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滴滤床空气生物滤池与循环吸附/解吸床联合处理正己烷和苯蒸气的动态混合物。

Treatment of dynamic mixture of hexane and benzene vapors in a Trickle Bed Air Biofilter integrated with cyclic adsorption/desorption beds.

机构信息

USEPA, Cincinnati, OH, United States.

出版信息

Chemosphere. 2011 Jan;82(4):521-8. doi: 10.1016/j.chemosphere.2010.10.060. Epub 2010 Nov 12.

Abstract

One of the main challenges that face successful biofiltration is the erratic loading pattern and long starvation periods. However, such patterns are common in practical applications. In order to provide long-term stable operation of a biofilter under these conditions, a cyclic adsorption/desorption beds system with flow switching was installed prior to a biofilter. Different square waves of a mixture containing n-hexane and benzene at a 2:1 ratio were applied to the cyclic adsorption/desorption beds and then fed to a biofilter. The performance of this integrated system was compared to a biofilter unit receiving the same feed of both VOCs. The cyclic adsorption/desorption beds unit successfully achieved its goal of stabilizing erratic loading even with very sharp peaks at the influent concentration equalizing influent concentrations ranging from 10-470 ppmv for n-hexane to 30-1410 ppmv for benzene. The study included different peak concentrations with durations ranging from 6 to 20 min. The cyclic beds buffered the fluctuating influent load and the followed biofilter had all the time a continuous stable flow. Another advantage achieved by the cyclic adsorption/desorption beds was the uninterrupted feed to the biofilter even during the starvation where there was no influent in the feed. The results of the integrated system with regard to removal efficiency and kinetics are comparable to published results with continuous feed studies at the same loading rates. The removal efficiency for benzene had a minimum of 85% while for n-hexane ranged from 50% to 77% according to the loading rate. The control unit showed very erratic performance highlighting the benefit of the utilization of the cyclic adsorption/desorption beds. The biofilter was more adaptable to concentration changes in benzene than n-hexane.

摘要

成功的生物过滤面临的主要挑战之一是加载模式不稳定和长时间饥饿期。然而,这种模式在实际应用中很常见。为了在这些条件下为生物过滤器提供长期稳定的运行,在生物过滤器之前安装了带有流量切换的循环吸附/解吸床系统。含有正己烷和苯的混合物的不同方波以 2:1 的比例应用于循环吸附/解吸床,然后送入生物过滤器。将该集成系统的性能与接收两种 VOC 相同进料的生物过滤器单元进行了比较。循环吸附/解吸床单元成功地实现了其稳定不稳定负载的目标,即使在入口浓度均衡时入口浓度也非常高,正己烷的入口浓度范围为 10-470 ppmv,苯的入口浓度范围为 30-1410 ppmv。研究包括不同的峰值浓度,持续时间从 6 分钟到 20 分钟不等。循环床缓冲了波动的入口负荷,随后的生物过滤器始终具有连续稳定的流量。循环吸附/解吸床的另一个优点是即使在进料中没有进料的饥饿期也能不间断地向生物过滤器进料。与以相同负载率进行连续进料研究的已发表结果相比,集成系统在去除效率和动力学方面的结果具有可比性。苯的去除效率最低为 85%,而正己烷的去除效率根据负载率从 50%到 77%不等。控制单元的性能非常不稳定,突出了利用循环吸附/解吸床的好处。生物过滤器对苯的浓度变化比正己烷更具适应性。

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