the tests and exams can apply for a certificate of attendance.
  • Certificate of Completion - students who have successfully completed a course could apply for a Certificate of Completion, this type of certificate is often required for compliance training.
  • Verified Certificate - it is a verified certificate that is issued when students have passed exams under the supervision of a dedicated proctor.

You can always download a copy of your training certificate in PDF format in your personal account.

You will still have access to the course after completing it, provided that your account is active and not compromised and Tecedu is still licensed for the course. So if you want to review specific content in the course after completing it, or do it all over again, you can easily do so. In rare cases, instructors may remove their courses from the Tecedu marketplace, or we may need to remove a course from the platform for legal reasons.

During the training, you may encounter various forms of testing and knowledge testing. The most common assessment methods are:

  • preliminary (base-line assessment) - to determine the current level of knowledge and adapt the personal curriculum
  • intermediate - to check the progress of learning
  • final - to complete training and final assessment of knowledge and skills, can be in the form of a project, testing or practical exam

Travel to the place of full-time training is not included in the cost of training. Accommodation during full-time studies can be included in the full board tuition fees.

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You can preview samples of the training materials and review key information about the course on our website. You can also review feedback and recommendations from students who already completed this course.

We want you to be happy, so almost all purchased courses can be returned within 30 days. If you are not satisfied with the course, you can request a refund, provided the request complies with our return policy.

The 30-day money back policy allows students to receive quality teaching services with minimal risk, we must also protect our teachers from fraud and provide them with a reasonable payment schedule. Payments are sent to instructors after 30 days, so we will not process refund requests received after the refund period.

We reserve the right, in our sole discretion, to limit or deny refund requests in cases where we believe there is refund abuse, including but not limited to the following:

  • A significant portion of the course has been consumed or downloaded by a student before the refund was requested.
  • Multiple refunds have been requested by a student for the same course.
  • Excessive refunds have been requested by a student.
  • Users whose account is blocked or access to courses is disabled due to violation of our Terms and Conditions or the Rules of Trust and Security.
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We accept most international credit and debit cards like Visa, MasterCard, American Express, JCB and Discover. Bank Transfers also may be an option.

Smart Virtual Classroom (open digital / virtual classroom).

Conducting classes is based on the fact that the teacher demonstrates text, drawings, graphics, presentations on an interactive board, while the content appears in the student's electronic notebook. A specially designed digital notepad and pen are used to create and edit text and images that can be redirected to any surface via a projector.

Classes are live streamed online, automatically recorded and published on the Learning Portal, allowing you to save them for reuse anytime, anywhere, on any mobile device. This makes it possible not to miss classes and keep up with classes and keep up with the passage of new material.

Game Based Learning (learning using a virtual game environment)

Real-life training uses the principles of game organization, which allows future professionals to rehearse and hone their skills in a virtual emergency. Learning as a game provides an opportunity to establish a connection between the learning activity and real life.

The technology provides the following learning opportunities:

  • Focused on the needs of the user
  • Instant feedback
  • Independent decision making and choice of actions
  • Better assimilation and memorization of the material
  • Adaptive pace of learning tailored to the individual needs of the student
  • Better transfer of skills learned in a learning situation to real conditions

Basic principles of training:

  • A gradual increase in the level of difficulty in the game;
  • Using a simplified version of a problem situation;
  • Action in a variable gaming environment;
  • The right choice is made through experimentation.

The main advantages of Game Based Learning technology:

  • Low degree of physical risk and liability
  • Motivation to learn while receiving positive emotions from the process;
  • Practice - mirroring the real situation
  • Timely feedback
  • Choice of different playing roles
  • Learning in collaboration
  • Developing your own behavior strategy
Laboratory workshops using remote access technologies

Conducting practical classes online using remote access technologies for presentations, multimedia solutions and virtual reality:

  • Laboratory workshops that simulate the operation of expensive bench equipment in real production
  • Virtual experiment, which is visually indistinguishable from a remote real experiment performed
  • Virtual instruments, which are an exact copy of real instruments
  • Mathematical modeling to clarify the physical characteristics, chemical content of the investigated object or phenomenon.
GEOP028 - PVT Properties of Reservoir Fluids
Language: English, Russian
Level: Foundation
mail@tecedu.org
+7 747 898 5041
+7 7182 901 933