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3D printers, Business 3D Printers, DED 3D Printers, Engineering 3D Printers, Large Format 3D Printers, LFAM 3D Printers, Manufacturing 3D Printers, Metal 3D printers · WAAM

Caracol Vipra AM Robotic WAAM Metal 3D Printer – Turnkey 9-Axis Cell | 8.2×6.6×6.6 ft / 2.5×2.0×2.0 m

Vipra AM is Caracol’s turnkey robotic WAAM platform for metal production parts — a 9-axis cell running CMT (Cold Metal Transfer) deposition at up to 13.2 lb/h / 6.0 kg/h inside an 8.2 × 6.6 × 6.6 ft / 2.5 × 2.0 × 2.0 m envelope, across 11 qualified alloys from ER70S-6 steel to Inconel 625. CE marked. Priced by configuration.

  • ✓ 9-axis architecture — robot, external manipulator and linear track, 1,650 lb / 750 kg positioner payload
  • ✓ Closed-loop monitoring — pyrometer, layer geometry and gas flow correct parameters in-build
  • ✓ Lead time: approx. 16 weeks — configured to order
Installation and commissioning in the USA: facility and gas planning, start-up and operator training by our US service team.
Prices follow supplier cost and stock availability and are updated regularly. The price you see is today's price — once you order, it's held for 7 days.
Install + training included Tailored service plan
6 kg/h Max deposition rate, SS316
9 Axes of motion
11 Qualified alloys
90% Buy-to-fly ratio, up to

What your process engineer actually checks

Nine axes, not six

Vipra AM runs a high-payload industrial robot on a 9-axis architecture — one axis beyond most WAAM platforms — with an external manipulator and a linear track as the ninth axis. Wider kinematic range means more accurate torch positioning across complex geometries, and loading and unloading happen inside the cell without fork lifts.

Closed-loop process control, logged per build

A pyrometer, a layer geometry sensor and a gas flow monitor feed an automation loop that adjusts parameters in real time to hold the thermal window. Eidos Nexus correlates that data with robot position into a live digital twin, so every build leaves a production record. Thermal camera, profilometer and 3D scanner add on demand.

An applications engineer on the line

Send the part, the alloy and the annual volume — we will tell you whether Vipra AM pays back on it, which configuration fits your facility, and what installation actually requires. We run metal AM ourselves at AO Metal, so the answer comes from production experience. Sub-4h reply, NDA standard.

8.2 × 6.6 × 6.6 ft
Build volume (2.5 × 2.0 × 2.0 m)
13.2 lb/h
Max deposition rate (6.0 kg/h, SS316)
0.04–0.10 in
Layer height (1.0–2.5 mm)
1,650 lb
Positioner payload (750 kg)
About this product

Vipra AM is Caracol’s turnkey robotic WAAM platform for metal parts: a 9-axis cell that deposits steels, stainless steels, aluminium, nickel and copper alloys at up to 6 kg/h inside a 8.2 × 6.6 × 6.6 ft / 2.5 × 2.0 × 2.0 m envelope, with closed-loop process monitoring built in.

Caracol Vipra AM CMT deposition head over a build plate inside the WAAM cell
CMT deposition head on the robot flange, over the positioner build plate.
Caracol Vipra AM WAAM cell interior with 9-axis robot and machine HMI screens
Enclosed cell: robot, positioner and the HMI column with live process feed.
Caracol Vipra AM Eidos Nexus monitoring dashboard during a WAAM build
Eidos Nexus dashboard — bead, temperature and parameter data logged per layer.

Why engineers choose Vipra AM

Four things a process engineer checks before a WAAM cell enters the shop floor.

Nine axes, not six

Robot, external manipulator and a linear track as the ninth axis. The extra axis widens the kinematic range and torch angle, so overhangs and organic geometries that fixed-axis WAAM platforms refuse stay printable.

CMT keeps heat input low

Cold Metal Transfer feeds wire intermittently through a synchronized short-circuiting arc. Lower heat input means less distortion and less spatter than conventional arc deposition, with material integrity preserved through tall builds.

Closed-loop, not open-loop

Pyrometer, layer-geometry sensor and gas-flow monitor feed an automation loop that corrects parameters in-build to hold the thermal window. Thermal camera, profilometer and 3D scanner add on demand.

