A medical device team had to decide between 45 Shore A and 60 Shore A grip hardnesses—the difference between a "cushioned feel" and a "reliable control feel" in a clinician's gloved hand. In mass production, this decision would trigger an eight-week, US$38,000 overmolding tool modification. Before finalizing, the team printed two copies of the same shape on a PolyJet: one with an Agilus30 grip (approx. 35A) and the other with a digitally mixed elastomer (approx. 60A). Both were completed in 48 hours for a total of US$1,400. Ten clinicians preferred the 60A in a blind test, by an 8:2 margin, stating that the 35A felt slippery with gloves on. The mold modification was ordered based on this, not on speculation. PolyJet cannot answer "how mass-produced overmolding ages after 1,000 autoclave cycles, or if interface adhesion will fail," but it accurately answered the question facing the project that week, before anyone spent US$38,000.
PolyJet overmolded prototypes are the closest single layer-by-layer analog to injection-molded rigid-flexible composite parts. Its strength lies in "user interface between rigid and flexible" problems—where the soft zones are, how big they are, their hardness, and how the transition feels in hand. Its weaknesses are long-term durability, interface bond strength, and mass-production wear behavior. Distinguishing which bucket a problem falls into is already most of the difference between a "useful PolyJet prototype" and a "decoration."
Why PolyJet—Not SLA or SLS
Multi-material printing is not exclusive to PolyJet, but PolyJet is the only mainstream additive manufacturing process that can directly print rigid and soft zones side-by-side in a single build, without bonding or secondary processes. SLA can print flexible resins, but rigid and soft zones must be printed separately and then bonded; SLS and MJF can print TPU or nylon, but only one material per build; Carbon DLS can switch between limited materials between different parts, but cannot natively mix them within the same part. PolyJet's multi-nozzle jetting architecture can provide two, three, or even (with digital material mixing) dozens of hardnesses in the same build. This architectural difference is why PolyJet continues to win the "multi-material prototyping" niche, even without advantages in strength, cost, or material breadth.
PolyJet Overmolded Prototype Material Palette
Stratasys' PolyJet ecosystem is divided into rigid families (Vero), digital elastomer families (Agilus and older Tango), and transparent options that can be mixed into either. The "digital material" concept is key to making the palette appear much larger than the number of bottles: the machine can mix two base resins at the voxel level to create intermediate Shore values as needed—this is why the same part can simultaneously have 40A, 60A, and 70A.
| Material Family | Role | Shore / Property Range | Typical Applications |
|---|---|---|---|
| VeroWhite / VeroBlack / VeroClear | Rigid Substrate | Approx. 83–85D, tensile 50–65 MPa | Casings, structural cores |
| VeroClear (Transparent Rigid) | Optical Rigid | Approx. 83D, ~80% light transmission | Light pipes, transparent casings |
| Agilus30 (30 Shore A) | Soft Elastomer | 30A, elongation at break ~220% | Soft-touch grips, cushioning zones |
| Agilus + Vero Digital Mix | Intermediate Hardness | 35A–90A as needed | Adjustable grips, buttons, seals |
| Tango / TangoPlus (Older Machines) | Soft Elastomer (Older Platform) | 26–60 Shore A | Older platform compatibility, softer feel |
| Digital ABS / RGD525 High Temp | Higher HDT Rigid | HDT up to ~95–140°C | Review heat-exposed casings |

What PolyJet Can and Cannot Answer
The most valuable single discipline in a PolyJet project is clearly defining "what this prototype needs to prove." Material chemistry and build mechanisms differ from mass-produced injection overmolding, and these differences happen to occur where engineers most easily confuse "prototype behavior" with "mass production behavior."
| Question | Can PolyJet Reliably Answer? | Reason |
|---|---|---|
| Is the soft zone correctly positioned for user's hand? | Yes | Shape and position can be directly translated to production |
| Is the hardness feel appropriate? | Yes, with an error of approx. ±1–2 Shore | Digitally mixed hardness is representative at review scale |
| Is the material boundary visually high-end? | Yes | Color, surface, and edge clarity can be faithfully printed |
| Will the rigid-soft bond separate during field testing? | No | PolyJet is voxel-level fusion; mass production relies on chemical/mechanical overmolding bond |
| How many wipes/pulls/stretches before failure? | Only for ranking, not absolute values | Absolute cycle life is lower than production TPE overmolding |
| Behavior after autoclaving/UV/six months in service? | No | Photocured elastomers can drift; injected TPEs do not drift in the same way |
| How will mold gates/weld lines appear? | No | PolyJet has no gates or weld lines—those are injection-specific |
Make "Printed" = Your Intended CAD Settings
Successful multi-material printing begins with the file, not at the machine. The most common production failures—"the soft zone meant to be Shore 40A is either completely rigid or has incorrect boundaries"—are almost always rooted in CAD organization, not the machine.
