首页> 外文期刊>Journal of Hazardous Materials >Prepartion and application of novel blast furnace dust based catalytic-ceramic-filler in electrolysis assisted catalytic micro-electrolysis system for ciprofloxacin wastewater treatment
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Prepartion and application of novel blast furnace dust based catalytic-ceramic-filler in electrolysis assisted catalytic micro-electrolysis system for ciprofloxacin wastewater treatment

机译:新型高炉粉尘基催化陶瓷填料在环丙沙星电解辅助催化微电解系统中的制备与应用

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Blast furnace dust (BFD), a hazardous metallurgical waste, is generated during the iron-making process and consists plenty of Fe and C. This study is among the first to apply BFD in catalytic-ceramic-filler (CCF) preparation and degradation of ciprofloxacin (CIP). The novel BFD based Fe-Ni CCF obviously enhanced the removal of CIP (from around 42%-72% after 3 h) in comparation with troditional Fe-C ceramic-filler(CF). The Fe-Ni CCF was further applied in a coupled system of electrolysis assisted catalytic micro-electrolysis (E-CME) process for CIP wastewater treatment. Under optimal operating conditions (iron rod as anode, voltage of 10v and HRT of 3 h), nearly 97% of CIP, 90% of total organic carbon (TOC) and 99% of total phosphorus (TP) were removed by E-CME process in near-neutral solution. The degradation mechanism analysis by LC-MS revealed that polyhydroxy sub-stituted, piperazine rings cleavage and so on were the main reaction of CIP in E-CME process. Additionally, the chemical oxygen demand (COD) residue after E-CME process could be effectively eliminated by up-flow anaerobic filter (UAF), owing to the significant improvement of wastewater biodegradability by E-CME pretreatment. This study provides a new way for co-friend recycling of BFD and a highly-efficient, cost-sffective technology for CIP wastewater treatment.
机译:高炉粉尘(BFD)是一种有害的冶金废料,在炼铁过程中产生,并包含大量的Fe和C。该研究是首次将BFD用于催化陶瓷填料(CCF)的制备和降解。环丙沙星(CIP)。与传统的Fe-C陶瓷填料(CF)相比,基于BFD的新型Fe-Ni CCF明显提高了CIP的去除率(3 h后从42%-72%左右)。 Fe-Ni CCF还应用于电解辅助催化微电解(E-CME)工艺的耦合系统中,用于处理CIP废水。在最佳操作条件下(铁棒作为阳极,电压为10v,HRT为3 h),E-CME去除了将近97%的CIP,90%的总有机碳(TOC)和99%的总磷(TP)。在接近中性的解决方案中进行处理。 LC-MS降解机理分析表明,多羟基取代,哌嗪环断裂等是E-CME过程中CIP的主要反应。此外,由于通过E-CME预处理可显着改善废水的生物降解性,因此可通过上流厌氧滤池(UAF)有效消除E-CME处理后的化学需氧量(COD)残留物。这项研究为BFD的合作伙伴循环利用提供了一种新方法,并且为CIP废水处理提供了一种高效,节省成本的技术。

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