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Integrated approach for textile industry wastewater for efficient hydrogen production and treatment through solar PV electrolysis

机译:纺织工业废水的综合方法,可通过太阳能光伏电解提供高效氢气生产和处理

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Combining solar PV based electrolysis process and textile dyeing industry wastewater for hydrogen production is considered feasible route for resource utilization. An updated experimental method, which integrates resource availability to assess the wastewater based hydrogen production with highlights of wastewater treatment, use of solar energy to reduce the high-grade electricity for electrolysis (voltage, electrode materials) efficiency of the process was employed. Results showed that maximum pollutant removal efficiency in terms of conductivity, total dissolved solids, total suspended solids, biological oxygen demand, chemical oxygen demand, hardness, total nitrogen and total phosphorus were obtained from congruent to 73% to congruent to 96% at 12 V with steel electrode for pollutant load. The maximum input voltage was found at 3 V for the best efficiency i.e. 49.6%, 67.8% and 57.1% with carbon, steel and platinum electrodes respectively. It was observed that with high voltage (12 V) of the electrolyte the rate of production of hydrogen was higher with carbon, steel and platinum electrodes. However, the increase in the efficiency of the production of hydrogen was not significant with high voltage, may be due to energy loss through heat during extra-over potential voltage to the electrodes. Hence, this integrated way provides a new insight for wastewater treatment and hydrogen energy production simultaneously. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:结合太阳能光伏基电解过程和纺织染色工业废水用于氢生产被认为是资源利用的可行途径。一种更新的实验方法,它集成了资源可用性,以利用废水处理的亮点评估废水的氢气生产,利用太阳能来减少电解的高级电力(电压,电极材料)效率的工艺效率。结果表明,在电导率,总溶解固体,总悬浮固体,生物需氧,化学需氧,硬度,总氮和总磷的总体上获得了最大的污染物去除效率是从一致性到73%的12 v同时获得96%用钢电极污染物负荷。最大输入电压为3 V,以获得最佳效率,即分别用碳,钢和铂电极的最佳效率即49.6%,67.8%和57.1%。观察到,通过电解质的高电压(12V),氢的生产速率较高,碳,钢和铂电极较高。然而,氢的生产效率的增加与高电压不显着,可能是由于在电极超出潜在电压期间通过热量的能量损失。因此,这种综合方式为污水处理和同时提供了新的洞察力。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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