| CAD Element | Requirement | What Goes Wrong if Skipped |
|---|---|---|
| Rigid Substrate | Named body, clear volume | Unassigned areas default to rigid—grip will print hard |
| Soft Zone | Independent named body, non-zero thickness everywhere | Zero thickness areas print rigid or disappear entirely |
| Transition Interface | Co-planar contact between rigid and soft bodies | Gap → delamination; Overlap → slicer interpretation conflict |
| Color / Transparent Zone | Also an independently named body | If color + material are on the same object, machine prioritizes material |
| Cleanable Support Window | Internal soft cavities need access paths | Gel support trapped inside → soft zone "never fully cures" |
| Multi-Material STL or OBJ | Completely define each material body | Partial conversion → slicer assignment rules take over |
Transition Edge IS the Design
The boundary between rigid and soft is the feature that users touch, see, and use to evaluate. Mass-produced overmolding designs repeatedly feature four types of transition geometries; PolyJet prototypes should test the one that corresponds to the final design intent.
| Transition Type | Geometry | Feel | When to Use |
|---|---|---|---|
| Sharp Butt Joint | Co-planar interface, no fillets | Clean, product-like, industrial | Clean design language, keyboards, bumpers |
| Filleted Transition (R 0.5–2 mm) | Fillet between rigid and soft | Soft, continuous | Medical, consumer—when soft touch shouldn't be surprising |
| Recessed Soft Pad | Soft material embedded in rigid recess | Hard frame enclosing soft island | Grips, buttons—when tactile positioning is needed |
| Protective Lip (Rigid Covering Soft) | Rigid edge covers soft edge | Protected, durable feel | High-wear edges, impact zones |
| Angled Boundary | Rigid-soft boundary at an angle | Dynamic, directional | Sports / tools—with directional movement |
PolyJet Overmolded Prototype DFM Values
PolyJet can resolve very fine features, but multi-material builds have their own lower limits. Each number in the table below is a safe default; below it, printing is possible, but soft zone consistency decreases, or the rigid-soft boundary deviates more from the CAD intent.
| Feature | Recommended Minimum | Explanation |
|---|---|---|
| Soft Zone Wall Thickness | 0.6 mm | Below 0.6 mm, soft zone will tear during support removal |
| Completely Encased Soft Zone Volume | Avoid, or provide ≥ 1.0 mm drainage path | Residual support gel remains soft, seeps out later |
| Rigid-Soft Transition Fillet | R ≥ 0.5 mm | Zero-fillet interface will tear when flexed |
| Isolated Soft Island on Rigid | Diameter ≥ 1.0 mm | Smaller soft islands will blur after post-processing |
| Embossed Soft Text | Width ≥ 0.6 mm × Depth ≥ 0.4 mm | Soft embossed text will become softer as resin ages |
| Accessible Support Cleaning Window | ≥ 4 × 4 × 4 mm | Internal soft areas need a path for hands or tools to enter |
| Minimum Transparent Wall Thickness for Pure Rigid Zone | 0.3 mm | Below this, slicer may infiltrate adjacent material |
Application Cases
Medical Handheld Grip Hardness Selected Before Tooling
The opening scenario is not hypothetical. A real handheld diagnostic project printed the same PC-like rigid body twice—once with an Agilus30 grip (approx. 35A) and once with a digitally mixed elastomer adjusted to approx. 60A. Both were completed in 48 hours for a total of US$1,400, before anyone committed to tooling costs. Clinical blind testing resulted in an 8:2 preference for 60A, because the 35A felt slippery when wearing gloves. The key is not that "PolyJet material is very similar to production TPE"—but that "PolyJet hardness addressed the question that production needed to answer: is the grip hard enough in hand?"
Key design action: PolyJet didn't tell the team "if 60A could withstand six months of autoclave cycles"—that answer would come from injection molded samples. It told them "which hardness was worth betting the tooling cost on." This distinction is what defines an "effective multi-material prototyping strategy."

