Title of article :
Mold temperature control using high-frequency proximity effect induced heating
Author/Authors :
Shia-Chung Chen، نويسنده , , Pham Son Minh، نويسنده , , Jen-An Chang، نويسنده , , Sung-Wei Huang، نويسنده , , Chung-Huan Huang، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2012
Pages :
8
From page :
216
To page :
223
Abstract :
A rapid heating in an injection molding cycle has the advantage of improving product quality without significant increase in cycle time. In this study, high-frequency proximity effect induced heating (HFPEIH) was developed and combined with water cooling to achieve dynamic mold surface temperature control. By applying the HFPEIH system on a pair of mold plates separated with a small gap, the relevant influence of HFPEIH design was evaluated under various parameters including different mold plate material, inductor designs, and inductor channel depths beneath mold surface as well as mold separations. Simulation was also conducted and verified with experiments. Results show that all the heating rates range within 2 °C/s to 4 °C/s for the mold plate size of 100 mm by 100 mm. For the inductor design with three channels of circular cross section, the heating rate is fastest whereas one inductor design of rectangular shape exhibits the best the uniformity of temperature distribution. When the channel depth is reduced from 12 mm to 4 mm, the heating rate is increased significantly. The heating rate is also sensitive to mold plate surface area. When stainless steel N700 was used as the plate materials in a smaller plate of 60 mm by 60 mm, the heating rate can reach 7.6 °C/s using one channel inductor design. The mold separation exhibits that it is less sensitive to the heating rate within 1 mm to 5 mm range and when it is greater than 5 mm, the heating rate starts to decrease slightly. All the simulated results show good coincidence with experimental measurements.
Keywords :
Dynamic mold temperature control , Induction heating , proximity effect
Journal title :
International Communications in Heat and Mass Transfer
Serial Year :
2012
Journal title :
International Communications in Heat and Mass Transfer
Record number :
1221078
Link To Document :
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