Foltuț Daniel, Șerban Viorel-Aurel
Department of Materials and Manufacturing Engineering, Politehnica University of Timișoara, Mihai Viteazul Blv., 300222 Timisoara, Romania.
Technical Sciences Academy of Romania, B-dul Dacia 26, 030167 Bucuresti, Romania.
Materials (Basel). 2025 Apr 30;18(9):2071. doi: 10.3390/ma18092071.
Sustainable ethylene propylene diene monomer (EPDM) elastomers are gaining traction as eco-friendly sealing materials in fuel cell applications. This study evaluates the mechanical degradation behavior of two ECO EPDM formulations-one reinforced with circular carbon black (CCB EPDM), and the other with recycled carbon black (RCB EPDM)-under conditions representative of acidic fuel cell environments. The samples underwent thermal aging at 90 °C for 1000 h, and were immersed in aqueous HSO solutions of varying concentrations (1 M, 0.1 M, and 0.001 M) for 1000 h at the same temperature. Gravimetric and volumetric swelling measurements revealed that RCB EPDM experienced significantly higher mass and volume uptake, particularly at intermediate acid concentration, indicating greater susceptibility to fluid ingress. Mechanical testing, including measurement of tensile strength, Shore A hardness, and IRHD microhardness, showed that while RCB EPDM exhibited higher initial strength, it degraded more severely under thermal and acidic exposure. SEM-EDS analysis revealed microstructural damage and compositional changes, with RCB EPDM displaying more pronounced oxidation and surface erosion. In contrast, CCB EPDM demonstrated greater retention of mechanical integrity, greater dimensional stability, and lower variability across aging conditions. These findings highlight the advantages of circular carbon black in enhancing the durability of ECO EPDM compounds in acidic and thermally dynamic fuel cell environments.
可持续的三元乙丙橡胶(EPDM)弹性体作为燃料电池应用中的环保密封材料正越来越受到关注。本研究评估了两种ECO EPDM配方——一种用圆形炭黑增强(CCB EPDM),另一种用再生炭黑增强(RCB EPDM)——在模拟酸性燃料电池环境条件下的机械降解行为。样品在90°C下进行1000小时的热老化,并在相同温度下浸泡在不同浓度(1M、0.1M和0.001M)的硫酸水溶液中1000小时。重量和体积膨胀测量表明,RCB EPDM的质量和体积吸收明显更高,特别是在中等酸浓度下,这表明其更容易受到流体侵入的影响。包括拉伸强度、邵氏A硬度和IRHD微硬度测量在内的力学测试表明,虽然RCB EPDM初始强度较高,但在热和酸性暴露下降解更严重。扫描电子显微镜-能谱分析(SEM-EDS)揭示了微观结构损伤和成分变化,RCB EPDM表现出更明显的氧化和表面侵蚀。相比之下,CCB EPDM在整个老化条件下表现出更高的机械完整性保留率、更高的尺寸稳定性和更低的变异性。这些发现突出了圆形炭黑在增强ECO EPDM化合物在酸性和热动态燃料电池环境中的耐久性方面的优势。