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February 9, 2026AIP Advances0 citationsOpen Access

Operational optimization of hydrogen-blended natural gas pipeline networks based on the differential evolution algorithm

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YYYi Yang

Key Points

  • The aim is to optimize the operational efficiency of hydrogen-blended natural gas pipelines.
  • Utilized differential evolution algorithm for operational optimization
  • Conducted single-objective optimization to minimize compressor energy consumption
  • Performed multi-objective optimization to balance energy consumption and throughput
  • Analyzed operational schemes across various hydrogen blending ratios
  • Single-objective optimization reduced compressor energy consumption by about 40%
  • Found optimal transportation task coefficients between 0.55 and 0.6 for effective operation
  • Identified an inflection point at a 0.55 transportation task coefficient indicating optimal compressor power and throughput

Abstract

Blending hydrogen into natural gas pipelines is an effective and economical method for long-distance, large-scale hydrogen transportation. Current research on hydrogen-blended natural gas pipelines primarily focuses on hydraulic and thermal characteristics, while operational efficiency optimization has received less attention. Consequently, this study conducted the operational optimization of hydrogen-blended natural gas pipeline networks using the differential evolution algorithm. The optimization involved single-objective optimization aimed at minimizing compressor energy consumption, as well as multi-objective optimization that addresses both compressor energy consumption and throughput. For the single-objective optimization, the optimal operating scheme for the compressor can reduce energy consumption by around 40% across various hydrogen blending ratios. In the case of multi-objective optimization, maintaining the transportation task coefficients within the range of 0.55–0.6 ensures that the compressor operates within a safe and efficient region. Notably, when the transportation task coefficient is around 0.55, an inflection point emerges in the distribution of Pareto-optimal solutions. This point signifies an optimized design where both compressor power and throughput reach favorable conditions, marking a crucial operational sweet spot for efficient performance. This study provides valuable insights for optimizing hydrogen-blended natural gas pipelines.

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Cite This Study

Yi Yang (2026) studied this question.

synapsesocial.com/papers/698979a6f0ec2af6756e772chttps://doi.org/10.1063/5.0290498
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