Preparation of novel reticulated prickly porous ceramics with mullite whiskers

2021 ◽  
Vol 41 (1) ◽  
pp. 864-870
Author(s):  
Hailu Wang ◽  
Shujing Li ◽  
Yuanbing Li ◽  
Ruofei Xiang ◽  
Han Luo ◽  
...  
2019 ◽  
Vol 45 (12) ◽  
pp. 14517-14523 ◽  
Author(s):  
Ping Yi ◽  
Pengda Zhao ◽  
Deqiang Zhang ◽  
Han Zhang ◽  
Huizhong Zhao

ACS Omega ◽  
2020 ◽  
Vol 5 (25) ◽  
pp. 15691-15701
Author(s):  
Yaoyao Zhang ◽  
Zhengwen Wei ◽  
Mengyao Li ◽  
Xishe Wu ◽  
Wei Wang

2021 ◽  
Vol 47 (10) ◽  
pp. 14561-14568
Author(s):  
Dong Lao ◽  
Peng Lin ◽  
Xiajie Liu ◽  
Ruoyu Chen ◽  
Wenbao Jia ◽  
...  

Author(s):  
H. M. Kerch ◽  
R. A. Gerhardt

Highly porous ceramics are employed in a variety of engineering applications due to their unique mechanical, optical, and electrical characteristics. In order to achieve proper design and function, information about the pore structure must be obtained. Parameters of importance include pore size, pore volume, and size distribution, as well as pore texture and geometry. A quantitative determination of these features for high porosity materials by a microscopic technique is usually not done because artifacts introduced by either the sample preparation method or the image forming process of the microscope make interpretation difficult.Scanning electron microscopy for both fractured and polished surfaces has been utilized extensively for examining pore structures. However, there is uncertainty in distinguishing between topography and pores for the fractured specimen and sample pullout obscures the true morphology for samples that are polished. In addition, very small pores (nm range) cannot be resolved in the S.E.M. On the other hand, T.E.M. has better resolution but the specimen preparation methods involved such as powder dispersion, ion milling, and chemical etching may incur problems ranging from preferential widening of pores to partial or complete destruction of the pore network.


2017 ◽  
Vol 747 (4) ◽  
pp. 32-36
Author(s):  
V.A. GURIEVA ◽  
◽  
A.V. DOROSHIN ◽  
K.M. VDOVIN ◽  
Yu.E. ANDREEVA ◽  
...  
Keyword(s):  

2020 ◽  
Vol 67 (1) ◽  
pp. 148-155
Author(s):  
Anatoliy V. Fedotov ◽  
Viktor S. Grigoriev ◽  
Dmitriy A. Kovalev ◽  
Andrey A. Kovalev

To speed up the wastewater treatment under aerobic conditions and to optimize the processes of anaerobic wastewater treatment in digesters, immobilization technologies of microorganisms and enzymes on solid carriers are used. Ceramic carriers based on aluminosilicates and alumina are one of the promising inorganic biomass carriers. (Research purpose) To study the structure of porous ceramic biomass carriers for anaerobic processing of organic waste and evaluate the prospects for their use. (Materials and methods) The substrate for anaerobic digestion was a mixture of sediments of the primary and secondary sewage sumps of the Lyubertsy treatment facilities. K-65 cattle feed was used to ensure the constancy of the composition of organic substances in substrates as a cosubstrate. The authors used the method of low-temperature nitrogen adsorption of Bruner-Emmett-Teller to study the pore structure and specific surface of solid carriers on a specific surface analyzer Quntachrome Autosorb-1. (Results and discussion) The main characteristics (specific surface, volume of micro- and mesopores, predominant pore radius, water absorption and others) of chamotte foam lightweight and highly porous corundum ceramics were determined. It was revealed that ceramic materials with a developed surface and electrically conductive material provided an increase in biogas yield by 3.8-3.9 percent with an increase in methane content by an average of 5 percent. (Conclusions) The results of anaerobic digestion showed a positive effect of both a conductive carrier and highly porous ceramic materials on the process of anaerobic bioconversion of organic waste into biogas. It is advisable to expand experimental studies on the use of a conductive carrier with a developed surface based on highly porous ceramics.


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