Skip to main content
Top
Published in: Wireless Networks 7/2020

29-01-2019

Energy-saving automated system for microclimate in agricultural premises with utilization of ventilation air

Authors: Dmitry Tikhomirov, Alexey N. Vasilyev, Dmitry Budnikov, Alexey A. Vasilyev

Published in: Wireless Networks | Issue 7/2020

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

Agricultural production is a large consumer of thermal energy for various processes. Heat is necessary to maintain the microclimate on livestock farms in the cold season. Previous studies have reported that heat recovery of ventilation air can reduce thermal energy consumption by up to 40–60%. However, most of these studies were retrospective and descriptive in nature and they did not take into account the peculiarities of agricultural production technologies. The energy-saving method of microclimate support for livestock farms of a decentralized type is described. It is based on the principles of exhaust air heat recovery, ozonation and deep air recirculation. The article deals with the structural and technological schemes of the ventilation-heating device implementing this method. The main statements of calculation methods including the thermal-power, electrical and structural calculations are described. Polyethylene terephthalate film is used as heat exchange surface. The design constant of the heat exchanger is 180 W/°C. Exergy efficiency for the heat exchanger equal to 0.48 relative units. An expression was obtained to determine the convective heat transfer coefficient in the electric supply air heater. Corona discharge ozonator is used for purification and disinfection of circulating air. The experimental stand is used for automated registration, transfer, processing and storage of data. The results of experiments confirming the energy efficiency of the electrothermal installation are reflected on the charts. The implementation of the described method provides reduction of energy consumption up to 55%.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Springer Professional "Wirtschaft"

Online-Abonnement

Mit Springer Professional "Wirtschaft" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 340 Zeitschriften

aus folgenden Fachgebieten:

  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Versicherung + Risiko




Jetzt Wissensvorsprung sichern!

