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Impact of Livestock Building Location on Solar Heat Output Cover

Impact of Livestock Building Location on Solar Heat Output

Open Access
|Jan 2021

References

  1. Alberta Agriculture and Rural Development (2014). Shelterbelts for livestock farms in Alberta: Planning, planting and maintenance – Open Government. Edmonton: University of Alberta. Pobrano z lokalizacji: https://open.alberta.ca/dataset/8102ce49-c99d-4713-af48-2bb0a9ff0da4/resource/3f735573-1905-46af-be33-754e180465b0/download/6740700-2014-shelterbelts-livestock-farms-alberta-planning-planting-maintenence-400-092-2.pdf
  2. Albright, L. D. (1990). Environment control for animals and plants. New York: American Society of Agricultural Engineers. Pobrano z lokalizacji: https://www.cabdirect.org/cabdirect/abstract/19912450648
  3. Angrecka, S., Herbut, P., Nawalany, G. i Sokołowski, P. (2017). The impact of localization and barn type on insolation of sidewall stalls during summer. Journal of Ecological Engineering, 18 (4), 60–66. https://doi.org/10.12911/22998993/7439810.12911/22998993/74398
  4. Bianchi, M. V., Desjarlais, A. O., Miller, W. A. i Petrie, P. T. W. (2007). Cool roofs and thermal insulation: energy savings and peak demand reduction. W Proceedings of the ASHRAE Conference in Thermal Performance of the Exterior Envelopes of Buildings, 10, 1–6. Clearwater, Fl, 12.2007. ASHRAE Transactions.
  5. Firfiris, V. K., Martzopoulou, A. G. i Kotsopoulos, T. A. (2019). Passive cooling systems in livestock buildings towards energy saving: A critical review. Energy and Buildings, 202, 109368. https://doi.org/10.1016/j.enbuild.2019.10936810.1016/j.enbuild.2019.109368
  6. Jackson, P., Guy, J., Edwards, S.A., Sturm, B. i Bull, S. (2017). Application of dynamic thermal engineering principles to improve the efficiency of resource use in UK pork production chains. Energy and Buildings, 139, 53–62. https://doi.org/10.1016/j.enbuild.2016.12.09010.1016/j.enbuild.2016.12.090
  7. Liberati, P. i Zappavigna, P. (2010). A simulation model to predict the internal climatic conditions in livestock houses as a tool for improving the building design and management. W Proceedings of XVIIth World Congress of the International Commission of Agricultural and Biosystems Engineering (CIGR), Quebec City, 13–17.06.2010. Pobrano z lokalizacji: http://www.csbescgab.ca/docs/meetings/2010/CSBE100548.pdf
  8. Marciniak, A. M. (2008). Ocena poziomu oświetlenia naturalnego w oborach wolnostanowiskowych. Problemy Inżynierii Rolniczej, 16 (2), 109–114.
  9. Martzopoulou, A., Firfiris, V. i Kotsopoulos, T. (2020). Application of urban passive cooling systems and design techniques in livestock buildings. IOP Conference Series: Earth and Environmental Science, 410, 012029. https://doi.org/10.1088/1755-1315/410/1/01202910.1088/1755-1315/410/1/012029
  10. Mescher, T. M. i Veenhuizen, M. A. (2006). Livestock Housing Ventilation: Natural Ventilation Design and Management for Dairy Housing. Pobrano z lokalizacji: https://www.dairyvietnam.com/en/Housing-Construction/Livestock-Housing-Ventilation-Natural-Ventilation-Design-and-Management-for-Dairy-Housing.html
  11. Mrema, G. C., Gumbe. L. O., Chepete. H. K. i Agullo, J. O. (2011). Rural Structures in the Tropics – Design and Development. Rome: Food and Agriculture Organization of the United Nations. Pobrano z lokalizacji: http://www.fao.org/3/I2433e/i2433e.pdf
  12. PN-EN 12831. Charakterystyka energetyczna budynków. Metoda obliczania projektowego obciążenia cieplnego.
  13. Valtorta, S. (2010). Development of Microclimate Modification Patterns in Animal Husbandry. W K. Stigter (red.), Applied Agrometeorology (pp. 803–805). Springer. https://doi.org/10.1007/978-3-540-74698-0_9210.1007/978-3-540-74698-0_92
  14. Vox, G., Maneta, A. i Schettini, E. (2016). Evaluation of the radiometric properties of roofing materials for livestock buildings and their effect on the surface temperature. Biosystems Engineering, 144, 26–37. https://doi.org/10.1016/j.biosystemseng.2016.01.01610.1016/j.biosystemseng.2016.01.016
  15. Wardal, W. J., Romaniuk, W. i Borusiewicz, A. (2018). Innowacyjne rozwiązania technologiczno-budowlane w chowie trzody chlewnej. Łomża: Wydawnictwo Wyż-szej Szkoły Agrobiznesu.
  16. Żelazny, H. (2008). Temperatura powietrza w przestrzeniach budynków inwentarskich Poddanych ekspozycji słonecznej. Inżynieria Rolnicza, 2 (100), 331–337.
  17. Żochowska, M., Kingsbury, A. i Kobuszyńska, M. (2012). Renewable Energy and Bio-fuel Situation in Poland (GAIN report PL 1235). Warsaw: USDA Foreign Agricultural Service. Pobrano z lokalizacji: https://apps.fas.usda.gov/newgainapi/api/report/downloadreportbyfilename?filename=Renewable%20Energy%20and%20Bio-fuel%20Situation%20in%20Poland_Warsaw_Poland_12-28-2012.pdf
Language: English
Page range: 29 - 41
Submitted on: Jul 21, 2020
Accepted on: Sep 3, 2020
Published on: Jan 29, 2021
Published by: Sciendo
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2021 Krzysztof Wiśniewski, Agata Pawłat-Zawrzykraj, published by Sciendo
This work is licensed under the Creative Commons Attribution-NonCommercial 4.0 License.