Why Jewellers Print Instead of Carve
Lost-wax casting has not changed in principle for thousands of years: make a wax pattern, encase it in investment plaster, burn the wax out, and pour molten metal into the empty cavity. What changed is how the pattern is made. Instead of hand-carving wax or paying for a rubber mould, jewellers now design in CAD and print the pattern directly in castable resin.
The payoff is real: complex geometry that cannot be carved, exact repeatability, and same-day turnaround from file to flask. The catch is that castable resin is far less forgiving than ordinary printing resin. Ash left inside the mould becomes a surface defect in the metal. This guide walks the full workflow, with the failure modes that actually cost people castings.
What Makes a Resin "Castable"
All castable resins share one requirement: they must burn out completely, leaving essentially no ash. Standard resin contains fillers and pigments that leave residue at burnout temperature, which shows up as rough metal, porosity and incomplete fills. Castable resins are formulated with low-ash, high-wax-content chemistry so the pattern vaporises cleanly.
| Property | Why it matters |
|---|---|
| Very low ash content | Residue inside the mould = surface defects in the casting |
| Clean, complete burnout | The cavity must be empty before metal enters |
| Low shrinkage | Dimensional accuracy for ring sizes and stone seats |
| High detail resolution | Filigree, micro-pavé settings, engraved texture |
| Sufficient green strength | The pattern survives handling, sprueing and investing |
For jewellery work the two families worth knowing are high-wax castable resins, such as W80 Castable Jewellery Resin and Castable Jewellery Smart Resin, and true wax-filled photopolymers such as BlueCast X-WAX, which behaves closest to injection wax and burns out with minimal residue. For filigree and extremely fine work there is BlueCast X-WAX FILIGREE.
Step 1 — Design for Casting, Not Just for Printing
CAD models that print beautifully can fail as castings. Build these rules in from the start:
- Wall thickness: minimum 0.6–0.8 mm for wearable jewellery; 1 mm is comfortable. Thinner sections may not fill.
- Shrinkage compensation: most casting resins and metals together shrink roughly 1–2 %. Scale the model up slightly (many jewellers use 1.01–1.02 for silver) and verify with a test ring.
- No enclosed hollows. Any cavity that cannot drain will trap resin, which means ash and a failed casting.
- Sprue attachment points: design them flat and thick enough to cut cleanly, at the thickest part of the piece — metal must flow into the heavy sections first.
- Stone seats and prongs: add 0.05–0.1 mm clearance for the setting process rather than expecting the printer to hit the number exactly.
Step 2 — Print Settings for Castable Resin
| Setting | Value | Notes |
|---|---|---|
| Layer height | 0.03–0.05 mm | Finer layers = smoother surface = less polishing later |
| Exposure time | Follow the resin spec per printer | Do not over-expose — brittle patterns snap during sprueing |
| Orientation | Angle away from the plate, sprue side down | Reduces support marks on visible faces |
| Supports | Lighter than usual, placed on hidden areas | Support scars become metal defects |
| Anti-aliasing | On | Smoother surfaces, easier polish |
Print fewer, larger pieces per build rather than many small ones where possible — each pattern needs support removal and washing, and every extra handling step risks damage to a delicate wax-like part.
Step 3 — Wash and Cure (The Step That Decides Your Casting)
Washing and curing rules for castable resin differ from standard resin, and getting them wrong is the most common reason for pitted castings.
- Wash thoroughly in clean IPA. Uncured resin left on the surface becomes ash. Use two baths and a soft brush; inspect recesses and inside ring bands.
- Never cure in water or with wet surfaces. Water contamination shows up as surface porosity after casting.
- Follow the maker's cure specification exactly. Under-cured patterns stay sticky and deform during investing; over-cured patterns become brittle and can leave more residue. When the datasheet gives a cure time, use it.
- Handle with gloves. Skin oils and fingerprints on the pattern surface reproduce faithfully in metal.
A turntable curing station such as the Antmega Cure gives even curing, which matters more for castable resin than for display models.
Step 4 — Sprueing
The sprue is the channel metal flows through, and it is where many failures originate.
- Diameter: 2.5–4 mm for typical jewellery; thicker for heavy pieces. Too thin and the metal freezes before the cavity fills.
- Attach at the thickest section and angle it so metal enters smoothly without turbulence.
- Keep runs short and direct. Long, winding sprues lose heat.
- Tree layout: patterns spaced at least 3–5 mm apart so investment flows between them and the mould does not crack.
- Wax-to-sprue joint: use a small touch of wax or resin and smooth the junction — a sharp step creates a hot spot and turbulence.
