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1.
采用热压机层压成型工艺制备了苎麻短纤维(SRF)层间增韧碳纤维/环氧树脂(CF/EP)复合材料层压板,研究了SRF的长度、面密度及其表面偶联处理对CF/EP复合材料层间断裂韧性的影响,并进一步研究了SRF的铺入对复合材料弯曲、拉伸性能的影响。研究结果表明,层间SRF的铺入明显改善了CF/EP复合材料的I型和II型层间断裂韧性(G_(IC)和G_(IIC)),当表面偶联处理的纤维长度为6mm、面密度为12g·m~(-2)时,增韧效果最佳,GIC由497.48J·m~(-2)增加到667.54J·m~(-2),提高了34.24%;GIIC由508.52J·m~(-2)增加到862.11J·m~(-2),提高了69.54%。此外,铺入SRF对复合材料的弯曲、拉伸性能也有一定程度的提高。通过SEM观察发现,SRF的增韧机制与其层间桥联以及裂纹扩展过程中从基体中拔出与劈裂等现象有关。  相似文献   

2.
结构化增韧层增韧RTM复合材料性能   总被引:1,自引:0,他引:1       下载免费PDF全文
从复合材料离位增韧思想出发,选用具有高孔隙率的尼龙无纺布(PNF)作为结构化增韧层,采用RTM工艺制备了PNF层间增韧改性的U3160碳纤维增强环氧3266树脂基复合材料(U3160-PNF/3266),并研究了其韧性相关性能和增韧机制。结果表明:U3160-PNF/3266复合材料层间仍保持其原有的结构形式,同时与层间树脂相互贯穿形成了一种非反应诱导相分离的双连续结构,并且这种双连续结构表现出显著的增韧效果。U3160-PNF/3266复合材料的Ⅰ型层间断裂韧性和Ⅱ型层间断裂韧性分别提高了1.1倍和1.4倍,冲击后压缩强度由212MPa提高到281MPa。  相似文献   

3.
研究了低密度芳纶短纤维(AF)对碳纤维增强环氧树脂复合材料(CF/EP)-铝蜂窝夹芯结构的界面增韧效果和增韧机制.制备了复合材料夹芯梁,将6 mm长度的AF制成絮状纤维薄层用于夹芯梁界面层的增韧,并采用非对称双悬臂梁实验对增韧和未增韧夹芯梁进行了界面断裂韧性的测量.相比于未增韧夹芯梁试件,增韧试件的平均临界能量释放率提...  相似文献   

4.
制备了国产CCF800H碳纤维增强环氧树脂基复合材料,通过调控环氧树脂中的热塑性增韧树脂含量,探索热塑性树脂增韧颗粒含量对复合材料Ⅱ型层间断裂韧性的影响,结果表明,在碳纤维对增韧剂颗粒的过滤效应下,热塑性树脂增韧颗粒会在复合材料层间富集,并且随着热塑性树脂增韧剂含量增加,复合材料层间厚度增大.随热塑性树脂增韧剂含量增加,在层间树脂基体韧性及层间高韧树脂厚度增大的共同作用下,复合材料Ⅱ型层间断裂韧性逐步提升.  相似文献   

5.
基于聚醚酰亚胺优越的力学性能和纳米纤维膜高比表面积、高孔隙率的特性,利用气泡静电纺丝工艺制备不同厚度的纳米纤维膜改善碳纤维环氧复合材料的层间韧性。结果发现不同膜厚度增韧的双悬臂梁(DCB)试件的I型层间断裂值(GIC)均有所提高,特别是膜厚为0.058±0.007 mm时,层合板的增韧效果最好,比未增韧试件提高了114.55%。通过复合材料层间断裂界面的SEM照片证实了纳米纤维膜在界面处通过桥联约束效应及钉锚作用有效提高了复合材料的层间断裂韧性。  相似文献   

