Leaf-Inspired Pre-Filtration Inlet Tubes for Reliable Ammonia Monitoring Under Dust-Laden Conditions

Reliable ammonia (NH3) monitoring is essential for environmental control in intensive livestock production, where airborne particulate matter (PM) can interfere with gas sampling and shorten filter service life. In this study, leaf-inspired pre-filtration inlet tubes were developed by integrating the strip-spiny morphology of juniper leaves and leaf-surface grooves, ridges, and trichomes into 12 configurations. Their filtration efficiency, pressure drop, quality factor, reusability, and particle-transport mechanisms were evaluated experimentally and through computational fluid dynamics simulations. N-S-G, N-S-T, and N-B-G achieved total PM filtration efficiencies of 81.6%, 79.1%, and 78.4%, respectively. The optimized N-S-G increased total filtration efficiency by nearly 40% compared with the non-bionic inlet tube and exhibited the highest overall quality factor. Simulations indicated that particle capture was enhanced by successive inertial impaction and interception on bionic surfaces and tube walls, while the meandering flow path promoted additional deposition with limited pressure loss. N-S-G also extended membrane-filter service life by 99.27% and reduced NH3 measurement deviation from 7.42 to 0.97 ppm. These results demonstrate that leaf-inspired pre-filtration can improve the durability and reliability of NH3 monitoring in dust-laden livestock environments.

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Publication Details

Journal
Agriculture
Published
2026-10-05
DOI
https://doi.org/10.3390/agriculture16192149
Primary Topic
Aerosol Filtration and Electrostatic Precipitation
Type
article
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article

Leaf-Inspired Pre-Filtration Inlet Tubes for Reliable Ammonia Monitoring Under Dust-Laden Conditions

Lili Ren, Yunhai Ma, Li Guo, Masroor Kamal et al.
Agriculture
Aerosol Filtration and Electrostatic Precipitation
article

Leaf-Inspired Pre-Filtration Inlet Tubes for Reliable Ammonia Monitoring Under Dust-Laden Conditions

Lili Ren, Yunhai Ma, Li Guo, Masroor Kamal, Francis Collins Muga, Mo Li, Weiwei Chen, Mingze Han, Yingying Jia, Bo Zhao
article en

Abstract

Reliable ammonia (NH3) monitoring is essential for environmental control in intensive livestock production, where airborne particulate matter (PM) can interfere with gas sampling and shorten filter service life. In this study, leaf-inspired pre-filtration inlet tubes were developed by integrating the strip-spiny morphology of juniper leaves and leaf-surface grooves, ridges, and trichomes into 12 configurations. Their filtration efficiency, pressure drop, quality factor, reusability, and particle-transport mechanisms were evaluated experimentally and through computational fluid dynamics simulations. N-S-G, N-S-T, and N-B-G achieved total PM filtration efficiencies of 81.6%, 79.1%, and 78.4%, respectively. The optimized N-S-G increased total filtration efficiency by nearly 40% compared with the non-bionic inlet tube and exhibited the highest overall quality factor. Simulations indicated that particle capture was enhanced by successive inertial impaction and interception on bionic surfaces and tube walls, while the meandering flow path promoted additional deposition with limited pressure loss. N-S-G also extended membrane-filter service life by 99.27% and reduced NH3 measurement deviation from 7.42 to 0.97 ppm. These results demonstrate that leaf-inspired pre-filtration can improve the durability and reliability of NH3 monitoring in dust-laden livestock environments.

AgricultureVol. 16(19)
Jilin University (CN), Chinese Academy of Sciences (CN), Henan Tianguan Group (China) (CN), Northeast Institute of Geography and Agroecology (CN), University of Venda (ZA)
Openalex Percentile: Top 22%
Aerosol Filtration and Electrostatic Precipitation
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