What Is Silicone Molding Technology and Its Core Applications?

Polyester PBT CNC Machining

Silicone molding technology is a manufacturing process that transforms liquid silicone rubber (LSR) or solid silicone compounds into precision-shaped products via controlled curing. It leverages silicone’s unique elasticity, Resistenza al calore, and biocompatibility to serve industries from cultural relic protection to medical devices. But what makes this technology versatile, how do you select the right methods for specific needs, and how to avoid common production pitfalls?

1. Core Types of Silicone Molding Technology: Un'analisi comparativa

Silicone molding technology varies by material state and curing mechanism. The table below breaks down key types, i loro punti di forza, e usi ideali:

Tipo di tecnologiaCaratteristiche chiaveVantaggiLimitazioniScenari applicativi ideali
Liquid Silicone Rubber (LSR) ModanaturaUses two-component LSR (mixed 1:1 O 10:1); cures at 120–180°CAlta precisione (± 0,01 mm); nessun sottoprodotto; fast cycle time (30–60s/part)High equipment cost; requires specialized injection machinesDispositivi medici (PER ESEMPIO., componenti protesici), prodotti per bambini (PER ESEMPIO., pacifier nipples)
Solid Silicone Compression MoldingUses pre-cut solid silicone sheets; pressed in molds (160–200 ° C., 10–20MPa)Low equipment investment; suitable for large parts; facile da ridimensionareLonger curing time (5–10min/part); lower detail resolutionSigilli industriali, guarnizioni automobilistiche, large craft molds
Silicone Coating & DippingApplies thin silicone layers via brushing/dipping; cures at room temp or low heatSpessore uniforme (5–500μm); adheres to diverse substrates (metallo, fabric)Limited to thin-walled products; slow for thick layersElectronic component waterproofing, cultural relic protective coatings
Vacuum-Assisted Silicone MoldingUses vacuum chambers to eliminate bubbles during pouring; for LSR or solid compoundsNo bubble defects; high surface finish (Ra≤1.6μm)Longer process time; requires vacuum equipmentPrecision jewelry molds, componenti ottici, cultural relic replication

2. Material Selection for Silicone Molding: Match to Performance Needs

The success of silicone molding depends on choosing the right silicone type. Below is a guide to material categories and their key parameters:

UN. Silicone Material Categories

Categoria materialeCaratteristiche chiaveStandard di conformitàCasi d'uso tipici
Silicone di condensaReleases ethanol during curing; basso costo; facile da usareGrado industriale (no food/medical compliance)Ordinary crafts, non-critical seals
Silicone per cure ad aggiuntaNo by-products; basso restringimento (<0.1%); elevata purezzaFDA/ISO 10993 (medico); FDA 21 Cfr (cibo)Medical prosthetics, food-contact molds (PER ESEMPIO., chocolate molds)
FluorosiliconeHeat resistance up to 300°C; Resistenza chimica (acidi, oli)MIL-STD-883 (aerospaziale); ASTM D2000 (automobile)Aerospace seals, high-temperature industrial gaskets

B. Critical Material Parameters to Consider

  1. Durezza (Shore a):
  • 5–10 °: Ultra-soft (cultural relic cushions, medical skin contact parts)
  • 20–30°: Medio-morbido (resin craft molds, baby product components)
  • 40–60°: Difficile (sigilli industriali, guarnizioni automobilistiche)
  1. Viscosità:
  • Basso (<5,000 cp): Flows into micro-details (jewelry molds, electronic component coatings)
  • Alto (>10,000 cP): Ideal for brushing/dipping (thick protective layers for cultural relics)
  1. Tear Strength:

4kn/m: High-durability needs (reusable molds, frequent-use seals)

  • 2–3kN/m: Budget-friendly, low-cycle products (disposable craft molds)

3. Standardized Workflow of Silicone Molding Technology

A typical silicone molding process follows 5 Fase chiave, with strict controls at each step to ensure quality:

Palcoscenico 1: Pre-Production Preparation

  1. Prototipo & Design dello stampo:
  • For uneven substrates (legna, calcolo), spray PVA water-soluble release agent to prevent silicone adhesion.
  • Aggiungi chaprs (0.5–1mm) to mold edges to avoid stress concentration and tearing.
  • For deep-hole structures, embed magnetic nuts for post-molding positioning.
  1. Configurazione degli strumenti:
  • Build a containment frame (glass/acrylic) 10cm taller than the prototype’s highest point to prevent overflow.
  • Reserve a glue injection port (diameter ≥1cm) and serpentine exhaust grooves to release air.

Palcoscenico 2: Preparazione del materiale & Miscelazione

  1. Component Mixing:
  • For LSR: Use an electronic scale to weigh AB components (PER ESEMPIO., 1:1 rapporto) with ±0.1g accuracy.
  • For solid silicone: Cut compounds into blanks matching the mold’s cavity volume (add 5–10% for compression shrinkage).
  1. Defoaming:
  • Place mixed LSR in a vacuum chamber (-0.1MPA) for 15–20 minutes; repeat 2–3 times at 5-minute intervals for bubble-free results.