Literature
1.
go back to reference Tikhomirov, D. A., & Tikhomirov, A. M. (2017). Improvement and modernization of systems and means of power supply is the most important direction of solving the problems of increasing the energy efficiency of agricultural production. Journal of Machinery and Equipment for Rural Areas, 11, 32–36. Tikhomirov, D. A., & Tikhomirov, A. M. (2017). Improvement and modernization of systems and means of power supply is the most important direction of solving the problems of increasing the energy efficiency of agricultural production. Journal of Machinery and Equipment for Rural Areas, 11, 32–36.
2.
go back to reference Arkhiptsev, A. V., & Ignatkin, I. Yu. (2016). Automated system microclimate with heat recovery exhaust air. Herald NGIEI, 4(59), 5–14. Arkhiptsev, A. V., & Ignatkin, I. Yu. (2016). Automated system microclimate with heat recovery exhaust air. Herald NGIEI, 4(59), 5–14.
3.
go back to reference Panova, T. (2011). Development and validation of the parameters of supply and exhaust heat exchanger to improve microclimatic conditions in livestock buildings. Dissertation of candidate of technical Sciences: 05.20.01, Moscow. Panova, T. (2011). Development and validation of the parameters of supply and exhaust heat exchanger to improve microclimatic conditions in livestock buildings. Dissertation of candidate of technical Sciences: 05.20.01, Moscow.
4.
go back to reference Sventitsky, I., Alkhazova, E., Mudrik, V., & Obynochny, A. (2011). Energy saving by improving efficiency of using energy resources in agriculture and housing. Moscow: GNU VIESH. Sventitsky, I., Alkhazova, E., Mudrik, V., & Obynochny, A. (2011). Energy saving by improving efficiency of using energy resources in agriculture and housing. Moscow: GNU VIESH.
5.
go back to reference Mishurov, N., & Kuzmina, T. (2004). Energy-saving equipment for microclimate in livestock buildings. Moscow: Rosinformagrotech. Mishurov, N., & Kuzmina, T. (2004). Energy-saving equipment for microclimate in livestock buildings. Moscow: Rosinformagrotech.
6.
go back to reference Roulet, C. A., Heidt, F. D., Foradini, F., & Pibiri, M. C. (2001). Real heat recovery with air handling units. Energy and Buildings, 33, 495–502.CrossRef Roulet, C. A., Heidt, F. D., Foradini, F., & Pibiri, M. C. (2001). Real heat recovery with air handling units. Energy and Buildings, 33, 495–502.CrossRef
7.
go back to reference EI Foujh, Y., & Stabat, P. (2012). Adequacy of air-to-air heat recovery ventilation system applied in low energy buildings. Energy and Buildings, 54, 29–39. EI Foujh, Y., & Stabat, P. (2012). Adequacy of air-to-air heat recovery ventilation system applied in low energy buildings. Energy and Buildings, 54, 29–39.
8.
go back to reference Gubina, I. A., & Gorshkov, A. S. (2015). Energy saving in buildings with heat recovery exhaust air. Construction of Unique Buildings and Structures, 4(31), 209–219. Gubina, I. A., & Gorshkov, A. S. (2015). Energy saving in buildings with heat recovery exhaust air. Construction of Unique Buildings and Structures, 4(31), 209–219.
9.
go back to reference ASHRAE Handbook. (2008). Heating, ventilating, and air-conditioning systems and equipment (I-P Edition). Atlanta: American Society of Heating, Refrigerating and Air-Conditioning Engineers Inc. ASHRAE Handbook. (2008). Heating, ventilating, and air-conditioning systems and equipment (I-P Edition). Atlanta: American Society of Heating, Refrigerating and Air-Conditioning Engineers Inc.
10.
go back to reference Dieckmann, J. (2008). Improving humidity control with energy recovery. ASHRAE Journal, 50, 38–45. Dieckmann, J. (2008). Improving humidity control with energy recovery. ASHRAE Journal, 50, 38–45.
11.
go back to reference Livchak, I., & Naumov, A. (2005). Ventilation of multi-storey residential buildings. Moscow: AVOK-PRESS. Livchak, I., & Naumov, A. (2005). Ventilation of multi-storey residential buildings. Moscow: AVOK-PRESS.
12.
go back to reference Adamski, M. (2008). Longitudinal flow spiral recuperators in building ventilation systems. Energy and Buildings, 40, 1883–1888.CrossRef Adamski, M. (2008). Longitudinal flow spiral recuperators in building ventilation systems. Energy and Buildings, 40, 1883–1888.CrossRef
13.
go back to reference Adamski, M. (2010). Ventilation system with spiral recuperator. Energy and Buildings, 42, 674–677.CrossRef Adamski, M. (2010). Ventilation system with spiral recuperator. Energy and Buildings, 42, 674–677.CrossRef
14.
go back to reference Mróz, T. M., & Dutka, A. (2014). Exergy–economic evaluation of heat recovery device in mechanical ventilation system. Energy and Buildings, 86, 296–304.CrossRef Mróz, T. M., & Dutka, A. (2014). Exergy–economic evaluation of heat recovery device in mechanical ventilation system. Energy and Buildings, 86, 296–304.CrossRef
15.
go back to reference Kim, S.-M., & Lee, J.-H. (2012). Determining operation schedules of heat recovery ventilators for optimum energy savings in high-rise residential buildings. Energy and Buildings, 46, 3–13.CrossRef Kim, S.-M., & Lee, J.-H. (2012). Determining operation schedules of heat recovery ventilators for optimum energy savings in high-rise residential buildings. Energy and Buildings, 46, 3–13.CrossRef