6.
曹俊  王洋  张博明 《复合材料学报》2016,33(10):2141-2150
采用溶剂法和热熔法制备了不同有机黏土质量分数的有机黏土/聚醚砜(PES)-环氧复合材料,通过对其微观形态和力学性能的研究,揭示了复合材料的增韧机制。在有机黏土/PES-环氧复合材料中添加T800H(12K)碳纤维,制备了T800H-有机黏土/PES-环氧复合材料预浸料单向带,采用热压罐工艺制备了复合材料单向板,对其I型、II型层间断裂韧性进行了研究。结果表明:T800H-有机黏土/PES-环氧复合材料的层间断裂韧性随有机黏土质量分数变化趋势与有机黏土/PES-环氧复合材料的断裂韧性趋势一致,证明了增韧机制的正确性。   相似文献   

7.
采用尼龙无纺布(PNF)作为结构化增韧层,制备了PNF层间增韧改性的U3160碳纤维增强3266环氧树脂(U3160-PNF/3266)复合材料,研究了U3160-PNF/3266复合材料的面内力学性能及湿热老化后的力学性能变化,并分析了复合材料湿热老化前后的层间形貌。结果表明:PNF增韧层的引入并未导致复合材料面内力学性能的下降,与未增韧的U3160碳纤维增强3266环氧树脂(U3160/3266)复合材料相比,增韧复合材料U3160-PNF/3266的90°拉伸性能有所提高。而湿热老化处理对U3160-PNF/3266复合材料的基体和界面性能影响相对明显,尤其是尼龙纤维与树脂基体之间的界面结合性能,湿热老化处理后增韧复合材料的90°压缩和层间剪切性能保持率均明显低于未增韧复合材料的。  相似文献   

8.
本文选用增韧E-51为基体分别与碳纤维、玻璃纤维和混杂纤维复合,测定了这两种复合材料的层间剪切强度、纵向冲击强度和层间断裂韧性。又通过扫描电镜观察断口形貌来研究增强材料与基体的界面粘结对复合材料力学性能的影响。研究结果表明增韧E-51基体在玻璃纤维表面形成一层厚度均匀的包复层。复合材料的破坏主要发生在包复层与基体之间,裂纹分枝多,Gc值高,而碳/增韧E-51中的碳纤维表面没有包复层,破坏发生在纤维与基体之间,裂纹分枝少,层间剪切强度与玻璃纤维复合材料相近而Gc值很低。本文还对比了增韧E-51基体与F-46基体在界面粘接中的作用。研究结果表明,用玻璃纤维与F-46复合,界面粘结牢固,复合材料的层剪强度很高,Gc值低。   相似文献   

9.
航空级复合材料层板的定域相变控制与增韧研究进展   总被引:1,自引:0,他引:1  
航空飞行器要求损伤容限设计,因此要求其复合材料具有高的韧性.与目前国内外广泛采用的整体增韧树脂基体或插层改性所进行的研究不同,主要介绍了在"离位"增韧的概念下,以时间-温度-转变(Time Temperature Transition,TTT)图为手段开展的复合材料层板层间定域相结构控制和增韧研究进展,给出了典型"离位"增韧复合材料的层板的层间相结构和韧性性能,证明了"离位"增韧可普适地将各种树脂基体的航空级复合材料层板层间定域的相形貌调控为相反转、双连续的相结构,从而达到大幅提高复合材料韧性的目的.  相似文献   

10.
通过双悬臂梁试验(DCB)研究了金属表面处理和界面插层协同作用对碳纤维增强树脂复合材料(CFRP)-热成型钢超混杂层合板层间力学性能的影响。试验结果表明,采用金属表面处理与界面插层协同增韧方案,可以极大地提升层合板的I型层间断裂韧性。其中,喷砂/界面胶膜插层试件(GB36#/AF)的I型层间断裂韧性相比于脱脂试件提高了343%;喷砂/界面纯树脂插层试件(GB36#/EP)相比于脱脂试件,其Ⅰ型层间断裂韧性提高了129%。并基于内聚区模型对CFRP-热成型钢超混杂层合板分层失效进行了有限元模拟。最后借助激光共聚焦扫描显微镜(LSM)、接触角测量仪(CAG)、扫描电子显微镜(SEM)等对热成型钢表面形貌和试件的断裂面进行了表征并揭示了层间增韧的机制。   相似文献   

