无机材料学报 ›› 2020, Vol. 35 ›› Issue (10): 1099-1104.DOI: 10.15541/jim20190646 CSTR: 32189.14.10.15541/jim20190646
所属专题: 结构陶瓷论文精选(2020)
吕晓旭1(),姜卓钰1,周怡然1,齐哲1,赵文青1,2,焦健1
收稿日期:
2019-12-23
修回日期:
2020-02-01
出版日期:
2020-10-20
网络出版日期:
2020-03-06
作者简介:
吕晓旭(1988-), 男, 博士. E-mail:xiaoxul@126.com.
基金资助:
LÜ Xiaoxu1(),JIANG Zhuyu1,ZHOU Yiran1,QI Zhe1,ZHAO Wenqing1,2,JIAO Jian1
Received:
2019-12-23
Revised:
2020-02-01
Published:
2020-10-20
Online:
2020-03-06
About author:
Lü Xiaoxu(1988-), male, PhD. E-mail:xiaoxul@126.com
摘要:
采用化学气相渗透(CVI)工艺, 在SiC纤维表面沉积BN和BN/SiC复合界面层, 对沉积界面层前后纤维的力学性能进行了评价。采用聚合物浸渍裂解(PIP)工艺进行致密化, 制得以原纤维、BN界面层和BN/SiC界面层纤维增强的三种Mini-SiCf/SiC复合材料, 研究其微观结构和拉伸性能。结果表明: 采用CVI工艺制得的界面层厚度均匀、结构致密, 其中BN界面层中存在六方相, 晶体尺寸为1.76 nm; SiC界面层结晶性较好, 晶粒尺寸为18.73 nm; 沉积界面层后SiC纤维的弹性模量基本保持不变, 拉伸强度降低。与SiCf/SiC相比, PIP工艺制备的SiCf/BN/SiC和SiCf/(BN/SiC)/SiC-Mini复合材料所能承受的最大拉伸载荷和断裂应变明显提升, BN界面层起主要作用。由断面形貌分析可以看出, SiCf/BN/SiC和SiCf/(BN/SiC)/SiC复合材料的纤维拔出明显, 说明在断裂时消耗的能量增加, 可承受的最大载荷增大。
中图分类号:
吕晓旭, 姜卓钰, 周怡然, 齐哲, 赵文青, 焦健. BN/SiC复合界面层对SiC纤维和PIP-Mini复合材料力学性能的影响[J]. 无机材料学报, 2020, 35(10): 1099-1104.
LÜ Xiaoxu, JIANG Zhuyu, ZHOU Yiran, QI Zhe, ZHAO Wenqing, JIAO Jian. Effect of BN/SiC Multilayered Interphases on Mechanical Properties of SiC Fibers and Minicomposites by PIP[J]. Journal of Inorganic Materials, 2020, 35(10): 1099-1104.
Linear density (g·m-1) Sample | PIP cycle | |||||
---|---|---|---|---|---|---|
0 | 1 | 2 | 3 | 4 | 5 | |
SiCf/SiC | (0.303±0.028) | (1.26±0.11) | (1.30±0.14) | (1.32±0.17) | (1.33±0.12) | (1.33±0.13) |
SiCf/BN/SiC | (0.330±0.023) | (1.31±0.10) | (1.34±0.11) | (1.35±0.15) | (1.36±0.10) | (1.36±0.13) |
SiCf/(BN/SiC)/SiC | (0.346±0.035) | (1.25±0.08) | (1.28±0.11) | (1.30±0.15) | (1.30±0.14) | (1.31±0.10) |
表1 浸渍不同次数后Mini复合材料的线密度
Table 1 The linear density of Mini-composites after different PIP cycles
Linear density (g·m-1) Sample | PIP cycle | |||||
---|---|---|---|---|---|---|
0 | 1 | 2 | 3 | 4 | 5 | |
SiCf/SiC | (0.303±0.028) | (1.26±0.11) | (1.30±0.14) | (1.32±0.17) | (1.33±0.12) | (1.33±0.13) |
SiCf/BN/SiC | (0.330±0.023) | (1.31±0.10) | (1.34±0.11) | (1.35±0.15) | (1.36±0.10) | (1.36±0.13) |
SiCf/(BN/SiC)/SiC | (0.346±0.035) | (1.25±0.08) | (1.28±0.11) | (1.30±0.15) | (1.30±0.14) | (1.31±0.10) |
图1 不同种类界面层纤维的SEM照片及EDS分析结果
Fig. 1 SEM and EDS microstructures of fibers with different interphases (a, b) As-received; (c, d) BN-coated; (e, f) BN/SiC-coated
图4 不同种类界面层纤维的拉伸强度
Fig. 4 Tensile strength of SiC fibers with different interphases (a) Tested strength value; (b) Calculated strength value after deducting the thickness of interphases
图7 不同界面层复合材料断口的SEM照片
Fig. 7 Cross-section morphologies of mini-SiCf/SiC composites with different interphases (a) No interphase, (b) BN interphase, (c) BN/SiC interphase
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