Method And Apparatus For Short Arc Welding
Abstract
A short circuit arc welding system is disclosed. The control scheme uses a current command signal comprised of a long-term current command that sets the long-term current command level and a real-time or short-by-short current command to drive the output current. Feedback is used to determine if the desired arc length is present and to adjust the long-term command. The short-by-short current command is derived from real-time arc current feedback and is used to control the burn-off rate by adjustment of the current command. The short being about to clear is detected in real time. When the process is ending a very low current level is provided to avoid forming a ball. If a short is created, after the low current level, a burst of energy is provided to clear of burn off the short. After the short is cleared, very low current is again provided to avoid forming a large ball, until the wire stops and the process ends.
Claims
exact text as granted — not AI-modified1 . An apparatus for welding by depositing drops of molten metal at the end of a consumable welding wire into a weld puddle comprising:
a power source, including a secondary switcher having a current output in electrical communication with the welding wire; feedback means for providing a signal indicative of the heat input to each drop; and a controller means, coupled to the power source and having a feedback input coupled to the feedback means, for controlling, over a range, the magnitude of the current provided to the welding wire in response to the heat input to each drop.
2 . The apparatus of claim 1 , wherein the feedback means includes a signal representative of the output, and the controller means includes means for determining the power delivered to the wire, and for determining when the short is about to clear in response to the power delivered.
3 . The apparatus of claim 2 wherein the means for controlling includes means for determining a rate of change of the output power.
4 . The apparatus of claim 3 wherein the means for controlling includes means for determining a value Vc defined by Vc is a function of the derivative of the power, and wherein the controller includes means for comparing Vc to a threshold.
5 . The apparatus of claim 4 wherein the threshold is dependent on at least one of wire feed speed, wire size, or wire type.
6 . The apparatus of claim 3 wherein the means for controlling includes means for subtracting a value responsive to the rate of change of the output current from the rate of change of the output power.
7 . The apparatus of claim 3 wherein the means for controlling includes means for determining a value Vc defined by Vc=k1*(dp/dt)−k2*(di/dt), wherein k1 is a scalar, dp/dt is the derivative of the output power, k2 is a scalar, and di/dt is the derivative of the output current, and wherein the controller includes means for comparing Vc to a threshold.
8 . The apparatus of claim 6 wherein the means for controlling includes means for taking the derivative of a value responsive to the rate of change of the output power less the value responsive to the rate of change of the output current.
9 . The apparatus of claim 8 wherein the means for controlling includes means for determining a value Vc defined by Vc=d/dt(k1*dp/dt−k2*di/dt), wherein k1 is a scalar, dp/dt is the derivative of the output power, k2 is a scalar, and di/dt is the derivative of the output current, and wherein the controller includes means for comparing Vc to a threshold.
10 . The apparatus of claim 1 wherein the feedback means includes a voltage signal representative of the output voltage and the means for controlling includes means for summing over time a difference between the voltage signal and a voltage setpoint, and means for controlling the current in response to that sum, whereby the arc length is controlled to a desired length.
11 . The apparatus of claim 10 wherein the means for summing sums only over the time when an arc exists.
12 . The apparatus of claim 9 wherein the means for controlling further includes means for summing over time a difference between the voltage signal and a voltage setpoint when an arc exists, and means for controlling the current in response to that sum, whereby the arc length is controlled to a desired length.
13 . The apparatus of claim 1 wherein the means for controlling includes means for providing a desired mass deposition rate responsive to a wire feed speed and a distance from a tip of the wire to the workpiece.
14 . The apparatus of claim 12 wherein the means for controlling includes means for providing a desired mass deposition rate responsive to a wire feed speed and a distance from a tip of the wire to the workpiece.
15 . The apparatus of claim 1 wherein the means for controlling includes means for comparing a value responsive to the energy needed to melt a given amount of wire to a value representing the amount of energy delivered in at least a portion of one welding cycle.
16 . The apparatus of claim 12 wherein the means for controlling includes means for comparing a value responsive to the energy needed to melt a given amount of wire to a value representing the amount of energy delivered in at least a portion of one welding cycle.
17 . The apparatus of claim 16 wherein the means for comparing compares a value responsive to the energy needed to melt a given amount of wire to a value representing the amount of energy delivered in one complete welding cycle.
18 . The apparatus of claim 15 wherein the means for controlling includes means for determining the energy needed in accordance with Qreq=k3*(Rdep*(Hm+(Tdrop−Tamb)*Cp)*ttot), where Qreq is the energy needed, k3 is a scalar, Rdep is a wire mass deposition rate, Hm is a latent heat of melting for the wire, Tdrop is the temperature of the molten drop, Tamb is the ambient temperature of the wire, Cp is the heat capacity of the wire, and ttot is a cycle length, and the means for controlling includes means for determining the energy delivered in accordance with Qwire=((Vanode+WF+3kT/2e)*I+I 2 *l*rho/A), where Qwire is the energy delivered, Vanode is the anode voltage drop, WF is the work function of the metal comprising the wire, (3kT/2e) is the thermal energy of electrons impinging on the wire, I is the output current, l is the contact tip to arc distance, rho is the resistivity of the wire, and A is the cross sectional area of the wire.
19 . The apparatus of claim 17 wherein the means for controlling includes means for determining the energy needed in accordance with Qreq=k3*(Rdep*(Hm+(Tdrop−Tamb)*Cp)*ttot), where Qreq is the energy needed, k3 is a scalar, Rdep is a wire mass deposition rate, Hm is a latent heat of melting for the wire, Tdrop is the temperature of the molten drop, Tamb is the ambient temperature of the wire, Cp is the heat capacity of the wire, and ttot is a cycle length, and the means for controlling includes means for determining the energy delivered in accordance with Qwire =((Vanode+WF+3kT/2e)*I+I 2 *l*rho/A), where Qwire is the energy delivered, Vanode is the anode voltage drop, WF is the work function of the metal comprising the wire, (3kT/2e) is the thermal energy of electrons impinging on the wire, I is the output current, l is the contact tip to arc distance, rho is the resistivity of the wire, and A is the cross sectional area of the wire.
20 . The apparatus of claim 1 wherein the means for controlling includes means for determining a length of stick out.
21 . The apparatus of claim 17 wherein the means for controlling includes means for determining a length of stick out.
22 . The apparatus of claim 1 wherein the means for controlling includes means for determining the heat input to the wire and comparing the heat input to a predetermined heat level.
23 . The apparatus of claim 21 wherein the means for controlling includes means for determining the heat input to the wire and comparing the heat input to a predetermined heat level.
24 . The apparatus of claim 22 wherein the means for controlling includes means for summing over time a value representative of I 2 *R, where I is the current and R is the resistance of the wire, for a plurality of locations along the wire, and for comparing the sum for the location at the end of the wire to a predetermined heat level.
25 . The apparatus of claim 23 wherein the means for controlling includes means for summing over time a value representative of I 2 *R, where I is the current and R is the resistance of the wire, for a plurality of locations along the wire and for comparing the sum for the location at the end of the wire to a predetermined heat level.
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