共查询到20条相似文献,搜索用时 140 毫秒
1.
采用电感耦合射频等离子体(ICP)和介质阻挡放电(DBD)低温等离子体对高性能连续纤维表面进行改性,分别采用X光电子能谱(XPS)、原子力显微镜(AFM)和动态接触角测定仪(DCA)等分析测试手段系统地研究了等离子体处理时间、放电功率、放电气压等对连续碳纤维、聚苯并二噁唑(PBO)纤维改性处理前后,纤维表面状态、表面组成、表面形貌、浸润性能的变化规律以及经等离子体处理前后纤维增强双马树脂基复合材料界面结构与性能的影响关系及变化规律、复合材料界面粘结和破坏机理.研究结果表明,经过等离子体处理后,纤维表面接枝上了大量的含羧基、羟基等极性官能团,表面粗糙度增加,表面自由能增加,纤维浸润性能得到明显改善,导致纤维与双马树脂基体界面层间剪切强度(ILSS)明显提高,复合材料的破坏模式由未处理的界面脱粘破坏转变为等离子体处理后的树脂基体破坏.最后,对纤维表面时效性及其对纤维增强双马树脂基复合材料界面性能的影响关系也进行了论述. 相似文献
2.
3.
石墨填充高密度聚乙烯基复合材料导热性能的研究 总被引:7,自引:0,他引:7
选用导热系数较高的无机填料石墨对高密度聚乙烯(HDPE)进行填充改性;采用偶联剂和磨盘型力化学反应器对石墨进行表面处理,提高石墨与聚合物基体的界面相互作用;用自行研制的升温速率测定装置测试材料的导热性能,并研究材料的导热机理;用SEM观察复合材料的微观形态.实验结果表明:经偶联剂处理后,石墨在HDPE中均匀分布;测试试样的上表面温度随时间的变化可用三次多项式T=A0+A1t+A2t2+A3t3拟会;HDPE/石墨复合材料升温速率随石墨含量增加而增大;石墨含量为35%的复合材料最大升温速率为HDPE的1.75倍. 相似文献
4.
对Kevlar纤维进行了改性,使其成为己内酰胺阴离子开环聚合的活性中心,采用阴离子接枝法在Kevlar纤维(KF)表面接枝尼龙6低聚物,并与基体尼龙6混合,用挤出和注塑方式制备了尼龙6/改性Kevlar纤维(PA6/KF1)复合材料。ESEM和XPS分析表明,Kevlar纤维表面接枝上了尼龙6低聚物。比较了尼龙6/未改性Kevlar纤维(PA6/KF0)和PA6/KF1复合材料的力学性能及破坏形态,同时探讨了其破坏机理。结果表明,接枝尼龙6的KF1增强了KF与尼龙6复合材料界面的相互作用,拉伸强度、弯曲强度和弯曲模量分别提高了20.69%、12.26%和14.23%,但冲击强度降低了8.2%;当复合材料被破坏时,未改性纤维表面只粘附有少量的树脂尼龙6,而改性纤维的表面有较多的树脂包覆层,呈部分非界面脱粘破坏,具有良好的界面结合能力。 相似文献
5.
界面在纤维增强复合材料中具有特别重要的作用,它不但是纤维增强复合材料中增强相和基体相连接的纽带,也是应力及其他信息传递的桥梁。良好的界面粘结才能使纤维的性能得到充分发挥,进而纤维增强复合材料的力学性能得到提高,因此对纤维增强复合材料的界面粘结性能、界面微观结构的研究非常重要。本文总结了纤维增强复合材料界面剪切强度、界面微观结构的表征方法,包括单纤维拔出试验、纤维断裂试验、纤维压出试验等,并侧重介绍了拉曼光谱对纤维增强复合材料界面粘结性能、界面微观结构的研究。 相似文献
6.
7.
8.
