skip to main content
OSTI.GOV title logo U.S. Department of Energy
Office of Scientific and Technical Information

Title: Macro-kinetic investigation on phenol uptake from air by biofiltration: Influence of superficial gas flow rate and inlet pollutant concentration

Journal Article · · Biotechnology and Bioengineering
; ; ;  [1]
  1. Genoa Univ., Genova (Italy). Inst. of Chemical and Process Engineering

The macro-kinetic behavior of phenol removal from a synthetic exhaust gas was investigated theoretically as well as experimentally by means of two identical continuously operating laboratory-scale biological filter bed columns. A mixture of peat and glass beads was used as filter material. After sterilization it was inoculated with a pure strain of Pseudomonas putida, as employed in previous experimental studies. To determine the influence of the superficial gas flow rate on biofilter performance and to evaluate the phenol concentration profiles along the column, two series of continuous tests were carried out varying either the inlet phenol concentration, up to 1,650 mg {center_dot} m{sup {minus}3}, or the superficial gas flow rate, from 30 to 460 m{sup 3} {center_dot} m{sup {minus}2} {center_dot} h{sup {minus}1}. The elimination capacity of the biofilter is proved by a maximum volumetric phenol removal rate of 0.73 kg {center_dot} m{sup {minus}3} {center_dot} h{sup {minus}1}. The experimental results are consistent with a biofilm model incorporating first-order substrate elimination kinetics. The model may be considered a useful tool in scaling-up a biofiltration system. Furthermore, the deodorization capacity of the biofilter was investigated, at inlet phenol concentrations up to 280 mg {center_dot} m{sup {minus}3} and superficial gas flow rates ranging from 30 to 92 m{sup 3} {center_dot} m{sup {minus}2} {center_dot} h{sup {minus}1}. The deodorization of the gas was achieved at a maximum inlet phenol concentration of about 255 mg {center_dot} m{sup {minus}3}, operating at a superficial gas flow rate of 30 m{sup 3} {center_dot} m{sup {minus}2} {center_dot} h{sup {minus}1}.

OSTI ID:
207902
Journal Information:
Biotechnology and Bioengineering, Vol. 49, Issue 4; Other Information: PBD: 20 Feb 1996
Country of Publication:
United States
Language:
English

Similar Records

Characterization of a compost biofiltration system degrading dichloromethane
Journal Article · Sat Nov 05 00:00:00 EST 1994 · Biotechnology and Bioengineering; (United States) · OSTI ID:207902

Biofiltration of solvent vapors from air
Miscellaneous · Fri Jan 01 00:00:00 EST 1993 · OSTI ID:207902

Biofiltration of air polluted with toluene under steady-state conditions: Experimental observations
Journal Article · Sat Nov 01 00:00:00 EST 1997 · Industrial and Engineering Chemistry Research · OSTI ID:207902