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Color removal from water-based ink wastewater by bagasse fly ash, sawdust fly ash and activated carbon

机译:蔗渣粉煤灰,锯末粉煤灰和活性炭从水性油墨废水中脱色

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Bagasse fly ash (BGFA), sawdust fly ash (SDFA) and activated carbon (AC) were investigated for color removal from wastewater from the printing ink industry after coagulation of water-based ink wastewater. Synthetic water-based ink was used to study the adsorption isotherm. The maximum adsorption capacity of BGFA increased with temperatures, having values of 7.30,12.67, 21.60 and 29.07 mgg~(-1) at 30, 40, 50 and 60 °C, respectively. At 30 °C the maximum adsorption capacity of BGFA increased from 7.30 to 14.34 mg g~(-1) when using water-washed BGFA. The Langmuir, Freundlich and Redlich-Peterson models were all able to explain the color removal of synthetic water-based ink by BGFA, water-washed SDFA (SDFA/W) and AC, whereas R~2 of these three models by SDFA was not high. It might be due to color removal by SDFA involved both precipitation and adsorption of the ink, whereas only adsorption was involved by SDFA/W, BGFA and AC. The synthetic water-based ink adsorption capacity at 30 °C was ranked as SDFA> AC>SDFA/W> BGFA with values of 85.47, 40.49, 30.21 and 7.30 mg g~(-1). respectively. The efficiencies of BGFA, SDFA and AC for color removal from wastewater from printing ink industry after water-based ink coagulation showed that color removal by SDFA (90%) was higher than commercial AC (80%), SDFA/W (76%) and BGFA (68%), respectively at the same dosage of 0.3% (w/v). The system pH was increased from 1.7 to around neutral by SDFA, while the system pH of AC, SDFA/W and BGFA was still low (pH ~ 2-3). However, SDFA and BGFA had potential as alternative low-cost adsorbents for color removal of water-based ink wastewater from the printing ink industry.
机译:研究了蔗渣粉煤灰(BGFA),锯末粉煤灰(SDFA)和活性炭(AC)在水性油墨废水凝结后从印刷油墨工业废水中脱色的方法。合成水性油墨用于研究吸附等温线。 BGFA的最大吸附容量随温度的升高而增加,分别在30、40、50和60°C时分别为7.30、12.67、21.60和29.07 mgg〜(-1)。在30°C时,使用水洗BGFA时BGFA的最大吸附容量从7.30增加到14.34 mg g〜(-1)。 Langmuir,Freundlich和Redlich-Peterson模型都能够解释BGFA,水洗SDFA(SDFA / W)和AC对合成水性油墨的脱色,而SDFA这三个模型中的R〜2却不能高。这可能是由于SDFA脱色涉及墨水的沉淀和吸附,而SDFA / W,BGFA和AC仅涉及吸附。合成水基油墨在30°C下的吸附容量为SDFA> AC> SDFA / W> BGFA,分别为85.47、40.49、30.21和7.30 mg g〜(-1)。分别。 BGFA,SDFA和AC去除水基油墨凝结后从印刷油墨工业废水中脱色的效率表明,SDFA(90%)脱色要高于商业AC(80%),SDFA / W(76%)和BGFA(68%)分别以0.3%(w / v)的相同剂量服用。 SDFA将体系的pH从1.7增加到中性,而AC,SDFA / W和BGFA的体系pH仍然很低(pH〜2-3)。但是,SDFA和BGFA具有替代低成本吸附剂的潜力,可用于去除印刷油墨行业中的水性油墨废水。

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