氧化石墨烯接枝碳纤维新型增强体的制备与表征 总被引:4,自引:2,他引:2
利用“Grafting-to”化学修饰法制备氧化石墨烯接枝国产碳纤维新型增强体。利用红外光谱、X射线光电子能谱和原子力显微镜对样品的官能团和表面形貌进行表征;利用接触角测量、单丝拉伸方法研究了接枝前后纤维单丝的润湿性能及拉伸强度,并通过微脱粘法分析了其复合材料的界面剪切强度。结果表明:氧化石墨烯的接枝修饰使国产碳纤维表面粗糙度提高了166%,表面能提高了46.3%,拉伸强度提高了7.8%,复合材料的界面剪切强度提高了111.7%。 相似文献
9.
以沥青为碳前驱物,通过加热分解法制备了具有不同热解碳含量的硅-热解碳-石墨复合材料,并测试及分析了材料的形貌、结构及电化学性能。结果表明,沥青质量在320~560℃的温度区间内迅速减小,沥青质量的减小是由于氢元素的去除。经过高温分解制得的热解碳与沥青的质量比率为65%。在硅-热解碳-石墨复合材料中,硅颗粒分散在石墨表面,热解碳覆盖在硅颗粒表面,热解碳增强了硅颗粒与石墨间的界面结合力。适当含量的热解碳增大了复合材料的放电比容量且改善了循环稳定性;过量的热解碳不能进一步提升复合材料的放电容量。 相似文献
10.
液态氧化法处理超高分子量聚乙烯纤维 总被引:17,自引:0,他引:17
用液态氧化法对超高分子量聚乙烯纤维进行了表面处理,研究了处理介质、处理时间对超高分子量聚乙烯/环氧复合材料层间剪切强度的影响,用扫描电子显微镜、XPS表面元素分析、毛细浸润法测接触角等方法探讨了纤维表面性能处理前后的变化,以及纤维与树脂的界面结合情况。 相似文献
11.
Xin Qian Jianhai Zhi Liqun Chen Jing Huang Yonggang Zhang 《Surface and interface analysis : SIA》2013,45(5):937-942
Changes in surface physicochemical structures of polyacrylonitrile‐based carbon fibers resulted from low current density electrochemical oxidation were monitored by scanning electron microscopy (SEM) and X‐ray photoelectron spectroscopy (XPS). The relationship between the interlaminar shear strength (ILSS) values of carbon fiber‐reinforced polymers (CFRPs) and carbon fiber surface chemistry including elemental ratios and the relative content of oxygen‐containing functional groups were researched. SEM results revealed that the electrochemical oxidation got rid of surface contaminants generated during the production process. XPS analysis showed that the relative contents of oxygen and nitrogen increased by 446% and 202%, respectively, after the electrochemical oxidation. Carbon fiber surface chemistry was of paramount importance to the interfacial properties of CFRPs. The higher the carbon fiber surface activity, the better the interfacial bonding was, and an increase in the acidic‐group contents was responsible for a higher ILSS value. However, when the current density increased to 1.0 A/m2, the interfacial bonding between carbon fiber and the epoxy resin became weak which led to the decline in ILSS values. Copyright © 2012 John Wiley & Sons, Ltd. 相似文献
12.
Interface characteristic of aramid fiber reinforced poly(phthalazinone ether sulfone ketone) composite 下载免费PDF全文
Jing Wang Ping Chen Xuhai Xiong Caixia Jia Qi Yu Keming Ma 《Surface and interface analysis : SIA》2017,49(8):788-793
Interface is an important microstructure for advanced polymer‐matrix composite. The composite interface is the bridge and the link for stress transferring between the fiber and the matrix resin. In this work, oxygen plasma treatment was used for modification of aramid fiber surface. The effects of plasma treatment power on interlaminar shear strength of composite were evaluated by short‐beam shear test. The morphologies of both the aramid fiber surface and its composite interface fracture were observed by SEM. The chemical structure and surface chemical composition of the plasma‐treated and separated fibers were analyzed by Fourier transform infrared (FTIR) and XPS, respectively. The results showed that the interlaminar shear strength of composite was enhanced by 33% with plasma treatment power of 200 W. The FTIR and XPS results indicated that the active functional groups were introduced onto the aramid fiber surface by plasma treatment forming chemical bonds with the poly(phthalazinone ether sulfone ketone) resin. The SEM results proved that the aramid fiber surface was roughened by plasma treatment enhancing the mechanical bond with the poly(phthalazinone ether sulfone ketone) resin. The composite rupture occurred from the composite interface to the fiber or the matrix resin. Copyright © 2017 John Wiley & Sons, Ltd. 相似文献
13.