11.
A novel initial crack insertion method, “intralaminar film insertion method”, was proposed to investigate the fracture toughness of unidirectional carbon fiber reinforced plastic (CFRP) laminates when the crack propagates inside the ply and not in the interlayer resin-rich area. Here, a release film was inserted inside a single lamina during the resin impregnation process of prepreg manufacturing. Mode I intralaminar fracture toughness tests were carried out for conventional CFRP laminates and interlayer toughened CFRP laminates. For comparison, two conventional methods were used to introduce initial cracks. One is the “interlaminar film method”, where a release film is inserted between two prepreg plies during the lay-up process. The other is the “machined slit method”, where a slit notch is machined in parallel to the layer of CFRP laminates. It was demonstrated that the proposed “intralaminar film method” can correctly evaluate the intralaminar fracture toughness of both conventional CFRP laminate and interlayer toughened CFRP laminate from the initial value to the propagation value. For this range, it was also found that the intralaminar fracture toughness of interlayer toughened CFRP laminate was the same as that of conventional CFRP laminate. Thus, the intralaminar fracture toughness was not influenced by interlayer toughening.  相似文献   

12.
Several techniques are introduced to enhance the interlaminar fracture toughness of CFRP laminates using cup-stacked carbon nanotubes (CSCNTs). Prepared CSCNT-dispersed CFRP laminates are subject to Double Cantilever Beam (DCB) and End Notched Flexure (ENF) tests in order to obtain mode-I and mode-II interlaminar fracture toughness. The measured fracture toughnesses are compared to that of CFRP laminates without CSCNT to evaluate the effectiveness of CSCNT dispersion for the improvement of fracture toughness. All CSCNT-dispersed CFRP laminates exhibit higher fracture toughness, and specifically, CSCNT-dispersed CFRP laminates with thin epoxy interlayers containing short CSCNTs have three times higher fracture toughness than CFRP laminates without CSCNT. SEM observation of fracture surfaces is also conducted to investigate the mechanisms of fracture toughness improvement. Crack deflection mechanism is recognized in the CSCNT-dispersed CFRP laminates, which is considered to contribute the enhancement of interlaminar fracture toughness.  相似文献   

13.
采用国产CCF800H高强中模碳纤维增强环氧制备了复合材料,研究不同热塑性树脂含量对复合材料张开(Ⅰ)型层间断裂韧度的影响,研究表明:随着热塑组分含量的提高,复合材料的裂纹起始应变能量释放率(GⅠC-init)与裂纹稳态扩展应变能量释放率(GⅠC-prop)都获得了大幅度提升,在增韧组分质量分数大于20%时,增韧聚芳醚酰亚胺粉体可在复合材料层间富集形成层间高韧区,并在复合材料层间形成了由"连续相"和"分散相"组成的层间增韧结构。  相似文献   

14.
针对碳纤维/环氧树脂预浸料,对比了直接在树脂中加入碳纳米管(CNTs)后制备预浸料以及将CNTs喷涂在预浸料表面2种CNTs加入方式对CNTs-碳纤维/环氧树脂复合材料层合板I型与II型层间断裂韧性及层间剪切强度的影响。通过对树脂黏度、固化反应以及玻璃化转变温度的考察,分析了CNTs含量对树脂性能的影响,考察了添加方法对CNTs长度与形态的影响。分析了2种CNTs加入方式对CNTs-碳纤维/环氧树脂层合板断裂韧性及层间剪切强度的改善效果与作用规律。结果表明:CNTs的加入使树脂的黏度提高,固化反应程度下降;2种分散方法对CNTs的长度与形态无明显影响;直接在树脂中加入CNTs对CNTs-碳纤维/环氧树脂复合材料I型与II型层间断裂韧性的提高效果低于在碳纤维/环氧树脂预浸料表面喷涂CNTs的方式,后者的CNTs利用率较高;由于CNTs团聚及对树脂固化反应的影响,CNTs含量过高会使得其对CNTs-碳纤维/环氧树脂层合板的增韧效果下降。  相似文献   

15.
The reinforcement effects of two nanofillers, i.e., multi-walled carbon nanotube (MWCNT) and vapor grown carbon fiber (VGCF), which are used at the interface of conventional CFRP laminates, and in epoxy bulk composites, have been investigated. When using the two nanofillers at the interface between two conventional CFRP sublaminates, the Mode-I interlaminar tensile strength and fracture toughness of CFRP laminates are improved significantly. The performance of VGCF is better than that of MWCNT in this case. For epoxy bulk composites, the two nanofillers play a similar role of good reinforcement in Young’s modulus and tensile strength. However, the Mode-I fracture toughness of epoxy/MWCNT is much better than that of epoxy/VGCF.  相似文献   

