首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 203 毫秒
1.
亚麻针刺毡/不饱和树脂复合材料的制备与研究   总被引:6,自引:1,他引:5  
本文主要研究了亚麻纤维非织造物作为复合材料的增强体,采用真空辅助树脂传递模塑法(VARTM)与不饱和树脂复合成板材.最后对复合材料板材进行拉伸性能测试和力学性能比较.  相似文献   

2.
竹原纤维增强复合材料的研究   总被引:1,自引:1,他引:1  
王瑞  王春红  赵思  仝海江  刘丽妍  于飞 《塑料》2006,35(4):38-41
竹原纤维与低熔点聚酯纤维及聚丙烯纤维的混合纤维集合体加工成非织造物,再经热压成型后,制成竹原纤维增强聚酯、聚丙烯热塑性树脂复合材料板材,并与竹原/亚麻纤维增强聚酯、聚丙烯热塑性树脂复合材料进行性能对比,进一步探讨这种复合材料板材的最佳制作工艺。鉴于这种材料可以被用于汽车和建筑等领域,通过对材料力学性能测试结果的模糊综合评判,选出性能最优的复合材料为竹原纤维/LMPET(40/60),在模压温度、时间、压力分别为165℃,30min和30MPa的条件下,所压制复合材料的纵向拉伸强度为136MPa,横向为87·58MPa;纵向弯曲强度为534MPa,横向为470MPa。  相似文献   

3.
玻璃纤维布/苎麻纤维布混杂增强不饱和聚酯树脂的研究   总被引:2,自引:1,他引:2  
雷文  任超  杨涛 《热固性树脂》2007,22(6):25-28
采用玻璃纤维布与苎麻纤维布混杂增强不饱和聚酯(UP)树脂制备复合材料,研究玻纤布与苎麻布的相对比例及偶联剂处理对复合材料力学性能的影响,研究了不同复合材料的吸水性并与玻璃纤维复合材料和苎麻纤维复合材料二者进行了比较。结果表明,混杂纤维增强复合材料的拉伸强度、拉伸模量随混杂纤维中苎麻布含量的增加而下降,弯曲强度及弯曲模量在混杂纤维中苎麻布与玻纤布的比例为10∶20和15∶15时分别达到最大值188.09 MPa和1.56 GPa;所有偶联剂处理均可明显改善复合材料的拉伸模量及弯曲模量,硅烷类偶联剂的效果更佳,NDZ401可使复合材料的拉伸强度得到最大幅度(37.66%)的提高,而KH570及NDZ401对改善弯曲强度效果最佳;复合材料吸水后,厚度变化率大于宽度变化率,温度升高,复合材料吸水后尺寸变化率及吸水率均增大,混杂纤维复合材料的吸水率与玻纤布复合材料的吸水率相近,远低于苎麻布复合材料的吸水率。  相似文献   

4.
本文以氢氧化钠(NaOH)溶液处理苎麻布,采用模压工艺制备不饱和聚酯(UP)树脂/苎麻布复合材料,研究碱液处理对苎麻布、复合材料力学性能及表面、界面形貌的影响.实验结果表明,经适当碱液处理后,苎麻布的拉伸断裂强力及拉伸断裂伸长率均增加,苎麻布的表面形貌更加光滑蓬松,复合材料的拉伸强度及弯曲强度均下降,但冲击强度及弯曲模量得到提高.30wt%NaOH溶液处理可使复合材料的弯曲模量达到最大值,166.38MPa,比未经碱液处理所制得复合材料的弯曲弹性模量提高了110%.碱处理后,复合材料的冲击断面上纤维被树脂紧紧包裹,纤维裸露拔出现象远不如未处理复合材料那样明显.  相似文献   

5.
亚麻纤维增强热固性树脂复合材料板材的研究   总被引:5,自引:0,他引:5  
本文以亚麻纤维作为原料,经过针刺工艺制得亚麻纤维针刺毡,作为复合材料的增强体.通过改变纤维、热固性树脂种类,利用真空辅助RTM方法及模压法制备复合材料板材.对板材进行了拉伸及弯曲性能测试,比较了不同纤维和树脂的结合情况,进一步阐述了板材破坏机理.  相似文献   

6.
以亚麻针刺非织造布为增强基,采用真空辅助树脂传递模塑法制作复合材料,研究了不同针刺工艺对亚麻非织造布及其复合材料力学性能的影响。通过扫描电镜和体式显微镜分别对复合材料的拉伸断面和弯曲断痕进行了观察,并分析了它们的破坏模式。结果表明:采用平行铺网或交叉铺网制成的660.4g/m^2的针刺毡,均可在一定的针刺密度下,使其复合板的拉伸强度、弯曲强度达到国内天然增强材料及普通工程塑料的水平。  相似文献   