A cell, not a component

Enclosure, fume extraction, wire storage, surveillance, interlocks, HMI and the Eidos software suite ship as one commissioned system. Loading and unloading run on the internal track — no fork lift inside the cell.

What Is Vipra AM: Turnkey Robotic WAAM for Large Metal Parts

Vipra AM is a wire arc additive manufacturing machine built as a complete production cell rather than a welding head bolted to a robot. The Vipra XP configuration runs CMT (Cold Metal Transfer) deposition on a 9-axis robotic architecture inside a fully enclosed, CE-marked cell; the Vipra XP – Studio configuration is the same deposition platform supplied without the enclosure, monitoring dashboard and sensor suite, for teams that already have a compliant robotic cell and process infrastructure.

The target part is large, structural and metal: near-net-shape components printed in hours instead of cast in weeks. Caracol reports up to 95% lead-time reduction and buy-to-fly ratios up to 90% against conventional casting, forging and machine-from-billet routes.

Deposition & Process Performance

Vipra AM deposits with a CMT power source: the wire is fed intermittently through a synchronized short-circuiting arc, which keeps heat input low, limits distortion on tall builds and produces clean beads with minimal spatter. Deposition rate is measured through a standardized qualification procedure printing SS316; real parts run a little below the ceiling because geometry and thermal management set the pace. Layer height is set by the bead, not by a recoater, so Vipra AM is a near-net-shape process and functional surfaces are CNC finished afterwards. Full machine data is in the Specifications tab.

Vipra XP vs Vipra XP – Studio: What Actually Differs

Both configurations run the same deposition platform. Build volume, deposition rate, layer height, positioner payload, wire diameter and feed speed, shielding gas, power draw and CE marking are identical on both — those sit in the Specifications tab. The table below lists only what changes between them.

What differs Vipra XP Vipra XP – Studio
Enclosure Enclosed cell, 13.8 × 16.7 × 14.1 ft / 4.2 × 5.1 × 4.3 m footprint None — you supply a compliant cell
Fume extractor, wire feedstock storage, internal and external LED, surveillance camera, HMI and PC, safety interlock architecture Included Not included
Process monitoring Caracol Nexus monitoring dashboard Not included
Pyrometer sensor Yes No
Profilometer sensor Optional No
Deposition head dimensions 16.9 × 10.2 × 11.8 in / 430 × 260 × 300 mm 14.7 × 9.3 × 3.9 in / 400 × 235 × 100 mm
Head weight 33 lb / 15 kg 15.5 lb / 7 kg

Source: Caracol Vipra AM technical data, brochure version VIPRA AM-2606. Configuration is confirmed at quote.

Caracol Vipra AM WAAM arc depositing a metal layer with visible spatter and shielding gas
CMT arc depositing a layer on a revolved part — low heat input, minimal spatter.

How the system reaches your floor

Vipra AM is configured to order — approx. 16 weeks from purchase order, subject to slot availability.

Step 01
Application review

Send part geometry, alloy and volumes. Our applications engineers confirm what belongs on WAAM, what belongs on LPBF or machining, and which configuration — XP or XP Studio — matches your infrastructure.

Step 02
Configure, install, train

Cell layout, sensor package, power and gas supply, extraction and safety architecture are specified against your facility. Installation, commissioning and operator training are included with the system.

Step 03
Qualify and produce

Caracol’s Material Lab runs investigation, testing, characterization and qualification on each alloy before it enters production. Parameter sets, after-sales support and remote diagnostics follow the machine.

Qualified Material Portfolio

Vipra AM is an open platform, and the qualified wire portfolio is grouped by what the part has to survive. Custom alloys go through the Material Lab qualification route before production use.

  • Versatile and cost-effective — ER70S-6 steel, ER100S-G steel, 316L stainless, 17-4 PH stainless, 410 NiMo stainless
  • Thermal stability — Invar 36 iron-nickel (low CTE tooling, cryogenic tanks), Inconel 625 nickel superalloy (cryogenic to 900 °C service)
  • Lightweight and high strength — Al2319, Al6061, Al7075 aluminium alloys
  • Thermal conductivity and harsh environments — CuAl8Ni6 aluminium-nickel-bronze

Multi-material builds are supported: a single component can carry Inconel 625 where corrosion and thermal stress demand it and ER70S steel everywhere else, which keeps superalloy cost confined to the zones that need it.

