Patent classifications
B23K9/1062
Methods and systems using a smart torch with positional tracking in robotic welding
A system and method of electric arc welding that includes a welding apparatus having an electric arc welder torch with sensors to determine the absolute position of the torch tip and the relative position of the torch tip to the weld joint during automatic welding. Combining absolute and relative positional data can be used to adjust the path of the robot during automated or robotic welding in response to variations in the weld joint.
Real time resistance monitoring of an arc welding circuit
A welding or additive manufacturing power supply includes output circuitry configured to generate a welding waveform, a current sensor for measuring a welding current generated by the output circuitry, a voltage sensor for measuring an output voltage of the welding waveform, and a controller operatively connected to the output circuitry to control the welding waveform, and operatively connected to the current sensor and the voltage sensor to monitor the welding current and the output voltage. A portion of welding waveform includes a controlled change in current from a first level to a second level different from the first level. The controller is configured to determine a circuit inductance from the output voltage and the controlled change in current, and further determine a change in resistance of a consumable electrode in real time based on the circuit inductance.
Method and apparatus to monitor a fire state associated with a welding event
The present invention relates to methods and apparatus for detection of fire states in the presence of welding activities. In some examples, the welding detection system may algorithmically calculate a risk of a fire state developing. In some embodiments, the welding fire detection and prevention system may communicate warning states to users, supervisors, equipment and/or building monitoring systems.
SYSTEMS AND METHODS TO CONFIGURE A ROBOTIC WELDING SYSTEM
An example welding-type power supply includes: power conversion circuitry configured to convert input power to welding-type output power; auxiliary power output circuitry configured to output auxiliary power via an auxiliary power connection; communications circuitry configured to communicate via the auxiliary power connection; and processor(s) configured to: detect, via the communications circuitry, that a robot control system is coupled to the auxiliary power connection; and in response to detecting the robot control system, configuring the welding-type power supply based on receiving a communication from the robot control system via the communications circuitry.
Power supply system, power supply device, and control method
A power supply system includes multiple power supply devices including a first power supply device and a second power supply device that are connected in common to a load. The first power supply device calculates control information for controlling voltage or current to be output to the load and source information for obtaining the control information, and controls the output to the load based on the calculated control information while transmitting the source information to the second power supply device. The second power supply device receives the source information transmitted from the first power supply device, calculates control information based on the received source information, and controls the output to the load while detecting current to be output from itself to the load and transmitting current information to the first power supply device.
Method of operating a welding power supply and a welding power supply
A method of operating a welding power supply during a welding process in which an electric arc between a consumable electrode and a work piece is generated while feeding the consumable electrode and moving the arc in relation to the work piece along a welding track, wherein a transition between a DC power output of the welding power supply and an AC power output of the welding power supply, or vice versa, is made without interruption of the welding process.
REAL TIME RESISTANCE MONITORING OF AN ARC WELDING CIRCUIT
A welding or additive manufacturing power supply includes output circuitry configured to generate a welding waveform, a current sensor for measuring a welding current generated by the output circuitry, a voltage sensor for measuring an output voltage of the welding waveform, and a controller operatively connected to the output circuitry to control the welding waveform, and operatively connected to the current sensor and the voltage sensor to monitor the welding current and the output voltage. A portion of welding waveform includes a controlled change in current from a first level to a second level different from the first level. The controller is configured to determine a circuit inductance from the output voltage and the controlled change in current, and further determine a change in resistance of a consumable electrode in real time based on the circuit inductance.
Systems and methods to detect faults in wire feed motor drive circuits
An example welding-type system includes: processing circuitry; and a machine readable storage medium comprising a machine readable instruction, when executed by the processing circuitry, cause the processing circuitry to: control a first switch to disconnect a motor circuit from a motor power source, the motor circuit comprising a wire feed motor and a second switch; control the second switch to permit current to flow while the first switch disconnects the motor circuit from the motor power source during a test period; and in response to feedback indicative of a current through the motor circuit while the first switch is open and the second switch is closed, detecting a fault condition associated with the motor circuit.
OPERATING DEVICE FOR A WELDING POWER SUPPLY
An operating device of a welding system is provided with a display means for visually displaying set parameter values of the welding system, and comprises input means by which parameters of the welding system can be changed. An operating device includes a plurality of input means arranged outside the display means, is provided. The input means is designed as soft keys, wherein, each of the soft keys can be assigned parameters of the arc welding method or functions, via operation of the operating device, due to the fact that the display means is designed as a touch-sensitive touchscreen and the respective soft key can be assigned a specific parameter or a specific function by selection from a predefined selection of parameters or functions displayed on the display means and, after selection, the respective parameter can be changed or the function can be applied by actuating the respective soft key.
SYSTEM AND METHOD FOR LIMITING WELDING OUTPUT AND ANCILLARY FEATURES
A system and method for limiting welding output and ancillary features is provided. In one embodiment, a portable generator system includes a power generator configured to generate electrical power appropriate for welding or plasma cutting. The generator system also includes power conversion circuitry coupled to the power generator and configured to receive power from the power generator and to provide output power. The generator system includes at least operator accessible input for receiving an operator input parameter. The generator system also includes an output power limiting device not adjustable by the operator and configured to selectively limit output power from the power conversion circuitry.