Computational modeling of heat transfer in a phase change material for thermal energy storage – Complete Phd and Masters Thesis

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Introduction

Thermal energy storage systems are becoming increasingly important in the field of renewable energy due to their ability to store excess energy and release it when needed. Phase change materials (PCMs) are of particular interest as they can store and release large amounts of energy during phase transitions. Computational modeling plays a crucial role in understanding the heat transfer mechanisms in PCM-based thermal energy storage systems. This thesis aims to develop an advanced computational model to analyze the heat transfer processes in a PCM for thermal energy storage applications.

1.1 Introduction
1.2 Background of study
1.3 Problem Statement
1.4 Objective of study
1.5 Limitation of study
1.6 Scope of study
1.7 Significance of study
1.8 Structure of the Thesis
1.9 Definition of Terms

Chapter Two: Literature Review
2.1 Overview of Thermal Energy Storage Systems
2.2 Phase Change Materials for Thermal Energy Storage
2.3 Heat Transfer Mechanisms in PCM-based Systems
2.4 Computational Modeling Techniques
2.5 Previous Studies on Heat Transfer in PCMs
2.6 Challenges in Modeling PCM-based Systems
2.7 Advances in Numerical Methods for Heat Transfer Analysis
2.8 Experimental Studies on PCM-based Systems
2.9 Comparison of Different PCM Materials
2.10 Future Research Directions

Chapter Three: System Design and Methodology
3.1 Selection of PCM Material
3.2 Mathematical Modeling of Heat Transfer
3.3 Numerical Methods for Solving Heat Transfer Equations
3.4 Validation of the Computational Model
3.5 Boundary Conditions for Thermal Energy Storage System
3.6 Sensitivity Analysis of Model Parameters
3.7 Optimization Techniques for PCM-based Systems
3.8 Simulation of Transient Heat Transfer Processes

Chapter Four: System Implementation
4.1 Design of Experimental Setup
4.2 Fabrication of PCM-based Thermal Energy Storage Device
4.3 Data Acquisition and Analysis
4.4 Calibration of Temperature Sensors
4.5 Testing and Validation of Computational Model
4.6 Comparison of Simulation Results with Experimental Data
4.7 Performance Evaluation of PCM-based System
4.8 Optimization of System Parameters

Chapter Five: Conclusion and Summary
5.1 Summary of Findings
5.2 Contributions of the Study
5.3 Implications for Future Research
5.4 Recommendations for Practical Applications
5.5 Concluding Remarks

Thesis Overview: Computational modeling of heat transfer in a phase change material for thermal energy storage

Thermal energy storage systems are essential for the efficient utilization of renewable energy sources. Phase change materials (PCMs) are widely used for storing and releasing thermal energy due to their high energy storage density. The heat transfer mechanisms in PCM-based systems are complex and require advanced computational models for analysis. This thesis focuses on developing a computational model to study the heat transfer processes in a PCM for thermal energy storage applications.

The introduction provides a background on thermal energy storage systems and the importance of PCM materials. The problem statement highlights the challenges in modeling heat transfer in PCM-based systems, and the objectives of the study are outlined. The limitations and scope of the study are also discussed, along with the significance of the research. The structure of the thesis and definition of key terms are provided to give a clear overview of the content.

The literature review explores the current state of research on thermal energy storage systems, PCM materials, heat transfer mechanisms, and computational modeling techniques. The system design and methodology chapter details the selection of PCM materials, mathematical modeling of heat transfer, numerical methods for solving equations, and validation of the computational model. The system implementation chapter describes the experimental setup, data acquisition, calibration of sensors, and validation of the computational model. Finally, the conclusion and summary chapter summarizes the findings, contributions of the study, implications for future research, and recommendations for practical applications.

Overall, this thesis aims to advance the understanding of heat transfer in PCM-based thermal energy storage systems through the development of an advanced computational model. By studying the heat transfer mechanisms in PCMs, this research contributes to the optimization of thermal energy storage systems for sustainable energy applications.

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