Analysis of The Application of A Natural Ventilation System To Improve Air Quality in Laying Hen Houses (Case Study: A Laying Hen House in Banyumas)

Authors

  • Raflis Tanjung Faculty of Engineering, Universitas Batam, Batam, Indonesia
  • Yuanita FD Sidabutar Faculty of Engineering, Universitas Batam, Batam, Indonesia
  • Risnawati Risnawati Faculty of Engineering, Universitas Batam, Batam, Indonesia

DOI:

https://doi.org/10.38035/ijam.v5i2.2313

Keywords:

Air Quality, Ammonia, Cage Design, Cross Ventilation, Laying Hens, Natural Ventilation, Poultry House

Abstract

Air quality is an important aspect in laying hen housing because it is closely related to thermal conditions, animal comfort, health, and productivity. Poor air circulation may cause heat and humidity accumulation and increase the concentration of pollutants such as ammonia (NH₃), carbon dioxide (CO₂), and airborne particles. The research gap addressed in this study is that most prior work on poultry-house air quality has focused on measuring environmental parameters in operating houses, while relatively little attention has been given to how air-quality principles can be integrated into the architectural design of a house before it becomes operational. This study aims to analyze the application of air-quality principles in the design of a laying hen house located in Banyumas, Stabat, Langkat Regency, North Sumatra. The study uses a qualitative descriptive approach through literature review, previous studies, comparative studies, and analysis of the proposed building design. The proposed house applies natural ventilation through openings on both sides of the building to create cross ventilation. A ridge vent is also provided at the highest part of the roof to facilitate the release of hot air from the building. In addition, the house is designed as a raised structure with a manure collection system using a movable tarpaulin placed beneath the battery cage; manure is planned to be removed periodically to reduce prolonged accumulation as one of the potential sources of ammonia. The analysis indicates that the combination of side openings, ridge ventilation, raised construction, and periodic manure removal has the potential to support better air exchange and reduce the accumulation of heat, humidity, and pollutants inside the poultry house. The novelty of this study lies in integrating natural-ventilation design principles with a manure-handling strategy at the design stage of a not-yet-operational commercial laying-hen house, rather than evaluating an already-operating facility. Since the building is still under construction, the effectiveness of the proposed design has not yet been verified through direct field measurements; further evaluation after the building becomes operational is therefore required to measure temperature, relative humidity, airflow velocity, NH₃, CO₂, and particulate concentrations.

References

Groot Koerkamp, P. W. G., Metz, J. H. M., Uenk, G. H., Phillips, V. R., Holden, M. R., Sneath, R. W., Short, J. L., White, R. P., Hartung, J., Seedorf, J., Schröder, M., Linkert, K. H., Pedersen, S., Takai, H., Johnsen, J. O., & Wathes, C. M. (1998). Concentrations and emissions of ammonia in livestock buildings in Northern Europe. Journal of Agricultural Engineering Research, 70(1), 79–95.

Kılıç, İ., & Yaslıoğlu, E. (2014). Ammonia and carbon dioxide concentrations in a layer house. Asian-Australasian Journal of Animal Sciences, 27(8), 1211–1218. https://doi.org/10.5713/ajas.2014.14099

Kılıç, İ. (2017). Ammonia and carbon dioxide emissions from a laying hen house under summer conditions in Bursa region of Turkey. KSCE Journal of Civil Engineering, 21(6), 2067–2073.

Kim, H.-R., Ryu, C., Lee, S.-D., Cho, J.-H., & Kang, H. (2024). Effects of heat stress on the laying performance, egg quality, and physiological response of laying hens. Animals, 14(7), 1076. https://doi.org/10.3390/ani14071076

Lonc, E., & Plewa, K. (2009). Microbiological air contamination in poultry houses. Polish Journal of Environmental Studies, 18(5), 833–836.

Moula, N., et al. (2013). Effect of housing systems on laying hens' performance and egg quality. Italian Journal of Animal Science, 12(e47).

Ni, J.-Q. (2024). Measuring and modeling mechanical ventilation for long-term environmental monitoring in large commercial laying hen house. Animals, 14(22), 3339.

Prodanov, M., Radeski, M., & Ilieski, V. (2016). Air quality measurements in laying hens housing. Macedonian Veterinary Review, 39(1), 91–95. https://doi.org/10.1515/macvetrev-2016-0071

Rajashekher Reddy, A., Praveen, P., Prasadini, P., & Anuradha. (2007). Assessment of air quality in a poultry house. Journal of Industrial Pollution Control, 23(2), 369–372.

Ruzal, M., Shinder, D., Malka, I., & Yahav, S. (2011). Ventilation plays an important role in hens' egg production at high ambient temperature. Poultry Science, 90(4), 856–862. https://doi.org/10.3382/ps.2010-00993

Samodra, F. X. T. B., & Indrawan, I. A. (2017). Proposal of stack effect technology for predicted future years. IOP Conference Series: Earth and Environmental Science, 99(1), 012024. https://doi.org/10.1088/1755-1315/99/1/012024

Silva, G. F., Pereira, D. F., Bueno, L. G. F., Santos, T. S., & Tavares, B. O. (2013). Performance of laying hens and economic viability of different climatization systems. Italian Journal of Animal Science, 12(3), e47.

Zhu, Z., Dong, H., Zhou, Z., Xin, H., & Chen, Y. (2011). Ammonia and greenhouse gases concentrations and emissions of a naturally ventilated laying hen house in Northeast China. Transactions of the ASABE, 54(3), 1083–1091.

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Published

2026-09-21

How to Cite

Tanjung, R., Sidabutar, Y. F., & Risnawati, R. (2026). Analysis of The Application of A Natural Ventilation System To Improve Air Quality in Laying Hen Houses (Case Study: A Laying Hen House in Banyumas). International Journal of Advanced Multidisciplinary, 5(2), 256–271. https://doi.org/10.38035/ijam.v5i2.2313