16.
MWNTs-EP/PSF (polysulfone) hybrid nanofibers with preferred orientation were directly electrospun onto carbon fiber/epoxy prepregs and interlaminar synchronously reinforced and toughened CFRP composites were successfully fabricated. With MWNTs-EP loading increasing, the oriented nanofibers were obtained accompanying with enhanced alignment of inner MWNTs-EP. Flexural properties and interlaminar shear strength of composites were improved with increasing MWNTs-EP loadings, whereas fracture toughness attained maximum at 10 wt% MWNTs-EP loading and then decreased. Based on these results, multiscale schematic modeling and mechanism schematic of hybrid nanofibers reinforced and toughened composites were suggested. Due to the preferred orientation of nanofibers, MWNTs-EP was inclined to align vertically to carbon fiber direction along the in-plane of interface layer. The proposed network structures, containing four correlative phases of MWNTs-EP/PSF sphere/carbon fiber/epoxy matrix, contributed to simultaneous improvement of strength and toughness of composites, which was realized by crack pinning, crack deflection, crack bridging and effective load transfer.  相似文献   

17.
Qi  Xinyu  Wu  Xiaopeng  Gong  Youkun  Ning  Huiming  Liu  Feng  Zou  Rui  Zhou  Shengbing  Song  Zengrui  Xiang  Chenxin  Hu  Ning 《Journal of Materials Science》2021,56(21):12198-12211

Delamination damages limit the application potential of Fiber metal laminates, hence improving the interlaminar mechanical properties has always been a research focus and challenge in this field. The toughening effect of two fillers, i.e., nano-aramid fibers (ANFs) and short-aramid fibers (ASFs), which are used at the interface of glass fiber-aluminum laminates, have been investigated. Chemical pretreatments of aluminum alloy surface were conducted to ensure the better adherence between the fiber composites and metal sheets. Results revealed that Mode-I and Mode-II fracture toughness of the laminates could be simultaneously improved when using the two fillers at the interface of glass fiber-aluminum laminates. Attributed to the better dispersion of ANFs in epoxy matrix, the toughening performance of ANFs is better than that of ASFs in this case. The mechanism of interlaminar toughening was revealed with electron microscopic observation of fracture morphology. Meanwhile, the finite element analysis based on bilinear cohesive zone model was adopted to predict the increased interlaminar tensile and shear strength.

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18.
Epoxy matrix toughened by polyethersulfone (PES) and polyamide (PA) microparticles was designed and the in-situ interlaminar toughened carbon fiber/epoxy composites were fabricated. Synergistic toughening effect of PES and PA on epoxy matrix was achieved due to semi-IPN structure of PES toughened matrix and uniform dispersion of PA microparticles. Shear-calender orientation of PA microparticles was found during prepreg processing and the microparticles remained on the surface of prepreg due to fiber-bundle filtration. The in-situ formed toughening interlayer of PA microparticles and interfacial bonding between PA and epoxy matrix were detected, which resulted in enhanced fracture toughness, CAI, and transverse flexural strength of the composite based on the PES/PA synergistically toughened matrix. SEM images of fracture morphology of the composite showed evidence of enhanced plastic deformation created by PES and PA, and crack deflection and bridging by PA microparticles.  相似文献   

19.
Edge delamination is frequently observed in carbon fiber reinforced plastic (CFRP) laminates after machining, due to the low fracture toughness of the resin interfaces between carbon fiber plies. In this study, the effects of incorporating tough aramid fibers into the brittle CFRP system are quantified by measuring the residual properties of bolted CFRP. By adding short-aramid-fiber interleaves in CFRP laminates, the residual tensile strength have been substantially increased by 14 % for twill-weave laminates and 45 % for unidirectional laminates respectively. Moreover, tensile failure was observed as the major mode of toughened laminates, in contrast to shear failure of plain laminates. The qualitative FEM results agreed well with the experimental results that edge delamination would cause relatively higher shear stress and therefore alter the failure mode from tensile failure to shear failure.  相似文献   

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