A MODULAR PYTHON-BASED FRAMEWORK FOR AUTOMATED HYDRAULIC FLOW BALANCING IN LOOPED PIPE NETWORKS USING THE HARDY CROSS METHOD

Authors

  • G. O. Moses Department of Civil Engineering, University of Benin, Benin City, Edo Sate Author
  • J. C. Aboloje Delta State Ministry Works, Asaba, Delta State Author
  • O. D. Otobor Department of Civil Engineering, Benson Idahosa University, Edo State Author
  • F. E. Iseguan Department of Civil Engineering, Ambrose Alli University, Ekpoma, Edo Sate . Author
  • O. R. Audu Department of Civil Engineering, Ambrose Alli University, Ekpoma, Edo Sate . Author

DOI:

https://doi.org/10.60787/tnamp.v24.686

Keywords:

Hydraulic pipe networks, Hardy Cross method, Darcy–Weisbach equation, Hazen–Williams equation

Abstract

The hydraulic analysis of looped pipe networks is a core yet computationally intensive task in civil and water resources engineering. Although the Hardy Cross method is valued for its simplicity, manual application becomes inefficient and error-prone for complex multi-loop systems. This study presents a modular Python-based framework for automated hydraulic flow balancing using an enhanced Hardy Cross algorithm. The model incorporates both Darcy–Weisbach and Hazen–Williams equations, with friction factors computed dynamically via the Swamee–Jain equation, removing the need for predefined resistance coefficients. It systematically handles multi-loop interactions and shared pipe corrections through an iterative convergence scheme with user-defined tolerance. Validation was performed using four benchmark pipe network cases and comparison with established solutions. Results show strong agreement, with coefficients of determination (R²) above 0.999 and minimal errors. The framework demonstrates improved efficiency, scalability, and flexibility, making it valuable for engineering applications and academic use.

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References

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Published

2026-03-01

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Articles

How to Cite

A MODULAR PYTHON-BASED FRAMEWORK FOR AUTOMATED HYDRAULIC FLOW BALANCING IN LOOPED PIPE NETWORKS USING THE HARDY CROSS METHOD. (2026). The Transactions of the Nigerian Association of Mathematical Physics, 24, 179-188. https://doi.org/10.60787/tnamp.v24.686

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