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1.
汪怀远  朱艳吉  冯新  陆小华 《化工学报》2010,61(6):1550-1554
研究了不同含量PTW增强PEEK复合材料在碱液中的摩擦磨损性能,并与经典的CF增强PEEK复合材料对比,借助于SEM分析了磨损面和对偶面微观形貌,探讨了相关机理。结果表明,干摩擦时15%(质量)PTW增强PTFE/PEEK复合材料耐磨性是相同含量CF增强时的10.5倍。在碱液中,CF增加了PTFE/PEEK复合材料的摩擦系数、降低了其耐磨性能,而PTW可以进一步降低PTFE/PEEK复合材料的摩擦系数、明显地提高其耐磨性能。含5%PTW可提高PTFE/PEEK复合材料碱液中耐磨性2.36倍。碱液阻止了对偶面转移膜的形成,犁削和磨粒磨损是CF增强PEEK复合材料碱液中的主要磨损机制,而隧道状晶体结构和细微尺寸的纤维态形貌使得PTW在碱液中仍具有显微增强耐磨作用。  相似文献   

2.
分别研究了不同含量碳纤维(CF)、玻璃纤维(GF)填充聚四氟乙烯(PTFE)复合材料在硫酸溶液中和干摩擦条件下的摩擦学性能,同时考察了PTFE复合材料在酸中的腐蚀行为,探讨了相关机理。结果表明,在酸中GF能够提高PTFE的耐磨性,比CF在提高PTFE耐磨性方面具有更好的优势。就酸溶液中的耐磨性和耐腐蚀性而言,15 %(质量分数,下同)是填料的最佳含量,此时GF和CF填充的PTFE,耐磨性分别较纯PTFE提高了7.7和4.4倍;当填料的含量超过15 %时,复合材料的耐磨性和耐腐蚀性均下降,主要是由于此时犁削和磨粒磨损是PTFE复合材料的主要磨损机制。由于酸溶液的冷却和润滑作用,硫酸溶液中PTFE复合材料的摩擦因数大幅降低,但酸溶液抑制了对磨面上转移膜的形成。  相似文献   

3.
利用冷压烧结法制备了不同含量的聚四氟乙烯/纳米碳化硅(PTFE/纳米SiC)复合材料。采用MM-200型摩擦磨损试验机在干摩擦条件下考察了纳米SiC含量及载荷对PTFE/纳米SiC复合材料摩擦磨损性能的影响,借助于扫描电子显微镜观察分析了试样磨损表面形貌,并探讨了其磨损机理。结果表明,纳米SiC能够提高PTFE/纳米SiC复合材料的硬度和耐磨性,当纳米SiC质量分数为7%时,PTFE/纳米SiC复合材料的磨损量最小,摩擦系数也最小;随纳米SiC含量的增加,其摩擦系数有所增大;随着载荷的增大,PTFE/纳米SiC复合材料的磨损量增加。  相似文献   

4.
以纳米氮化铝(削N)为填料制备了聚四氟乙烯(PTFE)复合材料,研究了该复合材料在干摩擦条件下与不锈钢对摩时的摩擦磨损行为.结果表明:纳米AlN填充FIFE基复合材料的耐磨性能明显优于纯PTFE。不同用量纳米AlN填充PTFE复合材料的摩擦系数最多上升16.5%,而耐磨性最多却能提高150倍,当纳米AlN用量为5%,FIFE复合材料的耐磨性最好。SEM观察发现:纯PTFE的磨损表面上分布着大量的带状结构,有明显的犁削和粘着磨损的痕迹。当复合材料中纳米AlN用量较低时,复合材料的磨损机制主要表现为不同程度的黏着磨损,但当复合填料中纳米AlN用量较高时,复合材料的磨损机制主要表现不同程度的黏着磨损和磨粒磨损,同时其复合材料的摩擦磨损性能出现了恶化现象。  相似文献   

