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Study on Cooling Layer and Thin Insert Thickness Between Coolant and Cavity for Injection Mold with Bridge-Type
Tran Minh The Uyen1, Pham Son Minh1, Hung-Son Dang2
1Faculty of Mechanical Engineering, HCMC University of Technology and Education, Ho Chi Minh City 71307, Vietnam.
Optimizing a mold
Area of Science:
- Materials Science and Engineering
- Manufacturing Technology
Background:
- Injection molding of composites requires precise temperature control for optimal product quality.
- Traditional mold designs can struggle with efficient heat management, leading to defects.
Purpose of the Study:
- To design and optimize an integrated cooling layer system for thin-thickness mold inserts.
- To enhance heat transfer efficiency and control mold temperature in composite injection molding.
Main Methods:
- Utilized the Taguchi method with an L25 orthogonal array for parameter optimization.
- Investigated insert thickness, cooling layer thickness, water flow rate, and coolant temperature.
- Performed detailed analysis on five representative experimental cases.
Main Results:
- Identified optimal parameters: 0.5 mm insert, 10 mm cooling layer, 3.5 L/min flow rate, 80 °C coolant temperature.
- Achieved a stable mold temperature with a cavity difference of 3.6 °C and low simulation-experiment deviation (2.4%-7.2%).
- Reduced defects like warpage and shrinkage, improving surface quality and melt flowability.
Conclusions:
- The optimized cooling layer system effectively enhances through-thickness heat transfer in thin molds.
- Glass fiber reinforcement significantly reduces displacement, demonstrating the interplay between thermal management and mechanical properties.
- This approach ensures superior quality and reduced deformation in composite injection-molded products.
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