Toyen Donruedee, Wimolmala Ekachai, Hemvichian Kasinee, Lertsarawut Pattra, Saenboonruang Kiadtisak
Department of Materials Science, Faculty of Science, Kasetsart University, Bangkok 10900, Thailand.
Special Research Unit of Radiation Technology for Advanced Materials (RTAM), Faculty of Science, Kasetsart University, Bangkok 10900, Thailand.
Polymers (Basel). 2024 Apr 18;16(8):1139. doi: 10.3390/polym16081139.
Due to the increasing demands for improved radiation safety and the growing concerns regarding the excessive use of plastics, this work aimed to develop effective and eco-friendly thermal-neutron-shielding materials based on recycled high-density polyethylene (r-HDPE) composites containing varying surface-treated gadolinium oxide (GdO) contents (0, 5, 10, 15, and 20 wt%). The results indicate that the overall thermal-neutron-shielding properties of the r-HDPE composites were enhanced with the addition of GdO, as evidenced by large reductions in I/I, HVL, and TVL, as well as the substantial increases in ∑ and ∑ of the composites. Furthermore, the results reveal that the values for tensile properties initially increased up to 5-15 wt% of GdO and then gradually decreased at higher contents. In addition, the results show that the addition of GdO particles generally increased the density (ρ), the remaining ash at 600 °C, and the degree of crystallinity (%XC) of the composites. This work also determined the effects of gamma irradiation on relevant properties of the composites. The findings indicate that following gamma aging, the tensile modulus slightly increased, while the tensile strength, elongation at break, and hardness (Shore D) showed no significant ( < 0.05) differences, except for the sample containing 5 wt% of GdO, which exhibited a noticeable reduction in elongation at break. Furthermore, by comparing the neutron-shielding and mechanical properties of the developed r-HDPE composites with common borated polyethylene (PE) containing 5 wt% and 15 wt% of boron, the results clearly indicate the superior shielding and tensile properties in the r-HDPE composites, implying the great potential of r-HDPE composites to replace virgin plastics as effective and more eco-friendly shielding materials.
由于对提高辐射安全性的需求不断增加,以及对塑料过度使用的担忧日益加剧,这项工作旨在开发基于含有不同表面处理氧化钆(GdO)含量(0、5、10、15和20 wt%)的回收高密度聚乙烯(r-HDPE)复合材料的有效且环保的热中子屏蔽材料。结果表明,添加GdO后,r-HDPE复合材料的整体热中子屏蔽性能得到增强,复合材料的I/I、HVL和TVL大幅降低,以及∑和∑大幅增加证明了这一点。此外,结果表明,拉伸性能值最初在GdO含量达到5-15 wt%时增加,然后在更高含量时逐渐下降。此外,结果表明,添加GdO颗粒通常会提高复合材料的密度(ρ)、600°C时的剩余灰分和结晶度(%XC)。这项工作还确定了γ辐照对复合材料相关性能的影响。研究结果表明,γ老化后,拉伸模量略有增加,而拉伸强度、断裂伸长率和硬度(邵氏D)除含5 wt% GdO的样品断裂伸长率明显降低外,无显著(<0.05)差异。此外,通过将开发的r-HDPE复合材料与含5 wt%和15 wt%硼的普通硼化聚乙烯(PE)的中子屏蔽和力学性能进行比较,结果清楚地表明r-HDPE复合材料具有优异的屏蔽和拉伸性能,这意味着r-HDPE复合材料有很大潜力替代原生塑料,成为有效且更环保的屏蔽材料。