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1.
采用普通磨削和超声辅助磨削工艺对C/Si C复合材料进行加工,对不同加工工艺参数获得的C/Si C复合材料进行表面状态表征及力学性能的测试。结果显示在磨削深度0.05 mm,进给速度600 mm/h,转速1 600 r/min,超声频率14 k Hz的工艺参数匹配条件下,所得到的C/Si C复合材料的表面粗糙度最小,弯曲强度最大。表明超声辅助磨削加工工艺对材料力学性能损伤较小。  相似文献   

2.
综述了磨削参数、纤维方向、不同加工方式以及其他因素对磨削力和表面质量的影响规律;总结了不同加工方式下的碳纤维陶瓷基复合材料的磨削机理;展望了碳纤维陶瓷基复合材料磨削加工的研究方向。  相似文献   

3.
为探索利用简单形状砂轮对陶瓷材料进行数控展成型面超声磨削,通过对Al2O3陶瓷进行蠕动进给超声磨削和机械磨削对比试验研究,探索各加工参数对磨削表面质量的影响规律.结果表明:超声振动方向与蠕动进给方向平行时可降低表面粗糙度值,而超声振动方向与蠕动进给方向垂直时则不利于改善加工表面质量;在超声磨削条件下,为了提高加工表面质量,应采取较小的磨削深度、较低的进给速度和适当高的磨削速度以及复合进给磨削方式.结合试验结果理论分析了蠕动进给超声磨削和蠕动进给机械磨削加工机理,并根据试验结果选择磨削参数进行了陶瓷叶片型面超声磨削的可行性试验.  相似文献   

4.
采用电镀金刚石砂轮对CVI+PIP综合工艺制备的2.5D正交编织C/SiC陶瓷基复合材料进行了轴向超声振动平面磨削加工试验.通过对超声振动磨削与普通磨削的磨削力、磨削表面三维形貌及粗糙度的分析与测量,对C/SiC复合材料的加工工艺进行了研究.结果表明,磨削过程中材料去除方式以脆性去除为主,碳纤维损伤形式以纤维拉断、剥离...  相似文献   

5.
旋转超声振动端面磨削CFRP表面质量研究   总被引:1,自引:0,他引:1  
以多向层铺树脂基碳纤维增强复合材料为研究对象,采用超声振动磨削和普通磨削对其表面加工质量进行了端面磨削试验研究.通过正交试验和单因素试验分析了各工艺参数对工件表面质量的影响规律,并由表面粗糙度及微观形貌进一步分析了磨削机理.试验结果表明:在超声磨削过程中提高主轴转速、减小进给速度,同时采用合适的切削深度和工具粒度,有助于获得高质量的加工表面;超声振动磨削和普通磨削后,工件表面均存在纤维丝断裂、剥离和凹坑等缺陷,超声振动磨削后的加工缺陷出现的程度和概率均较低,表面加工质量较好.  相似文献   

6.
介绍了超声振动铣磨加工,并将其与传统加工方式的相关加工因素对比(如表面质量、切削力等),分析出超声振动铣磨加工相较传统加工方式的优势;并通过超声辅助铣磨正交试验对复合材料表面加工质量的影响,论证超声振动铣磨加工多因素之间变化关系,进而得出影响超声辅助磨削的主要加工因素.  相似文献   

7.
针对复合材料高质量的加工要求,结合各加工技术的优点,本文提出二维超声复合电解/放电加工技术(2UECM/EDM),并对其表面生成机理进行深入研究。利用二维超声辅助磨削加工时单磨粒的运动轨迹对加工表面沟槽的加宽作用和电解/放电加工的整平作用,通过研磨面积比(δs)来分析复合材料表面形貌和表面粗糙度(Ra)的变化规律,并进行了复合材料SiCp/Al维超声复合电解/放电加工的表面生成机理对比试验。结果表明,单周进给距离、电压和二维超声振幅等参数影响加工表面质量。其中,表面粗糙度与磨粒单周进给距离的变化趋势一致;较高电压时电解/放电加工效应显著,导致增强颗粒裸露进而增加了Ra;轴向和切向二维振动共同作用下显著增大δs值,而其值在1.8附近时Ra出现明显的转折变化趋势。因此,当δs大于1.8时的工具和工件振幅以及较低电压参数,加工时对增强颗粒的拖曳和碾压可以显著降低表面不平度、较大幅度提高工件表面质量。  相似文献   

8.
半球陀螺谐振子超声旋转磨削加工关键技术研究   总被引:1,自引:0,他引:1  
针对Al2O3陶瓷材料半球陀螺谐振子的难加工性,基于超声旋转磨削加工技术研究了其加工过程关键技术,包括超声振动频率选取,刀具结构参数和切削力对谐振子加工影响,以及壁厚均匀性加工.通过模态分析确定超声振动频率;建立了刀具结构参数与薄壁壳体加工表面质量之间数学模型;利用有限元软件研究在切削力作用下谐振子受力变化情况;并分析...  相似文献   

