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1.
以萘为基体碳源,Lewis酸为催化剂,通过对芳烃小分子的催化缩聚建立了一种新型原位聚合C/C复合材料的增密方法。分别对两种不同密度的炭纤维增强C/C复合材料预制体进行致密化处理,研究了原位增密次数对材料体积密度、电阻率、弯曲强度和断面形貌的影响。结果表明:经过五次致密化循环,样品密度分别由原来的1.05 g/cm3和1.68g/cm3提高到1.52g/cm3和1.83g/cm3,电阻率由4.44mΩ.cm和0.84mΩ.cm降至1.09mΩ.cm和0.28mΩ.cm,弯曲强度由26MPa和86MPa增至95MPa和211MPa,说明原位聚合增密方法非常有利于快速提高复合材料的密度和其他物理性能,是一种有前途的增密新途径。  相似文献   

2.
Abstract

Three-dimensionally braided carbon fibre reinforced SiC matrix composites have been fabricated and the effects of coating treatment on the mechanical properties have been investigated. It has been found that pyrocarbon coating can improve the strength of the heat treated carbon fibres. When the coating thickness was 0.5 m, the composites had better mechanical properties: a flexural strength of 643 MPa and a fracture toughness of 17.9 MPa m12. The composites also exhibited a toughening fracture mode.  相似文献   

3.
采用电泳沉积(EPD)在1k碳布表面均匀加载了碳纳米管(CNTs), 借助化学气相沉积(CVD)致密化碳布叠层预制体, 制备了EPD CNTs掺杂的二维(2D)碳/碳(C/C)复合材料。研究了EPD CNTs对2D C/C复合材料致密化过程、微观组织和弯曲性能的影响。研究结果表明: EPD CNTs在碳纤维表面呈现平面内高密度、杂乱取向分布特征, 该形貌CNTs降低了热解炭在碳纤维预制体内的沉积速率, 诱导了高石墨微晶堆垛高度(Lc)、低(002)晶面面内方向上的沉积有序度(La)热解炭的形成; EPD CNTs的掺杂可提高C/C复合材料的弯曲强度和模量: 当CNTs含量为0.74wt%时, 复合材料弯曲强度和模量可达150.83 MPa和23.44 GPa, 比纯C/C复合材料提高了31.4%和13.9%; 继续提高CNTs含量, 复合材料弯曲强度降低, 这与过高含量EPD CNTs导致复合材料密度降低有关; 同时, EPD CNTs的掺杂使得C/C复合材料断裂模式由脆性断裂转变为假塑性断裂, 复合材料断裂塑性的提高是由于EPD CNTs造成的碳基体结构的变化以及碳纤维的大量拔出。  相似文献   

4.
界面改性涂层对调节复合材料的力学性能起到重要作用。特别是在气相渗硅(GSI)制备C_f/SiC复合材料时,合适的界面改性涂层一方面保护C纤维不受Si反应侵蚀,另一方面调节C纤维和SiC基体的界面结合状况。通过在3D-C纤维预制件中制备先驱体浸渍-裂解(PIP)SiC涂层来进行界面改性,研究了PIP-SiC涂层对GSI C_f/SiC复合材料力学性能的影响。结果表明:无涂层改性的GSI C_f/SiC复合材料力学性能较差,呈现脆性断裂特征,其弯曲强度、弯曲模量和断裂韧性分别为87.6 MPa、56.9GPa和2.1 MPa·m~(1/2)。具有PIP-SiC界面改性涂层的C_f/SiC复合材料力学性能得到改善,PIP-SiC涂层改性后,GSI C_f/SiC复合材料的弯曲强度、弯曲模量和断裂韧性随着PIP-SiC周期数的增加而降低,PIP-SiC为1个周期制备的GSI C_f/SiC复合材料的力学性能最高,其弯曲强度、弯曲模量、断裂韧性分别为185.2 MPa、91.1GPa和5.5 MPa·m~(1/2)。PIP-SiC界面改性涂层的作用机制主要体现在载荷传递和"阻挡"Si的侵蚀2个方面。  相似文献   

5.
采用环状对苯二甲酸丁二醇酯(CBT)原位聚合制备了连续玻璃纤维(GF)增强聚环状对苯二甲酸丁二醇酯(PCBT)复合材料。考察了聚合反应中催化剂用量对PCBT结晶度以及GF/PCBT复合材料力学性能的影响。当催化剂用量为0.5%(质量分数)时, PCBT的结晶度为53%, GF/PCBT的力学性能达到最佳, 拉伸强度为522 MPa, 拉伸模量为27 GPa, 弯曲强度为481 MPa, 弯曲模量为24.8 GPa, 层间剪切强度(ILSS)为43 MPa。SEM观察表明, 发现催化剂用量为0.5%时, 树脂与纤维的结合性较好。进一步研究了淬火和退火后处理对复合材料力学性能的影响。发现复合材料退火处理后具有较好的力学性能, 其中拉伸强度为545 MPa, 弯曲强度为495 MPa。  相似文献   

