Wang Xiaowu, Wang Yang, Sun Mengtian, Wang Guichao, Liu Qiong, Li Ming, Shulga Yury M, Li Zhi
School of Resource and Safety Engineering, Central South University, Changsha 410083, China.
Institute of Problems of Chemical Physics, Russian Academy of Sciences, 142432 Chernogolovka, Russia.
Gels. 2022 Oct 14;8(10):654. doi: 10.3390/gels8100654.
In this work, we reported that aramid pulps (AP) reinforced clay aerogel composites with improved mechanical strength, good thermal insulation and fire resistance based on the combination of AP, Poly(vinyl alcohol) (PVA) and sodium montmorillonite (MMT), which present a promising prospect in the thermal insulation application. The PVA-MMT-AP (x: denotes the mass content of AP) aerogel composites present an isotropic "lamella-honeycomb" porous structure, which endows them with excellent comprehensive performance. With the AP content increasing, the extremely low density is kept, ranging between 67-73 mg/cm, and the low thermal conductivity is maintained within 40.9-47.9 mW·m·K. The mechanical strength is significantly improved with the maximum compressive modulus increasing from 2.95 to 5.96 MPa and the specific modulus rising from 44.03 to 81.64 MPa∙cm/g. Their detailed heat transfer process has been analyzed, which provides a deep understanding to the low thermal conductivity of the PVA-MMT-AP aerogel composites. Based on the combination of thermogravimetric analysis and combustion behavior, the PVA-MMT-AP aerogel composites are demonstrated to possess improved thermal stability and fire resistance. This study puts forward a facile approach to utilizing AP to reinforce clay aerogel composites, which provides new insight into the development of thermal-insulating, fire-safe and high-strength thermal insulation materials.
在本工作中,我们报道了基于芳纶浆粕(AP)、聚乙烯醇(PVA)和钠基蒙脱石(MMT)的组合制备的具有增强机械强度、良好隔热性和耐火性的芳纶浆粕增强粘土气凝胶复合材料,其在隔热应用中展现出广阔的前景。PVA-MMT-AP(x:表示AP的质量含量)气凝胶复合材料呈现各向同性的“薄片-蜂窝”多孔结构,这赋予它们优异的综合性能。随着AP含量的增加,保持了极低的密度,范围在67 - 73 mg/cm³之间,并且低导热率维持在40.9 - 47.9 mW·m⁻¹·K⁻¹。机械强度显著提高,最大压缩模量从2.95 MPa增加到5.96 MPa,比模量从44.03 MPa∙cm/g增加到81.64 MPa∙cm/g。对其详细的传热过程进行了分析,这为深入理解PVA-MMT-AP气凝胶复合材料的低导热率提供了依据。基于热重分析和燃烧行为的结合,证明PVA-MMT-AP气凝胶复合材料具有改善的热稳定性和耐火性。本研究提出了一种利用AP增强粘土气凝胶复合材料的简便方法,这为隔热、防火和高强度隔热材料的开发提供了新的见解。