Process Monitoring & Software

The Eidos Manufacturing suite ships with the platform. Eidos Builder handles slicing and toolpath generation with planar, revolved and radial strategies, robotic simulation before the build, and all production parameters in one workspace. Eidos Nexus correlates sensor data with robot position in real time to produce a live digital twin, giving operators machine-performance visibility, consistent quality tracking and per-build production records. Nexus is being extended with closed-loop process control developed together with Fraunhofer IAPT.

Typical applications

Where a 2.5-metre WAAM envelope and near-net-shape economics pay back.

Aerospace
Lamination and cure tooling, pressurized tanks, structural brackets
Automotive & defense
Suspension carriers, structural housings, low-volume spares
Energy, oil & gas
Valve bodies, flanges, subsea and high-temperature piping parts
Marine
Propellers, pump and impeller bodies, hull and deck fittings
Tooling & molds
Invar 36 cure tools, forming dies, large jigs and fixtures
Railways & architecture
Structural nodes, obsolete spares, monolithic connectors
316L stainless steel sampling valve body printed on Caracol Vipra AM WAAM platform
316L sampling valve body — 45 lb / 20.5 kg, printed in 7.5 h, machined faces.
CuAl8Ni6 aluminium-nickel-bronze marine propeller printed on Caracol Vipra AM WAAM system
CuAl8Ni6 marine propeller — 99 lb / 45 kg, 10.5 h at 4.6 kg/h, as-built beads.
Multi-material Inconel 625 and ER70S neck flange printed on Caracol Vipra AM and CNC machined
Multi-material neck flange — Inconel 625 plus ER70S, 31 lb / 14 kg, 3 h at 5 kg/h.

Production Cases and What They Cost in Hours

Figures below are Caracol’s published production results on Vipra AM. Customer names are withheld; the numbers are the vendor’s.

Part Alloy Size / mass Print time Result
Sampling valve body (oil & gas) 316L 8.7 × 12.2 × 8.7 in / 220 × 310 × 220 mm · 45 lb / 20.5 kg 7.5 h File to finished part in under 48 h against approx. 60 days by casting
Suspension and differential carrier ER100S-G 21.3 × 19.7 × 19.7 in / 540 × 500 × 500 mm · 243 lb / 110 kg approx. 60 h Replaced casting and forging; up to 50% shorter lead time, no tooling cost
Multi-material neck flange Inconel 625 + ER70S 10.6 × 10.6 × 4.3 in / 270 × 270 × 110 mm · 31 lb / 14 kg 3 h at 5 kg/h Superalloy placed only where corrosion and thermal stress demand it
Marine propeller CuAl8Ni6 29.5 × 29.5 × 10.6 in / 750 × 750 × 270 mm · 99 lb / 45 kg 10.5 h at 4.6 kg/h Custom blade geometry, CNC finished, no mold
Aerospace spar tool for carbon-fibre lamination 316L Full-size tool 30 h at 3.7 kg/h Final tool weight cut by 50% against traditional manufacturing
Autoclave stringer cure mold Invar 36 22.8 × 23.6 × 9.1 in / 580 × 600 × 230 mm · 154 lb / 70 kg 14 h at 5 kg/h Holds tolerance over repeated thermal cycles without warping
Pressurized tank for CubeSat carrier satellite Al2319 Monolithic, single-piece build — No assembly, weight-optimized geometry, lower launch mass

Not sure WAAM is the right process for your part?

Three platforms we support that solve neighbouring problems.

Tell us the part, the alloy and the annual volume — an applications engineer will tell you whether Vipra AM pays back on it, which configuration fits your facility, and what the installation actually needs. Sub-4h reply, NDA standard.