6.
Compressive fracture behavior under transverse and longitudinal compressive loading are determined for 3D needle-punched carbon/carbon (C/C) composites with single rough laminar (RL) pyrocarbon matrix or dual matrix of RL pyrocarbon and resin carbon. The results of Weibull statistics analysis indicate that scale parameter σ0 of transverse and longitudinal compression of the composites with single matrix are 153.41 and 94.26 MPa, and σ0 of the composites with dual matrix are 205.16 and 105.33 MPa, respectively. The mean compressive strength of both composites is nearly equal to σ0 under each experimental condition. Failure modes of both composites under transverse and longitudinal compressive loading are shear and extension, respectively. Both composites exhibit quasi-ductile fracture behavior under transverse compression. Many small fragments of fibers and matrix carbon on the fracture surface of the composites are observed for single matrix composites. And the fiber bundle breakage with extensive debonding occurs for dual matrix composites. Under longitudinal loading, the composites with single matrix show quasi-ductile fracture behavior and delamination and splitting of non-woven long carbon fiber cloth layers are observed. The composites with dual matrix exhibit catastrophic failure behavior and crack runs through the composites along compressive loading direction.  相似文献   

7.
采用热压成型法制备纺织结构碳纤维增强聚醚醚酮(CFF/PEEK)航空热塑性复合材料。通过对碳纤维(CF)进行去浆、活化,及采用磺化聚醚醚酮(SPEEK)进行表面涂层,显著提高了CFF/PEEK复合材料的层间剪切强度。讨论了热压温度、压力等工艺参数对材料综合力学性能的影响规律,确定优化工艺条件,制备的复合材料拉伸强度和弯曲强度分别达到714.29 MPa和955.84 MPa。借助扫描、金相显微镜等观察手段,发现经过界面改性处理后,复合材料断裂发生在基体内部而非界面处,基体与增强体浸润性和结合性良好。  相似文献   

8.
采用溶胶-凝胶分散和热压烧结制备了短切碳纤维(CFs)/Fe3Al-Al2O3复合材料。分别通过电化学镀Cu和化学气相沉积SiC对CFs表面修饰和改性,研究了Cu镀层和SiC涂层对CFs/Fe3Al-Al2O3复合材料显微组织、相组成、力学性能及断裂行为的影响。结果表明,未修饰的CFs在Fe3Al-Al2O3基体中受到严重侵蚀,CFs/Fe3Al-Al2O3复合材料致密度低,抗弯强度仅为239.0 MPa,与Fe3Al-Al2O3强度相当;表面镀Cu可有效保护CFs不被侵蚀,同时提高了CFs/Fe3Al-Al2O3复合材料的烧结致密性和界面结合强度,从而明显提高了复合材料的断裂强度,但断裂过程中纤维拔出较短;CFs表面沉积SiC的CFs/Fe3Al-Al2O3复合材料组织均匀致密,表面涂层完整,且与纤维及基体之间结合力相当,断裂过程中,涂层既可随纤维一起拔出基体,也可与CFs分离而留在基体之中,SiC涂层与纤维及基体之间的弱相互作用很大程度上促进了纤维脱黏和拔出,从而促进CFs/Fe3Al-Al2O3复合材料韧化所需的渐进破坏机制。   相似文献   

9.
采用液相浸渍-炭化和CVI复合工艺, 制备出在炭纤维和热解炭之间具有中间相沥青过渡层的炭/炭复合材料, 借助偏光显微镜、扫描电镜、透射电镜以及力学性能测试研究了所制备的炭/炭复合材料的微观结构与力学性能. 结果表明: 在偏光显微镜下中间相沥青炭的光学活性高于热解炭的光学活性, 中间相沥青炭在SEM和TEM下均呈片层条带状结构, 热解炭在SEM下呈“皱褶状”片层结构, 在TEM下为粒状结构; 在HRTEM下, 中间相沥青炭、热解炭和炭纤维的晶化程度依次降低. 在加载过程中, 材料内部多层次的界面通过改变裂纹扩展路径而延缓其扩展速度, 在断口形貌上体现出锯齿状的断裂形式, 纤维拔出长度适中, 材料表现出韧性破坏的断裂特征. 材料具有较高的力学性能, 抗弯强度达到244MPa, 断裂韧性达到9.7MPa·m1/2.  相似文献   

