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Life Cycle Assessment of Innovative Shallow Geothermal Coaxial Probes: Manufacturing and Installation of an Italian Case Study

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  • Stefania Fiameni

    (National Research Council—CNR, Institute of Condensed Matter Chemistry and Technologies for Energy—ICMATE, Corso Stati Uniti 4, 35127 Padova, Italy
    These authors contributed equally to this work.)

  • Francesca Visentin

    (National Research Council—CNR, Institute of Condensed Matter Chemistry and Technologies for Energy—ICMATE, Corso Stati Uniti 4, 35127 Padova, Italy
    These authors contributed equally to this work.)

  • Adriana Bernardi

    (RED Srl, Viale dell’industria, 58E, 35129 Padova, Italy)

  • Nicola Mutinelli

    (RED Srl, Viale dell’industria, 58E, 35129 Padova, Italy)

  • Simone Battiston

    (National Research Council—CNR, Institute of Condensed Matter Chemistry and Technologies for Energy—ICMATE, Corso Stati Uniti 4, 35127 Padova, Italy)

  • Alessandro Bortolin

    (National Research Council—CNR, Institute of Atmospheric Science and Climate—ISAC, Corso Stati Uniti 4, 35127 Padova, Italy)

  • Luc Pockelè

    (RED Srl, Viale dell’industria, 58E, 35129 Padova, Italy)

  • Monica Favaro

    (National Research Council—CNR, Institute of Condensed Matter Chemistry and Technologies for Energy—ICMATE, Corso Stati Uniti 4, 35127 Padova, Italy)

  • Maria Losurdo

    (National Research Council—CNR, Institute of Condensed Matter Chemistry and Technologies for Energy—ICMATE, Corso Stati Uniti 4, 35127 Padova, Italy)

Abstract

Global decarbonization represents one of the defining challenges of the 21st century. Geothermal energy offers a robust alternative for reducing fossil fuel dependency for both residential and industrial heating and cooling. While shallow geothermal systems are versatile and high-performing, comprehensive Life Cycle Assessments (LCA) remain scarce in the literature. This study evaluates the environmental impact of the manufacturing and installation processes of next-generation coaxial probes featuring a galvanized steel outer tube and an internal polyethylene pipe. The LCA identifies material composition as the primary environmental driver: steel production accounts for 41% of the total impact, while the hot-dip galvanization process contributes 30%, significantly affecting the “climate change” and the “resource use” categories. A comparative LCA with conventional double U-tube installations shows similar overall environmental impacts. A sensitivity analysis on the coaxial probes was conducted to explore potential mitigation strategies aimed at reducing the associated environmental impacts, providing indications for sustainable eco-design. The LCA results demonstrate that optimizing the design, specifically by reducing the steel quantity in the coaxial outer tube and avoiding the zinc coating process, results in a 34% reduction in total environmental impact, confirming that LCA is a fundamental tool for supporting the environmental sustainability of developing technologies.

Suggested Citation

  • Stefania Fiameni & Francesca Visentin & Adriana Bernardi & Nicola Mutinelli & Simone Battiston & Alessandro Bortolin & Luc Pockelè & Monica Favaro & Maria Losurdo, 2026. "Life Cycle Assessment of Innovative Shallow Geothermal Coaxial Probes: Manufacturing and Installation of an Italian Case Study," Clean Technol., MDPI, vol. 8(4), pages 1-23, July.
  • Handle: RePEc:gam:jcltec:v:8:y:2026:i:4:p:116-:d:2002494
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