聚氨酯U001红油宽温域老化特性的试验研究
PDF下载 (384)彭旭东,马 艺,李英豪,孟祥铠.聚氨酯U001红油宽温域老化特性的试验研究[J].宁波大学学报(理工版),2021,34(6):9-16.DOI:
PENG Xudong,MA Yi,LI Yinghao,MENG Xiangkai.Experimental research on red oil aging characteristics of polyurethane U001 in a wide temperature range[J].Journal of Ningbo University(Natural Science & Engineering Edition),2021,34(6):9-16.DOI:
| Title: | Experimental research on red oil aging characteristics of polyurethane U001 in a wide temperature range |
| 作者: | 彭旭东, 马 艺, 李英豪, 孟祥铠 |
| Author(s): | PENG Xudong, MA Yi, LI Yinghao, MENG Xiangkai |
| 关键词: | 聚氨酯; 红油老化; 氢键; 密封 |
| Keywords: | polyurethane; red oil aging; hydrogen bonding; sealing |
| 分类号: | TQ323.8 |
| 文献标识码: | A |
| 摘要: | 国内外对聚氨酯耐15号红油老化特性的研究较少, 开展不同老化温度和时间下聚氨酯密封材料性能演化的研究具有重要意义. 依据GB/T 1690-2010开展聚氨酯U001红油宽温域老化特性试验研究, 分析聚氨酯U001宏观力学性能及微观官能团随老化温度和时间的变化规律, 揭示宽温域下聚氨酯U001的红油老化机理. 结果表明, 聚氨酯U001红油老化过程伴随内部溶胀和氧化反应, 导致聚氨酯内部交联密度降低, 氢键数量减少, 质量变化率不断上升, 应力-应变特性变差, 拉伸强度、压缩永久变形等力学性能参数随之下降, 其中以压缩永久变形性能下降最为明显; 聚氨酯U001可在工作温度≤55℃时长期使用, 在工作温度为70℃时仅可短时间使用. |
| Abstract: | Few studies have been conducted on the No. 15 red oil aging resistance of polyurethane both at home and abroad. It is of great significance to carry out research on the performance evolution of polyurethane sealing materials under different aging temperature and time. The wide-temperature red oil aging characteristics test of polyurethane U001 was performed according to GB/T 1690-2010. The changing rules of macro-mechanical properties and micro-functional groups of polyurethane U001 with aging temperature and time were analyzed, and the red oil aging mechanism of polyurethane U001 in a wide temperature range was revealed. The results show that the red oil aging process of polyurethane U001 is accompanied by internal swelling and oxidation reactions, resulting in a decrease in the internal cross-linking density and the number of hydrogen bonds in the polyurethane. The rate of quality change continues to rise, the stress-strain characteristics become worse, and the mechanical properties such as tensile strength and compression set decrease accordingly. Among them, the compression permanent deformation performance declines most obviously. Polyurethane U001 can be used for a long time when the working temperature is less than or equal to 55℃, and can only be used for a short time when the working temperature is 70℃. |
| 参考文献 /References: | [1] Atiqah A, Mastura M T, Ali B A A, et al. A review on polyurethane and its polymer composites[J]. Current Organic Synthesis, 2017, 14(2):233-248. [2] 刘兵. 某型飞机作动器密封件密封性能分析及疲劳寿命预测[D]. 哈尔滨: 哈尔滨工业大学, 2011. [3] 李英豪. 红油老化对聚氨酯力学性能及摩擦学特性的影响研究[D]. 杭州: 浙江工业大学, 2021. [4] Yakovlev S N. An experimental study of the wear of the radial shaft seals of rotary shafts[J]. Journal of Machinery Manufacture and Reliability, 2019, 48(2):179-183. [5] 孙浩, 李廷廷, 于向伟, 等. 聚氨酯弹性体力学及耐水性能研究[J]. 热固性树脂, 2020, 35(6):15-19. [6] Troev K, Tsekova A, Tsevi R. Chemical degradation of polyurethanes: Degradation of flexible polyester polyurethane foam by phosphonic acid dialkyl esters[J]. Journal of Applied Polymer Science, 2000, 78(14):2565- 2573. [7] Khatua S, Hsieh Y L. Chlorine degradation of polyether- based polyurethane[J]. Journal of Polymer Science Part A: Polymer Chemistry, 2015, 35(15):3263-3273. [8] Harris D J, Assink R A, Celina M. NMR analysis of oxidatively aged HTPB/IPDI polyurethane rubber: Degradation products, dynamics, and heterogeneity[J]. Macromolecules, 2001, 34(19):6695-6700. [9] 唐启恒, 艾青松, 李晓东, 等. 基于热失重法的热塑性聚氨酯热氧老化特性分析及其降解动力学模型[J]. 聚氨酯工业, 2013, 28(6):13-17. [10] Aglan H, Calhoun M, Allie L. Effect of UV and hygrothermal aging on the mechanical performance of polyurethane elastomers[J]. Journal of Applied Polymer Science, 2010, 108(1):558-564. [11] GB/T 528-2009. 硫化橡胶或热塑性橡胶: 拉伸应力应变性能的测定[S]. [12] GB/T 7759.1-2015. 硫化橡胶或热塑性橡胶: 压缩永久变形的测定 第1部分: 在常温及高温条件下[S]. [13] GB/T 7759.2-2014. 硫化橡胶或热塑性橡胶: 压缩永久变形的测定 第2部分: 在低温条件下[S]. [14] GB/T 1690-2010. 硫化橡胶或热塑性橡胶: 耐液体试验方法[S]. [15] GB/T 2941-2006. 橡胶物理试验方法试件制备和调节通用程序[S]. [16] 张宝萍, 许戈文, 黄毅萍. 丝素蛋白-聚氨酯复合水凝胶的制备及性能研究[J]. 高分子学报, 2012, (9):965- 971. [17] Hong B, Xian G, Li H. Effects of water or alkali solution immersion on the water uptake and physicochemical properties of polyurethane[J]. Polymer Engineering and Science, 2018, 58(12):24848. [18] 洪斌. 聚氨酯基CFRP拉挤板材的耐水碱盐性能研究[D]. 哈尔滨: 哈尔滨工业大学, 2018. [19] 丁芳, 张欢, 丁明明, 等. 聚合物弹性体材料应力-应变关系的理论研究[J]. 高分子学报, 2019, 50(12):1357- 1366. [20] GB/T 20028-2005. 硫化橡胶或热塑性橡胶: 应用阿累尼鸟斯图推算寿命和最高使用温度[S]. [21] 罗宁, 王得宁, 应圣康. 变温红外光谱研究多嵌段聚氨脂脲的微相分离行为[J]. 高分子学报, 1996, 37(4):423- 428. [22] Paik Sung C S, Smith T W, Sung N H. Properties of segmented polyether poly(urethaneureas) based of 2,4-toluene diisocyanate. 2. Infrared and mechanical studies[J]. Macromolecules, 1980, 13(1):117-121. [23] Li W, Ryan A J, Meier I K. Morphology development via reaction-induced phase separation in flexible polyure- thane foam[J]. Macromolecules, 2002, 35(13):5034-5042. |
| 备注/Memo: | 收稿日期:2021-09-03.宁波大学学报(理工版)网址:http://journallg.nbu.edu.cn/ 基金项目:国家自然科学基金(51975527);国家重点研发计划项目(2018YFB2000800). 第一作者:彭旭东(1964-),男,湖南益阳人,教授,主要研究方向:流体密封技术.E-mail:xdpeng@126.com *通信作者:马艺(1985-),女,山东淄博人,副教授,主要研究方向:流体密封技术.E-mail:myant@zjut.edu.cn 宁波大学学报(理工版)网址:http://journallg.nbu.edu.cn/ |