TY - JOUR
T1 - Efficient and industrial production of H2SO4 from sulfur sludge by acidophilic cells in a membrane bioreactor via optimizing process
AU - Yang, Yiran
AU - Qian, Can
AU - Shi, Xingfu
AU - Tian, Bingyan
AU - Chu, Huichao
AU - Wang, Jia
AU - Xin, Baoping
N1 - Publisher Copyright:
© 2019 Elsevier Ltd
PY - 2020/3/20
Y1 - 2020/3/20
N2 - A large amount of sulfur-bearing hazardous wastes, including sulfur sludge, are generated in the production and processing of oil/natural gas/coal gas/biomass gas, which are difficult to dispose of with traditional processes, such as incineration or landfills. In the present work, a homemade membrane bioreactor (MBR) with an efficient volume of 10 m3 was utilized to continuously and efficiently remove sulfur (S0) from sulfur sludge and produce sulfuric acid (H2SO4) by using chemoautotrophic acidophilic cells on an industrial scale for the first time. The bio-oxidation process was also modelled and optimized by using response surface methodology. The quadratic models describe the causal relationships between the production rate of H2SO4 at pH 1.0 or the time required for the pH to decrease to 1.0 and three important control parameters (temperature, aeration rate and stirring velocity). The MBR maintained high-density growth of cells (≈2.1 × 109/mL) throughout the entire operational period due to the excellent interception performance, establishing a basis for efficient sulfur removal and H2SO4 production. Under the optimized process controls of 33.6 °C for the temperature, 3.1 m3/min for the aeration rate and 83 rpm for the stirring velocity, a high production efficiency of H2SO4 at pH 1.0 (≈850 L/h) is obtained. Accordingly, the sulfur removal efficiency and sulfur residual concentrations reached 93% and 4.1% after 20 days of contact, respectively. The current study demonstrates that the MBR is suitable for industrial scale operations, for continuous and efficient sulfur removal and for production of H2SO4 from sulfur-bearing hazardous wastes. The green microbial means not only save very expensive disposal expense of sulfur-bearing hazardous wastes but also gain benefits through the manufacture of valuable H2SO4, displaying great business value and wide application prospect.
AB - A large amount of sulfur-bearing hazardous wastes, including sulfur sludge, are generated in the production and processing of oil/natural gas/coal gas/biomass gas, which are difficult to dispose of with traditional processes, such as incineration or landfills. In the present work, a homemade membrane bioreactor (MBR) with an efficient volume of 10 m3 was utilized to continuously and efficiently remove sulfur (S0) from sulfur sludge and produce sulfuric acid (H2SO4) by using chemoautotrophic acidophilic cells on an industrial scale for the first time. The bio-oxidation process was also modelled and optimized by using response surface methodology. The quadratic models describe the causal relationships between the production rate of H2SO4 at pH 1.0 or the time required for the pH to decrease to 1.0 and three important control parameters (temperature, aeration rate and stirring velocity). The MBR maintained high-density growth of cells (≈2.1 × 109/mL) throughout the entire operational period due to the excellent interception performance, establishing a basis for efficient sulfur removal and H2SO4 production. Under the optimized process controls of 33.6 °C for the temperature, 3.1 m3/min for the aeration rate and 83 rpm for the stirring velocity, a high production efficiency of H2SO4 at pH 1.0 (≈850 L/h) is obtained. Accordingly, the sulfur removal efficiency and sulfur residual concentrations reached 93% and 4.1% after 20 days of contact, respectively. The current study demonstrates that the MBR is suitable for industrial scale operations, for continuous and efficient sulfur removal and for production of H2SO4 from sulfur-bearing hazardous wastes. The green microbial means not only save very expensive disposal expense of sulfur-bearing hazardous wastes but also gain benefits through the manufacture of valuable H2SO4, displaying great business value and wide application prospect.
KW - Acidophilic cells
KW - HSO production
KW - Membrane bioreactor
KW - Response surface methodology
KW - Sulfur removal
KW - Sulfur-bearing hazardous solid wastes
UR - http://www.scopus.com/inward/record.url?scp=85076251106&partnerID=8YFLogxK
U2 - 10.1016/j.jclepro.2019.119444
DO - 10.1016/j.jclepro.2019.119444
M3 - Article
AN - SCOPUS:85076251106
SN - 0959-6526
VL - 250
JO - Journal of Cleaner Production
JF - Journal of Cleaner Production
M1 - 119444
ER -