Performance of borosilicate glass/Ba3(VO4)2 ceramic composites and chemical stability with Ag electrodes

2020 ◽  
Vol 40 (10) ◽  
pp. 3600-3607 ◽  
Author(s):  
Haikui Zhu ◽  
Huidong Gu ◽  
Ye Dong ◽  
Wenjie Bian ◽  
Qitu Zhang
2008 ◽  
Vol 368-372 ◽  
pp. 1422-1425 ◽  
Author(s):  
An Guo Lu ◽  
Tai Qiu

Calcium borosilicate (CaO-B2O3-SiO2, CBS) glass based glass-ceramic composites were prepared by introducing borosilicate glass. The effects of borosilicate glass and firing temperature on the microstructure and properties of the glass-ceramic composites were investigated. The results showed that the composites containing 0~40% (in mass fraction, the same below) borosilicate glass can be sintered at 850°C. The dielectric constant (εr) decreases with the increase of borosilicate glass content and can be adjusted in the range of 5.6~6.6. The coefficient of thermal expansion (CTE) increases with the increase of borosilicate glass content. Increasing sintering temperature favors the precipitations of crystal phases, which have lower εr than CBS glass, resulting in the decrease of εr for the composites.


2013 ◽  
Vol 12 ◽  
pp. E19-E27 ◽  
Author(s):  
Rama Krishna Chinnam ◽  
Aldo R. Boccaccini ◽  
Enrico Bernardo ◽  
Howard Epstein

2020 ◽  
Vol 528 ◽  
pp. 119735 ◽  
Author(s):  
Shou Peng ◽  
Zhenkun Ke ◽  
Xin Cao ◽  
Chuanli Shan ◽  
Fengyang Zhao ◽  
...  

2014 ◽  
Vol 29 (4) ◽  
pp. 692-697 ◽  
Author(s):  
Yongqiang Zhang ◽  
Mitang Wang ◽  
Mei Li ◽  
Ming Wang ◽  
Quansheng Liu

Author(s):  
Baihe Du ◽  
Yuan Cheng ◽  
Liancai Xun ◽  
Shuchang Zhang ◽  
Jing Tong ◽  
...  

AbstractFinding the optimum balance between strength and toughness, as well as acquiring reliable thermal shock resistance and oxidation resistance, has always been the most concerned topic in the discussion of ultra-high temperature ceramic composites. Herein, PyC modified 3D carbon fiber is used to reinforce ultra-high temperature ceramic (UHTC). The macroscopic block composite with large size is successfully fabricated through low temperature sintering at 1300 °C without pressure. The prepared PyC modified 3D Cf/ZrC-SiC composites simultaneously possess excellent physical and chemical stability under the synergistic effect of PyC interface layer and low temperature sintering without pressure. The fracture toughness is increased in magnitude to 13.05 ± 1.72 MPa·m1/2 accompanied by reliable flexural strength of 251 ± 27 MPa. After rapid thermal shock spanning from room temperature (RT) to 1200 °C, there are no visible surface penetrating cracks, spalling, or structural fragmentation. The maximum critical temperature difference reaches 875 °C, which is nearly three times higher than that of traditional monolithic ceramics. The haunting puzzle of intrinsic brittleness and low damage tolerance are resolved fundamentally. Under the protection of PyC interface layer, the carbon fibers around oxide layer and matrix remain structure intact after static oxidation at 1500 °C for 30 min. The oxide layer has reliable physical and chemical stability and resists the erosion from fierce oxidizing atmosphere, ensuring the excellent oxidation resistance of the composites. In a sense, the present work provides promising universality in designability and achievement of 3D carbon fiber reinforced ceramic composites.


2021 ◽  
Vol 171 ◽  
pp. 110792
Author(s):  
Kangjia Hu ◽  
Shenhou Li ◽  
Zhangyuan Zhao ◽  
Xuewei Liang ◽  
Yangyang Cai ◽  
...  

2021 ◽  
Author(s):  
Baihe DU ◽  
Yuan Cheng ◽  
Liancai XUN ◽  
Shuchang ZHANG ◽  
Jing TONG ◽  
...  

Abstract To find the optimum balance between strength and toughness, as well as acquiring reliable thermal shock resistance and oxidation resistance, has always been the most concerned topic in the discussion of ultra-high temperature ceramic composites. Herein, PyC modified 3D carbon fiber is used to reinforce ultra-high temperature ceramic. The macroscopic block composite with large size is successfully fabricated through ultra-low temperature sintering at 1300°C without pressure. The prepared PyC modified 3D Cf/ZrC-SiC composites simultaneously possess excellent physical and chemical stability under the synergistic effect of PyC interface layer and ultra-low temperature sintering without pressure. The fracture toughness is increased in magnitude to 13.05 ± 1.72 MPa∙m1/2 accompanied by reliable flexural strength of 251 ± 27 MPa. After rapid thermal shock spanning from RT to 1200°C, there is no visible surface penetrating cracks, spalling or structural fragmentation. The maximum critical temperature difference reaches 875°C, which is nearly three times higher than that of traditional monolithic ceramics. The haunting puzzle of intrinsic brittleness and low damage tolerance are resolved fundamentally. Under the protection of PyC interface layer, the carbon fibers around oxide layer and matrix remain structure intact after static oxidation at 1500°C for 30 min. The oxide layer has reliable physical and chemical stability and resist the erosion from fierce oxidizing atmosphere, ensuring the excellent oxidation resistance of the composites. In a sense, the present work provides promising universality in designability and achievement of 3D carbon fiber reinforced ceramic composites.


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