One-dimensional modeling of blood flow: A comprehensive yet concise review
Daehyun Kim, Jeffrey Tithof

TL;DR
This paper provides a comprehensive review and practical guide for one-dimensional blood flow modeling, combining theoretical derivations with detailed implementation instructions to enhance accessibility for researchers.
Contribution
It offers a unified, step-by-step guide integrating theory and practical implementation for 1D blood flow simulations, filling a gap in existing literature.
Findings
Summarizes key components and methodologies for 1D blood flow modeling.
Provides detailed instructions for numerical scheme implementation.
Validates the presented methods through verification and applications.
Abstract
One-dimensional (1D) blood flow simulations are extensively used in cardiovascular research due to their computational efficiency and effectiveness in analyzing pulse wave dynamics. Despite their versatility and simplicity, there is a lack of a unified, step-by-step guide integrating theoretical derivations with practical implementation details. In this work, we summarize key components for comprehensive 1D blood flow simulations, including the derivation of reduced-order governing equations, the method of characteristics (Riemann invariants), a finite volume-based numerical scheme, boundary conditions (application of Riemann invariants for reflective/non-reflective and 3-element Windkessel outlet boundaries), junction treatments, verification of presented methodologies, and relevant practical applications. Additionally, we provide detailed step-by-step instructions for implementing the…
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