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1.
SiCw/Al—Li复合材料热挤压变形及其对组织和性能的影响   总被引:2,自引:1,他引:1  
采用热挤压的工艺方法成功地对压铸态SiCw/Li-Cu-Mg-Zr复合材料进行二次加工,研究了挤压态复合材料的微观组织和性能。结果表明,SiCw/Al-Li-Cu-Mg-Zr复合材料很好的热成形性能,挤压可有效改善复合材料的综合机械性能。  相似文献   

2.
本文利用挤压铸造法成功制备了SiC_w/Al-Li-Cu-Mg-Zr复合材料。采用化学分析、电子探针和扫描电镜等分析测试手段对材料进行化学分析和组织观察。结果表明,所获得的复合材料样品中晶须分布均匀,各合金元素含量均可控制在成分设计范围内。拉伸试验结果表明,SiC_w/Al-Li-Cu-Mg-Zr复合材料具有较优异的综合拉伸性能。  相似文献   

3.
董尚利  茅建富 《材料工程》1994,(6):13-15,39
本文利用挤压铸造法成功制备了SiCw/Al-Li-Cu-Mg-Zr复合材料。采用化学分析,电子探针和扫描电镜等分析测试手段对材料进行化学分析和组织观察。结果表明,所获得得的复合材料样品中晶须分布均匀,各合金元素含量均可控制在成分设计范围内。拉伸试验结果表明,SiCw/Al-Cu-Mg-Zr复合材料具有较优异的综合拉伸性能。  相似文献   

4.
时效对SiCw/Al—Li—Cu—Mg—Zr复合材料组织和性能的影响   总被引:1,自引:0,他引:1  
对挤压铸造法制备的SiCw/Al-Li-Cu-Mg-Zr复合材料经190℃时效不同时间的微观组织和性能进行了研究,结果表明,复合材料在该时效温度下的主要沉淀强化相为δ′相,第二强化相为S′相,复合材料中的高密度位错促进了δ′相的长大和S′相的沉淀析出过程,时效对复合人有明显的强化作用,而对复合材料拉伸断口的影响甚微。  相似文献   

5.
SiCw/Al—Li复合材料的热处理强化效应   总被引:1,自引:1,他引:0  
本文系统地探讨了热处理工艺对SiCw/Al-Li复合材料的时效强化特性的影响。研究表明,SiC晶须的加入显著加速了Al-Li合金的时效析出过程,在190℃时效条件下,SiCw/Al-Li复合材料在6h就已达到峰值时效,提高固溶温度可以增加复合材料的峰值时效硬度,而增加固溶时间对峰值硬度无明显的影响。  相似文献   

6.
研究了挤压铸造法制备的SiCw/Al-Ni复合材料的组织结构和拉伸性能.研究结果指出。该种复合材料的显微组织由SiC晶须、颗粒状的金属间化合物Al3Ni及α-Al组成。金属间化合物Al3Ni对位错运动有明显的钉扎作用。SiCw/Al-Ni复合材料具有较好的常温拉伸性能和优异的高温拉伸性能。  相似文献   

7.
采用三点弯曲及扫描电镜等方法研究了SiCw/Al2O3,SiCw/ZrO2)及SiCw/Al2O3+ZrO2(Y2O3)陶瓷复合材料的抗热震性。结果表明SiCw的加入使Al2O3,ZrO2(Y2O3)以及Al2O3+ZrO2(Y2O3)基体的抗热震性显著提高,Al2O3陶瓷基复合材料的抗热震性明显优于ZrO2(Y2O3)陶瓷基复合材料。同时发现在Al2O3+SiCw材料基础上再加入少量ZrO292  相似文献   

8.
采用三点弯曲及扫描电镜等方法研究了SiCw/Al2O3、SiCw/ZrO3(Y2O3)及SiCw/Al2O3+ZrO2(Y2O3)陶瓷复合材料的抗热震性.结果表现SiCw的加入使Al2O3、ZrO2(Y2O3)以及Al2O3+ZrO2(Y2O3)基体的抗热震性显著提高,Al2O3陶瓷基复合材料的抗热震性明显优于ZrO2(Y2O3)陶瓷基复复合材料.同时发现在Al2O3十SiCw材料基础上再加入少量ZrO2(2Y)颗粒(10Vo1%),也可进一步提高Al2O3+SiCw材料的抗热震性.  相似文献   

