Post-shipment support carrying the same engineer through parameter development, operator training, spares and consumables, and weld-defect troubleshooting — the machine keeps working because the conversation does not end at delivery.
The machine ships with a validated starting parameter set. Then comes the tune on the customer's actual production parts — geometry, coating, fixturing and shift-to-shift variation all change the answer. That tune is where the support loop lives.
The engineer who set the parameter profile stays with the account after shipment. Video calls, controller screenshots and cross-section photos move both directions until settings lock on the customer's own production sample.
Depends on the joint: some settle in about a week, others take longer with coated dissimilar metals or fixture drift. The loop closes when the operator is producing repeatable welds, not when a calendar says so.
Parameter files, controller screenshots, cross-section photos and operator notes. Kept on file so a later question starts from the actual baseline, not a reconstruction from memory.
New operators arrive at every shift. The training layer keeps the parameter work usable long after handoff.
Video sessions covering machine safety, controller navigation, fixture setup and first-run parameter walkthrough. The dealer's application engineer or the plant supervisor can sit in, so the same context propagates onward.
Every training call is recorded and shared back for replay during shift changes and new-hire onboarding — a live tutorial the plant owns, not a whiteboard drawing that walks out the door.
As the application evolves (new joint, new coating, fixture revision), additional training sessions are scoped without extra charge during the parameter-development window. Training and parameter loops run alongside each other, not sequentially.
Consumables and spares run through the same channel that supplied the machine — one relationship for the ordering path, not two.
Machine model, serial number and the consumable in question (electrode class, tungsten alloy, optic type, gas nozzle, fixture spare). Part-number confirmation against the machine's build sheet happens before the quote goes back, so the wrong part does not ship.
RSW electrodes, tungsten electrodes, laser optics, protective glass, gas nozzles, fixture spares and controller accessories, all available through our supply chain on a restock schedule tied to your line's usage. See Electrodes & Consumables for the catalog and cross-reference.
The five defects below cover most of what walks into the support inbox. First-line fix first; escalate only if it does not resolve.
Current too low or hold time too short for the material thickness. Check pulse width against the material-thickness combination first; adding energy or extending hold usually clears it. Reference: welding waveforms explained.
Peak current too high for the applied force, or electrode wear has grown the contact area past spec. Recalibrate force, then dress the tip back to fresh geometry. Reference: electrode selection guide.
Coverage failure or post-flow too short. Check gas flow at the nozzle (not just the regulator) and hold post-flow long enough for the tip to cool below oxidation temperature. Reference: shielding gas guide.
Almost always a coating or alloy mismatch on resistance spot lines. Base coatings (zinc, tin, brass) fuse onto the copper tip on pulse 1; a multi-pulse waveform that burns off coating on pulse 1 and welds on pulse 2 typically clears it. Reference: welding waveforms explained.
Specific to pulse arc / micro TIG — tungsten is the electrode there, and coverage failure or a puddle-touch drops fragments into the weld. Confirm argon flow, check post-flow duration and inspect tip preparation for consistent geometry. Reference: electrode selection guide.
On laser micro welders, spatter and fume deposit on the protective window between the focus lens and the workpiece. Symptoms: dropping penetration at the same parameters, then visible burn spots on the glass. Fix: replace the protective glass; if the underlying focus lens is contaminated, that's a separate service step. Reference: shielding gas guide for the coverage side that prevents fouling in the first place.
On laser marking machines, contrast loss usually points at wrong wavelength for the material (fiber on plastics that want UV, CO₂ on bare metals), wrong parameters for annealing vs surface marking, or focus offset from a shifted work-plane. Confirm the wavelength-material match first, then check the parameter recipe against the material variant.
If a quick-check does not close it, reach the support channel below with the information listed. A well-prepared ticket turns multi-round diagnosis into a one-round answer. Common questions: FAQ.
Standard machine warranty, spec dependent. Extended plans available on request. Warranty details live in the specification sheet delivered with each machine; exact duration and scope depend on machine, options and region, so the spec sheet governs.
Two ways to open a support conversation. The single lever for a fast, accurate answer is preparing the information below.
Email [email protected] or WhatsApp +86 15327155363. Requests are worked during business hours in order of receipt; the engineer reviews the ticket and returns with next-step questions or a fix.
These upfront turn a multi-round diagnosis into a one-round answer:
Order restock or confirm part numbers.
Deep dive on electrode class, tip geometry and dressing cadence.
Common questions before you open a ticket.