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1.
采用卧式高能球磨和机械合金化工艺制备了纳米碳管增强铜基(CNTs/Cu)复合粉体,并采用真空冷压烧结制备出CNTs/Cu复合材料,研究了高能球磨工艺参数对复合粉体与材料性能的影响规律,包括球磨时间和搅拌轴转速对复合粉体粒度、松装密度以及力学性能的影响,结果表明,高能球磨技术有利于CNTs与铜的界面结合和机械合金化。高能球磨的最佳工艺条件:搅拌轴线速度4.2/5.4m/s,球磨时间2~4h,得到的CNTs/Cu复合粉体的中位径为11.76μm,松装密度为1.356g/cm3。CNTs/Cu复合材料的致密度到达94%,硬度到达92HB,抗拉强度到达138Mpa。  相似文献   

2.
石墨/Cu自润滑复合材料具有良好的摩擦学性能和耐腐蚀性能,在高速铁路领域具有广阔的应用前景.传统石墨/Cu自润滑复合材料中由于石墨与基体不润湿,复合材料界面结合强度低,在材料承受载荷时容易造成石墨相的剥离、脱落,导致复合材料在高载荷服役条件下性能较差.采用化学镀覆工艺在石墨表面镀覆软金属Sn元素调控石墨/Cu复合材料界...  相似文献   

3.
铜(Cu)基复合材料具有优异的力学、热学、电学及耐磨和耐腐蚀等性能,广泛应用于各种工业技术领域。石墨烯(Graphene,Gr)具有二维平面结构和优异的综合性能,是金属基复合材料理想的增强相。石墨烯增强铜基复合材料拓展了铜及其合金的应用范围,适当的制备方法可以使其在保持优异导电导热性能的同时拥有更好的力学性能。石墨烯在铜基体中的存在形式主要以还原氧化石墨烯、石墨烯纳米片或与金属氧化物/碳化物纳米颗粒连接,旨在增强两者之间的界面结合。因此,石墨烯在铜基体中的结构完整性及存在形式直接影响了其性能的优劣。本文综述了Cu/Gr复合材料的制备及模拟方法、复合材料的性能评价及力学性能与功能特性的相互影响规律。指明Cu/Gr复合材料的发展关键在于:(1)分散性与界面结合;(2)三维石墨烯结构的构建;(3)界面结合对力学性能与功能特性的影响及两者间的相互协调。  相似文献   

4.
In this paper, a new type of green reactive powder concrete (GRPC) with compressive strength of 200 MPa (C200 GRPC) is prepared by utilizing composite mineral admixtures, natural fine aggregates, short and fine steel fibers. The quasi-static mechanical properties (mechanical strength, fracture energy and fiber–matrix interfacial bonding strength) of GRPC specimens, cured in three different types of regimes (standard curing, steam curing and autoclave curing), are investigated. The experimental results show that the mechanical properties of the C200 GRPC made with the cementitious materials consisting of 40% of Portland cement, 25% of ultra fine slag, 25% of ultra fine fly ash and 10% of silica fume, 4% volume fraction of steel fiber are higher than the others. The corresponding compressive strength, flexural strength, fracture energy and fiber–matrix interfacial bonding strength are more than 200 MPa, 60 MPa, 30,000 J/m2 and 14 MPa, respectively. The dynamic tensile behavior of the C200 GRPC is also investigated through the Split Hopkinson Pressure Bar (SHPB) according to the spalling phenomena. The dynamic testing results demonstrate that strain rate has an important effect on the dynamic tensile behavior of C200 GRPC. With an increase of strain rate, the peak stress rapidly increases in the dynamic tensile stress–time curves. The C200 GRPC exhibits an obvious strain rate stiffening effect in the case of high strain rate. Finally, the mechanism of excellent static and dynamic properties gains of C200 GRPC is also discussed.  相似文献   

