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Synthesis and performances of bio-sourced nanostructured carbon membranes elaborated by hydrothermal conversion of beer industry wastes

机译:啤酒工业废料水热转化制备生物来源的纳米碳膜的合成及性能

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摘要

Hydrothermal carbonization (HTC) process of beer wastes (Almaza Brewery) yields a biochar and homogeneous carbon-based nanoparticles (NPs). The NPs have been used to prepare carbon membrane on commercial alumina support. Water filtration experiments evidenced the quasi-dense behavior of the membrane with no measurable water flux below an applied nitrogen pressure of 6 bar. Gas permeation tests were conducted and gave remarkable results, namely (1) the existence of a limit temperature of utilization of the membrane, which was below 100°C in our experimental conditions, (2) an evolution of the microstructure of the carbon membrane with the operating temperature that yielded to improved performances in gas separation, (3) the temperature-dependent gas permeance should follow a Knudsen diffusion mechanism, and (4) He permeance was increasing with the applied pressure, whereas N2 and CO2 permeances remained stable in the same conditions. These results yielded an enhancement of both the He/N2 and He/CO2 permselectivities with the applied pressure. These promising results made biomass-sourced HTC-processed carbon membranes encouraging candidates as ultralow-cost and sustainable membranes for gas separation applications.
机译:啤酒废料(Almaza Brewery)的水热碳化(HTC)过程产生生物炭和均质的碳基纳米颗粒(NP)。 NP已经用于在商业氧化铝载体上制备碳膜。水过滤实验证明了膜的准致密行为,在施加的6 bar氮气压力下没有可测量的水通量。进行了气体渗透测试,并给出了显着的结果,即(1)在我们的实验条件下,存在膜的使用极限温度低于100°C,(2)碳膜的微观结构随着温度的变化而变化。 (3)温度相关的气体渗透率应遵循Knudsen扩散机制,(4)He渗透率随施加的压力而增加,而N2和CO2渗透率在气体分离中保持稳定。相同的条件。这些结果使He / N2和He / CO2的渗透性随施加压力的增加而增强。这些令人鼓舞的结果使源自生物质的HTC处理的碳膜鼓舞成为气体分离应用中超低成本且可持续的膜。

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