K. S. Seo R. E. Fornes R. D. Gilbert J. D. Memory 《Journal of Polymer Science.Polymer Physics》1988,26(2):245-255
Surface energy changes of an epoxy based on tetraglycidyl diaminodiphenyl methane (TGDDM)/diaminodiphenyl sulfone (DDS), T-300 graphite fiber, and T-300/5208 (graphite fiber/epoxy) composites have been investigated after irradiation with 0.5 MeV electrons. The surface energy of TGDDM-DDS epoxy increases monotonically with radiation doses up to 1,000 Mrad mainly due to increased concentration of polar groups. IR and ESCA spectral evidence indicates that carbonyl groups are formed, probably from the tertiary hydrogen at the carbon where the ? OH group is attached in the cured epoxy. The polarity of the graphite fiber and the graphite fiber/epoxy interface also increases with radiation dose. These results and the roles of oxygen are discussed in connection with mechanical properties of epoxy/graphite fiber composites exposed to ionizing radiation. 相似文献
14.
The nature of the structural gradient in epoxy curing at a glass fiber/epoxy matrix interface using FTIR imaging 总被引:1,自引:0,他引:1
González-Benito J 《Journal of colloid and interface science》2003,267(2):326-332
The curing process of an epoxide system was studied at the interface formed between a silane-coated glass fiber and an epoxy matrix. The gradient in the structure of the epoxy resin as a result of the cure process at the fiber/matrix interfacial region was monitored by FTIR imaging. For comparison, the epoxy curing at the interface formed between the epoxy resin and (a) an uncoated glass fiber and (b) a polyorganosiloxane (obtained from the silane used for the glass-fiber coating) were also monitored. Chemically specific images of the OH and the H-N-H groups near the interface region were obtained. These images suggest that there is a chemical gradient in the structure of the matrix from the fiber surface to the polymer bulk due to different conversions. The basis of the different kinetics of the curing reactions is a result of amino group inactivation at the interface. This deactivation translates into an off-stoichiometry of the reaction mixture, which is a function of the distance from the surface of the glass fiber. 相似文献
15.
16.
H.-P. Boehm 《Angewandte Chemie (International ed. in English)》1966,5(6):533-544
Atoms or groups foreign to the structure of a solid are often bonded to its surface. On diamond, graphite, and even silicon dioxide, the foreign atoms are bonded covalently, whereas the bonding of the structural groups to titanium oxide and alumina is predominantly ionic. Oxides are normally covered with a monomolecular hydroxide layer. Changes in the valence of the metal atoms lead to changes in the acidity of the surface; for example, reduction of surface Ti4+ions gives the surface of TiO2 an acidic nature. 相似文献
17.
近些年来,碳纤维(CF)由于具有优异的力学性能,被用作复合材料的增强体。但CF表面缺少极性基团,呈现化学惰性,使CF与树脂(EP)之间的界面粘结性能较差。为了改善该问题,需要对CF表面进行改性。氧化石墨烯(GO)和碳纳米管(CNT)具有大的比表面积,且表面含有大量的极性基团,将二者引入CF表面,可以有效改善CF与EP之间的界面问题。利用电泳沉积技术成功地制备了GO和CNT/EP复合材料,并显示出各种优异的界面性能。本文对国内外通过电泳沉积方法在CF表面沉积CNT和GO的改性以及电泳沉积GO和CNT的应用现状进行了综述和分析,并在此基础上,对电泳沉积碳纳米材料改性CF的研究趋势及前景进行展望。 相似文献
18.
