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Updated: May 9, 2026

Design and Optimization Strategies of a High-Performance Vented Box
Published on: June 9, 2023
Optimisation of pipes with constant diameter using the heuristic optimality criterion.
David Blacher1, Michael Harasek2
1LKR Light Metals Technologies, AIT Austrian Institute of Technology, Lamprechtshausener Straße 61, Ranshofen, 5282, Austria.
A new method optimizes pipe shapes to reduce fluid pressure drop without changing pipe diameter. Shapes optimized at low Reynolds numbers (Re=40) showed the best performance, suggesting broad applicability for energy efficiency.
Area of Science:
- Fluid dynamics
- Computational fluid dynamics
- Energy efficiency
Background:
- Minimizing internal pressure drop in pipes is crucial for energy efficiency in fluid flow applications.
- Existing heuristic optimization algorithms can reduce pressure drop but may increase pipe diameter, confounding results.
- Constant diameter pipes are favored for ease of manufacturing.
Purpose of the Study:
- To introduce a novel geometrical constraint for heuristic optimization that maintains a constant average pipe diameter.
- To assess pressure drop reduction solely through flow path modification, excluding diameter dilation effects.
- To evaluate the algorithm's applicability in 2D and 3D geometries across various Reynolds numbers.
Main Methods:
- Combined a heuristic optimization algorithm with a novel diameter-preserving constraint.
- Employed numerical simulations using the Lattice Boltzmann method.
- Tested the algorithm on 2D channel and 3D pipe geometries for Reynolds numbers from 40 to 500.
Main Results:
- The diameter-preserving constraint successfully derived improved shapes while maintaining the initial average diameter.
- Shapes optimized at Re=40 unexpectedly outperformed those at higher Reynolds numbers.
- Low-Reynolds number geometries demonstrated fundamental flow features beneficial across a wider range of flow conditions.
Conclusions:
- The developed method effectively modifies flow paths to reduce pressure drop without altering pipe diameter.
- Optimized shapes at low Reynolds numbers show potential for improving energy efficiency in higher Reynolds number and turbulent industrial flows.
- This approach enables a clearer understanding of flow path improvements independent of diameter changes.
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