Step 5 — Investing
- Weigh investment powder and water by the manufacturer's ratio — do not eyeball it. Wrong ratios cause mould cracking or incomplete filling.
- Mix under vacuum (or mix slowly and briefly) to remove air bubbles. Bubbles on the pattern surface become metal nodules.
- Pour investment down the side of the flask, letting it flow over the patterns rather than dumping it on them.
- Vibrate or vacuum the filled flask to release trapped air.
- Let the investment set undisturbed for the full bench-set time — typically 1–2 hours. Moving the flask early causes cracks.
Step 6 — Burnout
Burnout removes the resin pattern and prepares the mould for metal. Two things matter: a slow, generous ramp, and enough oxygen to actually burn the carbon away.
| Stage | Temperature | Purpose |
|---|---|---|
| Drying | Room → 150 °C, slow | Drive off water without cracking the investment |
| Resin vaporisation | 150 → 370 °C | Most of the pattern breaks down here — go slowly |
| Carbon burn-off | 370 → 730 °C, hold 1–2 h | Oxygen consumes residual carbon; this is where ash is eliminated |
| Cast temperature | Follow metal and investment spec, then drop to casting temp | Flask must be hot when metal is poured |
Rules for resin burnout: use a longer, slower cycle than you would for injection wax — resin takes more oxygen and more time to leave no residue. Do not open the kiln during the vaporisation stage; a rush of cool air can crack the mould and re-condense residue. Furnaces with good airflow perform noticeably better here than sealed ones.
Step 7 — Casting and Finishing
- Metal temperature: slightly above melting point — hot enough to flow, not so hot it oxidises.
- Centrifugal or vacuum assist for fine detail and thin sections.
- Quench, then break out the investment once the metal has solidified and cooled sufficiently.
- Cut the sprue and file flush; sand progressively (400 → 800 → 1200 → polish).
- Optional: acid pickle to remove oxidation, then ultrasonic clean before setting stones.
The Five Failures and What They Mean
| Symptom | Likely cause | Fix |
|---|---|---|
| Pitted, rough metal surface | Ash residue — incomplete wash, under/over-cured pattern, or too-fast burnout | Wash in clean IPA, follow cure spec, slower burnout with longer carbon burn-off |
| Mould cracks | Wrong water ratio, flask moved during set, or heating ramp too fast | Weigh precisely, let set fully, slow the ramp |
| Incomplete fill / rounded detail | Sprue too thin, flask too cold, insufficient vacuum/centrifugal force | Thicker sprue, cast hotter, add vacuum assist |
| Porosity through the piece | Turbulent metal flow, trapped gas, contaminated investment | Smooth sprue joints, vacuum during investing, use fresh investment |
| Size off from the CAD file | Shrinkage not compensated | Scale 1.01–1.02, validate with a test ring before production runs |
Frequently Asked Questions
Can I use ordinary resin for casting?
Technically yes, practically no. Standard resin leaves significant ash and your castings will come out rough and porous. Castable resin exists specifically to solve that.
Do castable resin patterns need curing?
Follow the resin's datasheet. Most require a controlled cure; some wax-filled materials are handled differently. Guessing produces either sticky patterns or extra ash.
Is castable resin only for jewellery?
No. The same workflow is used for dental frameworks and crowns (Castable Dental Resin), small industrial parts, and sculpture. Anywhere you would have carved or injected wax, you can print instead.
How fine can the detail be?
With a modern mono LCD printer at 0.03 mm layers, filigree and micro-pavé are routine — see X-WAX FILIGREE. Resolution is limited more by burnout and investing practice than by the printer.
How long does the whole process take?
Print and wash: a few hours. Investing: 1–2 hours plus setting. Burnout: 6–12 hours depending on flask size. Casting and clean-up: under an hour. Most jewellers run burnout overnight and cast in the morning.
The Short Version
Castable resin turns CAD into metal, but only if the pattern disappears completely. Wash in clean IPA, cure exactly to spec, sprue at 2.5–4 mm into the thickest section, invest with precise water ratios, and run a slow burnout with a long carbon burn-off stage. Do that and the printing step becomes the most predictable part of the whole process.
Shop castable resins: W80 Castable Jewellery · Castable Jewellery Smart · Castable Dental · BlueCast X-WAX · X-WAX FILIGREE





















































































































































