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Multiphase simulations with modified ASM model are also carried out for the multiple cone angles design, standard design, and the modified small cone angle design with full length rod at 15 wt% of solids.
Performance by multiphase simulations show that multiple cone angles design and modified small cone angle design with the full length rod are the best among the tested designs yielding high separation efficiency, smaller cut-point and minimum coarse particle misplacement due to resultant turbulence minimization.
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Conventional cylindrical-conical design and various novel cyclone designs having a combination of multiple and small cone angles, tapered vortex finder and air core free designs are considered in this study.
Three model cones with different cone angles (50°, 55° and 60°) were used during the tests.
The proposed pitch cone design applies the spatial gearing model to determine working pitch cone angles and working spiral angles.
Two cones with half cone angles α=30° and α=45° with a constant constriction ratio of 0.75 are studied.
It is shown that, FPF is more critical than buckling for thicker cones with lower cone angles.
The angle θ between the direction of the reflected ray and the optical axis lies between two cone angles θc and θd.
The analysis is accomplished for conical shells of different boundary conditions and cone angles.
The empirical data were collected from tapered beds with different cone angles for various particles.
The IMF cone angles are calculated by the following equation: cone angle = arccos |Bx|/BT).
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