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Tensile stress rupture behavior of a woven ceramic matrix composite in humid environments at intermediate temperature.

机译:编织陶瓷基复合材料在中等温度下在潮湿环境中的拉伸应力断裂行为。

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摘要

This study focused on moisture and intermediate temperature effects on the embrittlement phenomenon and stress rupture life of the ceramic matrix composite (CMC) made of Sylramic(TM) fibers with an in-situ layer of boron nitride (Syl-iBN), boron nitride interphase (BN), and SiC matrix (Syl-iBN/BN/SiC). Stress rupture tests were performed at 550°C or 750°C with moisture contents of 0.0, 0.2, or 0.6 atm partial pressure of water vapor, pH 2O. The CMC stress rupture strengths at 100 hrs at 550°C with 0.0, 0.2, or 0.6 atm pH2O were 75%, 65% and 51% of the monotonic room temperature tensile strength, respectively. At 750°C, the corresponding strengths were 67%, 51%, and 49%, respectively. Field Emission Scanning Electron Microscopy (FESEM) analysis showed that the amount of pesting by glass formations increased with time, temperature, and pH2O leading to embrittlement. Total embrittlement times for 550°C were estimated to be greater than 63 hrs for 0.0 atm pH2O greater than 38 hrs for 0.2 atm pH 2O and between 8 and 71 hrs for 0.6 atm pH2O. Corresponding estimated embrittlement times for the 750°C were greater than 83 hrs, between 13 and 71 hrs, and between 1 and 6 hrs.; A time-dependent, phenomenological, Monte Carlo-type simulation of composite failure was developed. The simulated total embrittlement times for the 550°C cases were 300 hrs, 100 hrs, and 25 hrs for 0.0, 0.2, and 0.6 atm pH 2O, respectively. The corresponding embrittlement times for the 750°C cases were 300 hrs, 20 hrs, and 3 hrs. A detailed sensitivity analysis on the variables used in the model was conducted. The model was most sensitive to variation in the ultimate strength of the CMC at room temperature, the ultimate strength of the CMC at elevated temperature, and the reference strength of a fiber and it was least sensitive to variation in the modulus of elasticity of the matrix and fiber. The sensitivity analysis showed that the stress ruptures curves generated by variation in the total embrittlement time simulate the trends in the experimental data. This research showed that the degree of stress rupture strength degradation increases with temperature, moisture content level, and exposure time.
机译:这项研究集中于水分和中间温度对由Sylramic(TM)纤维制成的陶瓷基复合材料(CMC)的脆化现象和应力断裂寿命的影响,该陶瓷基复合材料具有氮化硼(Syl-iBN),氮化硼中间相的原位层(BN)和SiC基质(Syl-iBN / BN / SiC)。应力断裂试验是在550°C或750°C的条件下进行的,水分含量为pH 2O的水蒸气分压为0.0、0.2或0.6 atm。在0.0、0.2或0.6 atm pH2O下在550°C下100小时的CMC应力断裂强度分别为单调室温拉伸强度的75%,65%和51%。在750°C下,相应的强度分别为67%,51%和49%。场发射扫描电子显微镜(FESEM)分析表明,玻璃形成物的污染程度随时间,温度和pH2O的增加而增加,从而导致脆化。估计在550°C下的总脆化时间大于0.0 atm pH2O的63小时,大于0.2 atm pH 2O的38小时,以及0.6 atm pH2O的8至71小时。 750℃的相应的估计脆化时间大于83小时,在13至71小时之间,以及在1至6小时之间。建立了时间依赖性,现象学,复合材料破坏的蒙特卡洛模拟。对于550°C情况,在0.0、0.2和0.6 atm pH 2O的条件下,模拟的总脆化时间分别为300小时,100小时和25小时。 750°C情况下的脆化时间分别为300小时,20小时和3小时。对模型中使用的变量进行了详细的敏感性分析。该模型对室温下CMC的极限强度,高温下CMC的极限强度以及纤维的参考强度的变化最敏感,而对基质的弹性模量变化最不敏感和纤维。敏感性分析表明,总脆化时间变化产生的应力断裂曲线模拟了实验数据的趋势。这项研究表明,应力断裂强度的降低程度随温度,水分含量和暴露时间的增加而增加。

著录项

  • 作者

    LaRochelle, Kevin J.;

  • 作者单位

    Air Force Institute of Technology.;

  • 授予单位 Air Force Institute of Technology.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 195 p.
  • 总页数 195
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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