Computer simulation of the pneumatic separator in the pneumatic-electrostatic separation system for recycling waste printed circuit boards with electronic components.

Technologies could be integrated in different ways into automatic recycling lines for a certain kind of electronic waste according to practical requirements. In this study, a new kind of pneumatic separator with openings at the dust hooper was applied combing with electrostatic separation for recycling waste printed circuit boards. However, the flow pattern and the particles' movement behavior could not be obtained by experimental methods. To better control the separation quantity and the material size distribution, computational fluid dynamics was used to model the new pneumatic separator giving a detailed understanding of the mechanisms. Simulated results showed that the tangential velocity direction reversed with a relatively small value. Axial velocity exhibited two sharp decreases at the x axis. It is indicated that the bottom openings at the dust hopper resulted in an enormous change in the velocity profile. A new phenomenon that was named dusting was observed, which would mitigate the effect of particles with small diameter on the following electrostatic separation and avoid materials plugging caused by the waste printed circuit boards special properties effectively. The trapped materials were divided into seven grades. Experimental results showed that the mass fraction of grade 5, grade 6, and grade 7 materials were 27.54%, 15.23%, and 17.38%, respectively. Grade 1 particles' mass fraction was reduced by 80.30% compared with a traditional separator. Furthermore, the monocrystalline silicon content in silicon element in particles with a diameter of -0.091 mm was 18.9%, higher than that in the mixed materials. This study could serve as guidance for the future material flow control, automation control, waste recycling, and semiconductor storage medium destruction.

[1]  Zhenming Xu,et al.  Wood plastic composite produced by nonmetals from pulverized waste printed circuit boards. , 2010, Environmental science & technology.

[2]  A. Mohebbi,et al.  A CFD study of the effect of cyclone size on its performance parameters. , 2010, Journal of hazardous materials.

[3]  Ahmadun Fakhru’l-Razi,et al.  The influence of temperature and inlet velocity on cyclone pressure drop: a CFD study , 2004 .

[4]  J. Derksen,et al.  An experimental and numerical study of turbulent swirling flow in gas cyclones , 1999 .

[5]  Zhenming Xu,et al.  Assessment of noise and heavy metals (Cr, Cu, Cd, Pb) in the ambience of the production line for recycling waste printed circuit boards. , 2012, Environmental science & technology.

[6]  Guangming Li,et al.  WEEE recovery strategies and the WEEE treatment status in China. , 2006, Journal of hazardous materials.

[7]  Jia Li,et al.  Environmental friendly automatic line for recovering metal from waste printed circuit boards. , 2010, Environmental science & technology.

[8]  Aibing Yu,et al.  Numerical study of particle–fluid flow in hydrocyclones with different body dimensions , 2006 .

[9]  Raj K. Rajamani,et al.  Mathematical model of the hydrocyclone based on physics of fluid flow , 1991 .

[10]  K. Elsayed,et al.  Numerical modeling of the flow field and performance in cyclones of different cone-tip diameters , 2011 .

[11]  Yaqun He,et al.  Recovery of metals from waste printed circuit boards by a mechanical method using a water medium. , 2009, Journal of hazardous materials.

[12]  Zhenming Xu,et al.  Impact of nonconductive powder on electrostatic separation for recycling crushed waste printed circuit board. , 2009, Journal of hazardous materials.

[13]  Chris Lacor,et al.  Optimization of the cyclone separator geometry for minimum pressure drop using mathematical models and CFD simulations , 2010 .

[14]  Zhenming Xu,et al.  Response to waste electrical and electronic equipments in China: legislation, recycling system, and advanced integrated process. , 2012, Environmental science & technology.

[15]  Hideto Yoshida,et al.  Improvement of particle separation efficiency by installing conical top-plate in hydrocyclone , 2012 .

[16]  Arman Raoufi,et al.  Numerical simulation and optimization of fluid flow in cyclone vortex finder , 2008 .

[17]  Eric Forssberg,et al.  Mechanical recycling of waste electric and electronic equipment: a review. , 2003, Journal of hazardous materials.

[18]  Jun Wang,et al.  Study of the separation efficiency and the flow field of a dynamic cyclone , 2006 .