Computational analysis of fluid-structure interaction in a prosthetic heart valve – Complete Phd and Masters Thesis

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Introduction

The field of computational analysis has revolutionized the way researchers study complex systems, including fluid-structure interaction in prosthetic heart valves. Prosthetic heart valves are medical devices used to replace damaged or diseased heart valves, allowing patients to regain normal heart function. Understanding the interaction between the blood flow and the valve structure is crucial in optimizing the design and performance of these devices.

This thesis aims to investigate the fluid-structure interaction in prosthetic heart valves using computational analysis techniques. By simulating the flow of blood through the valve and its interaction with the surrounding tissues, we can gain valuable insights into the performance and durability of these devices.

Chapter 1: Introduction
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 2: Literature Review
2.1 Overview of prosthetic heart valves
2.2 Fluid dynamics in the cardiovascular system
2.3 Fluid-structure interaction in biomedical applications
2.4 Computational methods in fluid-structure interaction analysis
2.5 Previous studies on prosthetic heart valves
2.6 Challenges in modeling fluid-structure interaction in prosthetic heart valves
2.7 Advances in computational fluid dynamics
2.8 Advances in computational solid mechanics
2.9 State-of-the-art in prosthetic heart valve design
2.10 Gaps in current research

Chapter 3: Research Methodology
3.1 Simulation setup
3.2 Choice of computational software
3.3 Selection of numerical methods
3.4 Fluid domain discretization
3.5 Solid domain discretization
3.6 Boundary conditions
3.7 Material properties
3.8 Validation of computational model
3.9 Sensitivity analysis
3.10 Statistical analysis

Chapter 4: Discussion of Findings
4.1 Analysis of fluid flow patterns
4.2 Evaluation of stress distribution in the valve
4.3 Comparison of different valve designs
4.4 Effects of blood properties on valve performance
4.5 Impact of valve geometry on fluid-structure interaction
4.6 Validation of computational model with experimental data
4.7 Sensitivity analysis results
4.8 Clinical implications of study findings

Chapter 5: Conclusion and Summary
5.1 Summary of key findings
5.2 Implications for prosthetic heart valve design
5.3 Recommendations for future research
5.4 Conclusion

Thesis Overview

The field of computational analysis has significantly advanced the study of complex systems, particularly in the field of biomechanics and biomedical engineering. This thesis focuses on the computational analysis of fluid-structure interaction in prosthetic heart valves, aiming to improve our understanding of the complex dynamics involved in the functioning of these medical devices.

In Chapter 1, the introduction provides a comprehensive overview of the research topic, including the background, problem statement, objectives, limitations, scope, significance, and structure of the thesis. Additionally, key terminologies relevant to the study are defined to enhance understanding.

Chapter 2 presents a thorough literature review, covering various aspects of prosthetic heart valves, fluid dynamics in the cardiovascular system, computational methods in fluid-structure interaction analysis, and previous studies on prosthetic heart valves. The chapter also highlights gaps in current research that this thesis aims to address.

Chapter 3 outlines the research methodology, detailing the simulation setup, choice of computational software, numerical methods, domain discretization, boundary conditions, material properties, validation procedures, sensitivity analysis, and statistical methods employed in the study.

In Chapter 4, the discussion of findings delves into the analysis of fluid flow patterns, evaluation of stress distribution in the valve, comparison of different valve designs, effects of blood properties on valve performance, impact of valve geometry on fluid-structure interaction, validation of computational model with experimental data, and clinical implications of study findings.

Finally, Chapter 5 presents the conclusion and summary of the thesis, summarizing key findings, outlining implications for prosthetic heart valve design, making recommendations for future research, and providing a concise conclusion.
The thesis brings together innovative computational analysis techniques with insights into fluid-structure interaction in prosthetic heart valves, contributing to advancements in prosthetic heart valve design and ultimately improving patient outcomes.

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