9.
原位自生TiB_2/Al复合材料具有密度小,比强度高,比模量大等特点,在航空航天领域具有广泛的应用前景。为探索原位自生TiB_2/Al复合材料的磨削加工性能,选用单晶刚玉SA砂轮、白刚玉WA砂轮和CBN砂轮在不同磨削参数下对TiB_2/Al复合材料进行磨削试验。首先研究了砂轮材质、转速、工件速度、磨削深度对工件表面粗糙度的影响规律;其次通过对工件表面形貌、磨屑形态、砂轮磨损的观测分析,探索了原位自生TiB_2/Al复合材料磨削表面成形机制;最后基于试验数据,给出了TiB_2/Al复合材料磨削工艺参数优选域。本研究可为颗粒增强金属基复合材料磨削加工提供基础理论支撑。  相似文献   

10.
本文主要开展了单颗金刚石磨粒磨削碳化硅颗粒增强铝基(SiCp/Al)复合材料的试验及三维有限元仿真研究。分析了SiCp/Al复合材料磨削过程中磨削工艺参数对磨削力及表面形貌等的影响。分析结果表明,随着磨粒转速的增加,磨削力减小,SiC颗粒破碎现象有所缓解,铝基体的涂覆作用增强,表面形貌完整性好;随着磨削深度的增加,磨削力增大,SiC颗粒破碎明显增强,表面形成较多凹坑与孔洞,表面质量差。仿真结果与试验结果较吻合,说明该仿真模型可用于磨削工艺参数的优化分析。  相似文献   

11.
碳纤维增强碳化硅陶瓷基(C/SiC)复合材料由于其强度高、硬度大、耐磨损,被广泛应用于工业、航空航天等领域,然而C/SiC复合材料难以被稳定地去除加工。本文综述C/SiC复合材料的常见制备方式及其材料的性能特点。概述C/SiC复合材料的传统机械加工、超声辅助加工、激光加工等加工方法,分析了各种加工方法的材料去除机理、加工精度、常见缺陷及加工过程中存在的问题。传统的机械加工需进一步优选切削刀具材料;超声辅助加工需探究超声振动的刀具与材料之间的耦合作用机制、振动作用下的材料去除机理;激光加工要进一步研究2.5维及3维C/SiC复合材料的激光加工去除机理。在这些研究的基础上进一步采用复合加工的方法,探寻C/SiC复合材料高效、精密、稳定和无损加工的可能性。  相似文献   

12.
《中国航空学报》2021,34(9):37-46
SiCp/Al composites are difficult-to-cut materials. In recent years, electrical arc discharge machining has been developed to improve the machinability of these materials. However, there is a big challenge to build a satisfactory heat transfer model of SiCp/Al composites in the arc machining. This is not only because of the material property difference between the reinforcement and matrix material but also because of the micro-dimension SiC reinforcements. This paper established a new heat conduction simulation model considering the SiC particle-Al matrix interface and the phase change effects in a single-pulsed arc discharge of SiCp/Al composites. A novel SiC particle-Al matrix cell geometric model was designed firstly. Then, the temperature distribution at a different depth from the workpiece surface was analyzed, the influence of sic volume fraction on temperature field was studied, and the contribution of the interface thermal resistance and latent heat were explained. To demonstrate the validity of the new numerical model, comparisons and verifications were employed. Finally, the method of improving the model was proposed and the machining mechanism of arc discharge of SiCp/Al matrix materials was discussed. It was found that high temperature is prone to concentrate on the surface layers of the workpiece especially when the SiC fraction is high, also, the temperature fluctuates respectively at the evaporation point of aluminum and SiC, and the SiC-Al resistance has less influence on temperature distribution compared to latent heat, etc. The model build in this work improves the simulation accuracy observably compared to the previous model, and the simulation work will help to acquire a detailed mechanism of material removal of SiCp/Al composites in the arc discharge machining.  相似文献   

13.
《中国航空学报》2021,34(4):241-252
Particle-tool interactions, which govern the synergetic deformation of SiC particle reinforced Al matrix composites under mechanical machining, strongly depend on the geometry of particle position residing on cutting path. In the present work, we investigate the influence of cutting path on the machinability of a SiCp/Al composite in multi-step ultra-precision diamond cutting by combining finite element simulations with experimental observations and characterization. Be consistent with experimentally characterized microstructures, the simulated SiCp/Al composite is considered to be composed of randomly distributed polygonally-shaped SiC particles with a volume fraction of 25vol%. A multi-step cutting strategy with depths of cut ranging from 2 to 10 μm is adopted to achieve an ultimate depth of cut of 10 μm. Intrinsic material parameters and extrinsic cutting conditions utilized in finite element simulations of SiCp/Al cutting are consistent with those used in corresponding experiments. Simulation results reveal different particle-tool interactions and failure modes of SiC particles, as well as their correlations with machining force evolution, residual stress distribution and machined surface topography. A detailed comparison between numerical simulation results and experimental data of multi-step diamond cutting of SiCp/Al composite reveals a substantial impact of the number of cutting steps on particle-tool interactions and machined surface quality. These findings provide guidelines for achieving high surface finish of SiCp/Al composites by ultra-precision diamond cutting.  相似文献   

