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Preparation of Fibrillated Cellulose Nanofiber from Lyocell Fiber and Its Application in Air Filtration

机译:由莱赛尔纤维制备原纤化纤维素纳米纤维及其在空气过滤中的应用

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摘要

Ambient particulate matter less than 2.5 μm (PM2.5) can substantially degrade the performance of cars by clogging the air intake filters. The application of nanofibers in air filter paper can achieve dramatic improvement of filtration efficiency with low resistance to air flow. Cellulose nanofibers have gained increasing attention because of their biodegradability and renewability. In this work, the cellulose nanofiber was prepared by Lyocell fiber nanofibrillation via a PFI-type refiner, and the influence of applying a cellulose nanofiber on filter paper was investigated. It was found that the cellulose nanofibers obtained under 1.00 N/mm and 40,000 revolutions were mainly macrofibrils of Lyocell fiber with average fiber diameter of 0.8 µm. For the filter papers with a different nanofiber fraction, both the pressure drop and fractional efficiency increased with the higher fraction of nanofibers. The results of the figure of merit demonstrated that for particles larger than 0.05 µm, the figure of merit increased substantially with a 5% nanofiber, but decreased when the nanofiber fraction reached 10% and higher. It was concluded that the optimal fraction of the cellulose nanofiber against PM2.5 was 5%. The results of the figure of merit were related to the inhomogeneous distribution of nanofibers in the fibrous structure. The discrepancy of the theoretical and measured pressure drop showed that a higher nanofiber fraction led to a higher degree of fiber inhomogeneity.
机译:小于2.5μm(PM2.5)的环境颗粒物会堵塞进气过滤器,从而大大降低汽车的性能。纳米纤维在空气滤纸中的应用可以显着提高过滤效率,同时降低空气流动阻力。纤维素纳米纤维由于其生物降解性和可再生性而受到越来越多的关注。在这项工作中,通过Lyocell纤维纳米原纤化通过PFI型精制机制备了纤维素纳米纤维,并研究了将纤维素纳米纤维应用于滤纸的影响。发现在1.00N / mm和40,000转下获得的纤维素纳米纤维主要是Lyocell纤维的粗纤维,平均纤维直径为0.8μm。对于具有不同纳米纤维分数的滤纸,随着纳米纤维分数的增加,压降和分数效率均增加。品质因数的结果表明,对于大于0.05μm的颗粒,当纳米纤维为5%时,品质因数显着增加,但是当纳米纤维分数达到10%或更高时,品质因数降低。结论是,纤维素纳米纤维相对于PM2.5的最佳比例为5%。品质因数的结果与纳米纤维在纤维结构中的不均匀分布有关。理论压降和实测压降的差异表明,较高的纳米纤维分数导致较高程度的纤维不均匀性。

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