利用气味传感器、无线通信技术和微生物除臭剂对下水道异味进行远程监测和实时治理

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引用次数: 3

摘要

本研究介绍了一种远程现场实时监测恶臭发生情况的新技术,以及利用微生物除臭剂减少污水异味的技术。采用无线通信技术,采用由3个气味传感器组成的实时气味监测装置,对合流下水道的恶臭浓度进行了长期监测和全尺寸试验,并考察了微生物除臭剂对下水道异味的去除效果。利用金属氧化物半导体传感器和码分多址通信技术制作的气味监测装置,安装在首尔江南区重力流型综合下水道(深度3米,宽度5米)的3个地点。在秋季、冬季和夏季进行了304天的野外气味监测,每隔10分钟进行一次。测量结果被传送到距离现场约100公里的Woosong气味研究中心。通过传感器值与气味浓度的相关方程,将测量到的传感器值转换为气味浓度。作为监测结果,共获得污水异味数据4万余份。合流污水平均恶臭浓度为464 OUk,其中冬季为321 OUk,秋季为412 OUk,夏季为659 OUk。本研究使用的商业微生物除臭剂为48种微生物菌种的混合培养,将1 m3 d-1 ~ 2 m3 d-1的微生物除臭剂在恶臭投诉发生地上游1.5 km处与原污水混合。实验结果表明,微生物除臭剂混合后的污水平均恶臭浓度为113 OUk,其中冬季为102 OUk,秋季为298 OUk,夏季为153 OUk。估计微生物除臭剂对下水道异味的去除效果约为74%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Remote monitoring and real-time abatement of odor emitted from sewer using odor sensors, wireless communication technique and microbial deodorant
In this study, a new technology was introduced to monitor the odor occurrence situation at the remote site in real time and the technology to reduce sewage odor by using microbial deodorant. Long-term monitoring and full-scale test was carried out to investigate the odor concentration in the combined sewer using the real - time odor monitoring device which consist of 3 odor sensors with the wireless communication technique, and to investigate the effect of the microbial deodorant on the reduction of sewer odor. The odor monitoring device, which was fabricated using metal oxide semiconductor sensors and code division multi access communication technique, was installed at three sites of the gravity-flow type combined sewer (depth 3m and width 5m) in Gangnam, Seoul. Odor monitoring in field was carried out at the interval of 10 minutes for 304 days over the autumn, winter and summer. The measured results were transmitted to Woosong odor research center about 100km away from the site. The measured sensor value was converted to olfactory odor concentration by the co-relation equation of the sensor value and the olfactory odor concentration. As the monitoring results, more than 40,000 sewage odor data were obtained. The average odor concentration of raw sewage in combined sewer was 464 OUk, which was 321 OUk in winter and 412 OUk in autumn and 659 OUk in summer. The commercial microbial deodorant used in this study was the mixture culture of 48 microbial strains, and the microbial deodorant of 1 m3 d-1 to 2 m3 d-1 was mixed with raw sewage at the 1.5 km upstream of the site where odor complaints occurred. As the experimental results, the average odor concentration of sewage mixed with microbial deodorant was 113 OUk, which was 102 OUk in winter and 298 OUk in autumn and 153 OUk in summer. It was estimated that the odor reduction effect of sewer odor by microbial deodorant is about 74%.
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