Zhang Zhenyu, Shen Guangyao, Li Rongbo, Yuan Lei, Feng Hongfu, Chen Xiuming, Qiu Feng, Yuan Guangyin, Zhuang Xiaodong
National Engineering Research Center of Light Alloy Net Forming & State Key Laboratory of Metal Matrix Composite, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China.
Shanghai Nuclear Engineering Research and Design Institute Co., Ltd., 169 Tianlin Road, Xuhui District, Shanghai 200030, China.
Polymers (Basel). 2024 Jan 14;16(2):229. doi: 10.3390/polym16020229.
Soft materials bearing rigid, lightweight, and vibration-dampening properties offer distinct advantages over traditional wooden and metal-based fillings for spent fuel transport casks, due to their low density, tunable structure, excellent mechanical properties, and ease of processing. In this study, a novel type of rigid polyurethane foam is prepared using a conventional polycondensation reaction between isocyanate and hydroxy groups. Moreover, the density and size of the pores in these foams are precisely controlled through simultaneous gas generation. The as-prepared polyurethane exhibits high thermal stability exceeding 185 °C. Lifetime predictions based on thermal testing indicate that these polyurethane foams could last up to over 60 years, which is double the lifetime of conventional materials of about 30 years. Due to their occlusive structure, the mechanical properties of these polymeric materials meet the design standards for spent fuel transport casks, with maximum compression and tensile stresses of 6.89 and 1.37 MPa, respectively, at a testing temperature of -40 °C. In addition, these polymers exhibit effective flame retardancy; combustion ceased within 2 s after removal of the ignition source. All in all, this study provides a simple strategy for preparing rigid polymeric foams, presenting them as promising prospects for application in spent fuel transport casks.
具有刚性、轻质和减震特性的软质材料,由于其低密度、可调节结构、优异的机械性能和易于加工,在乏燃料运输容器方面比传统的木质和金属基填充物具有明显优势。在本研究中,通过异氰酸酯和羟基之间的常规缩聚反应制备了一种新型刚性聚氨酯泡沫。此外,通过同时产生气体精确控制这些泡沫中孔隙的密度和尺寸。所制备的聚氨酯表现出超过185°C 的高热稳定性。基于热测试的寿命预测表明,这些聚氨酯泡沫可持续长达60多年,是约30年的传统材料寿命的两倍。由于其封闭结构,这些聚合物材料的机械性能符合乏燃料运输容器的设计标准,在-40°C的测试温度下,最大压缩应力和拉伸应力分别为6.89MPa和1.37MPa。此外,这些聚合物表现出有效的阻燃性;移除火源后2秒内燃烧停止。总而言之,本研究提供了一种制备刚性聚合物泡沫的简单策略,使其在乏燃料运输容器中的应用具有广阔前景。