7.
以油酸为偶联剂,将氢氧化钠-油酸处理后的黄麻纤维布作为填充材料制备了不饱和聚酯复合材料,并对氢氧化钠处理黄麻纤维的适宜浓度、复合材料的拉伸强度、冲击强度、吸水率进行了研究测试。结果表明:氢氧化钠的适宜浓度为20%,黄麻纤维增强不饱和聚酯树脂的冲击强度及拉伸强度最大值分别为12.75 kJ/m2和33.05 MPa,复合材料的最大吸水率为4.07%。经油酸处理的黄麻纤维可有效提高不饱和聚酯复合材料的性能。  相似文献   

8.
采用非织造加工工艺将经适当脱胶处理的竹原纤维与低熔点聚酯(LMPET)纤维制成混合纤维预成型件,经模压成型制成竹原纤维增强LMPET复合材料板材。研究表明,当模压温度、时间及压力分别为170℃、20 m in及30 MPa,竹原纤维的质量分数为40%时,制得的复合材料的纵、横向拉伸强度分别为136.0、87.6 MPa;纵、横向弯曲强度分别为534.0、470.0 MPa。竹原纤维增强LMPET复合材料初步确定可用于汽车、建材等领域。  相似文献   

9.
采用碱、高锰酸钾及热对剑麻纤维布进行了表面处理,并由真空辅助树脂传递模塑成型(VARTM)工艺制备了剑麻纤维布增强不饱和聚酯树脂复合材料。通过对复合材料的力学性能及吸水性的测试,研究了不同剑麻纤维布表面处理对其不饱和聚酯树脂复合材料性能的影响。结果表明:经过碱处理,复合材料的拉伸、弯曲,冲击强度提高最大,可分别提高26.5%,16.5%和22.6%,吸水率降低了47.5%。对剑麻纤维布进行表面处理可使复合材料的界面性能得到改善,力学性能提高,吸水性降低。  相似文献   

10.
采用真空辅助树脂传递模塑(VARTM)工艺制备了环氧树脂/亚麻纤维复合材料层合板,记录了树脂在不同树脂流动倾角下的充模时间。通过对层合板进行拉伸、弯曲性能测试,研究了树脂流动倾角对复合材料层合板力学性能的影响。结果表明,在VARTM工艺过程中重力效应对树脂充模时间和层合板力学性能有显著影响;充模时间随着树脂流动倾角的增大(从–90°至90°)而增加;复合材料层合板的拉伸强度、拉伸弹性模量、弯曲强度、弯曲弹性模量等均随树脂流动倾角的增大而增大,树脂流动倾角对弯曲强度的影响最大,且对强度的影响高于模量。由于树脂流动倾角影响了树脂与亚麻纤维的结合情况,导致树脂流动倾角为–90°和90°的复合材料层合板在拉伸与弯曲失效时拥有不同的失效形式。  相似文献   

11.
This research investigates the physical and mechanical properties of hybrid composites made of epoxy reinforced by kenaf and flax natural fibers to investigate the hybridization influences of the composites. Pure and hybrid composites were fabricated using bi-directional kenaf and flax fabrics at different stacking sequences utilizing the vacuum-assisted resin infusion method. The pure and hybrid composites' physical properties, such as density, fiber volume fraction (FVF), water absorption capacity, and dimensional stability, were measured. The tests of tensile, flexural, interlaminar shear and fracture toughness (Mode II) were examined to determine the mechanical properties. The results revealed that density remained unchanged for the hybrid compared to pure kenaf/epoxy composites. The tensile, flexural, and interlaminar shear performance of flax/epoxy composite is improved by an increment of kenaf FVF in hybrid composites. The stacking sequence significantly affected the mechanical properties of hybrid composites. The highest tensile strength (59.8 MPa) was obtained for FK2 (alternative sequence of flax and kenaf fibers). However, FK3 (flax fiber located on the outer surfaces) had the highest interlaminar shear strength (12.5 MPa) and fracture toughness (3302.3 J/m2) among all tested hybrid composites. The highest water resistance was achieved for FK5 with the lowest thickness swelling.  相似文献   

