← Back to Articles

Injection Mold Structure Design: Practical Points from Frame Selection to Detail Optimization

August 14, 2026

This article covers key structural design considerations for injection molds, including frame sizing, steel selection, and detail optimization, with real-world data and engineering insights for mold makers and buyers.

When starting an injection mold design, the frame (mold base) selection sets the foundation for the entire tool. For a typical product with a projected area of 250 cm² and a wall thickness of 2.5 mm, we usually recommend a standard 3535 (350×350 mm) frame with a clamping force requirement of 120 to 150 tons. The critical rule is to check the cavity pressure—often 300 to 500 bar for ABS or PC/ABS—against the frame's rated capacity. In practice, we always add a 10% safety margin on the support pillar layout to avoid plate deflection, especially when the mold height exceeds 450 mm. For high-cavity molds (8 or 16 cavities), a three-plate frame with a stripper plate is preferred, but this increases the total cost by roughly 15-20%, so the decision must be justified by the annual production volume.

Detail optimization is where most mold failures occur. First, the cooling circuit design: for a 2.5 mm wall section, we use 10 mm diameter cooling channels spaced 3 to 4 times the channel diameter apart, targeting a mold surface temperature of 40–60°C for amorphous resins. The flow rate should be at least 3 L/min per circuit to achieve a Reynolds number above 4000, ensuring turbulent flow. Second, the gate type and location—for a part with visible cosmetic surfaces, a sub-gate or tunnel gate at the parting line is often the safest choice, but if a hot runner is used, the nozzle tip diameter must match the gate diameter within 0.2 mm to prevent drooling. Third, the ejection system: for deep ribs (depth > 3× rib width), we use ejector sleeves or lifters with a draft angle of at least 1.5° to avoid sticking. In one recent project, we reduced cycle time from 38 seconds to 31 seconds simply by optimizing the cooling channel layout and adding a spiral baffle in the core, which directly improved the part's flatness from 0.15 mm to 0.08 mm.

Finally, a practical note on steel selection and surface treatment. For production runs above 500,000 shots, we specify S136 or 8407 for the cavity and core, hardened to 48–52 HRC, with a PVD coating (TiN or CrN) on the sliding surfaces to reduce wear. For lower volumes (under 100,000 shots), P20 with nitriding is a cost-effective alternative. Always document the shrinkage factor for the specific resin—for example, 0.5–0.7% for ABS, 1.5–2.0% for PP—and adjust the mold dimensions accordingly. A well-designed mold should include a venting channel of 0.02–0.03 mm depth at the parting line, placed at the last fill point to prevent burn marks. If you are sourcing a new mold or need a second opinion on an existing design, visit MoldWorld (www.moldw.com) for verified mold suppliers, technical articles, and sourcing guidance from experienced mold engineers.