Submitted:
28 August 2025
Posted:
29 August 2025
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Abstract
Keywords:
Background
Aim and Objectives
Methods
Farm Types
Farm 1
- Growers – 1,100 pigs weighing between 15kg to 45kg, from ages 5 days to 3-4 weeks, and divided into 28 pens.
- Finishers – 1,100 pigs weighing between 45kg and 110kg. The growers were moved to the finishers house at roughly 4 weeks of age and remained there up to 16 weeks of age. The house was divided up into six areas, ventilated by two fans each, one of which was monitored.
Farm 2
- Farrowers – 480 pigs. The building had two sections, one section was selected for taking measurements, the specific location chosen was close to a fan. The analyser enclosure was positioned outside the building close to the selected fan to minimise the sample line length. The sample line was positioned through a side vent of the building allowing air sampling just prior to the fan inlet. The thermocouple measuring the house temperature was in the same position as the sample line.
- Growers – 1,100 pigs. As with farrowers, the measurements were taken close to a fan. The analyser enclosure was positioned outside the building in a position close to the selected fan to minimise sample line length. The end of the sample line was positioned through a hole in the side of the vent duct, allowing air sampling as it enters the fan. The thermocouple measuring the house temperature was in the same position as the sample line.
- Finishers – 1,400 pigs. There were 14 finisher enclosures and a central walkway. There were three identical fans positioned centrally in the building roof ridge and a fan was selected for the measurement location. The analyser enclosure was positioned outside the building close to the selected fan to minimise sample line length. The end of the sample line was positioned through a hole in the side of the vent duct, allowing air sampling as it enters the fan. The thermocouple measuring the house temperature was in the same position as the sample line.
Farm 3
Farm 4
- 0 to 3.5 days: eggs were placed in the building, and the building was heated with no ventilation until hatching.
- 3.5 to 14 days: extraction fans, wall vents and heat exchangers were used to control the atmosphere within the house. The building was heated and operated under a slight positive pressure with air emitted from the building via vents in the side walls.
- 14 to 39 days: there were six stages of fan ventilation, with four fans operating during stage one and four additional fans introduced at the start of each subsequent stage, to a total of 24 fans. The roof vents to provided ventilation by extracting air from the building and using the side vents to allow air ingress. Fans were activated by a temperature threshold within the house.
Farm 5
Measurements
Overview
Locations of Measurements
Sampling Periods
- Full growth cycles were monitored for boiler farms, the length of which are determined by the required end weight. This results in variable lengths of cycle.
-
Pig farm test periods were determined
- o
- Period of access made available
- o
- Period of animals present in housing at the time of measurements
Gases
Sampling System
Los Gatos (ABB) LGR-ICOS Economical Ammonia Analyzer (NH3, H2O).
Fourier Transformer Infrared Spectroscopy (FTIR).
Particulate Matter (PM) and Endotoxins
Continuous PM Measurement - TSI BlueSky
Discontinuous Active PM and Endotoxin Sampling
Ventilation
Sampling from Forced Ventilation Buildings
Sampling from Natural Draft Ventilated Buildings
Temperature
Data Processing
Concentration Measurements
Ventilation Rates
- Measurement of fan performance – dimensions and velocity profiles of the fans were measured. The activation of the fans and the rates at which the fans were operating were measured by monitoring the current to each fan.
- Use of information provided by the building ventilation control system.
- Use of fan performance data and information provided by the farmer on the operation of the ventilation system.
- Measurement of in-house and ambient concentration of carbon dioxide to determine the ventilation rate (Vr) using the carbon dioxide balance method1. This approach was used for the naturally ventilated building where no contained emission points were available.
- Use design parameters to meet minimum ventilation air exchange criteria for animal house environments. 2
Results
Pig Farm Ammonia Emissions
Poultry Farm Ammonia Emissions
Dairy Farm Ammonia Emissions
PM Emissions
Discussion
- Number of emission points – all farms monitored involved multiple points of emission. It was not possible to monitor at all, consequently assumptions were made for each site. These assumptions have an impact on how representative the data produced is.
- Volumetric flow – the flow from each fan was determined using physical and performance characteristics measured. However, this does not provide real time performance data at the time of the measurements. Performance of fans can change over time and the approach adopted does not account for any changes in fan performance.
