无机材料学报 ›› 2022, Vol. 37 ›› Issue (12): 1351-1357.DOI: 10.15541/jim20220179 CSTR: 32189.14.10.15541/jim20220179
孙扬善1,3(), 杨治华2, 蔡德龙2, 张正义1,3, 柳琪1,3, 房树清1,3, 冯良1,3, 石丽芬1,3, 王友乐1,3, 贾德昌2
收稿日期:
2022-03-30
修回日期:
2022-05-25
出版日期:
2022-12-20
网络出版日期:
2022-06-03
作者简介:
孙扬善(1989-), 男, 高级工程师. E-mail: ashan19890608@163.com
SUN Yangshan1,3(), YANG Zhihua2, CAI Delong2, ZHANG Zhengyi1,3, LIU Qi1,3, FANG Shuqing1,3, FENG Liang1,3, SHI Lifen1,3, WANG Youle1,3, JIA Dechang2
Received:
2022-03-30
Revised:
2022-05-25
Published:
2022-12-20
Online:
2022-06-03
About author:
SUN Yangshan (1989-), male, senior engineer. E-mail: ashan19890608@163.com
Supported by:
摘要:
在堇青石化学计量组分和非堇青石化学计量组分中分别添加B2O3, 通过玻璃粉末烧结法制备玻璃陶瓷,并研究了玻璃陶瓷的性能, 包括非等温析晶动力学、热学、力学和介电性能。本研究使用非堇青石化学计量组分制备了α-堇青石基玻璃陶瓷, 并加入B2O3促进α-堇青石析出, 提高MgO-Al2O3-SiO2玻璃的结晶能力。玻璃成分中过量的MgO和SiO2不会影响玻璃的析晶能力, 但会影响析晶的类型; 增加B2O3含量可以制备低热膨胀系数的α-堇青石基玻璃陶瓷, 但会降低玻璃陶瓷的软化点。此外, 增加B2O3含量还可以提高玻璃陶瓷的致密性和强度。α-堇青石基玻璃陶瓷的最大抗弯强度、弹性模量、断裂韧性和体积密度分别为(42.4±3.0) MPa、(34.0±2.9) GPa、(0.7±0.15) MPa·m1/2和1.53 g/cm3。制备的α-堇青石基玻璃陶瓷表现出良好的介电性能(介电常数低至3.5), 热膨胀系数低至4.22×10-6 K-1。
中图分类号:
孙扬善, 杨治华, 蔡德龙, 张正义, 柳琪, 房树清, 冯良, 石丽芬, 王友乐, 贾德昌. 粉末烧结法制备α-堇青石基玻璃陶瓷的析晶动力学和性能[J]. 无机材料学报, 2022, 37(12): 1351-1357.
SUN Yangshan, YANG Zhihua, CAI Delong, ZHANG Zhengyi, LIU Qi, FANG Shuqing, FENG Liang, SHI Lifen, WANG Youle, JIA Dechang. Crystallization Kinetics, Properties of α-cordierite Based Glass-ceramics Prepared by Glass Powder Sintering[J]. Journal of Inorganic Materials, 2022, 37(12): 1351-1357.
Powder | MgO | Al2O3 | SiO2 | B2O3 | Molar ratio of MgO : Al2O3 : SiO2 |
---|---|---|---|---|---|
S | 13.80 g (21.38%) | 34.90 g (21.19%) | 51.30 g (52.8%) | 5.00 g (4.45%) | 2 : 2 : 5 |
NS1 | 24.00 g (33.56%) | 22.00 g (12.08%) | 54.00 g (50.34%) | 5.00 g (4.02%) | 6 : 2 : 9 |
NS2 | 24.00 g (32.26%) | 22.00 g (11.61%) | 54.00 g (48.39%) | 10.00 g (7.74%) | 6 : 2 : 9 |
NS3 | 24.00 g (31.06%) | 22.00 g (11.18%) | 54.00 g (46.58%) | 15.00 g (11.18%) | 6 : 2 : 9 |
Table 1 Proportion of MAS based glass raw materials (molar percent)
Powder | MgO | Al2O3 | SiO2 | B2O3 | Molar ratio of MgO : Al2O3 : SiO2 |
---|---|---|---|---|---|
S | 13.80 g (21.38%) | 34.90 g (21.19%) | 51.30 g (52.8%) | 5.00 g (4.45%) | 2 : 2 : 5 |
NS1 | 24.00 g (33.56%) | 22.00 g (12.08%) | 54.00 g (50.34%) | 5.00 g (4.02%) | 6 : 2 : 9 |
NS2 | 24.00 g (32.26%) | 22.00 g (11.61%) | 54.00 g (48.39%) | 10.00 g (7.74%) | 6 : 2 : 9 |
NS3 | 24.00 g (31.06%) | 22.00 g (11.18%) | 54.00 g (46.58%) | 15.00 g (11.18%) | 6 : 2 : 9 |
Powder | E/ (kJ·mol-1) | A | k (Tp) | ||||
---|---|---|---|---|---|---|---|
5 ℃/ min | 10 ℃/ min | 15 ℃/ min | 20 ℃/ min | Mean | |||
S | 330.56 | 4.39×1012 | 0.117 | 0.265 | 0.348 | 0.417 | 0.285 |
NS1 | 332.06 | 3.54×1012 | 0.118 | 0.245 | 0.345 | 0.430 | 0.285 |
NS2 | 412.12 | 4.68×1015 | 0.141 | 0.287 | 0.424 | 0.528 | 0.345 |
NS3 | 417.86 | 8.05×1015 | 0.156 | 0.271 | 0.412 | 0.580 | 0.355 |
Table 2 Non-isothermal crystallization kinetic parameters of the glass powders
Powder | E/ (kJ·mol-1) | A | k (Tp) | ||||
---|---|---|---|---|---|---|---|
5 ℃/ min | 10 ℃/ min | 15 ℃/ min | 20 ℃/ min | Mean | |||
S | 330.56 | 4.39×1012 | 0.117 | 0.265 | 0.348 | 0.417 | 0.285 |
NS1 | 332.06 | 3.54×1012 | 0.118 | 0.245 | 0.345 | 0.430 | 0.285 |
NS2 | 412.12 | 4.68×1015 | 0.141 | 0.287 | 0.424 | 0.528 | 0.345 |
NS3 | 417.86 | 8.05×1015 | 0.156 | 0.271 | 0.412 | 0.580 | 0.355 |
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