16.
go back to reference Dodooa, A., Gustavssona, L., & Sathre, R. (2011). Primary energy implications of ventilation heat recovery in residential buildings. Energy and Buildings, 43, 1566–1572.CrossRef Dodooa, A., Gustavssona, L., & Sathre, R. (2011). Primary energy implications of ventilation heat recovery in residential buildings. Energy and Buildings, 43, 1566–1572.CrossRef
17.
go back to reference Gendebien, S., Bertagnolio, S., & Lemort, V. (2013). Investigation on a ventilation heat recovery exchanger: Modeling and experimental validation in dry and partially wet conditions. Energy and Buildings, 62, 176–189.CrossRef Gendebien, S., Bertagnolio, S., & Lemort, V. (2013). Investigation on a ventilation heat recovery exchanger: Modeling and experimental validation in dry and partially wet conditions. Energy and Buildings, 62, 176–189.CrossRef
18.
go back to reference Fernández-Seara, J., Diz, R., Uhía, F. J., Dopazo, A., & Ferro, J. M. (2011). Experimental analysis of an air-to-air heat recovery unit for balanced ventilation systems in residential buildings. Energy Conversion and Management, 52, 635–640.CrossRef Fernández-Seara, J., Diz, R., Uhía, F. J., Dopazo, A., & Ferro, J. M. (2011). Experimental analysis of an air-to-air heat recovery unit for balanced ventilation systems in residential buildings. Energy Conversion and Management, 52, 635–640.CrossRef
19.
go back to reference Diskin, M. E. (2006). Efficiency of heat recovery in ventilation systems at outdoor temperatures below freezing hazard (p. 4). No: AVOC. Diskin, M. E. (2006). Efficiency of heat recovery in ventilation systems at outdoor temperatures below freezing hazard (p. 4). No: AVOC.
20.
go back to reference Kazancev, S. P., & Ignatkin, I. Y. (2013). Heat exchanger of the heat for a pig-breeding complex. Mechanization and Electrification of Agriculture, 4, 17–18. Kazancev, S. P., & Ignatkin, I. Y. (2013). Heat exchanger of the heat for a pig-breeding complex. Mechanization and Electrification of Agriculture, 4, 17–18.
22.
go back to reference Markelova, E., Petrov, L., Ukhanova, V., Tikhomirov, A., Tikhomirov, D., Pershin, A. (2013). Patent No. 2473213 of the Russian Federation, IPC A01К1/03. Method and device to clean air environment in livestock and poultry areas: GNU VIESH. No. 2011109389/13; Appl. 13.03.11; publ. 27.01.13, bull. no. 3. Markelova, E., Petrov, L., Ukhanova, V., Tikhomirov, A., Tikhomirov, D., Pershin, A. (2013). Patent No. 2473213 of the Russian Federation, IPC A01К1/03. Method and device to clean air environment in livestock and poultry areas: GNU VIESH. No. 2011109389/13; Appl. 13.03.11; publ. 27.01.13, bull. no. 3.
23.
go back to reference Tikhomirov, D. (2013). Methodology of calculation heat and energy saving ventilation and heating installations for animal farms. Journal of Alternative Energy and Ecology, 2(1), 125–131. Tikhomirov, D. (2013). Methodology of calculation heat and energy saving ventilation and heating installations for animal farms. Journal of Alternative Energy and Ecology, 2(1), 125–131.
24.
go back to reference Tikhomirov, D. (2013). Electrical and thermal calculation of air heater recuperative heat exchanger. Journal of Mechanization and Electrification of Agriculture, 1, 15–17. Tikhomirov, D. (2013). Electrical and thermal calculation of air heater recuperative heat exchanger. Journal of Mechanization and Electrification of Agriculture, 1, 15–17.
25.
go back to reference Whitaker, S. (1972). Forced convection heat transfer correlation for flow in pipes, past flat plates, single cylinders, single spheres and in flow in packed beds and tube bundles. AIChE Journal, 18, 361.CrossRef Whitaker, S. (1972). Forced convection heat transfer correlation for flow in pipes, past flat plates, single cylinders, single spheres and in flow in packed beds and tube bundles. AIChE Journal, 18, 361.CrossRef
26.
go back to reference Doctorov, A. (2003). Thermodynamics. A course of lectures. Novosibirsk: Novosibirsk state University. Doctorov, A. (2003). Thermodynamics. A course of lectures. Novosibirsk: Novosibirsk state University.
28.
go back to reference Kruchinin, M., & Shadrina, E. (2007). Theoretical bases of energy and resource saving. Exergy analysis of heat exchangers. Ivanovo: GOU VPO Ivan. State Chemical-Technological University. Kruchinin, M., & Shadrina, E. (2007). Theoretical bases of energy and resource saving. Exergy analysis of heat exchangers. Ivanovo: GOU VPO Ivan. State Chemical-Technological University.
Metadata
Title
Energy-saving automated system for microclimate in agricultural premises with utilization of ventilation air
Authors
Dmitry Tikhomirov
Alexey N. Vasilyev
Dmitry Budnikov
Alexey A. Vasilyev
Publication date
29-01-2019
Publisher
Springer US
Published in
Wireless Networks / Issue 7/2020
Print ISSN: 1022-0038
Electronic ISSN: 1572-8196
DOI
https://doi.org/10.1007/s11276-019-01946-3

Other articles of this Issue 7/2020

Wireless Networks 7/2020 Go to the issue