- Ventilation – monitoring and quantifying the flow rates through fans is critical in the determination of the mass emissions and emission rates. Fans used for ventilation can be variable consequently results using a fixed flowrate will not fully represent the total emissions. Approaches to monitoring variable fan emissions should be included in monitoring undertaken at this type of facilities. The determination of the ventilation rate and the fan specific flow rates was the weak point of the measurements.
Conclusions
Supplementary Materials
Abbreviations
| CH4 | Methane |
| CO2 | Carbon Dioxide |
| FTIR | Fourier-transform infrared spectroscopy |
| H2O | Water Vapour |
| H2S | Hydrogen Sulphide |
| NOX | Oxides of Nitrogen |
| O3 | Ozone |
| PHE | Public health England |
| PM | Particulate Material |
| PM1.0 | Particulate material with aerodynamic diameter of 1µm |
| PM2.5 | Particulate material with aerodynamic diameter of 2.5µm |
| PM4 | Particulate material with aerodynamic diameter of 4.0µm |
| PM10 | Particulate material with aerodynamic diameter of 10µm |
| ppb | Parts per billion |
| ppm | Parts per million |
| PTFE | Teflon |
| µm | micron |
| NH3 | Ammonia |
| UK | United Kingdom |
| VOC | Volatile organic carbon |
References
- Heederik D, Sigsgaard T, Thorne PS, Kline JN, Avery R, Bønløkke JH, Chrischilles EA., et al. Health effects of airborne exposures from concentrated animal feeding operations. Environ Health Perspect, 2007. 115(2): p. 298-302.
- Carnell E, Vieno M, Vardoulakis S, Beck R, Heaviside C, Tomlinson S., et al. Modelling public health improvements as a result of air pollution control policies in the UK over four decades—1970 to 2010. Environmental Research Letters, 2019. 14(7): p. 074001.
- Wiltshire J, Cowie H, Vardoulakis S. Evidence assessment of interventions to improve ambient air quality – agricultural interventions. IOM report commissioned by PHE. 2019.
- François-Xavier P, Jean-François Cabaraux J-F, and Nicks B. Ammonia emissions from pig houses: Influencing factors and mitigation techniques. Ecosystems & Environment, 2011. 141: pp. 245-260.
| 1 | Assessing ventilation rate measurements in a mechanically ventilated layingbvhen facility E. Rosa , H. Arriaga, S. Calvet, and P. Merino, Neiker-Tecnalia, Conservation of Natural Resources, Bizkaia Technology Park, P. 812, 48160 Derio, Bizkaia, Spain; and Institute of Animal Science and Technology, Unviersitat Polit´ecnica de Valencia, 46022 Valencia, Spain |
| 2 | Calculating the Right Air Exchange. Pig Improvement Company. |
| Substance | Methodology 1 | LOD | Methodology 2 | LOD |
| Ammonia (NH3) | Los Gatos | 0.3 ppb | Gasmet FTIR | 0.13ppm |
| Moisture (H2O) | Los Gatos | 50ppm | Gasmet FTIR | 100ppm |
| Carbon Dioxide (CO2) | Gasmet FTIR | 20ppm | ||
| Methane (CH4) | Gasmet FTIR | 0.5ppm | ||
| Particulate Material (PM) | Bluesky | |||
| Ambient PM and Endotoxin | Mini Vol samplers | |||
| Temperature | K-type Thermocouple | Site installed thermocouples | ||
| Building Ventilation (ventilated housing, pigs/poultry) | Fan vent velocity | Fan design characteristics with internal building temperature | ||
| Building Ventilation (open-sided housing, dairy) | Gasmet FTIR measuring CO2 | 20ppm |
| Farm | Measurement period (days) | Season (months) |
| Farm 1: housed pigs | 36 | March - April 2022 |