Wearable Device Strap Transition Review
A wearable brand was debating whether the transition from the rigid watch body to the soft strap should use a sharp butt joint (clean lines, more mechanical) or a filleted transition (softer, more "premium"). Screen reviews divided the team. Within a weekend, two PolyJet prints were made—VeroBlack body + Agilus50 strap, with the only difference being a 1.2 mm fillet on the second one—total cost < US$900. Under review tests, the filleted version was consistently chosen for high-end SKUs, and the sharp version for sports SKUs, allowing the product line to differentiate smoothly based on differences that "could not be resolved by screen review." The prototypes did not claim any interface strength evidence; this decision was clearly about "perceived quality"—precisely where PolyJet prototypes are strongest.
An Industrial Tool Grip That Switched from PolyJet to PU Casting
An electric tool project drop-tested a grip printed with PolyJet's 40A digital mix. The grip cleanly tore off the rigid core on the third impact. The team initially regarded this as a prototype durability failure and consequently marked the mass-produced overmolding design for redesign. The correct interpretation is not that: PolyJet's voxel-level fusion is not the bonding mechanism of mass-produced overmolding—the impact that caused the PolyJet prototype to separate cannot prove that the production part would separate. The team shifted impact validation to prototypes made by PU casting from machined master models (silicone mold US$2,800 + ten parts), leaving PolyJet only for the human factors review it excels at. Matching the prototyping method to the problem saved both the test itself and the previously mis-triggered redesign.
Do / Don't Comparison
| Do | Don't |
|---|---|
| Use PolyJet to determine hardness, position, transition geometry | Use PolyJet to validate long-term interface adhesion |
| Build each zone as an independently named body | Express soft zones with color separation or notes |
| Clearly specify transition type (sharp / filleted / recessed / protective lip) | Leave transitions to the slicer or on-site interpretation |
| Print direct A/B comparisons when there's debate | Print only one version and expect reviewers to pick it out themselves |
| Print at actual user contact scale and review by hand | Review multi-material designs only on screen |
| Consider PolyJet hardness as within ±2 Shore of target | Consider PolyJet fatigue life equivalent to injection molded TPE |
| Delegate impact and durability testing to PU casting or injection molded samples | Use PolyJet for drop / wear tests and redesign based on them |
Common Mistakes and How to Avoid Them
| Mistake | Why It Fails | How to Avoid |
|---|---|---|
| Expecting PolyJet elastomer to equal production TPE under impact | Voxel fusion ≠ chemical overmolding; separation torque is completely different | Use PU casting or injection molded samples for impact / adhesion |
| Building soft zones as polygonal color blocks instead of independent volumes | Slicer cannot assign material to non-bodies | Each zone should be an independently named body |
| Encased soft cavities without drainage paths | Residual gel continues to cure after support removal | Gel support path ≥ 1.0 mm |
| Transition interface without fillets | PolyJet boundaries tear under flexion | Add R ≥ 0.5 mm fillet to transition interface |
| Directly mapping Shore values from datasheet to production decisions | PolyJet elastomers can drift under UV, sweat, temperature | After hardness is confirmed, validate long-term stability with injection molded samples |
| Drop failure → immediate design correction | PolyJet drop failure may be due to material mechanism, not design flaw | Understand failure modes; for material mechanism failures, use casting for validation |
Pre-Print Checklist
Run through this before sending CAD. Each item corresponds to a specific failure mode above; the entire list is the difference between "saving a tooling cycle" and "wasting even your own review."
- The question this prototype needs to answer is clearly defined (hardness, position, transition geometry, visual boundary).
- Every rigid zone, soft zone, and decorative element (transparent / high-temp) is built as an independently named body.
- No soft material areas have zero thickness anywhere.
- Soft zone wall thickness is at least 0.6 mm; transition fillets are at least 0.5 mm.
- Completely encased soft cavities have at least a 1.0 mm drainage path.
- Internal soft zones have support cleaning windows ≥ 4 × 4 × 4 mm.
- The drawing specifies the transition type (sharp / filleted / recessed / protective lip / angled).
- Durability, impact, and adhesion evidence will be obtained through another prototyping method, not this one.
Design Highlights Summary
The strength of PolyJet overmolded prototypes lies in "user experience on the rigid-soft interface"—hardness, position, transition, visual quality; its weaknesses are long-term interface adhesion, injection-molded interface durability, and mass-production wear. Build each zone as a named body, respect DFM minimums, specify transition types in the drawing, print A/B comparisons when there's debate; move durability evidence to injection molded samples or PU casting—never let PolyJet try to answer questions it wasn't designed for.
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