Cellulosimicrobium sp. Strain L1: A Study on the Optimization of the Conditions and Performance of a Combined Biological Trickling Filter for Hydrogen Sulfide Degradation

Author:

Wang Xuechun1,Li Xintian1,Hao Peng1,Duan Xinran1,Gao Yunhang1ORCID,Liang Xiaojun2

Affiliation:

1. College of Veterinary Medicine, Jilin Agricultural University, Changchun 130118, China

2. Institute of Animal Science, Ningxia Academy of Agriculture and Forestry, Yinchuan 750002, China

Abstract

Sulfide is a toxic and hazardous substance in the agricultural environment, which can cause damage to humans and livestock when exposed to large amounts of air. In this study, we performed one-factor optimization of the culture conditions and culture fractions of the Cellulosimicrobium sp. strain L1 and combined it with a biological trickling filter cell for the degradation of hydrogen sulfide for 24 consecutive days. The degradation effect of strain L1 and the biological trickling filter (BTF) on hydrogen sulfide was investigated, and the changes in intermediate products in the degradation process were briefly analyzed. The results showed that strain L1 had the highest conversion efficiency when incubated with 3 g/L sucrose as the carbon source and 1 g/L NH4Cl as the nitrogen source at a temperature of 35 °C, an initial pH of 5, and a NaCl concentration of 1%. The concentration of thiosulfate increased and then decreased during the degradation process, and the concentration of sulfate increased continuously. When strain L1 was applied to the biological trickling filter, it could degrade 359.53 mg/m3 of H2S. This study provides a deeper understanding of sulfide degradation in biological trickling filters and helps promote the development of desulfurization technology and the treatment of malodorous gasses produced by the accumulation of large quantities of livestock manure.

Funder

China Key Program for Research and Development

Ningxia Hui Autonomous Region Agricultural Science and Technology Independent Innovation Project

Jilin Science and Technology Development Program-Chinese Academy of Engineering Consulting Key Projects

China Agriculture Research System of MOF and MARA

Publisher

MDPI AG

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