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CERAMIC MATRIX COMPOSITE MATERIAL IN HIGHLY LOADED JOURNAL BEARINGS

机译:高负荷滑动轴承中的陶瓷基复合材料

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Conventional sintered silicon carbide (SSiC) has been applied in journal bearings of pumps for more than 20 years with the pumped medium itself being the lubricant. High corrosion and wear resistance of SSiC have contributed to this success. The brittle failure of that material quite often is a problem, though, and limits the application of SSiC in highly loaded bearings. In contrast, ceramic matrix composites (CMC) based on C- or SiC-fiber-reinforced SiC-ceramics show strongly improved fracture toughness on the level of cast iron and are applicable in cases where conventional ceramics due to their lack of reliability cannot be used. These CMC-materials have been developed in several programs primarily for space and military applications and are also beeing successfully used in journal bearings for pumps in power plants and for tubular casing pumps. In power plant pumps, low viscosity water of up to 160°C can be the lubricant. In tubular casing pumps quite often water loaded with abrasive sand particles lubricates the bearings. CMC-journal bearings for pumps in cryogenic rocket engines for reusable launch vehicles (RLVs), where the lifetime of mechanical components is a critical issue, are presently tested. Journal bearings of the type introduced in water pumps could replace ball bearings presently in use. Improved stiffness and damping properties, reduced wear, increased reliability and no limitations in speed times diameter would be some of the expected advantages. Journal bearings for hot hinges in re-entry systems are foreseen for the space vehicle CRV (crew rescue vehicle) and have successfully been tested under close to real conditions. They are envisaged to be flight-tested on the experimental NASA vehicle X38. The bearing faces run under dry conditions and temperatures of more than 1600°C in air of about 50 mbar pressure. Presently, only CMCs based on carbon fibers have potential to operate successfully under such conditions.
机译:常规的烧结碳化硅(SSiC)在泵的轴颈轴承中已经应用了20多年,而泵送介质本身就是润滑剂。 SSiC的高耐蚀性和耐磨性为这一成功做出了贡献。但是,这种材料的脆性破坏经常是一个问题,并限制了SSiC在高负荷轴承中的应用。相比之下,基于C或SiC纤维增强的SiC陶瓷的陶瓷基复合材料(CMC)在铸铁水平上显示出显着改善的断裂韧性,并且适用于由于缺乏可靠性而无法使用常规陶瓷的情况。这些CMC材料已经在几个计划中开发出来,主要用于太空和军事应用,并且也成功地用于发电厂泵和管状泵的轴颈轴承中。在发电厂的泵中,高达160°C的低粘度水可以作为润滑剂。在管状泵中,经常会在装有砂粒的水中润滑轴承。目前,对可重复使用运载火箭(RLV)的低温火箭发动机泵中的CMC轴颈轴承进行了测试,在这些轴承中,机械组件的寿命是一个至关重要的问题。在水泵中使用的那种轴颈轴承可以代替目前使用的球轴承。改进的刚度和阻尼特性,减少的磨损,增加的可靠性以及速度乘以直径不受限制将是一些预期的优势。预见到航天飞机CRV(乘员救援飞机)中用于再入系统的热铰链轴颈轴承,并且已经在接近实际条件下成功进行了测试。设想它们将在实验性NASA运载工具X38上进行飞行测试。轴承面在约50 mbar压力的空气中于干燥条件和超过1600°C的温度下运行。目前,只有基于碳纤维的CMC才有可能在这种条件下成功运行。

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