5.
采用电子束高温辐照制备交联聚四氟乙烯(XPTFE),利用环-环立式万能摩擦磨损试验机在干摩擦条件下研究了PTFE和XPTFE的摩擦磨损性能变化规律。结果表明:与PTFE的摩擦系数相比,XPTFE的摩擦系数随剂量的增加而增加。随剂量的增加,XPTFE的耐磨性增大,当吸收剂量为150 kGy时,XPTFE耐磨性提高了近1 000倍。PTFE磨损表面光滑,磨屑为波浪形带状物;XPTFE的磨损表面形成摩擦棱,磨屑为粉状颗粒。XPTFE的三维网状交联结构导致其耐磨性能明显提高。  相似文献   

6.
纳米TiO2/PTFE复合材料的干摩擦磨损性能   总被引:2,自引:0,他引:2  
史丽萍 《塑料工业》2005,33(1):49-51
利用磨损试验机、扫描电子显微镜等方法研究了表面处理与未处理纳米TiO2(质量分数为6%)填充聚四氟乙烯(PTFE)复合材料的干摩擦性能。结果表明,纳米TiO2能明显提高:PTFE耐磨性并改变其磨屑形成机理。表面处理纳米TiO2在PTFE中能较均匀分散。纳米TiO2填充PTFE复合材料的摩擦系数比PTFE稍大,纳米TiO2表面处理与否对PTFE复合材料的摩擦系数影响不大,但表面处理纳米TiO2填充聚四氟乙烯耐磨性比PTFE有显著提高,表面处理与表面未处理纳米TiO2填充PTFE复合材料的耐磨性比PTFE可分别提高7倍和3倍左右。导致PTFE磨损的重要机理是粘着磨损。  相似文献   

7.
以碳纤维(CF)为增强相,添加不同含量的纳米氮化硼(h-BN),通过注塑成型的方式,制备了聚醚醚酮/聚四氟乙烯(PEEK/PTFE)复合材料样条,使用力学试验机进行拉伸试验,利用摩擦试验机进行表面摩擦试验,并利用白光仪对磨痕数据和三维形貌进行观测,使用SEM对磨痕进行观测与分析。结果表明:随着h-BN含量的增加,PEEK/PTFE复合材料样条最大应力先增加后减小;当h-BN含量分别为3%、6%时,PEEK/PTFE复合材料样条的最大应力分别为174 MPa、165 MPa。与PEEK/PTFE相比,单独添加CF的样品摩擦系数降至0.23。同时添加CF、h-BN时,复合材料样条的摩擦系数均降低;h-BN含量分别为3%、6%时,复合材料样条的摩擦系数分别为0.06、0.09。随着h-BN含量的升高,PEEK/PTFE/CF/h-BN复合材料的磨损率先降低后升高。h-BN含量为3%时,复合材料样条的磨损率最低。  相似文献   

8.
路琴  张静  何春霞 《中国塑料》2008,22(4):21-24
利用摩擦磨损试验机考察了填料含量及载荷对纳米氮化钛(TiN)填充聚四氟乙烯(PTFE)复合材料摩擦磨损性能的影响,采用扫描电子显微镜观察分析磨损表面形貌,探讨了磨损机理。结果表明,纳米TiN可以提高PTFE的硬度和耐磨性,当纳米TiN质量分数为7%时,PTFE纳米TiN复合材料的磨损量最小;随载荷的增大,PTFE/TiN复合材料的磨损量增加。PTFE纳米TiN复合材料的摩擦因数比纯PTFE小。  相似文献   

9.
为改善聚四氟乙烯(PTFE)高磨耗的缺点,通过冷压烧结成型工艺制备了玻璃纤维(GF)填充改性PTFE复合材料,探究了不同GF添加比例的PTFE/GF复合材料在不同转速下的摩擦磨损情况。采用三维视频显微镜观察了样品的表面磨痕深度,并借助扫描电子显微镜观察摩擦表面形貌同时分析磨损机理。结果表明,填充GF后的PTFE复合材料其摩擦系数虽有一定程度的升高,但其体积磨损率却大幅降低。当GF质量分数为20%时,复合材料的体积磨损率降到最低,并在转速为80 r/min时较纯PTFE降低了93.56%。观察分析微观形貌发现,随着GF含量的增大,复合材料的磨损机理逐渐由纯PTFE的犁耕磨损和粘着磨损向磨粒磨损转变,当GF含量为25%时,出现轻微的疲劳磨损。  相似文献   

