Understanding Duty Cycle Before You Buy An Inverter Welder
Duty cycle is one of the most misunderstood figures on a welder's spec sheet, yet it tells you more about real-world usability than the headline amperage does. It's expressed as a percentage over a ten-minute period at a given output, so a machine rated at 30% duty cycle at its maximum amperage can run for three minutes out of every ten at that setting before it needs to rest and cool.
Ambient temperature and airflow around the machine also affect real-world performance. A welder working in a hot, poorly ventilated space, or one that's been boxed in against a wall with no clearance for its cooling fan, will hit thermal cut-out sooner than the same machine used with proper clearance in a cooler environment. Keeping vents clear and giving the unit room to breathe protects both the duty cycle you paid for and the components inside.
Where the extraction point sits relative to the arc makes a bigger difference than most people expect. A fixed overhead hood can miss fume entirely if the work moves around the shop, whereas a flexible arm or on-torch extraction follows the job and tends to capture more consistently. Filters also need regular checking and replacement; a clogged filter doesn't just reduce airflow, it can quietly reduce the whole system's effectiveness long before anyone notices.
Most domestic UK properties are supplied with single-phase power, typically 230V, which is more than adequate for light-duty inverter welders used for hobby work, repairs and general fabrication. Three-phase supply, commonly 400V to 415V across three live conductors, is standard in industrial premises and Tec Products delivers power more efficiently to heavier equipment, which is why higher-output welders and plasma cutters, including some Fronius and ESAB machines, are often offered in a three-phase version.
A welding table is easy to overlook when planning a workshop, yet a poor one undermines accuracy on every job that touches it. If the surface isn't flat, nothing clamped or squared against it will be either, and small errors compound quickly on anything with multiple joints or angles.
Abrasive discs look interchangeable on a shelf but perform very differently depending on what they're made from and what they're used on. Cutting discs are generally thin, designed to slice through material quickly with minimal heat build-up, while grinding discs are thicker and shaped to remove material from a surface or clean up a weld, rather than cut all the way through it.