Nanobuild-2-2015-pages-15-30

Posted onCategoriesБез рубрики

THE ACHIEVEMENTS OF THE LEADING RUSSIAN ORGANIZATIONS

Pages:   15 – 46

UDC 62

Russian Academy of Engineering: a strong power for integration of engineering community

Authors:  GUSEV Boris Vladimirovich, President of Russian Academy of Engineering and International Academy of Engineering, Corresponding Member of RAS, expert of RUSNANO, Honoured Scientist of RF, Laureate of USSR and RF State prizes, Doctor in Technical Sciences, Professor. 9, bld. 4, Gazetny Pereulok, 125009, Moscow, Russia e-mail: info-rae@mail.ru

Extended Abstract: Russian Academy of Engineering is legal successor of the Engineering Academy of USSR, founded by 20 ministries and departments of USSR and RSFSR on May 13, 1990. The Engineering Academy of USSR since the very beginning of its functioning, has launched its task-oriented activity on strengthening of links between science and industry, on solving the problems of using the results of basic (fundamental) research and their accelerated adaptation into the industry. In the post-Soviet period, on the basis of the Academy, the Ministry of Justice of the Russian Federation, on December 24, 1991, registered the All-Russian Public Organization Russian Academy of Engineering (RAE). At the present time, RAE includes over 1350 full and corresponding members, prominent Russian scientists, engineers and industry organizers, over 200 member societies which include major Russian science & technology organizations, and over 40 regional engineering-technical structures, departments of RAE. RAE carries out large-scale work on the development of science & technology areas in science, creating new machinery and technologies, organization of efficient functioning of the Russian Engineering community. During the 25-year period of work, about 4,5 thousand new technologies were developed, over 6,5 thousand monographs were published. Over 4 thousand

patents were obtained. 209 members of RAE became laureates of State Prize of USSR and RF, 376 members of RAE became laureates of Government Prize of USSR and RF. Annual value of science & research, project and other works in the area of engineering amounts from 0,5 to 1 billion roubles.

This information and reference edition of the Encyclopedia of the Russian Academy of Engineering is dedicated to the 25th anniversary of the Russian Academy of Engineering. The Encyclopedia includes creative biographies of more than 1750 full and corresponding members of RAE, prominent scientists, distinguished engineers and organizers of industry, elected into the Academy since the foundation. The Encyclopedia provides information of people who in the end of XX and in the beginning of XXI centuries actively contributed to retaining and development of intellectual potential of science & technology on the main engineering directions by efficient implementation of achievements of fundamental science in the industry.

Key words: Russian Academy of Engineering, Engineering community, Engineering activities, fundamental research, models of new machinery, new technologies, science & technical areas of science, application of nanotechnologies and nanomaterials.

DOI: dx.doi.org/10.15828/2075-8545-2015-7-2-15-46

References:

  1. Gusev В.V. Development of nano-science and nano-technologies. Industrial and Civil Engineering. 2007, № 4, pp. 45–46.
  2. Ivasyshin H.S. Nauchnye otkrytija v mikro- i nanotribologii [Scientific discoveries in micro- and

nanotribology]. Mezhotraslevoj al’manah. Delovaja slava Rossii. Moscow, Slavitsa, 2007. Iss. 3,

  1. 47–48.
  2. Ponomarenko A.T., Figovsky O., Shevchenko V.G. Multifunctional Polymer Composites for «Intellectual » Structures: Present State, Problems, Future. Journal Advanced Materials Research, 2008, Vol. 740 (47), pp. 81–84, Trans Tech.
  3. Falikman V.R., Vainer A.Y. Fotokataliticheski aktivnye stroitel’nye materialy s nanochasticami

dioksida titana – novaja koncepcija uluchshenija jekologii megapolisov [Photocatalytically active

building materials with nanoparticles of titanium dioxide – a new concept to improve the ecology of big cities]. Voprosy primenenija nanotehnologij v stroitel’stve: Cb. dokl. uchastnikov kruglogo stola [The problems of implementation of nanotechnologies in construction: proc. of the round table]. Moscow, Moscow State University of Civil Engineering, 2009, pp. 35–49.

  1. Falikman V.R. About the use of nanotechnologies and nanomaterials in construction. Part 1. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2009, Vol. 1, no. 1, pp. 24–34. Available at: http://nanobuild.ru/en_EN/ (date of access: 12.03.2015). (In Russian)
  2. Gusev B.V., Minsadrov I.N., Miroevsky P.V. et al. Investigation of nanostructuring processes in finegrained concretes with silicon dioxide nanoparticles admixture. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2009, Vol. 1, no. 3, pp. 8–14. Available at: http://nanobuild.ru/en_EN/ (date of access: 12.03.2015). (In Russian)
  3. Ivasyshin H.S. Scientific discoveries in micro- and nanotribology. Phenomenological fundamentals of quantum friction theory. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2010, Vol. 2, № 4, pp. 70–86. Available at: http://nanobuild.ru/en_EN/ (date of access: 12.03.2015). (In Russian)
  4. Falikman V.R., Sobolev K.G. «There’s plenty of room at the bottom», or how nanotechnologies can change the world of concrete. Part 1. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2010, Vol. 2, no. 6, pp. 17–31. Available at: http://nanobuild.ru/en_EN/ (date of access: 12.03.2015). (In Russian)
  5. Ivasyshin H.S. Scientific discoveries in micro- and nanotribology and helium wear. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2011, Vol. 3, № 3, pp. 49–66. Available at: http://nanobuild.ru/en_EN/ (date of access: 12.03.2015). (In Russian)
  6. Falikman V., Vajner A., Zverev I. New photocatalytic cementitious composites containing modified titanium dioxide nanoparticles. Proceedings of the 3rd Int. Symposium on High Performance Concrete and Nanotechnology for High Performance Construction Materials (Hipermat), 7–9 March 2012, Kassel, Germany, pp. 147–152.
  7. Bazhenov Yu.M., Garkina I.A., Danilov A.M., Korolev E.V. System analysis in Construction Material Science. Moscow: Moscow State University of Civil Engineering. 2012. 432 p. (In Russian)
  8. Figovsky O.L., Beilin D.A, Ponomarev A.N. Successful implementation of nanotechnologies in