9.
SiCw/Al复合材料中SiCw的空间取向函数   总被引:3,自引:2,他引:1  
通过理论分析,建立了SiCw/Al复合材料中SiCw的平面取向函数与空间取向函数的关系,研究了压铸态及挤压iCw/Al复合材料中SSicw的平面间取向函数。结果表明,复合材料中SiCw平面取向函数与空间取向函数存在明显差咖;其中空间取向函数代表复合材料中SiCw的实际取向分布状态,与复合材料中的各工异相符合。  相似文献   

10.
本文对Al2O3基陶瓷复合材料Al2O3-ZrO2-SiCw进行了干摩擦磨损试验,并运用了SEM,TEM和XRD等手段对其显微结构、力学性能及它们与GCr15钢对摩时的摩擦磨损行为进行了系统分析,在此基础上深入探讨了SiC晶须(SiCw)增韧补强作用对复合材料的摩擦磨损性能的影响。  相似文献   

11.
A cost effective method was introduced to fabricate pure aluminum matrix composites reinforced with 20% volume fraction of 3.5 μm SiC particles by squeeze casting followed by hot extrusion. In order to lower volume fraction of the composites, a mixed preform containing pure aluminum powder and the SiC particles was used. The suitable processing parameters for the infiltration of pure aluminum melt into the mixed preform are: melt temperature 800℃, preform temperature 500℃, infiltration pressure 5 MPa, and solidification pressure 50 MPa. Microstructure and properties of the composites in both as-cast and hot extruded states were investigated. The results indicate that hot extrusion can obviously improve the mechanical properties of the composite.  相似文献   

12.
为了研究多重结构对铝基复合材料力学性能的影响,将气雾化态Al2024合金粉末与球磨不同时间的Ti-10%(质量分数,下同)B_4C复合粉末混合,采用热压烧结和热挤压的方法制备多重结构Ti-B_4C/Al2024复合材料。通过X射线衍射(XRD)、扫描电镜(SEM)、透射电镜(TEM)和拉伸试验机对不同材料的显微组织与力学性能进行观察和测试,并对多重结构复合材料的强韧化行为进行讨论。结果表明:Ti-B_4C/Al2024复合材料多重结构包括基体Al2024、核壳结构Ti/Al18Ti_2Mg_3组织和B_4C颗粒。向Al2024中加入5%预先球磨6h后的Ti-B_4C粉末时,其屈服强度从107MPa提高到122MPa,并且表现出与热挤压Al2024合金几乎相同的伸长率。当球磨时间延长至12h时,试样5TB-12h的伸长率可达到16.4%。然而,复合材料的伸长率随着Ti-B_4C添加量的增加而降低。  相似文献   

13.
机械球磨Cu-15%Cr复合粉末的致密化工艺研究   总被引:8,自引:1,他引:7  
探讨机械球磨Cu—15%Cr复合粉末经真空烧结后采用热静液挤压致密化的可能性.研究了机械球磨时间、烧结温度、保温时间和挤压温度等工艺参数对材料致密化的影响.结果表明,热静液挤压工艺可以有效的促进机械球磨复合粉末的致密,所获得的材料具有优异的组织性能.  相似文献   

14.
The microstructure of ultrafine grain for magnesium alloys can result in drastic enhancement in their room temperature strength, but the issue of low strength at elevated temperature becomes more serious as well due to grain boundary slide. Here ultrafine-grained Ti/AZ31 magnesium matrix composites with high strength at both room and elevated temperature were prepared by vacuum hot pressing and subsequent hot extrusion. The microstructure of the composite samples before and after consolidation processing was characterized, and the mechanical properties of the as-consolidated bulk samples were measured at room and elevated temperatures. The results indicate that after extrusion ultrafine-grained magnesium alloys were obtained and Ti particulates with particulate size of ~310?nm disperse in Mg matrix. The magnesium grain of AZ31-15at.%Ti grows from 66?nm to 800?nm. Meanwhile, the relative densities of Ti/AZ31 composites are higher than 99%. The yield strength (YS) of extruded AZ31-15at.%Ti composite at room temperature is 341?MPa, being 2.4 times higher than original AZ31 alloy. Theoretical estimation shows that remarkably enhanced room-temperature mechanical strength attributes to grain boundary strengthening with the contribution ratio of 74%. In addition, the peak stress of extruded AZ31-15at.%Ti composite at 573?K is 82?MPa and ultrafine Ti dispersions are responsible for the enhanced strength.  相似文献   