Why Source Vipra AM Through Additive Plus

  • US-based sales, application engineering and after-sales coordination — one contact from part review to production
  • Installation, commissioning and operator training included with every system
  • Metal AM run in-house at AO Metal, so process questions are answered by people who print metal daily
  • Material qualification support: the Vipra platform is open, and new wire goes through a defined qualification route
  • Leasing and financing available for capital equipment · sub-24h response · 200+ AM systems delivered across 23 countries
Brand Caracol
Technology WAAM
Printing Materials Metal Wire
Build Volume approx. 8.2 × 6.6 × 6.6 ft / 2500 × 2000 × 2000 mm
Layer thickness 0.04–0.10 in / 1.0–2.5 mm
Material 17-4 PH, 316L, 410 NiMo, Al2319, Al6061, Al7075, CuAl8Ni6, ER100S-G, ER70S-6, Inconel 625, Invar 36
Configurations Vipra XP (enclosed turnkey cell), Vipra XP – Studio (open platform, no enclosure)
Process technology Wire Arc Additive Manufacturing (WAAM)
Power source CMT — Cold Metal Transfer
Max deposition rate approx. 13.2 lb/h / 6.0 kg/h (measured printing SS316)
Robotic architecture 9 axes — industrial robot + external manipulator + linear track
Positioner payload 1,650 lb / 750 kg
Operational gas Argon and argon mixtures
Wire diameter 0.03–0.06 in / 0.8–1.6 mm
Wire feed speed 39–590 ipm / 1.0–15.0 m/min
Deposition head Vipra XP: 16.9 × 10.2 × 11.8 in / 430 × 260 × 300 mm, 33 lb / 15 kg, Vipra XP – Studio: 14.7 × 9.3 × 3.9 in / 400 × 235 × 100 mm, 15.5 lb / 7 kg
Process monitoring Caracol Nexus monitoring dashboard (Vipra XP)
Sensors Pyrometer + layer geometry + gas flow (core); thermal welding camera, profilometer, 3D scanner on demand
Anti-collision system Integrated
Software Eidos Manufacturing Suite — Eidos Builder (slicing) + Eidos Nexus (monitoring)
Dimensions Enclosure footprint (Vipra XP): 13.8 × 16.7 × 14.1 ft / 4200 × 5100 × 4300 mm
Power Consumption 35 kW max
Max supply current <63 A
Certification CE marked

Product videos

Which of your parts actually belong on WAAM?

Not every part pays back on wire arc. Send a part list with alloys, sizes and annual volumes — our engineers will mark which ones Vipra AM shortens and which are better left on casting, machining or LPBF, and put rough numbers against them.

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  • ✔ 8.5 MP 4K camera · 20× optical / 35× combined zoom
  • ✔ Field of view 80×60 mm to 2.3×1.7 mm · IAI LED illumination
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  • ✔ Ø 200–300 mm working wheel · single force 5–100 N or central 20–400 N
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  • ✓ Three macro methods on one automated frame, conformant to ISO 6506 / 6507 / 6508
  • ✓ Qpix Control2 software, XLED Brinell lenses and DAkkS-certified indenters
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Lead time: 6–10 weeks — configured to order
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Not ready for a full cell? Book a demo and walk through your geometry with an applications engineer.

Common questions

Don't see yours? Email [email protected] — NDA standard, typical reply within 4 hours.