building materials. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2012,

Vol. 4, no. 3, pp. 6–21. Available at: http://nanobuild.ru/en_EN/ (date of access: 12.03.2015).

(In Russian)

  1. Falikman V.R., Petushkov A.V. Development of Russian Market of Nanotechnology Construction Products till 2020. Nanotechnology in Construction: 4th International Symposium. Agios Nicolaos. Crete: Greece. 2012. May 20–22. 120 p. CD. p. 112.
  2. Falikman V.R. Nanomaterials and nanotechnologies in modern concretes. Industrial and Civil Engineering. 2013, № 1, pp. 31–34.
  3. Gusev B.V., Falikman V.R., Leistner S. et al. Industrial technological research «Development of Russian market of nanotechnological products in construction until 2020». Part 1. A statement of the task and an approach to realize the project. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2013, Vol. 5, no. 1, pp. 6–17. Available at: http://nanobuild.ru/en_EN/ (date of access: 12.03.2015). (In Russian)
  4. Ivasyshin H.S. Physical and mechanical properties of nanomaterials and quantum mechanics. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2013, Vol. 5, № 3, pp. 45–55. Available at: http://nanobuild.ru/en_EN/ (date of access: 12.03.2015). (In Russian)
  5. Gusev B.V., Falikman V.R., Leistner S. et al. Industrial technological research «Development of Russian market of nanotechnological products in construction un¬til 2020». Part 2. Analysis of the world market. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2013. Vol. 5, no. 2, pp. 6–20. Available at: http://nanobuild.ru/en_EN/ (date of access: 12.03.2015). (In Russian)
  6. Falikman V.R., Vainer A.Y. Photocatalytic cementitious composites сontaining mesoporous titanium dioxide nanoparticles. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2014, Vol. 6, no. 1, pp. 14–26. Available at: http://nanobuild.ru/en_EN/ (date of access: 12.03.2015). (In Russian)
  7. Falikman V., Vajner A. New high performance nanoadditives for photocatalytic concrete: synthesis and study. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2015, Vol. 7, no. 1, pp. 18–28. DOI: dx.doi.org/10.15828/2075-8545-2015-7-1-18-28.
  8. Kudryavtsev P., Figovsky O. Nanomaterials based on soluble silicates, ISBN 978–3–659–63556–4, LAP Lambert Academic Publishing, 2014, 241 p.
  9. Kudryavtsev P., Figovsky O. Nanomaterialy na osnove rastvorimyh silicatov [Nanomaterials based on soluble silicates]. ISBN 978-3-659-58361-2. LAP Lambert Academic Publishing. 2014. 155 p. (In Russian)
  10. Romm F., Figovsky O. Modeling of Mechanical Properties of Polymeric Systems with Branching/Crosslinking, Particularly Their Mechanical Resistence and Stability. Macromolecular Theory and Simulations Volume 11, Issue 1, pp. 93–101, January 2002.
  11. Romm F., Figovsky O. Statistical polymer method: Modeling of macromolecules and aggregates with branching and crosslinking, formed in random processes, Discrete Dynamics in Nature and Society Vol. 2 (1998), 3, P. 203–208 http://dx.doi.org/10.1155/S1026022698000181.
  12. Kudryavtsev P.G., Figovsky O.L. Nanostructured materials, production and application in construction. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2014, Vol. 6, no. 6, pp. 27–45. DOI: dx.doi.org/10.15828/2075-8545-2014-6-6-27-45 (In Russian)
  13. Gusev B.V., Petrunin S.Y. Cavitation dispersion of carbon nanotubes and modification of cement systems. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2014, Vol. 6, no. 6, pp. 50–57. DOI: dx.doi.org/10.15828/2075-8545-2014-6-6-50-57 (In Russian)
  14. Kudryavtsev P.G., Figovsky O.L. Quasi-homogenous approximation for description of the properties of dispersed systems. Тhe basic approaches to model hardening processes in nanodispersed silica systems. Part I. Statical polymer method. Nanotehnologii v stroitel’stve = Nanotechnologies in Construction. 2015, Vol. 7, no. 1, pp. 29–54. DOI: dx.doi.org/10.15828/2075-8545-2015-7-1-29-54.

Full text in PDF format (15-30)