10.
Two-dimensional(2D) carbon/carbon(C/C) composites with multilayered texture, especially with different thickness of high-textured(HT) pyrocarbon layer, were prepared by isothermal, isobaric chemical vapor infiltration(CVI) technique. The influence of matrix microstructure on mechanical properties of C/C composites was investigated by polarized light microscopy, scanning electron microscopy and three-point bending test. The results show that the samples with multilayer-textured pyrocarbon matrix own a higher flexural strength than the one with pure medium-textured structure, which is attributed to multiple crack deflection and interfacial sliding between different textured pyrocarbon layers and between sub-layers within HT layer. The increase in thickness of HT pyrocarbon layer improves the plasticity of the samples and renders the fracture in pseudo-plastic behavior.  相似文献   

11.
《Composites Part A》1999,30(4):445-450
Results are presented that elucidate: (a) the effects of fiber coating on retained fiber strength and mechanical properties of Nicalon-fiber-reinforced SiC matrix composites; and (b) the role of residual stresses in the interfacial bond strength of SiC-fiber-reinforced reaction-bonded Si3N4 matrix composites. For Nicalon-fiber-reinforced SiC matrix composites that were fractured in a flexural mode, retained in-situ fiber strength, ultimate strength and work-of-fracture (WOF) of the composites increased with increasing thickness of the fiber coating and reached maximum values at a coating thickness of ≈0.3 μm. A direct correlation between the variation of in-situ fiber strength and the variation of ultimate strength and WOF of the composites clearly indicates the critical role of the retained in-situ strength of reinforcing fibers in composites. Fiber pushout tests performed on SiC-fiber-reinforced reaction-bonded Si3N4 matrix composites indicate that both debonding and frictional shear stresses decreased with increasing fiber content. These variations are consistent with the variation of residual radial stress on fibers, as measured by neutron diffraction, i.e. residual stresses decreased with increasing fiber content. Because fracture behavior is strongly controlled by interfacial bond strength, which is proportional to the residual radial stress, appropriate control of residual stresses is critical in the design of composites with desired fracture properties.  相似文献   

12.
薄层化碳布缝合碳/碳复合材料制备与性能   总被引:1,自引:0,他引:1       下载免费PDF全文
为获得高性能、低成本碳/碳复合材料,以商用级T700大丝束薄层化碳纤维展宽平纹布和航空航天级T300小丝束碳纤维缎纹布为原材料制备缝合预制体,采用化学气相沉积工艺方法制备了一系列缝合碳/碳复合材料,对材料的气相致密化特征、微观结构特征和力学性能进行了测试与分析.研究结果表明,碳布规格和缝合间距对材料气相致密化效果和力学...  相似文献   

13.
两种双基体C/C复合材料的微观结构与力学性能   总被引:1,自引:0,他引:1  
借助偏光显微镜、扫描电镜以及力学性能测试研究了两种双基体C/C复合材料的微观结构与力学性能。结果表明:基体碳在偏光显微镜下呈现出热解碳的光滑层组织,沥青碳的各向同性、镶嵌和流域组织。在SEM下普通沥青碳为"葡萄状"结构,中间相沥青碳为片层条带状结构。具有多层次界面结构的材料可以提高材料的弯曲强度,改善材料的断裂韧度,两种材料在载荷-位移曲线中载荷为台阶式下降,呈现出假塑性断裂特征。材料A和材料B的弯曲强度分别为206.68,243.66MPa,断裂韧度分别为8.06,9.66MPa·m1/2,材料B的弯曲强度、断裂韧度均优于材料A。  相似文献   

14.
Defects and microvoids in the surface region not only influenced the tensile strength and strain of carbon fibers but also affected the interface formation with pyrocarbon. The interface formation in carbon-carbon composites was closely correlated to rearrangement of carbon atoms and the evolution of surface structure of carbon fiber. Half-open elliptic microvoids or edge planes at the fiber surface were beneficial to the mechanical interlocking as well as chemical bonding with pyrocarbon, contributing to a compatible interface with high interlaminar shear strength of the composites. The closed microvoids in the surface region of carbon fiber would hardly open up to bond with pyrocarbon, which brought negative effects to the mechanical properties of composites. Carbon fiber without obvious microvoids or surface defects tended to have better tensile strain but form weak interface with pyrocarbon, leading to a better pseudo-ductility and ability to absorb more fracture energy under load.  相似文献   

