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April 13, 2026Journal of Cleaner Production1 citationsOpen Access

Comparative energy, economic, and environmental assessment of a flexible heat pump using the low-GWP refrigerant R-1234yf

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DLDingxuan LiYLYiji Lu

Key Points

  • This research aims to evaluate the energy, economic, and environmental performance of a novel flexible heat pump system using low-GWP refrigerants.
  • Analyzed meteorological data from Glasgow to establish a heat load curve.
  • Compared a flexible heat pump system to a baseline two-stage heat pump system.
  • Conducted energy, economic, and environmental assessments including lifecycle cost analysis.
  • The flexible heat pump improved seasonal coefficient of performance (SCOP) by 14.06% for R134a and 11.05% for R1234yf.
  • The lifecycle cost for the flexible system was lower by approximately £1011 for R134a and £776 for R1234yf.
  • Lifecycle CO2 emissions were significantly reduced with the flexible system, particularly using R1234yf.

Abstract

The application of heat pump systems is of great significance for energy consumption and emissions reduction. This article investigates a novel flexible heat pump system and conducts a comprehensive energy, economic, and environmental assessment of it. By analysing meteorological data of Glasgow, a typical heat load curve is established, and the study is conducted based on this curve, with comparisons made to a baseline two-stage heat pump system. Energy analysis shows that the flexible heat pump system achieves its maximum SCOP improvement at 8 °C, with increases of 14.06% for R134a and 11.05% for R1234yf compared with the baseline system. Economic assessments indicate that, despite higher initial investment costs, the flexible system's lifecycle cost (LCC) is lower than that of the baseline system, with savings of approximately £1011 and £776 for R134a and R1234yf, respectively, and payback periods of approximately 10.5 years and 11.0 years. Regarding environmental analysis, the flexible system lowers lifecycle CO 2 emissions for both refrigerants, with the greatest reductions achieved when combined with low-GWP fluid R1234yf. Overall, the integration of system flexibility with low-GWP refrigerants demonstrates a practical pathway toward a cleaner energy future and sustainable energy transitions, combining enhanced efficiency, cost-effectiveness, and climate benefits. • Flexible two-stage heat pump with PCM storage enhances energy efficiency. • Dynamic mode control improves system adaptability and seasonal performance. • Heat load curve derived from long-term meteorological data. • Low-GWP refrigerants reduce greenhouse gas emissions and improve sustainability. • Life-cycle cost analysis shows economic benefits over conventional systems.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69dc88f43afacbeac03eaaafhttps://doi.org/10.1016/j.jclepro.2026.148078
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Assessment of the performance of ultralow‐<scp>GWP</scp> refrigerants in a two‐stage heat pump system using simulation and <scp>MCMD</scp>2025
  2. 2Performance and Economic Analysis of Two Types of High-Temperature Heat Pump Based on New Refrigerants2024
  3. 3Thermodynamic performance analysis of low-GWP refrigerants in high-temperature heat pumps2026 · 1 citations
  4. 4Condensation Heat Transfer and Pressure Drop of Low GWP Refrigerants Within a Horizontal Smooth Tube for High Temperature Heat Pump Applications2025
  5. 5Exploratory Study on Carbon Dioxide Blends With Low‐GWP Working Fluids for Medium and High‐Temperature Heat Pumps Under Step Pressure2025