Microcrystalline Cellulose Based on Cellulose Containing Raw Material Modified by Steam Explosion Treatment

Article Preview

Abstract:

Today’s methods for producing powdered celluloses, in particular microcrystalline cellulose (MCC), from various plant raw materials, while applying new highly efficient methods for the isolation of cellulose are of a great interest. One of these methods is the production of MCC from lignocellulosic material activated by steam explosion treatment. The material obtained by this method from wood has a high reactivity, low content of residual lignin, a high specific surface, which allows to subject it successfully and efficiently to accelerated delignification or hydrolytic breakdown (degradation). This ability of the lignocellulosic material, activated by steam explosion, is the basis of this study, which provides the results of an experimental evaluation of the component and dispersion analysis of MCC, obtained from this material.

You might also be interested in these eBooks

Info:

Periodical:

Solid State Phenomena (Volume 284)

Pages:

773-778

Citation:

Online since:

October 2018

Export:

Price:

* - Corresponding Author

[1] V.G. Gusev, A.A. Fomin and A.R. Sadrtdinov, Dynamics of Stock Removal in Profile Milling Process by Shaped Tool. Procedia Engineering, 206 (2017) 279-285.

DOI: 10.1016/j.proeng.2017.10.474

Google Scholar

[2] D.B. Prosvirnikov, E.I. Baigildeeva, A.R. Sadrtdinov and A.A. Fomin, Modelling heat and mass transfer processes in capillary-porous materials at their grinding by pressure release. Proceedings of 2017 International Conference on Industrial Engineering, Applications and Manufacturing, ICIEAM 2017, 8076443.

DOI: 10.1109/icieam.2017.8076443

Google Scholar

[3] A.A. Fomin, Limiting product surface and its use in profile milling design operations. Solid State Phenomena, 265 (2017) 672-678.

DOI: 10.4028/www.scientific.net/ssp.265.672

Google Scholar

[4] D.B. Prosvirnikov, Modeling of delignification process of activated wood and equipment for its implementation, IOP Conf. Ser.: Mater. Sci. Eng. 221.1 (2017) 012009.

DOI: 10.1088/1757-899x/221/1/012009

Google Scholar

[5] D.B. Prosvirnikov, IOP Conf. Ser.: Mater. Sci. Eng. 221 (2017) 012010.

Google Scholar

[6] V.G. Gusev, A.A. Fomin, Multidimensional Model of Surface Waviness Treated by Shaping Cutter, Procedia Engineering, 206 (2017) 286-292.

DOI: 10.1016/j.proeng.2017.10.475

Google Scholar

[7] R.G. Safin, Technology of Wood Waste Processing to Obtain Construction Material, Solid State Phenomena, 265 (2017) 245-249.

DOI: 10.4028/www.scientific.net/ssp.265.245

Google Scholar

[8] N.F. Timerbaev, A.R. Sadrtdinov, R.G. Safin, Software systems application for shafts strength analysis in mechanical engineering, Procedia Engineering, 206 (2017) 1376-1381.

DOI: 10.1016/j.proeng.2017.10.648

Google Scholar

[9] N.F. Timerbaev, Application of software solutions for modeling and analysis of parameters of belt drive in engineering, IOP Conf. Ser.: Earth Environ. Sci. 87.8 (2017) 082047.

DOI: 10.1088/1755-1315/87/8/082047

Google Scholar

[10] V.V. Stepanov, Composite Material for Railroad Tie, Solid State Phenomena, 265 (2017) 587-591.

DOI: 10.4028/www.scientific.net/ssp.265.587

Google Scholar

[11] A.R. Sadrtdinov, IOP Conf. Ser.: Mater. Sci. Eng. 124 (2016) 012092.

Google Scholar

[12] V.A. Lashkov, IOP Conf. Ser.: Mater. Sci. Eng. 124 (2016) 012111.

Google Scholar

[13] N.F. Timerbaev, D.F. Ziatdinova, R.G. Safin and A.R. Sadrtdinov, Gas purification system modeling in fatty acids removing from soapstock, Proceedings of 2017 International Conference on Industrial Engineering, Applications and Manufacturing, ICIEAM 2017, 8076418.

DOI: 10.1109/icieam.2017.8076418

Google Scholar

[14] I.A. Popov, A.V. Shchelchkov, Y.F. Gortyshov, High Temp, 55.4 (2017) 524.

Google Scholar

[15] I.V. Anisimova, Y.F. Gortyshov, V.N. Ignat'ev, Russ. Aeronaut. 59 (2016) 414.

Google Scholar

[16] I.A. Popov, Cooling systems for electronic devices based on the ribbed heat pipe, Russian Aeronautics (Iz VUZ), 58.3 (2015) 309-314.

DOI: 10.3103/s1068799815030101

Google Scholar

[17] D.V. Tuntsev, The mathematical model of fast pyrolysis of wood waste, Proceedings of 2015 International Conference on Mechanical Engineering, Automation and Control Systems, MEACS 2015, 7414929.

DOI: 10.1109/meacs.2015.7414929

Google Scholar

[18] V.A. Sychevskii, Drying of colloidal capillary-porous materials. International Journal of Heat and Mass Transfer, 85 (2015) 740-749.

DOI: 10.1016/j.ijheatmasstransfer.2015.02.025

Google Scholar

[19] L. Yang, H. Rong, Y. He, J. of Materi Eng and Perform, 23.2 (2014) 429-438.

Google Scholar

[20] L.K. Gujjala, T.K. Bandyopadhyay, R. Banerjee, Kinetic modelling of laccase mediated delignification of Lantana camara, Bioresource technology, 212 (2016) 47-54.

DOI: 10.1016/j.biortech.2016.04.006

Google Scholar

[21] E.P. Dagnino, Optimization of the soda-ethanol delignification stage for a rice husk biorefinery, Industrial Crops and Products, 97 (2017) 156-165.

DOI: 10.1016/j.indcrop.2016.12.016

Google Scholar

[22] P.C. Pinto, Kraft delignification of energy crops in view of pulp production and lignin valorization, Industrial Crops and Products, 71 (2015) 153-162.

DOI: 10.1016/j.indcrop.2015.03.069

Google Scholar