Bianchi Marica, Fambri Luca, Bortolotti Mauro, Pegoretti Alessandro, Dorigato Andrea
Department of Industrial Engineering and INSTM Research Unit, University of Trento, via Sommarive 9, 38123 Trento, Italy.
Molecules. 2025 Jul 19;30(14):3035. doi: 10.3390/molecules30143035.
This work investigates the effect of nanoclay addition-specifically natural montmorillonite (MMT) and organo-modified montmorillonite (O-MMT)-on the elastocaloric performance of natural rubber (NR), a promising material for solid-state cooling due to its non-toxicity, low cost, and ability to exhibit large adiabatic temperature changes under moderate stress (~a few MPa). Despite these advantages, the cooling efficiency of NR remains lower than that of conventional vapor-compression systems. Therefore, improving the cooling capacity of NR is essential for the development of solid-state cooling technologies competitive with existing ones. To address this, two series of NR-based nanocomposites, containing 1, 3, and 5 phr nanofiller, were prepared by melt compounding and hot pressing and characterized in terms of morphology, thermal, mechanical, and elastocaloric properties. The results highlighted that the better dispersion of the organoclays within the rubber matrix promoted not only a better mechanical behavior (in terms of stiffness and strength), but also a significantly enhanced cooling performance compared to MMT nanofilled systems. Moreover, NR/O-MMT samples demonstrated up to a ~45% increase in heat extracted per refrigeration cycle compared to the unfilled NR, with a coefficient of performance (COP) up to 3, approaching the COP of conventional vapor-compression systems, typically ranging between 3 and 6. The heat extracted per refrigeration cycle of NR/O-MMT systems resulted in approx. 16 J/cm, higher with respect to the values reported in the literature for NR-based systems (ranging between 5 and 12 J/cm). These findings emphasize the potential of organoclays in enhancing the refrigeration potential of NR for novel state cooling applications.
本研究探讨了添加纳米黏土(特别是天然蒙脱石(MMT)和有机改性蒙脱石(O-MMT))对天然橡胶(NR)弹性热性能的影响。天然橡胶因其无毒、低成本以及在中等应力(约几兆帕)下能表现出较大的绝热温度变化,是固态冷却领域一种很有前景的材料。尽管具有这些优点,但天然橡胶的冷却效率仍低于传统的蒸汽压缩系统。因此,提高天然橡胶的冷却能力对于开发与现有系统竞争的固态冷却技术至关重要。为了解决这个问题,通过熔融共混和热压制备了两个系列的基于天然橡胶的纳米复合材料,其中纳米填料含量分别为1、3和5份,并对其形态、热性能、力学性能和弹性热性能进行了表征。结果表明,有机黏土在橡胶基体中的更好分散不仅促进了更好的力学性能(在刚度和强度方面),而且与MMT纳米填充体系相比,显著提高了冷却性能。此外,与未填充的天然橡胶相比,NR/O-MMT样品每个制冷循环提取的热量增加了约45%,性能系数(COP)高达3,接近传统蒸汽压缩系统的COP,传统蒸汽压缩系统的COP通常在3到6之间。NR/O-MMT系统每个制冷循环提取的热量约为16 J/cm,高于文献报道的基于天然橡胶系统的值(在5到12 J/cm之间)。这些发现强调了有机黏土在增强天然橡胶用于新型固态冷却应用的制冷潜力方面的潜力。