TY - JOUR
T1 - Fibrous support stabilizes nitrification performance of a membrane-aerated biofilm
T2 - The effect of liquid flow perturbation
AU - Terada, Akihiko
AU - Ito, Junpei
AU - Matsumoto, Shinya
AU - Tsuneda, Satoshi
PY - 2009/8/20
Y1 - 2009/8/20
N2 - Nitrification stability and biofilm robustness were examined by comparing a fibrous support membrane-aerated biofilm reactor (FS-MABR), where a woven fibrous support was surrounded on a silicone tube, with an MABR. The overall mass transfer coefficient of oxygen for the FS-MABR, assuming no boundary layer between the fibrous material and bulk liquid, was 5.85 m/d at an air pressure of 27 kPa, which was comparable to that value of the MABR (5.54 m/d). The amount of biomass on the fibrous support with a silicone tube was 2.48 times larger than on the bare silicone. The biomass loss after a high liquid flow rate condition was 49% and 75% in the FS-MABR and MABR, exhibiting robust biofilms grown on the fibrous support. The FS-MABR provided more stable nitrification performance than the MABR irrespective of a high liquid flow rate. Both reactors have deteriorated ammonium (NH+4-N) removal without a high liquid flow rate condition to eliminate excessive biomass, indicating that regular maintenance is essential to eliminate excessive biofilm from a MABR for nitrification, which potentially acts as a NH4+ diffusion barrier.
AB - Nitrification stability and biofilm robustness were examined by comparing a fibrous support membrane-aerated biofilm reactor (FS-MABR), where a woven fibrous support was surrounded on a silicone tube, with an MABR. The overall mass transfer coefficient of oxygen for the FS-MABR, assuming no boundary layer between the fibrous material and bulk liquid, was 5.85 m/d at an air pressure of 27 kPa, which was comparable to that value of the MABR (5.54 m/d). The amount of biomass on the fibrous support with a silicone tube was 2.48 times larger than on the bare silicone. The biomass loss after a high liquid flow rate condition was 49% and 75% in the FS-MABR and MABR, exhibiting robust biofilms grown on the fibrous support. The FS-MABR provided more stable nitrification performance than the MABR irrespective of a high liquid flow rate. Both reactors have deteriorated ammonium (NH+4-N) removal without a high liquid flow rate condition to eliminate excessive biomass, indicating that regular maintenance is essential to eliminate excessive biofilm from a MABR for nitrification, which potentially acts as a NH4+ diffusion barrier.
KW - Fibrous support
KW - High liquid flow rate
KW - Membrane-aerated biofilm reactor
KW - Nitrification
KW - Sloughing
UR - http://www.scopus.com/inward/record.url?scp=69949179236&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=69949179236&partnerID=8YFLogxK
U2 - 10.1252/jcej.09we032
DO - 10.1252/jcej.09we032
M3 - Article
AN - SCOPUS:69949179236
SN - 0021-9592
VL - 42
SP - 607
EP - 615
JO - JOURNAL OF CHEMICAL ENGINEERING OF JAPAN
JF - JOURNAL OF CHEMICAL ENGINEERING OF JAPAN
IS - 8
ER -