Development of Equipment for Injection Molding of Polymer Products Filled with Recycled Polymer Waste
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. Mathematical Model of Polymer Melt Motion in Mold Cavity
- Boundary conditions near solid surfaces. According to [27], we assume that at the points where the polymer melt touches solid walls, its velocity goes to zero, i.e., at the points of contact of polymer melt with solid walls, its normal and the tangent velocity components are equal to zero: u = 0, υ = 0. The boundary conditions for pressure near solid walls and on the axis of symmetry are unknown, they can be found from the system of Equation (8) by substituting the limiting velocities in them.
- Boundary conditions at the entrance to the mold cavity. According to [25], one of the components of the velocity vector is given here. The initial conditions of the problem are the values of velocities and pressure at the initial time.
- Boundary conditions on the free surface. On the free surface, where polymer melt is assumed to flow out of the region under consideration, so-called "soft" boundary conditions are applied. Here, we assume the equality of normal pressure derivatives and velocity components to zero:
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- Boundary cells, in which the conditions are met near solid surfaces of the mold cavity, at the entrance to the mold cavity, on the axis of symmetry;
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- Full cells that contain markers and are surrounded by other full cells;
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- Empty cells that do not contain markers; and
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- Surface cells that contain markers but border on empty cells.
3.2. Simulation of Mold Cavity Filling Process with Polymer Melt-Containing Inclusions
3.3. Design of Mold and Device for Feeding Particles of Recycled Waste
3.3.1. Mold for Making Soles Using Mixture of Polymer Melt and Recycled Waste
3.3.2. Parameters of Device for Feeding Recycled Waste Particles into Inlet Channel of Mold
4. Discussion
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Synyuk, O.; Musiał, J.; Zlotenko, B.; Kulik, T. Development of Equipment for Injection Molding of Polymer Products Filled with Recycled Polymer Waste. Polymers 2020, 12, 2725. https://doi.org/10.3390/polym12112725
Synyuk O, Musiał J, Zlotenko B, Kulik T. Development of Equipment for Injection Molding of Polymer Products Filled with Recycled Polymer Waste. Polymers. 2020; 12(11):2725. https://doi.org/10.3390/polym12112725
Chicago/Turabian StyleSynyuk, Oleg, Janusz Musiał, Borys Zlotenko, and Tetiana Kulik. 2020. "Development of Equipment for Injection Molding of Polymer Products Filled with Recycled Polymer Waste" Polymers 12, no. 11: 2725. https://doi.org/10.3390/polym12112725
APA StyleSynyuk, O., Musiał, J., Zlotenko, B., & Kulik, T. (2020). Development of Equipment for Injection Molding of Polymer Products Filled with Recycled Polymer Waste. Polymers, 12(11), 2725. https://doi.org/10.3390/polym12112725