Title of article :
Quantitative determination of pulp and paper industry emissions and associated odor intensity in methyl mercaptan equivalent using electronic nose
Author/Authors :
Deshmukh، نويسنده , , Sharvari and Jana، نويسنده , , Arun and Bhattacharyya، نويسنده , , Nabarun and Bandyopadhyay، نويسنده , , Rajib and Pandey، نويسنده , , R.A.، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2014
Abstract :
The obnoxious odors generated from pulp and paper industries have been the cause of nuisance since the instigation of these industries. The objective of the study was to develop a metal oxide sensor based electronic nose for rapid measurement of odorant concentration and associated odor intensity of major reduced sulfur compounds emitted from different sources of these pulp and paper mills. The gas samples collected from the surroundings of major source points of industry were exposed to sensor array of the electronic nose and the change in voltage was measured and taken to PC through data acquisition cards. The same sets of samples were also tested with gas chromatography. The results of electronic nose and GC-FPD were correlated using response surface methodology to know the odorant concentration. The model fed with unknown industrial samples had more than 95% prediction capability. To determine odor intensity by electronic nose firstly a collective index was generated using SVD based 2-norm method (e-nose index) proportional to the sensors response relative to reference gas, methyl mercaptan. Secondly the e-nose index was associated with human expert evaluations. The training of the electronic nose enabled it to predict odorant concentration found at the industrial site and associated odor intensity in methyl mercaptan equivalent. The overall results of the experiments carried out suggest the potential of electronic nose as a device for on or off line measurement of odorant concentration and odor intensity.
Keywords :
Reduced sulfur compounds , Electronic nose , Principal component analysis , Singular value decomposition , Response surface methodology , Odor intensity
Journal title :
Atmospheric Environment
Journal title :
Atmospheric Environment