15.
A novel technique was developed for the preparation of Cu-15 wt pct Cr composite with high strength and conductivity.The composite powders with refined microstructure and curly lamellae strengthening phase was first prepared by mechanical milling in favorite milling time and then were hot hydrostatic extruded after pre-densification with sintering or hot pressing. It was shown that the extrusion densified the composite powders well and at the same time the chaos curled strengthening phase was aligned into lines and further deformed as strengthening ribbons. The deformation processed Cu-15 wt pct Cr composite prepared by this technique is of superior conductivity, strength and thermal stability.  相似文献   

16.
In this paper, an Al6061–10 wt% SiC composite was prepared using the mechanical alloying route. The morphology and the structure of the prepared powder, which change with milling time, were evaluated using scanning electron microscopy (SEM) and X-ray diffraction (XRD) techniques, respectively. Moreover, the relationships among the stages of mechanical alloying (MA), relative density and hardness of both pressed and hot extruded materials were investigated. The morphological evolutions showed that relatively equiaxed powders could be synthesized after 9 h of milling. The evolution of relative density and hardness with milling time is due to the morphological and microstructural changes imposed on the composite powder. High-relative densities are typical of the hot extruded samples. The effect of mechanical alloying process on hardness is more significant compared to reinforcement particles. The aging behaviors of the mechanically alloyed, commercially mixed and unreinforced Al6061 were compared. The results showed that MA composites exhibit no aging-hardenability.  相似文献   

17.
Magnesium based composite with 17.95 wt.% of copper reinforcement was fabricated using an innovative DMD technique followed by hot extrusion. Microstructural characterization of the extruded composite samples showed fairly uniform reinforcement distribution, presence of Mg-Cu based intermetallics, good CuP-Mg interfacial integrity, and the presence of minimal porosity. Mechanical properties characterization revealed that the presence of copper as reinforcement lead to a significant increase in hardness, elastic modulus, 0.2% yield strength and UTS of pure magnesium while the ductility was adversely affected. An attempt is made in the present study to correlate the effect of copper as reinforcement with the microstructural and mechanical properties of magnesium.  相似文献   

18.
挤压铸造法制备可变形SiCP/Al复合材料的组织与性能   总被引:11,自引:8,他引:3       下载免费PDF全文
通过在SiC颗粒预制块中加入铝粉的方法制备了颗粒含量可控的SiC颗粒预制块,并用挤压铸造法制备了可变形SiCP/Al复合材料。通过对颗粒体积含量为25%的SiCP/Al复合材料进行热挤压变形,研究了挤压变形的可行性及其对复合材料组织与性能的影响规律。实验结果表明,用本文中提出的新工艺制备的25vol%SiCP/Al复合材料可以成功地进行挤压比为25∶1的热挤压变形,并且热挤压变形可以明显提高复合材料的强度、刚度和塑性。  相似文献   

19.
By using pure titanium powder coated with un-bundled multi-wall carbon nanotubes (MWCNTs) via wet process, powder metallurgy (P/M) titanium matrix composite (TMC) reinforced with the CNTs was prepared by spark plasma sintering (SPS) and subsequently hot extrusion process. The microstructure and mechanical properties of P/M pure titanium and reinforced with CNTs were evaluated. The distribution of CNTs and in situ formed titanium carbide (TiC) compounds during sintering was investigated by optical and scanning electron microscopy (SEM) equipped with EDS analyzer. The mechanical properties of TMC were significantly improved by the additive of CNTs. For example, when employing the pure titanium composite powder coated with CNTs of 0.35 mass%, the increase of tensile strength and yield stress of the extruded TMC was 157 MPa and 169 MPa, respectively, compared to those of extruded titanium materials with no CNT additive. Fractured surfaces of tensile specimens were analyzed by SEM, and the uniform distribution of CNTs and TiC particles, being effective for the dispersion strengthening, at the surface of the TMC were obviously observed.  相似文献   

20.
Mechanically alloyed Al-4.9Ni-4.9Ti powders were prepared by milling mixed aluminium, titanium and nickel powders, and then consolidated by hot hydrostatic extrusion. The microstructures of milled powders and extruded bars were characterized by X-ray diffraction and transmission eIectron microscopy observation. The results show that mechanical alloying and consolidating processes have great effects on the microstructures and mechanical properties of extruded materials. Polycrystalline materials having an ultrafine grain size may be prepared by mechanical alloying. The strength and thermal stability are improved with the increasing of processing time of mechanical alloying, since grain size decreases and volume fraction of dispersoids increases as milling time increased  相似文献   

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