10.
纳米CuO填充UHMWPE基复合材料摩擦学性能的研究   总被引:5,自引:0,他引:5  
张绪平  周华茂  康学勤 《塑料》2003,32(5):15-17
利用MM 200型摩擦磨损试验机研究了不同质量含量的纳米CuO填充UHMWPE基复合材料在干摩擦条件下与45#钢对磨时的摩擦学性能。并利用扫描电子显微镜(SEM)观察分析磨损表面形貌及磨损机理。结果表明,纳米CuO/UHMWPE复合材料的摩擦性能与纯UHMWPE相比大部分均有提高,但耐磨性明显优于后者,纳米CuO在复合材料中的最佳含量在15%~17%左右。  相似文献   

11.
Polyetheretherketone (PEEK) composites reinforced by short carbon fibers (SCF) and potassium titanate whiskers (PTW) were prepared using twin‐screw extrusion compounding and injection molding. The tribological properties of hybrid composites were investigated in dry sliding condition against steel. The effects of filler contents on the wear behavior were studied. It was found that the hybrid composite showed an excellent tribological property in dry sliding condition. Applied load had great effect on the tribological behavior of the composites. In most cases, the friction coefficient of the composite decreased with the load rising. The composites with higher CF contents showed outstanding tribological performances at low load but could worsen the wear behavior at high load. Because of the positive effect of PTW, high PTW loading composites presented low wear rate at low load. At high loads, the composites with lower PTW contents had better wear resistance. The scanning electron microscopy (SEM) observation revealed that abrasion wear was attributed to the lower wear resistance of the high PTW content composite at high load. © 2011 Wiley Periodicals, Inc. J Appl Polym Sci, 2011  相似文献   

12.
The friction and wear properties of poly (ether ether ketone) (PEEK) composites filled with potassium titanate whiskers (PTWs) under alkali, water, and dry conditions were investigated. The wear mechanisms in different lubrication situations were studied on the basis of examinations of the worn and counterpart surfaces with scanning electron microscopy and optical microscopy. The results showed that PTWs could obviously increase the wear resistance and reduce the friction coefficient of the PEEK composites under dry sliding conditions. Only when the PTW content was greater than 35 wt % did the wear resistance and friction coefficient deteriorate. Sliding in water caused increases in the wear rate and friction coefficient of the PEEK composites, and the PTW‐filled PEEK composites showed the highest friction coefficient and wear rate under this lubrication condition. On the contrary, sliding in an alkaline solution, the PTW‐filled PEEK composites showed the lowest friction coefficient and almost the same level of wear resistance as that found under the dry condition. Furrows and abrasive wear were the main mechanisms for the PTW‐filled PEEK composites sliding in water. The transfer onto the counterpart rings was significantly hindered with sliding under water and alkali conditions. © 2009 Wiley Periodicals, Inc. J Appl Polym Sci, 2010  相似文献   

13.
The tribological properties and mass loss of polytetrafluoroethylene (PTFE) composites filled with carbon fiber (CF) or potassium titanate whisker (PTW) after the immersion in 30% sulfuric acid solution for 5 or 15 days were studied under different temperatures (25, 50, and 75°C). Results show that PTW/PTFE composites exhibit better anticorrosive and antiwear properties than those of CF/PTFE composites. Acid immersion has no obvious effect on the wear rate of the PTW/PTFE composite. The wear rate of CF/PTFE immersed for 15 days is thrice as much that of untreated composites and 3.6 times as much that of PTW/PTFE composites. Results also indicate that the wear rate of PTFE composites increases with the increasing corrosive mass loss rate and is more dependent on the corrosive mass loss rate rather than the friction coefficient. © 2011 Wiley Periodicals, Inc. J Appl Polym Sci, 2012  相似文献   

