TY - JOUR
T1 - Influence of media characteristics on energy dissipation in filter backwashing
AU - Turan, Mustafa
AU - Sabah, Eyup
AU - Gulsen, Hakki
AU - Celik, Mehmet S.
PY - 2003/9/15
Y1 - 2003/9/15
N2 - Effective cleaning of granular filters during backwashing processes needs maximum turbulence and maximum shear in the fluid particle field. The energy dissipation in a backwashed filter as a particulate fluidized bed arises due to the suspending and random motions of particles and turbulent fluctuations in the bed. Size, density, and sphericity of the filter materials greatly influence the fluidization behavior of the media. In this study, a new model is proposed for predicting the energy dissipation parameters namely the hydrodynamic shear stress (τa), the velocity gradient (G a), the turbulence dissipation coefficient (Ca), and the turbulence parameter (Ca0.5/Re) in backwashing of filters for different types of filter materials (sand, anthracite, and glass ball). The hydrodynamic shear stress is the dominant mechanism of filter cleaning and appears to increase with increasing the density and size of the filter media particles. Using the basic set of data, a step by step procedure is developed to compute the velocity gradient Ga, the turbulence dissipation coefficient Ca, the hydrodynamic shear stress τa, and the turbulent parameter (Ca0.5/Re).
AB - Effective cleaning of granular filters during backwashing processes needs maximum turbulence and maximum shear in the fluid particle field. The energy dissipation in a backwashed filter as a particulate fluidized bed arises due to the suspending and random motions of particles and turbulent fluctuations in the bed. Size, density, and sphericity of the filter materials greatly influence the fluidization behavior of the media. In this study, a new model is proposed for predicting the energy dissipation parameters namely the hydrodynamic shear stress (τa), the velocity gradient (G a), the turbulence dissipation coefficient (Ca), and the turbulence parameter (Ca0.5/Re) in backwashing of filters for different types of filter materials (sand, anthracite, and glass ball). The hydrodynamic shear stress is the dominant mechanism of filter cleaning and appears to increase with increasing the density and size of the filter media particles. Using the basic set of data, a step by step procedure is developed to compute the velocity gradient Ga, the turbulence dissipation coefficient Ca, the hydrodynamic shear stress τa, and the turbulent parameter (Ca0.5/Re).
UR - http://www.scopus.com/inward/record.url?scp=0043192303&partnerID=8YFLogxK
U2 - 10.1021/es020661r
DO - 10.1021/es020661r
M3 - Article
C2 - 14524466
AN - SCOPUS:0043192303
SN - 0013-936X
VL - 37
SP - 4288
EP - 4292
JO - Environmental Science and Technology
JF - Environmental Science and Technology
IS - 18
ER -