Palcoscenico 3: Modanatura & Polimerizzazione

Tipo di tecnologiaMolding ProcessCuring Parameters
LSR MoldingInject mixed LSR into heated molds (120–150 ° C.) via specialized injection machinesCure Time: 30–60s; pressione: 5–10MPa
Stampaggio a compressionePlace solid silicone blanks in molds; apply pressure (10–20MPa) e riscaldare (160–180 ° C.)Cure Time: 5–10min; post-cure at 200°C for 2h to eliminate stress
Coating/DippingBrush/dip substrate in silicone; let stand for 10–15min to levelRoom-temperature cure: 24H; low-heat cure: 60°C for 2h

Palcoscenico 4: Sformatura & Post-elaborazione

  1. Sformatura:
  • Use thin plastic sheets to separate silicone from molds; tap the back gently to vibrate stuck parts.
  • For complex molds, pre-cut guide grooves (depth ≤1/3 of mold thickness) to ease peeling.
  1. Taglio & Finitura:
  • Cut excess flash with sharp scissors; sand inner surfaces with 400–600 grit sandpaper for Ra≤1.6μm smoothness.

Palcoscenico 5: Ispezione di qualità

  • Stabilità dimensionale: Measure key dimensions 3 times with a caliper; ensure tolerance within ±0.5%.
  • Qualità della superficie: Use a roughness meter to verify Ra≤1.6μm; check for pockmarks or bubbles.
  • Performance Testing: For high-cycle products, run dynamic fatigue tests (≥100,000 folds without tearing).

4. Troubleshooting Common Issues in Silicone Molding

Anche con controlli precisi, issues may arise. Below is a cause-and-solution guide for frequent problems:

Problem PhenomenonCausa ultimaPractical Solution
Surface Pockmarks/ImperfectionsSubstrate contamination (oil/dust); environmental dust adhesionClean prototypes with alcohol; operate in a dust-free workshop.- Apply a thin release agent layer to smooth uneven surfaces.
Uneven ThicknessTurbulence from fast pouring; mold cavity design flawsUse a funnel for slow, layered pouring (1–2cm/min).- Optimize mold vents to balance pressure distribution.
Bubble TrappingInadequate vacuum defoaming; mixing too vigorouslyExtend vacuum time to 20–25min; add a second defoaming cycle.- Stir silicone at 30–50 RPM (avoids air entrapment).
Edge CurlUneven curing shrinkage; high exotherm during moldingSwitch to low-temperature curing (reduce by 10–15°C).- Add a 2-hour post-cure at 60°C to relieve internal stress.
Short Service LifeResin/chemical residue corrosion; UV agingClean molds with steam + neutral detergent after each use.- Store molds in opaque containers (avoids UV exposure); apply talcum powder for long-term storage.

5. Industry-Specific Applications of Silicone Molding Technology

Silicone molding technology solves unique challenges across sectors. Here are key use cases with implementation details:

IndustriaCaso di applicazioneMolding Technology UsedKey Innovations
Cultural Relic ProtectionFragile relic support & shape replicationVacuum-assisted LSR molding (5° Shore A ultra-soft silicone)Embedded optical fiber sensors to monitor relic stress in real time; glass fiber reinforced layer for durability
Dispositivi mediciCustom orthotic insolesAddition-cure LSR molding (biocompatible grade)3D-scanned prototypes for personalized fit; post-cure at 120°C to meet ISO 10993 standard di biocompatibilità
Produzione giocattoloLimited-edition doll molds (multi-color parts)Modular compression molding (colored silicone)Separate head/body molds with magnetic positioning; colored silicone for easy part identification
ElettronicaCircuit board waterproofingSilicone coating (low-viscosity LSR)Uniform 20μm coating; cures at 80°C to avoid damaging electronic components

6. Yigu Technology’s Perspective on Silicone Molding Technology

Alla tecnologia Yigu, we see silicone molding technology as a bridge between precision engineering and creative needs. For cultural relic protection projects, our vacuum-assisted LSR molding (5° Shore A silicone) has successfully replicated 200+ fragile artifacts, with 0.1mm detail accuracy and real-time stress monitoring. Per clienti medici, our addition-cure LSR molding process meets FDA 21 CFR standards, delivering custom prosthetic components with <0.01mm dimensional tolerance.

Stiamo portando avanti due innovazioni chiave: 1) Developing eco-friendly LSR (reducing VOCs by 35%) for sustainable manufacturing; 2) Integrating AI into mold temperature control (optimizing curing time by 20% while maintaining quality). Our goal is to make silicone molding technology more accessible, efficiente, and tailored to industry-specific challenges.

Domande frequenti

  1. What’s the difference between LSR molding and solid silicone compression molding for medical products?

LSR molding is ideal for high-precision, Piccole parti mediche (PER ESEMPIO., Suggerimenti per catetere) due to its ±0.01mm tolerance and biocompatibility (nessun sottoprodotto). Solid silicone compression molding works for larger parts (PER ESEMPIO., orthotic braces) and has lower equipment costs but longer cycle times. Always choose addition-cure LSR for implantable/skin-contact medical products.

  1. How to extend the service life of silicone molds made via this technology?

Clean molds with steam + detergente neutro (avoid sharp tools) after each use; store in opaque, dry containers (prevents UV aging); apply a thin talcum powder layer for storage over 1 mese. For high-frequency use, add a 2-hour post-cure at 60°C every 50 cycles to refresh elasticity.

  1. Can silicone molding technology be used for high-temperature industrial parts (PER ESEMPIO., 250° C+)?

Yes—use fluorosilicone material (heat resistance up to 300°C) with compression molding (180–200°C cure). Ensure a 4-hour post-cure at 220°C to enhance heat resistance. This setup is suitable for aerospace seals and high-temperature industrial gaskets, meeting MIL-STD-883 standards.

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