5.
木粉(WF)填充增强高密度聚乙烯(HDPE)复合材料具有良好的环境效益,少量引入短切碳纤维(SCF)可进一步提高其力学性能。为改善SCF与WF/HDPE复合材料中塑料基体的界面结合,提高SCF在WF/HDPE复合材料中的增强作用,采用气相、液相及气液双效氧化3种表面处理方式处理SCF,通过挤出工艺制备短切碳纤维增强木粉/高密度聚乙烯复合材料(SCF-WF/HDPE),探讨了不同处理方法对SCF-WF/HDPE复合材料性能的影响。SEM观察显示,表面处理增大了SCF的表面粗糙度,可提高其与基体的界面结合;动态力学性能分析证实碳纤维提高了存储模量。测试结果表明:表面处理过的短切碳纤维可使SCF-WF/HDPE复合材料的力学性能、热力学性能和蠕变性能均得到显著提高,其中气相表面处理的效果最好。对比WF/HDPE复合材料,SCF-WF/HDPE的拉伸强度提高了34.5%,弯曲强度提高了23%,冲击强度提高了54.7%。  相似文献   

6.
玉米秸秆纤维/脱硫石膏复合材料的性能   总被引:1,自引:0,他引:1       下载免费PDF全文
采用玉米秸秆纤维作为脱硫建筑石膏的增强材料, 通过力学性能测试实验研究了不同掺量秸秆纤维对石膏基复合材料力学性能的影响, 讨论了秸秆纤维的增强机制。结果表明, 秸秆纤维的掺量为5%时, 试样的抗折强度和抗压强度较空白样分别提高了92.31%和7.14%; 采用碱处理法、 聚丙烯酰胺化学包覆法、 丙烯酸化学包覆法对秸秆纤维进行表面改性, 通过力学性能测试实验和扫描电镜微观形貌观察研究了纤维表面改性对石膏基复合材料力学性能的影响。结果表明, 纤维表面改性改善了复合材料的界面结合状况, 进一步提高了复合材料的力学性能, 丙烯酸化学包覆改性可使脱硫建筑石膏复合材料的抗折强度较未改性玉米秸秆纤维/脱硫石膏复合材料提高55.71%, 抗压强度提高22.99%。   相似文献   

7.
为了增强玻化微珠/水泥发泡保温复合材料的力学性能和保温性能,通过掺加改性物理泡沫降低发泡保温复合材料的密度和导热系数,采用改性纤维对发泡保温复合材料进行增强。研究了纤维增强发泡保温复合材料的力学性能和耐水性能,并利用扫描电镜对试样内部微观形貌进行观察,探讨了改性泡沫和改性纤维对发泡保温复合材料的增强机制。结果表明,掺加泡沫明显降低了发泡保温复合材料的密度和导热系数,当泡沫掺量为1.05 mL/g时,试样密度和导热系数分别为186 kg/m3和0.056 W/(m·K)。泡沫改性可有效改善发泡保温复合材料的强度和软化系数,掺加改性泡沫试样的抗折强度、抗压强度和软化系数较掺加乳胶粉试样的分别提高了21.05%、21.43%和13.56%。改性纤维可显著提高发泡保温复合材料的强度和软化系数,掺加改性纤维试样的抗折强度、抗压强度和软化系数较掺加未改性纤维试样的分别提高了25.93%、13.51%和8.33%。  相似文献   

8.
采用熔铸-中间热处理-变形工艺制备了形变Cu-11Cr-0.07Ag原位复合材料, 利用扫描电镜、数字微欧计及液晶电子拉力试验机研究了材料的微观组织、力学性能和导电性能。结果表明: 随着冷加工变形量的增加, 铸态无序分布的Cr枝晶状组织逐渐转为沿线拉方向排列, 形成定向排列的Cr纤维, 抗拉强度大幅提高, 电导率略有下降。经适当冷加工变形和中间热处理后的形变Cu-11Cr-0.07Ag原位复合材料具有较好的强度和电导率匹配。冷加工变形量为8时, 其抗拉强度和电导率分别达到851 MPa和73.9% IACS。  相似文献   

9.
Cu/Ti3SiC2 composite: a new electrofriction material   总被引:1,自引:0,他引:1  
 Cu/Ti3SiC2 composite, a new electrofriction material, was prepared, for the first time, by PM method. The microstructure, mechanical and electrical properties of the Cu/Ti3SiC2 composites were investigated and were compared with those of Cu/graphite composites. The results demonstrated that Cu/Ti3SiC2 composites had superior mechanical properties over Cu/graphite composites. At filer content of less than 20 vol%, the electrical conductivity for Cu/Ti3SiC2 composites was higher than that for Cu/graphite composites; at high filer content, the electrical conductivity for Cu/Ti3SiC2 composites was lower than that for Cu/graphite composites because of the presence of residual pores. It was found that like Cu/graphite composite, Cu/Ti3SiC2 was a self-lubricated material. The compressive yield strength, Brinell hardness, relative ratio of compressive for Cu-30 vol% Ti3SiC2 composites are 307 MPa, 140, 15.7% respectively. Received: 29 December 1998/Accepted: 15 February 1999  相似文献   