15.
改性炭纤维增强聚四氟乙烯复合材料的制备   总被引:1,自引:0,他引:1  
研究了不同处理条件对复合材料拉伸、摩擦性能的影响,并对拉伸断口及磨损表面形貌进行了分析。结果表明,Ar等离子体处理、聚四氟乙烯乳液包覆的炭纤维能有效增大复合材料界面结合力并提高拉伸强度;当处理时间为9 min时,复合材料的拉伸强度为24.3 MPa,断裂伸长率为340%,磨损率为2.4×10-6mm3/N.m;与纯PTFE相比,拉伸强度和断裂伸长率分别提高了48%和100%,磨损率下降55.6%。  相似文献   

16.
为改善碳纤维表面性能以及碳纤维/树脂复合材料的界面性能,对PAN基高模量碳纤维(HMCF)表面进行聚合物涂层处理。研究了不同潜伏性固化剂含量的聚合物涂层对HMCF表面以及碳纤维/树脂复合材料的界面性能的影响。IR分析表明,聚合物涂层与纤维或树脂基体发生了化学反应。扫描电镜和动态机械热分析的结果也说明,聚合物涂层能够提高...  相似文献   

17.
研究了“离位”增韧对RTM聚酰亚胺(PI-9731)树脂基复合材料力学性能的影响。结果表明: 当增韧剂的质量分数为15%时, 经粉末法和薄膜法“离位”增韧G827/PI-9731复合材料的室温层间剪切强度从增韧前的97.9MPa分别提高到108MPa和110MPa, 高温(288℃)层间剪切强度变化不大。G827/PI-9731复合材料经粉末法“离位”增韧后, Ⅰ型断裂能释放率从增韧前的310J/m2提高到410J/m2, Ⅱ型断裂能释放率从增韧前的590J/m2提高到939J/m2。而经过薄膜法“离位”增韧后, 其复合材料的Ⅰ型断裂能释放率提高到459J/m2, Ⅱ型断裂能释放率提高到1100J/m2。经电镜分析表明, 由于热塑性聚酰亚胺的引入, 在复合材料层间区域形成热固/热塑相反转结构, 在裂纹扩展的过程中, 包覆热塑性聚酰亚胺的PI-9731粒子发生明显取向和变形, 从而提高韧性。   相似文献   

18.
为获得高性能针刺碳/碳复合材料, 拓展其应用领域, 通过优化针刺工艺参数, 设计并研制了不同结构参数的针刺预制体。采用沥青高压致密化工艺将针刺预制体制备成一系列针刺碳/碳复合材料, 研究了针刺碳/碳复合材料的微观结构、力学性能和热物理性能。结果表明, 针刺预制体的针刺深度、针刺密度以及短/长纤维配比等对碳/碳复合材料的力学性能和热物理性能影响显著。当针刺深度为12 mm、针刺密度为22针/cm 2、短/长纤维比例为1.0 : 4.8时, 针刺碳/碳复合材料表现出优良的综合性能, 拉伸、压缩、弯曲、面内剪切和层间剪切强度分别达到207、228、285、54和28 MPa。  相似文献   

19.
在沉积温度为1080--1200℃、沉积总压力为10 kPa和气体滞留时间为0.01 s的条件下, 以天然气为碳源, 以氮气为载气, 使用新型ICVI工艺对预制体初始密度为0.43 g/cm$^{3}$(纤维体积分数25%)的2D针刺整体炭毡进行致密化,
在150 h内制备出表观密度为1.75 g/cm3的C/C复合材料. 用偏光显微镜和高分辨扫描电镜观察了热解碳基体的微观组织结构, 分析了三点弯曲试样的断口形貌. 结果表明: 制备的C/C复合材料具有粗糙层(RL)组织结构, 试样的弯曲强度为164.77 MPa、模量为21.34 GPa, 表现为阶梯式失效, 断裂行为呈现出明显的假塑性.  相似文献   

20.
以碳毡为基底原位生长了碳纳米管(CNTs),借助化学气相渗透制备了CNTs-C/C复合材料。研究了催化剂含量对碳纳米管生长的影响以及不同含量碳纳米管对C/C复合材料弯曲性能的影响。结果表明:催化剂对CNTs产量影响较大,且含量越多,生成的CNTs量越大;原位生长CNTs引入的催化剂会导致CNTs-C/C复合材料弯曲性能变差;CNTs的加入改变了热解碳的沉积行为,诱导了球状和锥状小尺寸热解碳的形成,减少了微裂纹的出现。适量CNTs能提高C/C复合材料的弯曲强度和模量,并改善材料的断裂行为。  相似文献   

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