| 27 | June – September 2023 | |
| Farm 2: housed pigs | 27 | June – September 2023 |
| 37 | September – October 2023 | |
| 20 | October – November 2023 | |
| 28 | November – December 2023 | |
| Farm 3: broilers | 31 36 26 31 37 |
July – August 2022 November – December 2022 May – June 2023 September – October 2023 November – December 2023 |
| Farm 4: broilers | 21 | October – November 2023 |
| 26 | November – December 2023 | |
| Farm 5: dairy cows | 12 | November- December 2023 |
| Ammonia Emission g NH3/day/animal |
|||||
| Period | Pig Type | No of animals | Average | Max | Min |
| Period 1 | Growers | 220 | 0.84 | 1.08 | 0.57 |
| Finishers | 220 | ND | ND | ND | |
| Period 2 | Growers | 220 | 2.8 | 14.0 | 1.2 |
| Finishers | 220 | ND | ND | ND | |
| Period 3 | Growers | 220 | 3.1 | 15.6 | 1.3 |
| Finishers | 220 | ND | ND | ND | |
| Period 4 | Growers | 220 | 1.57 | 8.8 | 0.04 |
| Finishers | 220 | 5.9 | 29.6 | 2.5 | |
| Period 5 | Growers | 220 | 13.8 | 77.51 | 0.3 |
| Finishers | 220 | 23.8 | 118.5 | 10.0 | |
| Ammonia Emission g NH3/day/animal |
|||||
| Period | Type | No of animals | Average | Max | Min |
| 1 | Growers | 150 | 0.9 | 4.6 | 0.3 |
| 1 | Finishers | 150 | 2.2 | 13.7 | 1.4 |
| 2 | Growers | 150 | 1.3 | 4.6 | 0.1 |
| 2 | Finishers | 150 | 3.6 | 14.4 | 1.5 |
| 3 | Farrowers | 16 | 0.2 | 1.0 | 0.1 |
| 3 | Growers | 150 | 1.2 | 2.8 | 0.4 |
| 3 | Finishers | 150 | 3.3 | 13.0 | 1.9 |
| 4 | Farrowers | 16 | 1.2 | 9.7 | 0.02 |
| 4 | Growers | 150 | 0.5 | 1.9 | 0.1 |
| 4 | Finishers | 150 | 2.8 | 9.0 | 1.6 |
| No of Animals | Ammonia Emission (kg NH3/year/animal) | |
| Farm One Growers | 220 | 1.15 |
| Farm One Finishers | 220 | 2.14 |
| Farm Two Farrowers | 16 | 1.7 |
| Farm Two Growers | 150 | 2.1 |
| Farm Two Finishers | 150 | 1.6 |
| Ammonia Emission (g NH3/day/animal) | ||||
| Period | No of Birds | Average | Max | Min |
| Period 1 August 2022 |
47074 | 0.038 | 0.047 | 0.018 |
| Period 2 Nov Dec 2022 |
47176 | 0.030 | 0.05 | 0.02 |
| Period 4 22 May 2023 |
47176 | 0.08 | 0.09 | 0.06 |
| Period 5 June 2023 |
45350 |
0.07 | 0.1 | 0.02 |
| Period 6 November 2023 |
45359 | 0.0025 | 0.035 | 0.002 |
| Ammonia Emission (g NH3/day/animal) | ||||
| Period | No of birds | Average | Max | Min |
| Period 1 25 Nov 21 Dec 2023 |
36024 | 0.05 | 0.12 | 0.03 |
| Ammonia Emission (kg NH3/year/animal) | |||
| Average | Max | Min | |
| Farm Three | 0.025 | 0.035 | 0.02 |
| Farm Four | 0.018 | 0.041 | 0.01 |
| Period | No of animals | Ammonia Emission (g/NH3/day/animal) | ||
| Average | Max | Min | ||
| 1 August – September |
185 | 0.15 | 0.3 | 0.02 |
| 2 November |
185 | 1.06 | 1.84 | 0.6 |
| Emission factors (kg a–1 AAP–1 NH3) | |||
| Production system | This study | UK Environment Agency1 | European Environment Agency2 |
| Farm 1: housed pigs, slatted floor Growers | 1.15 | 2.813 | 3.7 |
| Farm 1: housed pigs, slatted floor Finishers | 2.14 | 2.813 | 3.7 |
| Farm 2: housed pigs, slatted floor Farrowers | 1.7 | No data | No Data |
| Farm 2: housed pigs, slatted floor Growers | 2.1 | 2.813 | 3.7 |
| Farm 2: housed pigs, slatted floor Finishers | 1.6 | 2.813 | 3.7 |
| Farm 3: broiler chickens | 0.025 | 0.024 | 0.13 |
| Farm 4: broiler chickens | 0.018 | 0.024 | 0.13 |
| Farm 5: housed dairy cows, natural ventilation | 0.4 | No data | 16.1 |
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