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TR

ENHANCED GAS PRODUCTION

Course
PNGE393 - ENHANCED GAS PRODUCTION
Department
Petroleum and Natural Gas Engineering - English - Undergraduate
Course Type
Course
Status
Required
Language
English
Credit
3
ECTS
5
T+P+L
3 + 0 + 0
Course Coordinator(s)
-
Prerequisite
-
Keywords

Course Description

This course focuses on various methods for the gas production enhancement. It conveys a background understanding of how subsurface developments are decided and designed and how these links with the selection of the surface facilities and appropriate approaches are implemented. The course starts with a quick review of rock and fluid properties required for design and implementation of gas production and improvement. Selection criteria for enhanced gas recovery methods are discussed in detail. In the last part of the course, case studies of application and design aspects of improved (enhanced) gas production methods in various types of hydrocarbon reservoirs will be examined. The students are also supplied with real life work examples in relation to production systems and methods to improve gas production.

ENHANCED GAS PRODUCTION

Evaluation Tools (Active Term)

No evaluation items have been defined.

Course outcomes

No course outcomes have been defined yet.

Course Syllabus

Week Topic
Week 1 Basics of Enhancing Gas Production
Week 2 Basics of Enhancing Gas Production
Week 3 Hydrocarbons generation, migration and accumulation
Week 4 Reservoir Rock and Fluid properties
Week 5 Natural gas composition
Week 6 Hydrocarbon well and its types
Week 7 Conventional vs. Unconventional Hydrocarbons, Natural Gas Resource Triangle
Week 8 Midterm Exams
Week 9 Midterm Exams
Week 10 Importance of F.E, Parameters, Well logs
Week 11 Types of Unconventional Hydrocarbons and its Extraction methods
Week 12 Hydraulic Fracturing
Week 13 Formation Evaluation
Week 14 Production System
Week 15 Enhanced Hydrocarbons Recovery Methods and Revision

Reference Books & Course Materials

  1. 01 Well Logging and Formation Evaluation, Toby Daring, science direct
  2. 02 A Primer of Oilwell Drilling: A Basic Text of Oil and Gas Drilling Pap/Chrt Edition
  3. 03 Handbook of Industrial Hydrocarbon Processes (2011), J.speight

Learning Outcomes

No learning outcomes have been defined.

Program Outcomes

  1. Knowledge of mathematics, natural sciences, basic engineering, computer-based computation, and topics specific to the relevant engineering discipline.
  2. Ability to apply knowledge of mathematics, natural sciences, basic engineering, computer-based computation, and topics specific to the relevant engineering discipline to the solution of complex engineering problems.
  3. Ability to define complex engineering problems by using knowledge of basic sciences, mathematics, and engineering, while considering the relevant United Nations Sustainable Development Goals (SDGs) related to the problem addressed.
  4. Ability to formulate complex engineering problems using knowledge of basic sciences, mathematics, and engineering, while considering the relevant United Nations Sustainable Development Goals (SDGs) associated with the problem addressed.
  5. Ability to analyse and solve complex engineering problems using knowledge of basic sciences, mathematics, and engineering, while considering the relevant United Nations Sustainable Development Goals (SDGs) associated with the problem addressed.
  6. Ability to design creative solutions to complex engineering problems.
  7. Ability to design complex systems, processes, devices, or products in a way that meets present and future needs while considering realistic constraints and conditions.
  8. Ability to select and use appropriate techniques and resources—including estimation and modelling—for the analysis and solution of complex engineering problems, while being aware of their limitations.
  9. Ability to select and use modern engineering and computational tools—including estimation and modelling—for the analysis and solution of complex engineering problems, while being aware of their limitations.
  10. Ability to conduct literature research and use appropriate research methods for the investigation of complex engineering problems.
  11. Ability to design experiments for the investigation of complex engineering problems.
  12. Ability to conduct experiments, collect data, analyse results, and interpret findings for the investigation of complex engineering problems.
  13. Knowledge of the impacts of engineering practices on society, health and safety, the economy, sustainability, and the environment within the framework of the United Nations Sustainable
  14. Awareness of the legal implications of engineering solutions within the framework of the United Nations Sustainable Development Goals (SDGs).
  15. Knowledge of ethical responsibility and adherence to the principles of professional engineering conduct.
  16. Awareness of acting impartially without discrimination in any matter and of being inclusive of diversity.
  17. Ability to work effectively as an individual.
  18. Ability to work effectively as a team member or leader in intra-disciplinary teams (face-to-face, remote, or hybrid).
  19. Ability to work effectively as a team member or leader in multidisciplinary teams (face-to-face, remote, or hybrid).
  20. Ability to communicate effectively in spoken form on technical matters, taking into account the diverse characteristics of the target audience (such as education, language, and profession).
  21. Ability to communicate effectively in written form on technical matters, taking into account the diverse characteristics of the target audience (such as education, language, and profession).
  22. Knowledge of professional practices such as project management and economic feasibility analysis.
  23. Awareness of entrepreneurship and innovation.
  24. Ability for independent and lifelong learning.
  25. Ability to adapt to new and emerging technologies.
  26. Lifelong learning ability that includes the capacity to think critically about technological changes.

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