10.
In this study, flake Cu-5Ag alloy powder with mean diameter-thickness ratio (D/T) higher than 110 were successively prepared by ball milling. Effect of milling time on the morphology and D/T of flake powder was investigated in detail. The subsequent aging treatment at 400 ℃ was proved to be effective in enhancing the oxidation resistance of flake Cu-5Ag powder. After oxidation at 300℃ for 10 min, the oxygen content in the surface of aged Cu-5Ag flake powder was reduced by approximately 50 % compared to the as-milled Cu-5Ag flake powder. The aging enhanced the precipitation of Ag phase along the grain boundaries and in the interior of grains, which could act as hindrances to the preferential inward diffusion of oxygen along the defects during oxidation.  相似文献   

11.
观察Al-Fe合金的显微组织并测量其力学性能和导电性能,研究了Cu元素和形变热处理对其性能的影响。结果表明:在铸态Al-Fe-Cu合金组织中,Cu元素在基体内均匀分布,而Fe元素在晶界处偏析;挤压态的Al-0.7Fe-0.2Cu合金其性能最优:导电率为59.90%IACS,抗拉强度为108 MPa,硬度为31.2HV;随着退火温度的提高Al-0.7Fe-0.2Cu合金的抗拉强度急剧降低,在400℃退火时其抗拉强度最低(100 MPa),伸长率最高(31.3%);在250℃退火时导电率出现峰值(62.61%IACS)。在退火Al-0.7Cu-0.2Cu合金中有许多细小针状的θ(Al2Cu)相析出,并与位错交互缠结。随着退火温度的提高合金中的位错密度降低,晶粒细化。  相似文献   

12.
Copper–matrix composites were made by powder metallurgy (PM). The reinforcements were molybdenum particles, silicon carbide whiskers and titanium diboride platelets. The coated filler method, which involves a reinforcement coated with the matrix metal, was used. In contrast, conventional PM uses the admixture method, which involves a mixture of matrix powder and reinforcement. For all the composite systems, the coated filler method was found to be superior to the admixture method in providing composites with lower porosity, greater hardness, higher compressive yield strength, lower coefficient of thermal expansion (CTE), higher thermal conductivity and lower electrical resistivity, though the degree of superiority was greater for high than low reinforcement contents. In the coated filler method, the coating on the reinforcement separated reinforcement units from one another and provided a cleaner interface and stronger bond between reinforcement and matrix than the admixture method could provide. The highest reinforcement content attained in dense composites (<5% porosity) made by the coated filler method was 70 vol% Mo, 60 vol% TiB2 and 54 vol% SiC. The critical reinforcement volume fraction above which the porosity of composites made by the admixture method increases abruptly is 60% Mo, 42% TiB2 and 33% SiC. This fraction increases with decreasing aspect ratio of the reinforcement. Among Cu/Mo, Cu/TiB2 and Cu/SiC at the same reinforcement volume fraction (50%), Cu/Mo gave the lowest CTE, highest thermal conductivity and lowest electrical resistivity, while Cu/SiC gave the greatest hardness and Cu/TiB2 and Cu/SiC gave the highest compressive yield strength. Compared to Cu/SiC, Cu/TiB2 exhibited much higher thermal conductivity and much lower electrical resistivity. This revised version was published online in November 2006 with corrections to the Cover Date.  相似文献   