PBO fiber is one of the most promising reinforcements in resin matrix composite because of its excellent mechanical properties. However, the inert and smooth surfaces make it the poor interface adhesion with resin matrix, which seriously limits the application in composites. In this article, we report a method to modify the surface of PBO fibers with 2,2-Bis (3-amino-4-hydroxyphenyl) hexafluoropropane(BisAPAF)in supercritical CO2 to enhance interfacial properties. Chemical structures, surface elemental composition and functional groups, and surface morphology were characterized by FT-IR spectrometer, X-ray photoelectron spectroscopy (XPS), and scanning electron microscopy (SEM), respectively. The mechanical properties of the samples were tested by a tensile tester. Static contact angle and microdebonding tests were used to characterize the wetting ability and interfacial shear strength (IFSS) of the fiber and epoxy resin. The results showed that the BisAPAF could be solved in scCO2 and introduced more groups, –NH2, –OH, and –CF3 on the fiber surface, resulting in the mechanical properties and the wettability of PBO fiber slightly improved. Moreover, the fiber surface roughness was also increased obviously. The IFSS between the modified PBO fiber and epoxy resin increased from 8.18 MPa to 31.4 MPa when the treating pressure was 14 MPa. In general, the method to modify PBO fibers surface using BisAPAF in scCO2 can effectively improve their interfacial properties. 相似文献
19.
Y. Yang C. Min Z. Xu H. Liang Q. Li M. Ji S. Liu W. Wang N. Li X. Pei 《Materials Today Chemistry》2022
In this work, dense molybdenum disulfide (MoS2) nanosheets were grown onto polydopamine (PDA) functionalized aramid fabric (AF) surface via a simple hydrothermal method to improve the wettability between AF surface and polyhexahydrotriazine (PHT) resin, thus resulting in stronger AF/resin interfacial bonding. The PDA-assisted surface modification on AF generated a high active interface allowing the nucleation and subsequent growth of MoS2. Moreover, this nanosheet-coated reinforcement fiber enabled the viscous liquid of resin precursor to spread over and form intimate contact with its surface, which eventually promoted the formation of strong interfacial bonding between AF-MoS2 and cured resin matrix. In addition, the enhanced interfacial bonding between the reinforcement and matrix generated stable mechanical interlock within the resulting AF-MoS2/PHT composites, and thus, contributed better thermal stability, higher tensile strength, and tribological properties. Compared with AF/PHT composites, the tensile strength and elongation at break of the AF-MoS2/PHT composites increased by 32.5% and 50%, and the average friction coefficient and wear rate of AF-MoS2/PHT composites decreased by 43.9% and 86.3%, respectively. Furthermore, the composites realized the non-destructive recovery of expensive AF at 25 °C. Overall, our study demonstrates a dependable strategy to construct the recyclable AF-MoS2/PHT composites, which exhibit valuable applications in tribology. 相似文献
20.
The strength, performance, and application of carbon fiber reinforced plastic (CFRP) composites are directly affected by the interfacial bonding between fiber and resin. Wet winding technology is a commonly used composite productive process, and improving interfacial bonding of composites by on-line treatment has always been the focus of attention. In this paper, an on-line ultrasonic treatment system is designed and realized, the resin content of prepregs is determined by the dissolution method; standard deviation and dispersion coefficient are also calculated. The surface morphology, internal structure of prepregs, and the component of resin are observed and analyzed using a Metallurgical Microscope, scanning electron microscope (SEM), and near infrared radiation spectra (NIRS). The strength and performance of prepregs [(tensile strength, bending strength, tensile modulus of elasticity, bending modulus of elasticity, and interlaminar shear strength (ILSS)] are also tested. The results show the on-line ultrasonic treatment system can effectively improve the interfacial bonding of CFRP composites and enhance the strength and performance of CFRP composites. 相似文献