Overcoming stereotypes of renewable energy

2019 ◽  
pp. 124-136
Author(s):  
Victor D. Gazman

The article considers prerequisites for the formation of a new paradigm in the energy sector. The factors that may affect the imminent change of leadership among the energy generation are analyzed. The variability of the projects of creation and functioning of power stations is examined. The focus is made on problematic aspects of the new generation, especially, storage and supply of energy, achieving a system of parity that ensures balance in pricing generations. The author substantiates the principles of forming system of parities arising when comparing traditional and new generations. The article presents the results of an empirical analysis of the 215 projects for the construction of facilities for renewable energy. The significance and direction of the impact of these factors on the growth in investment volumes of transactions are determined. The author considers leasing as an effective financial instrument for overcoming stereotypes of renewable energy and as a promising direction for accelerated implementation of investment projects.

2020 ◽  
Vol 41 (01) ◽  
Author(s):  
Alexander Ryota Keeley ◽  
Ken’ichi Matsumoto ◽  
Kenta Tanaka ◽  
Yogi Sugiawan ◽  
Shunsuke Managi

2020 ◽  
Vol 41 (01) ◽  
Author(s):  
Alexander Ryota Keeley ◽  
Ken’ichi Matsumoto ◽  
Kenta Tanaka ◽  
Yogi Sugiawan ◽  
Shunsuke Managi

Energies ◽  
2019 ◽  
Vol 12 (11) ◽  
pp. 2152 ◽  
Author(s):  
Peng Wang ◽  
Meng Li

In China, electricity market reform was first implemented in 2015. At the same time, the national carbon market was built, along with the electricity industry, which was considered a breakthrough. Some key considerations for the future development of China’s electricity system include the implementation of demand-side measures in order to adjust the peak-to-valley difference and the economic dispatch of increasing intermittent renewable energy and traditional energy in the process of power marketization with the implementation of a carbon policy. This paper examines the impact of policies on electricity generation by modelling the evolution process of power marketization and the economic dispatch of generation technologies over a sixteen-year period beginning in 2020. We model four potential influencing factors of government policy: (1) the demand response mode; (2) power marketization process; (3) capacity adjustment of thermal power units; and (4) carbon taxes, which vary in terms of their timing and amount. This model assesses the impact of these influencing factors on the competition between electricity generators using a range of output variables, including generation portfolios, electricity prices, capacity factors, CO2 emissions, etc. The results show that the new round of electricity market reforms has had a positive impact on renewable energy generation. The influence of carbon policy is evident in the promotion, transformation and elimination of thermal units, and an indirect increase in renewable energy generation.


Vestnik MGSU ◽  
2019 ◽  
pp. 1241-1257 ◽  
Author(s):  
Valery S. Lesovik ◽  
Ekaterina V. Fomina

Introduction. The negative effects of the environment is increasingly reflected in the health of the human. With the development of nature-like technologies, the main task of scientists around the world is to create comfortable conditions for human existence on the Earth. This primarily relates to the construction industry, as materials for 80 to 90 % of his/her life surround the human. The purpose of the work is to develop the fundamental foundations for creating new generation composites to protect the human environment based on transdisciplinary approaches, including the theoretical principles of geonics (geomimetics). Materials and methods. The work was based on the study and analysis of published sources and personal experience. The new paradigm of science is based on transdisciplinary research with transferring cognitive patterns between disciplines. To test the results of theoretical studies, high-tech equipment and modern research methods, such as scanning and transmission electron microscopy, scanning and atomic force microscopy, IR spectral analysis, thermal analysis methods, etc. were used at the Shared-Use Center on the base of BSTU named after V.G. Shukhov, Moscow State University named after M.V. Lomonosov, RAS Institute of Radio Engineering and Electronics named after V.A. Kotelnikov and NIISF RAASN. Results. Generalized view of innovative practical and scientific activity allowed formulating the problems of innovative development of construction materials science, where the main constraint is the lack of use of available knowledge from various fields of science, such as physics, chemistry, crystal chemistry, mineralogy, etc. in terms of transdisciplinarity. The focus is on the multi-component materials, which are designed on the base of the synergism of different physical and chemical parameters. Conclusions. Transdisciplinary nature of new science-intensive research allows solving complex problems in the traditional, allied and new fields of science, more efficient using natural, energy and financial resources, as well as facilitates the development of new paradigms of engineering. Implementation of such approaches has already yielded to obtain a new generation of composites protecting people from the impact of aggressive environmental factors and will enable innovative breakthroughs in the future. Acknowledgements. The research was realized owing to the resources of the State Programme of the Russian Federation “Development of Sciences and Technologies” for the years 2013 to 2020, the Programme of fundamental scientific research of the State Academies of Sciences for the years 2013 to 2020, within the framework of the Plan of fundamental scientific research of the Ministry of Construction Industry, Housing and Utilities Sector of the Russian Federation and Russian Academy of Architecture and Construction Sciences, Topic 7.5.1.; a reference university development programme based on BSTU named after V.G. Shoukhov with use of equipment of the High Technology Center at BSTU named after V.G. Shoukhov.


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