13.
双极板是质子交换膜燃料电池的重要组成部分,石墨与聚合物的复合材料双极板是目前研究的重要方向。采用模压热固化二步法,以酚醛树脂为粘结剂、天然鳞片石墨为导电骨料、炭黑为添加剂制备了质子交换膜燃料电池用复合材料双极板。系统研究了不同种类石墨对石墨/酚醛树脂复合材料电性能和抗弯强度的影响。结果表明:以天然鳞片石墨为导电原料时,所制备的石墨/酚醛树脂双极板的性能最好;添加导电炭黑能有效提高石墨/酚醛树脂复合材料的电导率;在复合材料制备中加入4wt%的碳纤维,碳纤维-石墨/酚醛树脂复合材料的抗弯强度提高了29%;碳纤维表面液相氧化处理能有效提高纤维与基体间的结合强度,随着处理时间的延长与处理温度的升高,碳纤维-石墨/酚醛树脂复合材料的电导率和抗弯强度都有很大程度的提高;最终固化温度主要影响酚醛树脂的交联程度,随着最终固化温度的升高,酚醛树脂的交联程度增加,电导率增大,但抗弯强度有一定程度减小。  相似文献   

14.
采用草酸盐共沉淀法制备了YBa2Cu3O7(YBCO)粉体,利用真空热压烧结法制备了不同质量分数的YBCO/Cu复合材料,测定了YBCO/Cu复合材料的密度、硬度和电导率,利用MMU-5GA磨损试验机对YBCO/Cu复合材料进行了摩擦磨损试验。采用XRD、SEM和TEM对YBCO粉体及YBCO/Cu复合材料的微观结构、磨损表面形貌及物相组成进行了表征。研究了YBCO质量分数对YBCO/Cu复合材料组织及性能的影响。结果表明:所制备的YBCO粉体物相为Y123相,其层状结构明显,粉体纯度高、杂质少,粒度达到纳米级;纳米YBCO可显著细化YBCO/Cu复合材料的基体组织,提高复合材料的摩擦学性能。随着YBCO质量分数增加,基体组织中纳米YBCO颗粒分布均匀度降低,逐渐出现团聚;YBCO/Cu复合材料的电导率和密度降低,硬度先升高后降低,摩擦系数逐渐减小。3%YBCO/Cu复合材料的摩擦磨损性能最好。YBCO/Cu复合材料强化机制为Orowan强化、热错配强化和细晶强化;其磨损机制主要为塑变磨损、磨粒磨损和疲劳剥落。  相似文献   

15.
The high temperature (22–600 °C) properties were evaluated for a Cu-20%Fe composite deformation processed from a powder metallurgy compact. The ultimate tensile strengths decreased with increasing temperature but were appreciably better than those of similarly processed Cu at temperatures up to 450 °C. At 600 °C, the strength of Cu-20%Fe was only slightly better than that of Cu as a result of the pronounced coarsening of the Fe filaments. However, at temperatures of 300 and 450 °C, the strength of Cu-20%Fe is about seven and six times greater, respectively, than that of Cu, as compared to about a two fold advantage at room temperature. Therefore, Cu-20%Fe composites made by deformation processing of powder metallurgy compacts have mechanical properties much superior to those of similarly processed Cu at room temperature and at temperatures up to 450 °C. The pronounced decrease in electrical conductivity of deformation processed Cu-20%Fe as compared to Cu is attributed to the appreciable dissolution of Fe into the Cu matrix which occurred during the fabrication of the starting compacts where temperatures up to 675 °C were used. While the powder metallurgy compacts used for the starting material for deformation processing in this study did not lead to a high conductivity composite, the powder metallurgy approach should still be a viable one if processing temperatures can be reduced further to prevent the dissolution of Fe into the Cu matrix.  相似文献   

16.
以高温盐浴法对天然鳞片石墨粉体(GF)进行表面TiC镀层处理,然后采用真空热压烧结法制备TiCGF/Cu复合材料,研究了粉体表面涂层和GF体积分数对复合材料微观结构、热导率及抗弯强度的影响。系列测试结果表明:随着GF体积分数的降低以及粉体表面TiC镀层的形成,TiC-GF/Cu复合材料平行于GF片层方向的热导率有所降低,抗弯强度有所提升。其中在GF的体积分数占TiC-GF/Cu复合材料70%时,这种变化最为明显,平行于GF片层方向的TiC-GF/Cu复合材料热导率下降幅度最大,从676W/(m·K)下降到526 W/(m·K)。同时,TiC-GF/Cu复合材料的微观结构进一步说明,GF表面的TiC涂层对GF/Cu复合材料的断裂模型起着重要的作用。  相似文献   

