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April 18, 2026Buildings0 citationsOpen Access

Optimization and Performance Analysis of a Solar-Assisted Sewage-Source Heat Pump System for Buildings: Toward Efficient Wastewater Heat Recovery

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YMYiou MaYWYue WangYWYue Wang

Key Points

  • The research aims to enhance energy efficiency through wastewater heat recovery in buildings.
  • Developed a solar-assisted sewage-source heating system for a university dormitory
  • Established a multiobjective optimization framework using economic, environmental, and energy indicators
  • Employed Hooke–Jeeves algorithm, Particle Swarm Optimization, and HJ–PSO hybrid algorithm for optimization
  • Conducted performance analysis to compare different optimization methods
  • Achieved 24% reduction in operating costs
  • Shortened dynamic payback period by 4.8 years
  • Reduced carbon dioxide emissions by 26.35%
  • Lowered overall energy consumption by 38.65%
  • Improved system coefficient of performance by 11.18%

Abstract

Wastewater heat recovery has emerged as a vital strategy for building energy conservation, due to its significant potential and the inherent thermal stability of sewage as a heat source. Enhancing synergy between such waste heat and other clean energy sources is a key research focus. This study developed a solar-assisted sewage-source coupled heating system for a Chinese university dormitory and established a multiobjective optimization framework integrating economic, environmental, and energy efficiency indicators via a combined weighting approach of the Analytic Hierarchy Process and Entropy Weight Method. Optimization was conducted using the Hooke–Jeeves algorithm, Particle Swarm Optimization algorithm, and the Hooke–Jeeves–Particle Swarm Optimization hybrid algorithm (shorten as HJ–PSO), with subsequent comparative performance analysis. The HJ–PSO hybrid performed best: 24% lower operating costs, a 4.8-year shorter dynamic payback period, 26.35% fewer carbon dioxide emissions, 38.65% lower overall energy consumption, and an 11.18% higher system coefficient of performance. Supported by relevant policies, the system is low-carbon and economically viable, enabling grid peak shaving. This research provides theoretical and engineering references for renewable energy heating systems.

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Cite This Study

Ma et al. (2026) studied this question.

synapsesocial.com/papers/69e3213840886becb654058ahttps://doi.org/10.3390/buildings16081569
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