What is the build volume of the Caracol Vipra AM, and how large a metal part can it produce?
Vipra AM has a build envelope of approximately 8.2 × 6.6 × 6.6 ft / 2.5 × 2.0 × 2.0 m, with a positioner payload of 1,650 lb / 750 kg. Published production parts include a 29.5 × 29.5 × 10.6 in / 750 × 750 × 270 mm marine propeller at 99 lb / 45 kg and a 21.3 × 19.7 × 19.7 in / 540 × 500 × 500 mm suspension carrier at 243 lb / 110 kg. Because the ninth axis is a linear track, the working range extends along a defined path, so long components can be pre-positioned without lifting equipment inside the cell. Send us the bounding box of your part and we will confirm fit before quoting.
What deposition rate does Vipra AM achieve, and how long does a real part take?
Maximum deposition rate on Vipra AM is approximately 13.2 lb/h / 6.0 kg/h, measured through a standardized qualification procedure printing SS316. Real production figures sit slightly below that ceiling because geometry and thermal management set the pace: a 31 lb / 14 kg multi-material neck flange printed in 3 hours at 5 kg/h, a 99 lb / 45 kg marine propeller in 10.5 hours at 4.6 kg/h, and a full-size 316L aerospace spar tool in 30 hours at 3.7 kg/h. Add CNC machining time on functional surfaces — WAAM is a near-net-shape process, not a finished-part process.
Which alloys are qualified for Vipra AM, and can we run our own wire?
Caracol's qualified portfolio for Vipra AM covers ER70S-6 and ER100S-G steels, 316L, 17-4 PH and 410 NiMo stainless steels, Invar 36, Inconel 625, Al2319, Al6061 and Al7075 aluminium alloys, and CuAl8Ni6 aluminium-nickel-bronze. The platform is open, so additional wire can be introduced through Caracol's Material Lab route: investigation, test deposition, characterization of mechanical, thermal and chemical properties, then qualification of the parameter set. Multi-material builds are supported — a single part can combine Inconel 625 in high-stress zones with cheaper steel elsewhere. Talk to a materials engineer before assuming an alloy is available.
What is the difference between Vipra XP and Vipra XP – Studio?
Both configurations of Vipra AM share the same deposition platform: WAAM with a CMT power source, the same build envelope, deposition rate, layer height and wire parameters. Vipra XP is the turnkey version — fully enclosed cell with a 13.8 × 16.7 × 14.1 ft / 4.2 × 5.1 × 4.3 m footprint, fume extractor, wire feedstock storage, internal and external lighting, surveillance camera, HMI and PC, safety interlock architecture, the Caracol Nexus monitoring dashboard and a pyrometer, with a profilometer available. Vipra XP – Studio ships the platform without enclosure, monitoring dashboard or sensors, and uses a smaller, lighter head — for teams that already own a compliant robotic cell.
How does WAAM on Vipra AM compare with laser powder bed fusion for metal parts?
Different jobs. LPBF resolves fine features and internal channels in a build chamber usually measured in hundreds of millimetres; Vipra AM prints metres of structural metal at kilograms per hour with layer heights of 0.04–0.10 in / 1.0–2.5 mm. If the part is large, structural and would otherwise be cast, forged or machined from billet, WAAM on Vipra AM removes the mould and most of the material waste — Caracol reports buy-to-fly ratios up to 90% and lead-time reductions up to 95%. If the part needs thin walls, lattices or sub-millimetre features, LPBF is the right process and we will say so.
What post-processing do Vipra AM parts need?
Vipra AM produces near-net-shape parts, so plan for CNC machining on functional surfaces — bores, sealing faces, flange faces and mating features. Alloy-dependent heat treatment is common: the published ER100S-G suspension carrier went through heat treatment and machining after a roughly 60-hour build, and Al2319 reaches its stated mechanical properties after heat treatment. Non-functional surfaces are typically left as-built with visible bead texture. Inspection follows your own quality plan; the optional 3D scanner module can capture dimensional snapshots against the CAD model during the build itself.
What infrastructure does a Vipra AM cell require — power, gas, floor space and extraction?
Vipra AM draws a maximum of 35 kW with a maximum supply current below 63 A, and runs on argon or argon mixtures as shielding gas. The enclosed Vipra XP configuration occupies a 13.8 × 16.7 × 14.1 ft / 4.2 × 5.1 × 4.3 m footprint and carries its own fume extraction, lighting, surveillance and safety interlock architecture, so welding fume management is handled inside the cell rather than by your building services. Wire feedstock storage is integrated. Vipra XP – Studio has no enclosure and assumes you provide the compliant cell, extraction and safety architecture yourself.
What is the lead time for a Vipra AM system, and what is included?
Lead time on Vipra AM is currently around 16 weeks from purchase order, subject to when the order lands in the production slot schedule — we confirm the date at quote, not from a catalogue. The system is delivered as a commissioned cell: hardware, the Eidos Manufacturing software suite with Builder slicing and Nexus monitoring, installation, and operator training. After-sales support covers technical assistance, remote diagnostics and continuous process optimization. Pricing is per configuration — enclosure, sensor package and track length all move the number — so Vipra AM is quoted rather than listed.

Place your order, or talk to an engineer first

Order Caracol Vipra AM Robotic WAAM Metal 3D Printer – Turnkey 9-Axis Cell | 8.2×6.6×6.6 ft / 2.5×2.0×2.0 m direct, or talk to materials engineer

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