17.
为了研究SiCw/Cu复合材料的制备工艺、形成机理,进一步研究SiC含量对材料的组织结构、力学性能的影响.采用热压法和热等静压法制备了不同SiCw含量的SiCw/Cu复合材料,并对复合材料的致密度、显微组织和物相组成、维氏硬度、拉伸和压缩性能进行了研究,对拉伸断口进行分析.结果表明:SiCw有效阻碍Cu基体晶粒的长大,随着SiCw含量的增加,热压制备的SiCw/Cu复合材料的致密度、断后伸长率、拉伸屈服强度下降,而气孔率、维氏硬度与压缩屈服强度显著增加,抗拉强度先增加后降低.热压制备得到的1wt%SiCw/Cu复合材料,具有相对最优的综合力学性能:抗拉强度为156.9 MPa,拉伸屈服强度为112.5 MPa.采用热等静压法制备的3wt%SiCw/Cu复合材料,各方面性能都要优于相同组分的热压材料,抗拉强度达到175.6 Mpa,拉伸屈服强度达到123.2 MPa,维氏硬度达到101.8 HV.复合材料的强度是SiCw的增强作用与孔隙的弱化作用共同作用的结果,SiCw/Cu复合材料的断裂行为既表现出一定的韧性特征,又表现出一定的脆性特征.  相似文献   

18.
采用螺杆挤出机研究了添加连续芳纶纤维增强木粉/高密度聚乙烯(CAF-WF/HDPE)复合材料,为改善CAF与WF/HDPE复合材料界面相容性,分别采用磷酸和硅烷偶联剂处理纤维。对比表面处理前后的CAF形态分析显示,经过处理的CAF表面粗糙度增加;采用磷酸和硅烷偶联剂处理,纤维束从基体中的拔出强度分别提高了94.9%和77.6%,表明处理后的CAF与WF/HDPE复合材料的界面结合强度有所提高。对比WF/HDPE复合材料,在挤出成型过程中加入未处理CAF,CAF-WF/HDPE复合材料拉伸强度、弯曲强度和冲击强度分别提高了32.1%、35.1%、515.1%;CAF采用硅烷偶联剂处理后,CAF-WF/HDPE复合材料对应的力学性能分别提高了42.0%、37.4%、550.2%。动态力学分析表明:表面处理后CAF与WF/HDPE复合材料的界面相容性得到改善。   相似文献   

19.
In this work, the effect of SiC particle size and its amount on both physical and mechanical properties of Al matrix composite were investigated. SiC of particle size 70 nm, 10 μm and 40 μm, and Al powder of particle size 60 μm were used. Composites of Al with 5 and 10 wt.% SiC were fabricated by powder metallurgy technique followed by hot extrusion. Phase composition and microstructure were characterized. Relative density, thermal conductivity, hardness and compression strength were studied. The results showed that the X-ray diffraction (XRD) analysis indicated that the dominant components were Al and SiC. Densification and thermal conductivity of the composites decreased with increasing the amount of SiC and increased with increasing SiC particle size. Scanning electron microscope (SEM) studies showed that the distribution of the reinforced particle was uniform. Increasing the amount of SiC leads to higher hardness and consequently improves the compressive strength of Al–SiC composite. Moreover, as the SiC particle size decreases, hardness and compressive strength increase. The use of fine SiC particles has a similar effect on both hardness and compressive strength.  相似文献   

20.
The present study focuses on fabrication and characterization of polylactic acid wood composite fabricated using fused filament fabrication 4D printing technology. The major tests performed to investigate the effect of nanosilica and nanoalumina included shape recovery rate, hardness, compressive strength, dynamic mechanical properties and Thermo-gravimetric analysis. The result of mechanical test indicated that the addition of 2 wt.% nanoalumina improved the hardness, compressive strength and flexural strength by 40 %, 25 % and 3.3 % respectively. On the other hand, the addition of 2 wt.% nanosilica improved the hardness, compressive strength and flexural strength by 60 %, 55 % and 10 % respectively. Further, the addition of nanosilica and nanoalumina improved the thermal stability and decreased the maximum shape recovery rate of wood polylactic acid composite. Nanosilica reinforced wood polylactic acid composite indicated a better choice as compared to nanoalumina reinforced wood polylactic acid composite in terms of mechanical properties, thermal properties and maximum shape recovery rate.  相似文献   

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