12.
制备工艺对亚麻增强热塑性复合材料拉伸力学性能的影响   总被引:1,自引:1,他引:0  
将增强体亚麻纱线和基体丙纶复丝制成pp/亚麻包覆纱后,进行织造,织物用层合热压法制成复合材料.制备工艺中,包覆纱法对复合材料的拉伸强度最好;麻含量50%的复合材料的拉伸强度达到最佳;当纬纱密度相同时,随着经纱密度的增大经向的拉伸强力和拉伸弹性模量也随之增大,而纬向的却随之减小,当经纱密度相同时,随着纬纱密度的增大,经向的拉伸强力和拉伸弹性模量随之减小,纬向的随之增大.  相似文献   

13.
采用复合挤出与口模拉伸技术制备了共聚聚丙烯(coPP)/等规聚丙烯(iPP)自增强线材,以此为增强体、coPP为基体,经热压成型制备高强全聚丙烯复合板材,并考察其力学性能、动态力学性能、可回收性。结果表明,复合板材的拉伸强度和弯曲强度分别可达160 MPa和63 MPa;增强体的加入使板材的储能模量大幅度提高、损耗因子降低;25 %(质量分数,下同)增强体复合板经粉碎、造粒、重新热压得到的回收板材的拉伸强度仅下降7.3 %,弯曲强度几乎没有损失,其内部coPP与iPP的相容性良好,复合板材的可回收性能优异。  相似文献   

14.
Triglyceride oils derived from plants have been used to synthesize several different monomers for use in structural applications. These monomers have been found to form polymers with a wide range of physical properties. They exhibit tensile moduli in the 1–2 GPa range and glass transition temperatures in the range 70–120 °C, depending on the particular monomer and the resin composition. Composite materials were manufactured utilizing these resins and produced a variety of durable and strong materials. At low glass fiber content (35 wt %), composites produced from acrylated epoxidized soybean oil by resin transfer molding displayed a tensile modulus of 5.2 GPa, a flexural modulus of 9 GPa, a tensile strength of 129 MPa, and flexural strength of 206 MPa. At higher fiber contents (50 wt %) composites produced from acrylated epoxidized soybean oil displayed tensile and compression moduli of 24.8 GPa each, and tensile and compressive strengths of 463.2 and 302.6 MPa, respectively. In addition to glass fibers, natural fibers such as flax and hemp were used. Hemp composites of 20% fiber content displayed a tensile strength of 35 MPa and a tensile modulus of 4.4 GPa. The flexural modulus was ∼2.6 GPa and the flexural strength was in the range 35.7–51.3 MPa, depending on the test conditions. The flax composite materials had tensile and flexural strengths in the ranges 20–30 and 45–65 MPa, respectively. The properties exhibited by both the natural- and synthetic fiber-reinforced composites can be combined through the production of “hybrid” composites. These materials combine the low cost of natural fibers with the high performance of synthetic fibers. Their properties lie between those displayed by the all-glass and all-natural composites. Characterization of the polymer properties also presents opportunities for improvement through genetic engineering technology. © 2001 John Wiley & Sons, Inc. J Appl Polym Sci 82: 703–723, 2001  相似文献   

15.
采用6K炭纤维无纬布/网胎交替叠层及12K炭纤维无纬布/网胎交替叠层,在针刺工艺,致密化、热处理工艺完全相同的情况下,制备了密度为1.8g/cm3的热解炭/树脂炭双元基体的两种C/C复合材料产品,考察了针刺预制体结构单元对C/C复合材料性能的影响.结果表明,两种C/C复合材料的热学(垂直方向导热系数)、电学性能及石墨化度基本相当;而针刺6K炭纤维无纬布/网胎预制体C/C复合材料的拉伸、弯曲、压缩、层间剪切强度分别为127MPa,189MPa,263MPa,24.6MPa;其平行方向导热系数为54.6W/m·K,比常规针刺12K炭纤维无纬布/网胎预制体C/C复合材料相应提高了38%,32.2%,32.8%,38.9%,21%,彰显了细化针刺预制体结构单元对C/C复合材料力学性能的显著影响.  相似文献   

16.
Natural fiber composites are known to have lower mechanical properties than glass or carbon fiber reinforced composites. The hybrid natural fiber composites prepared in this study have relatively good mechanical properties. Different combinations of woven and non‐woven flax fibers were used. The stacking sequence of the fibers was in different orientations, such as 0°, +45°, and 90°. The composites manufactured had good mechanical properties. A tensile strength of about 119 MPa and Young's modulus of about 14 GPa was achieved, with flexural strength and modulus of about 201 MPa and 24 GPa, respectively. For the purposes of comparison, composites were made with a combination of woven fabrics and glass fibers. One ply of a glass fiber mat was sandwiched in the mid‐plane and this increased the tensile strength considerably to 168 MPa. Dynamic mechanical analysis was performed in order to determine the storage and loss modulus and the glass transition temperature of the composites. Microstructural analysis was done with scanning electron microscopy. © 2011 Wiley Periodicals, Inc. J Appl Polym Sci, 2011  相似文献   

