The integration of organic Phase Change Materials (PCMs) in building walls has become essential to surpassing the limitations of conventional insulation. Within this scope, we developed novel Ethylene-Propylene-Diene Monomer (EPDM) composite materials incorporating paraffin as PCM. To achieve this, Expanded Graphite (EG) was introduced via a preliminary vacuum impregnation process. This carbonaceous filler acts as a multi¬ functional support, ensuring shape stability and enhancing the structural integrity of the rubber matrix. The resulting composites exhibit an outstanding melting enthalpy of 167 J/g—a record-high value for EPDM-based systems within the 22–31 °C range—while the percolative EG network raises thermal conductivity to 1.7 W/m⋅K (a ten-fold increase over the neat PCM). Dynamic thermal tests in a climatic chamber confirmed a significant thermal lag and the ability to dampen temperature peaks effectively. Furthermore, mechanical characterization at 21 °C and 40 °C demonstrated that the panels maintain a compressive strength exceeding 0.1 MPa even when the PCM is molten, ensuring structural reliability during storage and transport. In summary, leveraging a superior synergy between heat storage and thermal transport validated by Figure of Merit (FoM) analysis, these novel PCM/EG-based panels offer a high-performance solution for passive cooling applications in sustainable architecture.
Novel Ethylene-Propylene-Diene Monomer rubber panels filled with Phase Change Material and expanded graphite for energy efficiency of buildings / Sacchet, S., Pizzato, A., Valentini, F., Grigiante, M., Po, R., Fambri, L.. - In: JOURNAL OF ENERGY STORAGE. - ISSN 2352-152X. - ELETTRONICO. - 177:123425(2026), pp. 1-14. [10.1016/j.est.2026.123425]
Novel Ethylene-Propylene-Diene Monomer rubber panels filled with Phase Change Material and expanded graphite for energy efficiency of buildings
Sacchet, Sereno
Primo
;Valentini, Francesco;Grigiante, Maurizio;Fambri, Luca
Ultimo
2026-01-01
Abstract
The integration of organic Phase Change Materials (PCMs) in building walls has become essential to surpassing the limitations of conventional insulation. Within this scope, we developed novel Ethylene-Propylene-Diene Monomer (EPDM) composite materials incorporating paraffin as PCM. To achieve this, Expanded Graphite (EG) was introduced via a preliminary vacuum impregnation process. This carbonaceous filler acts as a multi¬ functional support, ensuring shape stability and enhancing the structural integrity of the rubber matrix. The resulting composites exhibit an outstanding melting enthalpy of 167 J/g—a record-high value for EPDM-based systems within the 22–31 °C range—while the percolative EG network raises thermal conductivity to 1.7 W/m⋅K (a ten-fold increase over the neat PCM). Dynamic thermal tests in a climatic chamber confirmed a significant thermal lag and the ability to dampen temperature peaks effectively. Furthermore, mechanical characterization at 21 °C and 40 °C demonstrated that the panels maintain a compressive strength exceeding 0.1 MPa even when the PCM is molten, ensuring structural reliability during storage and transport. In summary, leveraging a superior synergy between heat storage and thermal transport validated by Figure of Merit (FoM) analysis, these novel PCM/EG-based panels offer a high-performance solution for passive cooling applications in sustainable architecture.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione



