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- 2018
液体天然橡胶对湿法混炼制备白炭黑/天然橡胶复合材料界面相互作用的影响
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Abstract:
[1] | 张士齐, 文威, 贾红兵, 等. 白炭黑与NR的相互作用研究[J]. 橡胶工业, 2009, 56(3):449-460. ZHANG S Q, WEN W, JIA H B, et al. Study on the interaction of silica/NR composite[J]. China Rubber Industry, 2009, 56(3):449-460(in Chinese). |
[2] | 欧阳星, 罗远芳, 贾德民. 白炭黑/NR复合材料界面相互作用研究[J]. 橡胶工业, 2009, 56(3):137-140. OUYANG X, LUO Y F, JIA D M, et al. Study on the interface interaction of silica/NR composite[J]. China Rubber Industry, 2009, 56(3):137-140(in Chinese). |
[3] | ZHANG W, LEONOV A I. IGC study of filler-filler and filler-rubber interactions in silica-filled compounds[J]. Journal of Applied Polymer Science, 2001, 81(10):2517-2530. |
[4] | NOORDERMEER J W M. Filler-to-filler and filler-to-rubber interactions in silica-reinforced natural rubber as visualized by TEM network visualization[J]. European Polymer Journal, 2014, 54(1):118-127. |
[5] | CHAN A J, STEENKESTE K, CANETTE A, et al. Natural rubber-filler interactions:What are the parameters?[J]. Langmuir, 2015, 31(45):12437-12446. |
[6] | 陆铭, 丁爱武, 王婷, 等. 湿法白炭黑/天然橡胶母胶在全钢载重子午线轮胎带束层中的应用[J]. 轮胎工业, 2015, 35(5):279-284. LU M, DING A W, WANG T, et al. Application of silica/NR master batch prepared by wet process in belt of truck and bus radial tire[J]. Tire Industry, 2015, 35(5):279-284(in Chinese). |
[7] | 廖禄生, 张福全, 王兵兵, 等. 基于湿法混炼的天然橡胶/白炭黑/炭黑复合材料的性能研究[J]. 热带农业科学, 2016, 36(7):93-98. LIAO L S, ZHANG F Q, WANG B B, et al. Properties of natural rubber/silica/carbon black composite based on wet compounding[J]. Chinese Journal of Tropical Agriculture, 2016, 36(7):93-98(in Chinese). |
[8] | IBRAHIM A, SAHRIM A, SOM S C. Blending of natural rubber with linear low-density polyethylene[J]. Journal of Applied Polymer Science, 1995, 58(58):1125-1133. |
[9] | KARGARZADEH H, AHMAD I, ABDULLAH I, et al. Functionalized liquid natural rubber and liquid epoxidized natural rubber:A promising green toughening agent for polyester[J]. Journal of Applied Polymer Science, 2015, 132(3):1-15. |
[10] | 张兆红. 橡胶补强填充剂[M]. 北京:化学工业出版社, 2013. ZHANG Z H. Rubber reinforcing fillers[M]. Beijing:Chemical Industry Publisher, 2013(in Chinese). |
[11] | SUZUKI N, ITO M, YATSUYANAGI F. Effects of rubber/filler interactions on deformation behavior of silica filled SBR systems[J]. Polymer, 2005, 46(1):193-201. |
[12] | HILONGA A, KIM J K, SARAWADE P B, et al. Synthesis of mesoporous silica with superior properties suitable for green tire[J]. Journal of Industrial & Engineering Chemistry, 2012, 18(5):1841-1844. |
[13] | PARK S J, CHO K S. Filler-elastomer interactions:Influence of silane coupling agent on crosslink density and thermal stability of silica/rubber composites[J]. Journal of Colloid & Interface Science, 2003, 267(1):86-91. |
[14] | LIU Y, LI L, WANG Q. Effect of carbon black/nanoclay hybrid filler on the dynamic properties of natural rubber vulcanizates[J]. Journal of Applied Polymer Science, 2010, 118(2):1111-1120. |
[15] | MEERA A P, SAID S, GROHEND Y, et al. Nonlinear viscoelastic behavior of silica-filled natural rubber nanocomposites[J]. Journal of Physical Chemistry, 2009, 113(42):17997-18002. |
[16] | 潘其维, 王兵兵, 陈朝晖. 表面接枝防老剂的白炭黑在天然橡胶中的应用[J]. 复合材料学报, 2013, 30(5):1-8. PAN Q W, WANG B B, CHEN Z H. Application of antioxidant functionalized silicas in natural rubber[J]. Acta Materiae Compositae Sinica, 2013, 30(5):1-8(in Chinese). |
[17] | 穆晓东, 崔雨果, 方庆红, 等. 白炭黑的功能化改性及其改性橡胶基复合材料的制备与表征[J]. 复合材料学报, 2017, 34(1):67-74. MU X D, CUI Y G, FANG Q H, et al. Preparation and characterization of functionalization of silica and its rubber matrix composites[J]. Acta Materiae Compositae Sinica, 2017, 34(1):67-74(in Chinese). |
[18] | PRASERTSRI S, RATTANASOM N. Fumed and precipitated silica reinforced natural rubber composites prepared from latex system:Mechanical and dynamic properties[J]. Polymer Testing, 2012, 31(5):593-605. |
[19] | 周荣杰, 李超群, 杨晓红, 等. 液体天然橡胶作软化剂对NR/白炭黑复合材料性能的影响[J]. 材料导报:研究篇, 2015, 29(4):60-63. ZHOU R J, LI C Q, YANG X H, et al. Effect of liquid natural rubber as softener on the property of NR/silica composite[J]. Materials Review:Research, 2015, 29(4):60-63(in Chinese). |
[20] | PARKER A A, MARCINKO J J, RINALDI P, et al. A relationship between NMR cross-polarization rates and dynamic storage modulae of polymers[J]. Journal of Applied Polymer Science, 2010, 48(48):677-681. |
[21] | PAYNE A. R. Strainwork dependence of filler-loaded vul-canizates[J]. Journal of Applied Polymer Science, 2003, 8(6):2661-2686. |
[22] | 马建华. 胎面橡胶复合材料的微观结构-黏弹性-使用性能关系的研究[D]. 北京:北京化工大学, 2013. MA J H. Study on the relationship of microstructure-viscoelasticity-performance of tire tread composite[D]. Beijing:Beijing University of Chemical Technology, 2013(in Chinese). |
[23] | 汪志芬, 佘晓东, 李思东, 等. 用核磁共振法研究微生物凝固天然橡胶硫化过程交联密度的变化[J]. 广东化工, 2010, 37(1):8-9. WANG Z F, SHE X D, LI S D, et al. Variation of cross-link density of natural rubber coagulated by microorganisms during the vulcanization process studied by means of nuclear magnetic resonance spectroscopy[J]. Guangdong Chemical Industry, 2010, 37(1):8-9(in Chinese). |
[24] | LORENZ O, PARKS C R. The crosslinking efficiency of some vulcanizing agents in natural rubber[J]. Journal of Polymer Science, 1961, 50(154):299-312. |
[25] | 吴思武. 橡胶/纳米碳素复合材料的分散与界面研究[D]. 广州:华南理工大学, 2014. WU S W. Rubber/nanocarbon composites:Dispersion and interface[D]. Guangzhou:South China University of Technology, 2014(in Chinese). |
[26] | ROOJ S, DAS A, STOCKELHUBER K W, et al. Understanding the reinforcing behavior of expanded clay particles in natural rubber compounds[J]. Soft Matter, 2013, 9(14):3798-3808. |
[27] | ROBERTSON C G, ROLAND C M. Glass Transition and interfacial segmental dynamics in polymer-particle composites[J]. Rubber Chemistry & Technology, 2008, 81(3):506-522. |
[28] | SAALWACHTER K. Artifacts in transverse proton NMR relaxation studies of elastomers[J]. Macromolecules, 2005, 38(4):1508-1512. |
[29] | LUO H J, KLPPEL M, SCHNEIDER H. Study of filled SBR elastomer using NMR and mechanical measurements. Macromolecules, 2004, 37(21):8000-8009. |
[30] | BYERS J T. Fillers for balancing passenger tire tread properties[J]. Rubber Chemistry & Technology, 2002, 75(3):527-548. |