Service Durability of PLA Melt-Blown Nonwovens: Roles of Humidity and Airflow Velocity in Degradation and Filtration Performance

Abstract The energy and environmental challenges associated with petroleum-based nonwovens have driven interest in renewable alternatives such as polylactic acid (PLA)-based melt-blown materials. However, their air filtration performance is highly sensitive to service conditions due to environmental degradation. This study investigates the physicochemical structure changes and application performance of PLA melt-blown nonwovens based on a full factorial design of service conditions combining humidity, airflow velocity, particulate matter, and natural microbes. Results showed that PLA melt-blown nonwovens exposed to service conditions remain in the early stage of degradation and follow first-order kinetics, with a rate constant up to 3.88 × 10–2 h–1, accompanied by a mechanism dominated by surface degradation and erosion. A qualitative correlation between the fiber surface degradation mechanism and nonwoven filtration performance was established based on filter cake formation theory and fiber microstructural changes. Two-way analysis of variance revealed that humidity acts as the primary driver of degradation by progressively shifting its influence mechanism from moisture absorption (accounting for 90% of the variance in short-term WCA-30s) to severe mechanical erosion and pressure drop (explaining 77% of the variation in yield strength and 91% in pressure drop in the long term). Meanwhile, airflow velocity governs dynamic filtration performance by determining particle-media contact efficiency and inertial impaction, contributing 57% to the variance in filtration efficiency and 52% to the quality factor in the long term.

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Publication Details

Journal
Langmuir
Published
2026-10-06
DOI
https://doi.org/10.1021/acs.langmuir.6c03984
Primary Topic
Aerosol Filtration and Electrostatic Precipitation
Type
article
Field-Weighted Citation Impact
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article

Service Durability of PLA Melt-Blown Nonwovens: Roles of Humidity and Airflow Velocity in Degradation and Filtration Performance

Bin Ding, Xubo Jiang, Jianyong Yu, Xianfeng Wang et al.
Langmuir
Aerosol Filtration and Electrostatic Precipitation
article

Service Durability of PLA Melt-Blown Nonwovens: Roles of Humidity and Airflow Velocity in Degradation and Filtration Performance

Bin Ding, Xubo Jiang, Jianyong Yu, Xianfeng Wang, Yanyan Lin
article en

Abstract

Abstract The energy and environmental challenges associated with petroleum-based nonwovens have driven interest in renewable alternatives such as polylactic acid (PLA)-based melt-blown materials. However, their air filtration performance is highly sensitive to service conditions due to environmental degradation. This study investigates the physicochemical structure changes and application performance of PLA melt-blown nonwovens based on a full factorial design of service conditions combining humidity, airflow velocity, particulate matter, and natural microbes. Results showed that PLA melt-blown nonwovens exposed to service conditions remain in the early stage of degradation and follow first-order kinetics, with a rate constant up to 3.88 × 10–2 h–1, accompanied by a mechanism dominated by surface degradation and erosion. A qualitative correlation between the fiber surface degradation mechanism and nonwoven filtration performance was established based on filter cake formation theory and fiber microstructural changes. Two-way analysis of variance revealed that humidity acts as the primary driver of degradation by progressively shifting its influence mechanism from moisture absorption (accounting for 90% of the variance in short-term WCA-30s) to severe mechanical erosion and pressure drop (explaining 77% of the variation in yield strength and 91% in pressure drop in the long term). Meanwhile, airflow velocity governs dynamic filtration performance by determining particle-media contact efficiency and inertial impaction, contributing 57% to the variance in filtration efficiency and 52% to the quality factor in the long term.

Langmuir
Donghua University (CN)
Openalex Percentile: Top 22%
Aerosol Filtration and Electrostatic Precipitation
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