17.
Aiming to obtain composites with appropriate mechanical properties for pantograph sliders, copper mesh modified carbon/carbon (Cf/Cu/C) composites were prepared by chemical vapor infiltration (CVI) in C3H6 +?N2 atmosphere and impregnation-carbonization (I-C) with furan resin. In this paper, Cf/Cu/C composites with two kinds of preforms and carbon matrixes were obtained. The effect of preforms and carbon matrixes on bending strength was investigated. The results indicated that the bending strength of carbon fiber/copper mesh reinforced pyrolytic carbon matrix composites was about 181.39–195.43?MPa, while that reinforced resin carbon matrix composites had the worst bending strength around 54.45–57.04?MPa, in terms of the same preform. The bending strength of Cf/Cu/C composites in the parallel orientation and vertical orientation were also similar. As for Cf/Cu/C composites with the same carbon matrix, the bending strength of Cf/Cu/C composites with non-woven fiber/fiber web/copper mesh type preform was higher than that with fiber web/copper mesh type preform. However, the bending strength of carbon fiber/copper mesh reinforced resin carbon matrix composites showed the opposite trend, and its reasons were analyzed and discussed taking advantage of the fracture mechanisms.  相似文献   

18.
Flax fiber‐reinforced polylactic acid (PLA) biocomposites were made using a new technique incorporating an air‐laying nonwoven process. Flax and PLA fibers were blended and converted to fiber webs in the air‐laying process. Composite prepregs were then made from the fiber webs. The prepregs were finally converted to composites by compression molding. The relationship between the main process variables and the properties of the biocomposite was investigated. It was found that with increasing flax content, the mechanical properties increased. The maximum tensile strength of 80.3 MPa, flexural strength of 138.5 MPa, tensile modulus of 9.9 GPa and flexural modulus of 7.9 GPa were achieved. As the molding temperature and molding time increased, the mechanical properties decreased. The thermal and morphological properties of the biocomposites were also studied. The appropriate processing parameters for the biocomposites were established for different fiber contents. POLYM. COMPOS., 34:1611–1619, 2013. © 2013 Society of Plastics Engineers  相似文献   

19.
以聚丙烯(PP)为基体,鳞片石墨(FG)为填料,通过添加偶联剂、开炼机混炼、模压成型的方法,制备了具有较高热导率和优良力学性能的PP/FG导热复合材料。考察了硅烷偶联剂的品种及用量、FG的粒径及含量对复合材料热导率和力学性能的影响。结果显示,使用偶联剂处理的FG对复合材料的力学性能具有一定的增强作用,但是材料的热导率降低;当KH 550添加量为FG含量的1%时,材料的力学性能最好;随着FG粒径的增大,材料的热导率明显提高,力学性能相应下降,粒径为17μm的FG与148μm的FG制备的复合材料相比,热导率提高了52.3%,拉伸强度和弯曲强度分别由34.4 MPa和51.5 MPa下降到25.1 MPa和43.0 MPa;随着FG含量的增加,材料的热导率增大,当17μm的FG含量为70%时,材料的热导率是纯PP的22.1倍,拉伸弹性模量和弯曲弹性模量也随之增大,断裂拉伸应变和断裂弯曲应变减小,拉伸强度和弯曲强度先减小后增大,并且在FG含量为20%时降到最低。  相似文献   

20.
制备工艺对亚麻增强聚丙烯复合材料拉伸性能的影响   总被引:4,自引:0,他引:4  
以亚麻纤维为增强体,与聚丙烯(PP)长丝进行丝束级共混,形成PP包覆亚麻的纱线结构,利用机织工艺织成二维机织布,作为复合材料的预制件。采用层合热压方法制备PP/亚麻复合材料板材。通过对板材拉伸性能测试及扫描电镜(SEM)拉伸断口形貌分析,研究了不同纤维体积分数、织造密度及织造组织等因素对复合材料拉伸性能的影响。结果表明,在选取最优热压温度与压力的条件下,纤维体积分数为50%的板材性能最优;经向密度相同时,拉伸性能随着纬向密度的增加而提高;经、纬向密度均相同时,斜纹3/1组织的板材性能最优,纬向最大拉伸强度可达92.42 MPa。  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号