14.
Rotary ultrasonic drilling(RUD) has become an effective approach for machining advanced composites which are widely using in the field of aeronautics. The cutting kinematics and the corresponding material removal mechanisms are distinct in different drilling areas during RUD. However, these fundamentals have not been fully considered in the existing studies. In this research, two distinct forms of interaction induced by ultrasonic vibration were considered as impact-separation and vibratory lapp...  相似文献   

15.
It is well known that grinding techniques are main methods to machine hard and brittle materials such as engineering ceramics. But the conventional grinding has many shortcomings such as poorer surface finish,quicker wear and tear of grinding tools,lower effi-ciency and so on. Ultrasonic vibration grinding (UVG) which combines ultrasonic machining and grinding emerged as a developing and promising technique in recent years. In this paper,experimental studies on UVG were conducted on several kinds of hard and brittle material by altering processing parameters such as vibration frequency and its amplitude,diamond abrasive grit size,cutting depth,feeding speed and rotary speed of tools. The experimental results show that alteration in any of above mentioned parameters will bring effects on the processed surface finish of these materials. Of them,the diamond abrasive grit size has the greatest. Moreover,conven-tional grinding experiments were also carried out on these materials. By comparison,it was found that the UVG is superior to the con-ventional method in terms of the ground surface quality,the working efficiency and the wear rate of tools.  相似文献   

16.
《中国航空学报》2021,34(5):404-414
Fiber-reinforced silica ceramic matrix composites (SiO2f/SiO2) have gained extensive attention in recent years for its applications in aeronautics field such as radar radome and window. However, the machining properties and mechanism of the material remain unclear. The features and mechanical properties of the material itself have a significant influence on both its machining characteristics and surface integrity. Thus, a full-factor grinding experiment is conducted using a 3D orthogonal SiO2f/SiO2 aiming to obtain its machining characteristics. The effects of grinding parameters and tools on the grinding force, surface roughness, and material damage type are investigated using a dynamometer, Scanning Electron Microscope (SEM), and Acoustic Emission (AE) analysis. The AE frequency band is analyzed, and a semi-analytical force model is established to study the difference between a single grain and wheel grinding. It was found that the changes in surface roughness correlate with the changes in grinding force, with fiber fracture being the main reason behind the increase in grinding force. Finally, the material removal mechanism was studied based on the AE analysis. It was found that the removal mechanism is fiber fracture dominated with matrix crack and debonding, and the primary sources of energy consumption are fiber fracture and friction.  相似文献   

17.
超声磨料对TC4钛合金电火花加工表面质量的影响   总被引:2,自引:0,他引:2  
为改善TC4钛合金电火花加工表面质量,减少表面微裂纹、重熔层等表面缺陷,提出了基于电极振动的超声磨料电火花复合加工方法。在煤油工作液中混入12g/L的SiC磨料粉,进行了有无超声磨料作用的窄脉冲(脉宽小于1μs)电火花加工的表面粗糙度对比实验研究。实验结果表明:SiC磨料的超声振动作用使零件表面粗糙度Ra由0.5μm降到0.2μm左右;重熔层厚度、表面裂纹的扫描电子显微镜(SEM)照片显示,超声磨料作用使重熔层厚度减薄20~30μm,表面微裂纹得到有效控制;机理分析认为工作液高频振动及磨料对工件的冲击作用,是改善TC4钛合金电火花加工表面质量的主要原因。研究表明磨料的超声振动作用可显著改善TC4钛合金电火花加工的表面质量。  相似文献   

18.
《中国航空学报》2023,36(6):446-459
Cubic boron nitride (cBN) superabrasive grinding wheels exhibit unique advantages in the grinding of difficult-to-cut materials with high strength and toughness, such as titanium alloys and superalloys. However, grinding with multilayered metallic cBN superabrasive wheels faces problems in terms of grain wear resistance, the chip storage capability of the working layers and the stability and controllability of the dressing process. Therefore, in this work, novel metallic cBN superabrasive wheels with aggregated cBN (AcBN) grains and open pore structures were fabricated to improve machining efficiency and surface quality. Prior to the grinding trials, the air-borne abrasive blasting process was conducted and the abrasive blasting parameters were optimized in view of wear properties of cBN grains and metallic matrix materials. Subsequently, the comparative experiments were performed and then the variations in grinding force and force ratio, grinding temperature, tool wear morphology and ground surface quality of the multilayered AcBN grinding wheels were investigated during machining Ti–6Al–4V alloys. In consideration of the variations of grain erosion wear volume and material removal rate per unit of pure metallic matrix materials as the abrasive blasting parameters changes, the optimal abrasive blasting parameters were identified as the SiC abrasive mesh size of 60# and the abrasive blasting distance and time of 60 mm and 15 s, respectively. The as-developed AcBN grains exhibited better fracture toughness and impact resistance than monocrystalline cBN (McBN) grains because of the existence of metal-bonded materials amongst multiple cBN particles that decreased crack propagation inside whole grains. The metallic porous AcBN wheels had lower grinding forces and temperature and better ground surface quality than vitrified McBN wheels due to the constant layer-by-layer exposure of cBN particles in the working layer of AcBN wheels.  相似文献   

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