Desarrollo de sistemas de ahorro energético basados en bomba de calor

Autores/as

  • А. N. Vasiliev Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation
  • I.G. Ershova Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation
  • А. А. Belov Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation
  • V.N. Timofeev Federal State Budgetary Educational Institution of Higher Education «I.N. Ulianov Chunash State University», Chuvash Republic, Russian Federation
  • V. Y. Uhanova Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation
  • А. V. Sokolov Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation
  • А. А. Smirnov Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation

Palabras clave:

Bomba de calor, energía solar, bajo potencial de energía del suelo, ahorro de energía, objeto agrícola, superficie de respuesta.

Resumen

Este artículo describe la estructura y el funcionamiento de los sistemas de ahorro de energía basados en una bomba de calor con el uso de fuentes de energía renovables. Utilizando el método de un experimento de planificación activa de tres factores, las superficies de respuesta y sus secciones transversales bidimensionales se construyeron en las isolinas de la duración del proceso de transición y la cantidad de calor del portador de energía de la potencia del calentador eléctrico. Los sistemas de ahorro de energía desarrollados apoyan el régimen de temperatura de un objeto agrícola mediante el uso de energía solar, potencial bajo y fuentes de energía artificial durante todo el año. El sistema desarrollado (opción uno), instalado en lugares de difícil acceso en las instalaciones agrícolas, está diseñado para generar energía térmica, electricidad y proporciona ahorros de energía significativos durante el suministro de energía. Debido a la velocidad del regulador eléctrico con relleno sólido y calentador eléctrico, se incrementa la eficiencia de la bomba de calor, lo que mantiene los parámetros de microclima del objeto agrícola.

Descargas

Los datos de descargas todavía no están disponibles.

Biografía del autor/a

А. N. Vasiliev, Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation

Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation

I.G. Ershova, Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation

Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation

А. А. Belov, Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation

Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation

V.N. Timofeev, Federal State Budgetary Educational Institution of Higher Education «I.N. Ulianov Chunash State University», Chuvash Republic, Russian Federation

Federal State Budgetary Educational Institution of Higher Education «I.N. Ulianov Chunash State University», Chuvash Republic, Russian Federation

V. Y. Uhanova, Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation

Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation

А. V. Sokolov, Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation

Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation

А. А. Smirnov, Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation

Federal State Budgetary Scientific Institution "Federal Scientific Agroengineering Center VIM", Moscow, Russian Federation

Citas

Abdo, B. A. (2013). Economic study for the possibility of wheat agriculture expansion in Egypt.

Chebotareva, G. S. (2016). Methodical Tools for Assessment of Investment Attractiveness of Energy Generating Company: Dissertation for Candidate of Economics: 08.00.05. G. S.

Chebotareva; the Place of Presentation of the Dissertation: The Ural Federal University after the First President of Russian B. N. Yeltsin. Yekaterinburg, 243.

Dorokhov, A. S. (2010). Automation of measurements during quality control of agricultural machinery spare parts. The collection of scientific reports VIM. Moscow: All-Russian Research Institute of Agricultural Mechanization. 2, 448-457.

Ershova, I. G., Ershov, M.A., & Poruchikov, D.V. (2017). Justification of low-potential energy source transfer regulation in the system based on a heat pump. The Journal "Fundamental Foundations of Mechanics", 2, 32-33.

Jarreau, J., & Poncet, S. (2012). Export sophistication and economic growth: evidence from China. Journal of Development Economics. URL: http://www.scopus.com.

Kireev, V. V. Lazeev, N.A., & Stepanenko, P.P. (2003). The saving of energy resources based on the use of natural cold. Storage and processing of agricultural raw materials. 10, 10-13.

Novikova, G. V., Belova, M. V., Belov, A. A., Ershova, I. G., & Poruchikov, D. V. (2015). The methods of product heat treatment process modification by electromagnetic radiation energy. International Scientific and Technical Conference "Innovations in Agriculture." Moscow: FSECI VIESH. 5 (14), 17-21.

Qazani, M.R.C., Pedrammehr, S. & Nategh, (2018). An Investigation on the Motion Error of Machine Tools’ Hexapod Table, M.J. Int. J. Precis. Eng. Manuf. 19: 463. https://doi.org/10.1007/s12541-018-0056-5.

Sayfudinova, N. Z., Safiullin, M. R., Safiullin, ?. R., & Zainullina, M. R. (2016). Modeling of economic system of the development of the Russian Federation system. Journal of Economics and Economic Education Research, 17, 334-346.

Vasilyev, G. P. (2007). Efficiency and the prospect of heat pump use in the urban economy of Moscow. Energy Saving, 8, 63-65.

Wonglimpiyarat, J. (2010). Commercialization strategies of technology: lessons from Silicon Valley. The Journal of Technology Transfer. 35 (2), 225-236.

Descargas

Publicado

2018-12-27

Cómo citar

Vasiliev А. N., Ershova, I., Belov А. А., Timofeev, V., Uhanova, V. Y., Sokolov А. V., & Smirnov А. А. (2018). Desarrollo de sistemas de ahorro energético basados en bomba de calor. Amazonia Investiga, 7(17), 219–227. Recuperado a partir de https://amazoniainvestiga.info/index.php/amazonia/article/view/346

Número

Sección

Articles