The role of particle collisions in pneumatic transport
Роль столкновений частиц в пневматическом транспорте
1991-10-01
SCID: 54.1/2agp7tqj
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dilute granular flowdrag force from the gasone-equation turbulence closureparticle collisionspneumatic transport
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Abstract (AI)
We analyse the dilute, steady, fully developed flow of relatively massive particles in a turbulent gas in the context of a vertical pipe. The idea is that the exchange of momentum in collisions between the grains and between the grains and the wall plays a significant role in the balance of forces in the particle phase. Consequently, the particle phase is considered to be a dilute system of colliding grains, in which the velocity fluctuations are produced by collisions rather than by the gas turbulence. The balance equations for rapid granular flow are modified to incorporate the drag force from the gas, and boundary conditions, based on collisional exchanges of momentum and energy at the wall, are employed. The turbulence of the gas is treated using a one-equation closure. A numerical solution of the resulting governing equations provides velocity and turbulent energy profiles in agreement with the measurements of Tsuji et al. (1984).
Key Findings
1
Gas turbulence is treated with a one-equation closure while the particle phase is treated as a dilute colliding-grain system.
2
In dilute, steady, fully developed vertical-pipe pneumatic transport of relatively massive particles, momentum exchange from particle–particle and particle–wall collisions significantly affects the particle-phase force balance.
3
Numerical solutions of the coupled equations produce velocity and turbulent energy profiles that agree with measurements of Tsuji et al. (1984).
4
Particle-phase velocity fluctuations are modeled as being generated primarily by interparticle collisions rather than by gas turbulence in the dilute collisional regime.
5
The authors modify rapid granular flow balance equations to include gas drag and apply collisional boundary conditions for momentum and energy at the wall.
Research Object
Dilute, steady, fully developed flow of relatively massive particles (colliding grains) in a turbulent gas within a vertical pipe
Research Subject
Role of particle–particle and particle–wall collisions in momentum and energy exchange governing particle-phase balance, velocity fluctuations generation, and resulting velocity and turbulent energy profiles under gas drag
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1991-10-01
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