Ju Jianzhu, Li Changxi, Huang Qunjian
Hefei Hualing Co., Ltd, Midea Group Hefei 340100 China
RSC Adv. 2025 Aug 21;15(36):29560-29570. doi: 10.1039/d5ra02871j. eCollection 2025 Aug 18.
For vacuum insulation panels (VIPs), aging resistance decides the long-term reliability of the products, which is critical for appliance and building applications. As solid and gaseous conduction in VIP has opposite dependence on core material porosity, it is challenging to achieve desired performance in both initial and persistent insulation. In this work, a novel VIP with ultrathin polymeric fiber (diameter of 7 μm) as core material is developed, in which low initial thermal conductivity down to 1.6 mW mK can be achieved with moderate porosity around 85%. Characterized by thermal conductivity and pressure measurements, polymeric fiber-based VIP features a two-phase aging behavior: the short-term aging is governed by the viscoelasticity of the polymeric fiber, and partially reversible upon heating; the long-term aging is dominated by gas permeation, with a low rate around 0.1 mW per mK per year at room temperature. With the excellent combination of low initial conductivity and strong aging resistance, polymer fiber-based VIPs provide a cleaner alternative to traditional VIP core materials, with further possibility to be explored.
对于真空绝热板(VIP)而言,耐老化性决定了产品的长期可靠性,这对于电器和建筑应用至关重要。由于VIP中的固体和气体传导对芯材孔隙率的依赖性相反,因此要在初始隔热和持久隔热方面都实现理想性能具有挑战性。在这项工作中,开发了一种以超薄聚合物纤维(直径7μm)为芯材的新型VIP,在孔隙率约为85%的适中情况下,可实现低至1.6mW/(m·K)的初始热导率。通过热导率和压力测量表征,基于聚合物纤维的VIP具有两相老化行为:短期老化受聚合物纤维的粘弹性控制,加热后部分可逆;长期老化以气体渗透为主导,在室温下速率较低,约为每年0.1mW/(m·K)。基于聚合物纤维的VIP具有低初始电导率和强耐老化性的出色组合,为传统VIP芯材提供了更清洁的替代品,还有进一步探索的可能性。