14.
The friction and wear behavior of polyimide (PI) composites reinforced with carbon nanotube (CNT) and polytetrafluoroethylene (PTFE) were comparatively evaluated under dry sliding, water‐, oil‐ or alkali‐lubricated condition. The wear mechanisms of the composites were also discussed. Results indicate that, when comparison with the dry friction situation, PI‐based composites results lower friction coefficients and wear rates under oil‐ or alkali‐lubricated condition. The lowest wear rate of the CNT/PTFE/PI composite is recorded as 1.2 × 10−6 mm3/Nm during the composite sliding in alkali, which is only about 40% of the value sliding under dry friction condition. The worn surface of neat PI under dry sliding is characterized by severe adhesive wear, whereas abrasive wear is the main character for CNT/PTFE/PI composites. The worn surfaces of CNT/PTFE/PI composites sliding in oil or alkali lubricated condition are smoother than those under dry or water condition. © 2011 Wiley Periodicals, Inc. J Appl Polym Sci, 2011  相似文献   

15.
The friction and wear behavior of Kevlar fabric composites reinforced by PTFE or graphite powders was investigated using a Xuanwu‐III friction and wear tester at dry sliding condition, with the unfilled Kevlar fabric composite as a reference. The worn surfaces were analyzed by means of scanning electron microscope, and X‐ray photoelectron spectroscopy. It was found that PTFE or graphite as fillers could significantly improve the tribological behavior of the Kevlar fabric composites, and the Kevlar fabric composites filled with 20% PTFE exhibited the best antiwear and antifriction ability among all evaluated cases. The transfer films established with two lubricants in sliding wear of composites against metallic counterparts made contributions to reducing friction coefficient and wear rate of Kevlar fabric composites. In particular, FeF2 generated in the sliding of Kevlar fabric composites filled with PTFE against counterpart pin improved the bonding strength between the transfer film and counterpart surface, which accounted for the lowest friction coefficient and wear rate of the Kevlar fabric composites filled with PTFE measured in the testing. © 2008 Wiley Periodicals, Inc. J Appl Polym Sci, 2008.  相似文献   

16.
不同介质中聚四氟乙烯复合材料的摩擦磨损性能   总被引:1,自引:0,他引:1       下载免费PDF全文
汪怀远  冯新  史以俊  何鹏  陆小华 《化工学报》2007,58(4):1053-1058
分别在碱液、水、油和干摩擦条件下考察了碳纤维和玻璃纤维填充聚四氟乙烯复合材料的摩擦磨损性能。利用SEM观察了不同介质中磨损面和对摩面的形貌,并探讨了其磨损机理。结果表明,不同介质中摩擦系数的大小关系是μ干>μ水或油>μ碱,磨损率是W水>W干>W碱或油。水、碱和油都不同程度地阻止了转移膜的形成。碱液和油具有很好的冷却与润滑作用,摩擦系数低,磨损小;然而水分子降低了填料和基体的界面粘接强度,造成犁削和磨粒磨损加重。  相似文献   

17.
混杂填料增强聚四氟乙烯复合材料的摩擦学性能研究   总被引:1,自引:0,他引:1  
路琴  张静  何春霞 《塑料》2008,37(3):15-17
采用MM-200型摩擦磨损试验机对纳米SiC、MoS2和石墨填充聚四氟乙烯(PTFE)复合材料在干摩擦条件下与45#钢对摩时的摩擦磨损性能进行了研究,探讨了MoS2、石墨及纳米SiC的协同效应。认为纳米SiC的加入大大提高了复合材料的承载能力,石墨、MoS2的加入减少PTFE复合材料的摩擦因数。利用扫描电子显微镜(SEM)对PTFE复合材料的摩擦面进行了观察。结果表明:实验中5%nano-SiC和3%MoS2填充PTFE复合材料的摩擦磨损性能最好,且在高载荷下的摩擦磨损性能尤为突出,具有一定的应用价值。  相似文献   

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