Eco-friendly and highly efficient PM0.3 air filter made from nonwoven basalt fiber and electrospun nanocellulose fiber.

Journal of hazardous materials Pub Date : 2024-10-05 Epub Date: 2024-08-22 DOI:10.1016/j.jhazmat.2024.135608
Desalegn Atalie, Ze-Xin Chen, Hui Li, Cun-Guang Liang, Ming-Cheng Gao, Xiao-Xi Cheng, Peng-Cheng Ma
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Abstract

This study addresses the need for high-performance and sustainable air filters by developing a bio-based, high-efficiency particulate air (HEPA) filter. Current HEPA filters often rely on non-biodegradable materials, creating environmental burdens. In this paper, we presented a HEPA filter fabricated from natural basalt fiber (BF) and nanocellulose fiber. The developed filter featured a sandwich structure with electrospun nanocellulose fiber deposited onto a base BF layer, followed by a second BF layer and heat treatment. Various techniques were employed to characterize the obtained sample, and the results showed that the nonwoven BF fabric significantly reduced the pressure drop of the filter by up to 60 %. The nanocellulose fiber played a crucial role in achieving a remarkable filtration efficiency of 99.99 % for PM0.3. BF-based filter demonstrated exceptional fire resistance, hydrophobia, durability, and ease of cleaning, maintaining its effectiveness at temperatures up to 150 °C. Notably, it exhibited significantly better biodegradability than commercially available HEPA filters. By employing a hierarchical structure of sustainable basalt and cellulose fibers, this study paved the way for the development of next-generation hazardous particulate matter filters with exceptional performance in harsh conditions and reduced environmental impact.

由无纺布玄武岩纤维和电纺纳米纤维素纤维制成的环保型高效 PM0.3 空气过滤器。
这项研究通过开发一种生物基高效空气微粒(HEPA)过滤器,满足了对高性能和可持续空气过滤器的需求。目前的高效空气过滤器通常依赖于不可生物降解的材料,从而造成环境负担。本文介绍了一种由天然玄武岩纤维(BF)和纳米纤维素纤维制成的高效空气过滤器。所开发的过滤器采用夹层结构,电纺纳米纤维素纤维沉积在基底玄武岩纤维层上,然后再沉积第二层玄武岩纤维层并进行热处理。结果表明,无纺 BF 织物显著降低了过滤器的压降,降幅高达 60%。纳米纤维素纤维在实现对 PM0.3 99.99 % 的出色过滤效率方面发挥了关键作用。基于 BF 的过滤器具有优异的耐火性、憎水性、耐用性和易清洗性,在高达 150 °C 的温度下仍能保持良好的过滤效果。值得注意的是,它的生物降解能力明显优于市面上的 HEPA 过滤器。通过采用可持续玄武岩纤维和纤维素纤维的分层结构,这项研究为开发在恶劣条件下具有优异性能和减少环境影响的下一代有害颗粒物过滤器铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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