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材料导报  2021, Vol. 35 Issue (2): 2151-2156    https://doi.org/10.11896/cldb.19080100
  高分子与聚合物基复合材料 |
60Co γ射线辐照对硅泡沫材料压缩性能的影响
史平安1,2, 邱勇1,2, 万强1,2, 胡文军1,2, 晏顺坪1,2
1 中国工程物理研究院总体工程研究所,绵阳 621999;
2 工程材料与结构冲击振动四川省重点实验室,绵阳 621999
Influence of 60Co Gamma Irradiation on Compression Properties of the Silicone Rubber Foams
SHI Ping'an1,2, QIU Yong1,2, WAN Qiang1,2, HU Wenjun1,2, YAN Shunping1,2
1 Institute of Systems Engineering, China Academy of Engineering Physics, Mianyang 621999, China;
2 Shock and Vibration of Engineering Materials and Structures Key Laboratory of Sichuan Province, Mianyang 621999, China
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摘要 为了给60Co γ辐照条件下硅泡沫垫层的构型设计和工艺优化提供依据,本工作通过材料辐照实验、力学实验和扫描电子显微镜观察等方法,研究了60Co γ射线辐照对硅泡沫材料压缩性能的影响,探索了辐照条件下硅泡沫材料的损伤机理,并在此基础上建立了辐照环境条件下多孔硅泡沫材料压缩性能的预测模型,给出了材料压缩模量和断裂应变随辐照剂量的变化规律。结果表明:γ辐照对材料压缩性能的影响较为明显,在预压缩量较低的情况下,辐照后硅泡沫材料力学性能呈先升后降的趋势;当预压缩量超过50%时,辐照后硅泡沫材料力学性能呈先陡后缓的下降趋势。预压缩量为30%、辐照剂量为300 kGy时,硅泡沫材料的拉伸强度和剪切强度分别增加了69%和84%;而辐照剂量增大到1 000 kGy时,其值分别下降了47%和50%。结合材料宏观性能和细观结构的分析认为,γ辐照引起的交联反应和降解反应是造成硅泡沫材料力学性能改变的主要原因。
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史平安
邱勇
万强
胡文军
晏顺坪
关键词:  硅泡沫  γ射线辐照  预压缩量  力学性能    
Abstract: In order to prove theoretical basis and selecting optimizing design of silicone foamcushion under 60Co γ-irradiation conditions, the influence of radiation on the compression properties of silicone rubber foams was studied by several methods, such as the mechanics experiment, irradiation experiment, and scanning electron microscopy (SEM) analysis, and the damage mechanism were inferred through analysis the irreversible transformation of the indented materials before and after γ-irradiation. Furthermore, a model for the compressive strength prediction of silicone foam cushion was proposed in accordance with irradiation effects, and the variation of compressive modulus and fracture strain with irradiation doses were obtained. The results showed that irradiation dose and pre-strain had significant effects on the properties of silicone rubber foam, and the mechanics property of irradiated silicone rubber foams increased at beginning and then decreased with enhanced γ-radiation dose under low pre-strain condition. But the pre-strain exceeded 50%, the mechanics property of irradiated silicone rubber foams firstly decreased rapidly and then slowly with enhanced γ-radiation dose. Tensile strength and shear strength of irradiated silicone rubber foams were enhanced by 69% and 84%, respectively, at a pre-strain of 30% and a radiation dose of 300 kGy. When the radiation dose increased to 1 000 kGy, the value dropped to 47% and 50% of the initial value. Those significant changes provided information for inferring the mechanism of radiation induced cross-linking and degradation reactions of mechanics property of silicone rubber foams. The analysis result of macroscopic properties and microstructure could prove it.
Key words:  Silicone rubber foam    γ-ray irradiation    pre-strain    mechanical property
               出版日期:  2021-01-25      发布日期:  2021-01-28
ZTFLH:  TB24  
基金资助: 国家自然科学基金(U153029;11972219)
通讯作者:  wanzhenyu@126.com   
作者简介:  史平安,中国工程物理研究院总体工程研究所副研究员,工学硕士。研究方向为特种材料成型过程的数值模拟和结构性能评估。先后主持或参与重大项目数项,在国内外重要期刊发表文章近40余篇,发明专利6项。
万强,中共党员,博士,研究员,主要从事武器型号、高技术装备研制,材料与结构的多物理场多尺度力学等研究工作。负责/参与型号任务及基础研究课题30余项。公开发表期刊论文50余篇(SCI收录20篇,EI收录25篇,论文他引200余次),编写专著1章,编著章节他引1 000余次。获陕西省科学技术一等奖1项,中物院科技创新二等奖1项,申请专利9项。
引用本文:    
史平安, 邱勇, 万强, 胡文军, 晏顺坪. 60Co γ射线辐照对硅泡沫材料压缩性能的影响[J]. 材料导报, 2021, 35(2): 2151-2156.
SHI Ping'an, QIU Yong, WAN Qiang, HU Wenjun, YAN Shunping. Influence of 60Co Gamma Irradiation on Compression Properties of the Silicone Rubber Foams. Materials Reports, 2021, 35(2): 2151-2156.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.19080100  或          http://www.mater-rep.com/CN/Y2021/V35/I2/2151
1 Wang Y F. Effects of radiation on organic polymer. Ph.D. Thesis, Xi'an Jiaotong University, China, 1993(in Chinese).
王玉芬. 有机高聚物辐射效应的研究.博士学位论文,西安交通大学,1993.
2 Huang W, Fu Y B, Xing P F, et al. Atomic Energy Science and Techno-logy, 2002, 36(6), 503(in Chinese).
黄玮,傅依备,邢丕峰,等. 原子能科学技术, 2002, 36(6), 503.
3 Huang W, Li L, Wu X L, et al. Atomic Energy Science and Technology, 2003, 47(9), 1496(in Chinese).
黄玮,李磊,伍晓利等.原子能科学技术, 2003, 47(9),1496.
4 Huang W, Fu Y B, Wang C Y, et al. Journal of Applied Polymer Science, 2003,89(13), 3437.
5 Maxwell R S, Balazs B. Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, 2003, 208, 199.
6 Andrady A L, Torikai A, Redhwi H H, et al. Macromolecules, 2015, 14 (1), 170.
7 Hu W J, Zhang K, Chen X L, et al. China Rubber Industry,1996, 46(5), 266(in Chinese).
胡文军,张凯,陈晓丽,等,橡胶工业, 1996, 46(5), 266.
8 Guo R,Li D T, Yang S S, et al. Vacuum and Cryogenics, 2015, 21(4), 221(in Chinese).
郭睿,李得天,杨生胜,等. 真空与低温, 2015, 21(4), 221.
9 Sha Y S,Zhang C S,Li J L,et al. Materials for Mechanical Engineering,2013, 37(2), 25(in Chinese).
沙艳松,张长生,李静莉,等. 机械工程材料, 2013, 37(2), 25.
10 Zheng L F,Zou J, Qiao Z M,et al. Acta Materiae Compositae Sinica, 2015, 32(5), 1316(in Chinese).
郑莉芳,邹江,乔志明,等.复合材料学报, 2015, 32(5), 1316.
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