杏仁壳可持续活性炭吸附红花素- o染料的关键工艺因素及其影响

IF 2 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS Engineering reports : open access Pub Date : 2025-01-17 DOI:10.1002/eng2.13121
Nawras J. Jassim, Fitna H. Younis, Maher T. Alshamkhani
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引用次数: 0

摘要

水污染是一个关键问题,需要采取紧急行动,尽量减少污染,确保人类的可持续未来。染料广泛应用于许多行业,引起了人们对水污染的担忧。本研究旨在开发一种廉价和可持续的利用生物质废物从污染水中去除红花色素的工艺。将杏仁壳在500℃的温度下碳化,然后用磷酸进行化学活化,生成活性炭。采用(XRD)、(SEM)、(EDX)、n2吸附-解吸等温线和(FTIR)对活性炭样品进行了分析。选择活性炭并对其吸附模拟废水中的红花色素的能力进行了评价。采用确定的筛选设计DSC快速考察了六个吸附工艺因素(染料初始浓度、pH、离子强度、吸附剂剂量、接触时间和超声功率)对红花色素吸附能力的影响。建立了数学模型,确定了各因素对红花红染料吸附量的影响以及各因素之间的相互作用和贡献。实验结果表明,初始染料浓度、吸附剂剂量、pH和超声功率的影响最为显著。相比之下,接触时间和离子强度没有明显和显著的影响。结果表明,在25°C条件下,染料初始浓度为300 mg/L,吸附剂剂量为100 mg, pH为7 ~ 10,超声功率为228 w时,红花素- o染料的最大吸附量为57.4 mg/g。吸附实验平衡数据表明,Langmuir模型适用于红花素o的吸附行为。动力学实验数据表明,吸附过程为准二级。结果表明,DSD实验设计可以通过减少时间、成本和实验次数来确定红花素- o间歇吸附过程中的必要因素和非必要因素。
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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Adsorption of Safranin-O Dye Onto Almond Shell Sustainable Activated Carbon: Identifying Key Process Factors and Their Effects

Water pollution is a critical issue requiring urgent action to minimize contamination and ensure a sustainable future for humanity. Dyes are widely utilized in many industries, generating worries about water contamination. This study aimed to develop an inexpensive and sustainable process for safranin dye removal from polluted water using biomass waste. Almond shells were carbonized at a temperature of 500°C and then chemically activated using phosphoric acid to produce activated carbon. The activated carbon samples were analyzed using (XRD), (SEM), (EDX), N2-adsorption–desorption isotherms, and (FTIR) analysis. Activated carbon was selected and evaluated for its ability to adsorb safranin dye from simulated wastewater. A definitive screening design DSC was utilized to quickly examine the impact of six adsorption process factors (initial dye concentration, pH, ionic strength, adsorbent dose, contact time, and ultrasonic power) on the adsorption capacity of safranin dye. A mathematical model was developed to determine the effect of each factor and the contribution and interactions between the factors on the adsorption capacity of safranin dye. The experimental results showed that the initial dye concentration, adsorbent dose, pH, and ultrasonic power effects were most important. In contrast, the contact time and ionic strength do not have a clear and significant impact. The outcomes were promising, wherein the maximum adsorption capacity of safranin-O dye was 57.4 mg/g (25°C), 300 mg/L initial dye concentration,100 mg adsorbent dose, pH in the range 7–10, and 228-W ultrasonic power. The adsorption experimental equilibrium data show that the Langmuir model is suitable for safranin-O adsorption behavior. Kinetic experimental data showed that the adsorption processes followed pseudo-second-order. The reported results revealed that the DSD experimental design can be utilized to determine the essential and non-essential factors in the batch adsorption process of safranin-O by reducing time, cost, and number of experiments.

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CiteScore
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审稿时长
19 weeks
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