Engineering Review: High-speed MAG MAG Cobot Welder – Turin, Italy

Field Report: Deployment of High-Speed MAG Cobot Welder in Heavy Fabrication (Turin, Italy)

1. Introduction and Objective

This report documents the on-site implementation and performance validation of a high-speed MAG Cobot Welder system within a Tier-1 industrial equipment facility in Turin, Italy. The objective was to transition 65% of the manual multi-pass welding volume for heavy structural components to an automated platform. The primary challenge involved Thick Plate Steel welding (15mm to 25mm S355JR grade), where thermal management and penetration depth are critical. By integrating advanced Arc Welding Solutions, we aimed to stabilize deposition rates and reduce post-weld distortion compared to manual Metal Active Gas (MAG) operations.

2. System Configuration and Technical Integration

The installation utilized a 10kg-payload collaborative robot arm integrated with a high-performance inverter power source. In the Turin workshop, the synergy between the MAG Cobot Welder and the software-driven Arc Welding Solutions proved essential. Unlike traditional industrial robots, the cobot allowed our senior operators to “lead-through” program the complex geometries of the heavy chassis parts.

2.1. Power Source and Waveform Control

We deployed a modified pulse-on-pulse waveform specifically tuned for heavy-duty cycles. The Arc Welding Solutions package included adaptive arc length control, which compensated for minor fit-up inconsistencies in the Thick Plate Steel welding process. The power source was mapped to the cobot’s controller via EtherCAT, ensuring millisecond-level synchronization between wire feed speed (WFS) and travel speed.

2.2. Torch Geometry and Gas Shielding

A water-cooled 500A torch was mandatory. For the Turin application, we utilized an M21 shielding gas blend (82% Ar / 18% CO2). Given the high-speed parameters, gas flow was increased to 22 L/min to prevent turbulence-induced porosity at the higher travel speeds (45-55 cm/min) achieved during the fill passes.

3. Thick Plate Steel Welding: Procedural Methodology

Welding 20mm plate requires a multi-pass strategy that balances productivity with metallurgical integrity. The MAG Cobot Welder was programmed for a three-tier pass sequence: Root, Fill, and Cap.

3.1. Root Pass Strategy

The root pass on a 60-degree V-groove prep required a short-arc transfer to prevent burn-through. We utilized the “Cold” arc mode from our Arc Welding Solutions suite, maintaining a tight 2.0mm gap. The cobot’s ability to maintain a constant torch angle of 85 degrees (push) resulted in 100% penetration without the need for ceramic backing strips on the 15mm test coupons.

MAG Cobot Welder in Turin, Italy

3.2. Fill and Cap Passes

For the fill passes, we switched to spray transfer. This is where the MAG Cobot Welder outperformed manual operators by 40% in terms of “arc-on” time. We utilized a 1.2mm ER70S-6 solid wire at a WFS of 12.5 m/min. The cap pass employed a slight weave pattern (2mm amplitude, 1.5Hz frequency) to ensure proper toe fusion and a flat reinforcement profile, meeting ISO 5817 Level B quality standards.

4. Real-World Synergy: The Turin Workshop Context

Turin’s manufacturing sector is currently facing a shortage of certified high-pressure welders. The implementation of the MAG Cobot Welder was not just a technical upgrade but a labor-force multiplier. By applying these Arc Welding Solutions, we allowed a single senior welder to oversee three cobot stations. The integration of the cobot into the existing workflow was seamless due to the system’s small footprint—vital for the congested floor plan of the Turin facility.

4.1. Thermal Management in S355JR Steel

One of the “lessons learned” during the first week was the accumulation of heat in thick sections. Thick Plate Steel welding inherently risks grain growth in the Heat Affected Zone (HAZ). We programmed an interpass temperature check (max 250°C) using an integrated infrared sensor that paused the cobot routine if the threshold was exceeded. This ensured the structural integrity of the heavy-duty agricultural frames being fabricated.

5. Technical Performance Metrics

After a 30-day trial period, the data indicated the following:

  • Deposition Rate: Increased from 3.8 kg/hr (manual) to 5.2 kg/hr (cobot).
  • Defect Rate: NDT (Non-Destructive Testing) revealed a reduction in slag inclusions and lack of fusion by 92%.
  • Wire Consumption: Reduced by 12% due to precise control of the weld reinforcement height.
  • Setup Time: Average of 15 minutes for new part geometries, thanks to the intuitive Arc Welding Solutions interface.

6. Lessons Learned and Field Observations

The transition to a MAG Cobot Welder in a heavy industrial environment isn’t without friction. Below are the critical takeaways from the Turin deployment.

6.1. Cable Management is Paramount

In Thick Plate Steel welding, the torch often undergoes significant rotational movement to access deep grooves. We initially faced issues with the umbilical package snagging on the workpiece. The lesson: high-flex conduits and a ceiling-mounted balancer are non-negotiable for high-speed applications.

6.2. Wire Shaving and Feeding Issues

High-speed MAG requires consistent WFS. We noticed micro-shavings of copper from the wire clogging the liner after 40 hours of operation. Switching to a high-quality, non-copper-coated wire and installing a specialized felt wiper at the feeder inlet resolved the arc instability issues. This is a crucial “floor-level” detail often missed in the Arc Welding Solutions brochures.

6.3. Grounding and EMI

The high-frequency start and the high-current spray transfer generated significant Electromagnetic Interference (EMI) that occasionally interfered with the cobot’s safety sensors. We had to implement a dedicated “Star” grounding system for the welding table and the cobot base to eliminate phantom “Emergency Stop” triggers.

7. Conclusions on MAG Cobot Welder Efficacy

The deployment in Turin confirms that the MAG Cobot Welder is no longer just for thin-gauge sheet metal. When paired with heavy-duty Arc Welding Solutions, it is a formidable tool for Thick Plate Steel welding. The key to success lies in the meticulous calibration of the power source waveforms and the physical management of the welding environment.

7.1. Final Recommendations for Heavy Fabrication

For future rollouts, I recommend the adoption of a dual-wire feeder setup to minimize downtime during spool changes. Furthermore, the use of a digital welding cloud to track heat input per joint should be mandated for quality assurance. The Turin site has successfully demonstrated that cobotic automation can meet the rigors of heavy industry while maintaining the flexibility required by small-to-medium Italian enterprises.

7.2. Summary of Component Integrity

Microstructural analysis of the welds performed by the MAG Cobot Welder showed a refined grain structure in the cap passes. The consistency of the travel speed ensured that the cooling rate was uniform, preventing the formation of brittle martensitic phases in the S355JR steel. This level of repeatability is virtually impossible to achieve manually over an 8-hour shift.


Report Compiled By: Senior Welding Engineer, Turin Field Office
Date: October 2023
Project Reference: IT-TUR-MAG-09

Advanced Programming: OLP vs. Teaching-Free System

For large-scale gantry welding, manual "point-to-point" teaching is inefficient. PCL offers two cutting-edge solutions to minimize downtime and maximize precision. Understanding the difference is key to choosing the right automation level for your factory.

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OLP allows engineers to create welding paths in a 3D virtual environment using CAD data (STEP/IGES).

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Feature Off-line Programming (OLP) Teaching-Free System
Input Required CAD 3D Models 3D Laser Scanning
Programming Time Minutes to Hours (Off-site) Seconds (On-site)
Ideal Production Mass Production / Batch Work Custom / Single Unit Work

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