Analysis of Thermal Heat Transfer in Gas Turbine Systems Using Supercritical CO₂

ATTENTION:

BEFORE YOU READ THE ABSTRACT OR CHAPTER ONE OF THE PROJECT TOPICS BELOW, PLEASE READ THE INFORMATION BELOW.THANK YOU! 

INFORMATION:

YOU CAN GET THE COMPLETE PROJECT OF THE TOPIC BELOW. THE FULL PROJECT COST N5,000 ONLY. THE FULL INFORMATION ON HOW TO PAY AND GET THE COMPLETE PROJECT IS AT THE BOTTOM OF THIS PAGE. OR

YOU CAN CALL: 08068231953, 08137701720,

WHATSAPP/TELEGRAM US ON: 08137701720

Analysis of Thermal Heat Transfer in Gas Turbine Systems Using Supercritical CO₂

Abstract

The continuous demand for efficient and sustainable power generation has led to increasing interest in the use of supercritical carbon dioxide (sCO₂) as a working fluid in advanced gas turbine systems. Unlike conventional air-breathing turbines, sCO₂ turbines offer significant thermodynamic advantages, including reduced compression work, compact turbomachinery design, and improved cycle efficiency. However, one of the critical challenges limiting their performance is heat transfer management under supercritical conditions, where drastic variations in thermophysical properties occur near the critical point of CO₂. This study investigates heat transfer mechanisms in gas turbines operating under sCO₂ conditions, with a particular focus on turbine blade cooling, combustor liner heat flux, and recuperative heat exchangers. A combination of computational fluid dynamics (CFD) modeling and thermodynamic cycle analysis is employed to evaluate heat transfer coefficients, pressure drops, and thermal stresses across different turbine components. Results indicate that sCO₂ enhances heat transfer rates due to its high density and specific heat capacity, but also introduces localized heat transfer deterioration in regions close to the pseudo-critical temperature. Mitigation strategies, including advanced cooling techniques, optimized blade channel geometry, and novel heat exchanger configurations, are proposed to address these challenges. The findings contribute to the design of next-generation sCO₂ gas turbines with higher efficiency, improved thermal management, and potential applications in power plants, concentrated solar power systems, and nuclear energy conversion.

Keywords: Heat transfer, Gas turbines, Supercritical CO₂, Thermal management, Energy systems, CFD

Table of Contents

Chapter One: Introduction

1.1 Background to the Study

1.2 Statement of the Problem

1.3 Aim and Objectives of the Study

1.4 Research Questions / Hypotheses

1.5 Significance of the Study

1.6 Scope and Limitations of the Study

1.7 Organization of the Study

Chapter Two: Literature Review

2.1 Concept of Gas Turbines and Their Applications

2.2 Overview of Heat Transfer in Gas Turbines

2.3 Properties of Supercritical Carbon IV Oxide (sCO₂)

2.4 Mechanisms of Heat Transfer in Supercritical Fluids

2.5 Previous Research on sCO₂ in Turbomachinery

2.6 Comparative Studies of sCO₂ vs Conventional Working Fluids

2.7 Research Gaps Identified in Literature

Chapter Three: Research Methodology

3.1 Research Design

3.2 Description of the Gas Turbine System Considered

3.3 Thermophysical Properties of Supercritical CO₂

3.4 Governing Heat Transfer Equations and Models

3.5 Experimental Set-up / Computational Fluid Dynamics (CFD) Model (if applicable)

3.6 Data Collection and Sources

3.7 Data Analysis Techniques

3.8 Validity, Reliability, and Limitations

Chapter Four: Results and Discussion

4.1 Presentation of Results (Tables, Graphs, Figures)

4.2 Analysis of Heat Transfer Performance under sCO₂ Conditions

4.3 Effect of Pressure and Temperature on Heat Transfer Coefficients

4.4 Comparative Analysis with Conventional Fluids (Air, Helium, Steam)

4.5 Implications for Turbine Efficiency and Cooling Requirements

4.6 Discussion in Relation to Literature

Chapter Five: Summary, Conclusion, and Recommendations

5.1 Summary of Findings

5.2 Conclusion

5.3 Contributions to Knowledge

5.4 Recommendations for Gas Turbine Design and Operation

5.5 Suggestions for Future Research

References

HOW TO RECEIVE PROJECT MATERIAL (S)

After paying the appropriate amount (#5,000) into our bank Account below, send the following information to any of the numbers below

08068231953, 08137701720,

(1)    Your project topics

(2)     Email Address

(3)     Payment Name

OR you drop them on our WhatsApp/Telegram, 08137701720

We will send your material(s) after we receive bank alert

BANK ACCOUNTS

Account Name: AMUTAH DANIEL CHUKWUDI

Account Number: 0046579864

Bank: GTBank.

OR

Account Name: AMUTAH DANIEL CHUKWUDI

Account Number: 3139283609

Bank: FIRST BANK

OR

Account Name: AMUTAH DANIEL CHUKWUDI

Account Number: 2023350498

Bank: UBA.

FOR MORE INFORMATION, CALL:

08068231953, 08137701720, 08154275408 

 AFFILIATE LINKS:

easyprojectmaterials.com

http://graduateprojects.com.ng

http://freshprojects.com.ng

http://info247.com.ng

projectstores.com.ng

projectgraduates.com.ng

projectgraduate.com.ng

igraduateproject.com.ng

igraduateprojects.com.ng

By admin

Leave a Reply

Your email address will not be published. Required fields are marked *