WELDING TOOL FOR PERFORMING SMAW OR MIG WELD WITH MANTENANCE OFA CONSTANT DISTANCE BETWEEN THE ELECTODE AND THE WELD AREA
20170326671 · 2017-11-16
Inventors
- Francescosaverio CHIARI (Florence, IT)
- Mario MILAZZO (Florence, IT)
- Marco MAGNASCO (Florence, IT)
- Cesare STEFANINI (Florence, IT)
- Francesco INGLESE (Florence, IT)
Cpc classification
B23K9/0008
PERFORMING OPERATIONS; TRANSPORTING
B23K9/293
PERFORMING OPERATIONS; TRANSPORTING
B23K9/12
PERFORMING OPERATIONS; TRANSPORTING
B23K9/167
PERFORMING OPERATIONS; TRANSPORTING
B23K9/124
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23K9/12
PERFORMING OPERATIONS; TRANSPORTING
B23K9/095
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A welding tool comprises a main body; a handle attached to the main body to be held by a welder; an electrode attached to the main body; an adjusting device for moving the consumable electrode forward/backward with respect to the main body; a control unit is connected to the adjusting device and is configured to act on the adjusting device for maintaining a substantially constant distance between the electrode and a weld area.
Claims
1. A welding tool comprising: a main body; a handle attached to the main body and configured to be held by a welder; an electrode; an adjusting device attached to the main body and associated with the electrode for moving the electrode forward/backward with respect to the main body; and a control unit connected to the adjusting device and configured to act on the adjusting device for maintaining a substantially constant distance between the electrode and a weld area; wherein the electrode is consumable for performing a shielded metal arc welding or a metal inert gas weld.
2. The welding tool according to claim 1, further comprising a voltage sensor configured to detect a welding voltage between the electrode and the weld area and to emit a voltage signal representing a value of the welding voltage, the voltage sensor being connected to the control unit.
3. The welding tool according to claim 1, wherein the control unit comprises a data acquisition module configured to acquire the voltage signal a processing module configured to output an actuation signal function of at least the voltage signal, an actuation module connected to the adjusting device and configured to operate the adjusting device as directed by the actuation signal.
4. The welding tool according to claim 1, wherein the control unit further comprises a memory module configured to hold a target voltage value, the processing module being configured to retrieve the target voltage value and to compare it with the welding voltage value, the actuation signal being at least in part directly proportional to the result of the comparison.
5. The welding tool according to claim 1, wherein the control unit further comprises an input module configured to set the target voltage value in the memory module.
6. The welding tool according to claim 1, wherein the input module is a QR code reader for reading the target voltage value from a QR code.
7. The welding tool according to claim 1, wherein the adjusting device comprises a wheel having a central axis disposed transversally, to a longitudinal axis of the electrode, the rim of the wheel being in contact with the electrode for moving the electrode forward/backward with respect to the main body.
8. The welding tool according to claim 7, wherein the adjusting device comprises a motor, the motor being connected to the wheel for actuating the wheel.
9. The welding tool according to claim 8, wherein the motor is a linear electromagnetic motor.
10. An arc welding kit comprising: a welding tool comprising a main body, a handle attached to the main body and configured to be held by a welder, an electrode, an adjusting device attached to the main body and associated with the electrode for moving the electrode forward/backward with respect to the main body, a control unit connected to the adjusting device and configured to act on the adjusting device for maintaining a substantially constant distance between the electrode and a weld area, and wherein the electrode is consumable for performing a shielded metal arc welding or a metal inert gas weld; a welding mask; and a visualization device attached to the welding mask and arranged to show a representation of at least a performance of a welding operation selected from: welding speed, voltage, current, respectively between the electrode and the weld area.
11. The arc welding kit according to claim 10, wherein the welding mask further comprises a welding velocity sensor attached on the welding mask, the welding velocity sensor being configured to detect a welding velocity and to emit a welding velocity signal (Ws) representing a value of the welding velocity, the processing module being configured to compute a velocity difference between the welding velocity and a target velocity value for the welding velocity, the processing module being configured to emit a velocity difference signal representing the result of the velocity difference; visualization device being configured to acquire the velocity difference signal and to show a representation of the velocity difference and of consequent heat input difference to a welder.
12. The arc welding kit according to claim 10, wherein the processing module is configured to compute a voltage difference between the welding voltage and the target voltage, the processing module being configured to emit a voltage difference signal representing the result of the voltage difference; the visualization device being configured to acquire the voltage difference signal and to show a representation of the voltage difference to a welder.
13. The welding tool according to claim 7, wherein the central axis disposed perpendicularly to a longitudinal axis of the electrode.
14. The welding tool according to claim 8, wherein the motor is electric.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Further details and specific embodiments will refer to the attached drawings, in which:
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DETAILED DESCRIPTION
[0023] The following description of exemplary embodiments refer to the accompanying drawings. The same reference numbers in different drawings identify the same or similar elements. The following detailed description does not limit the invention. Instead, the scope of the invention is defined by the appended claims.
[0024] Reference throughout the specification to “one embodiment” or “an embodiment” means that a particular feature, structure, or characteristic described in connection with an embodiment is included in at least one embodiment of the subject matter disclosed. Thus, the appearance of the phrases “in one embodiment” or “in an embodiment” in various places throughout the specification is not necessarily referring to the same embodiment. Further, the particular features, structures or characteristics may be combined in any suitable manner in one or more embodiments.
[0025] With reference to the attached drawings, with the number 1 is indicated an arc welding kit according to an embodiment of the present invention.
[0026] The welding kit 1 comprises a welding tool 2, which is configured to be held by a welder.
[0027] The welding tool 2 comprises an electrode 3. In one embodiment, which is used to perform a SMAW (shielded metal arc weld) or a MIG (Metal Inert Gas), shown in
[0028] With additional details, the welding tool 2 comprises a main body 20, configured to support the electrode 3. The main body 20 is, in an embodiment, axial-symmetric, and develops mainly along a longitudinal axis “A”. A handle 21 for the welder supports the main body 20.
[0029] The main body 20 has a seat 20a in which the electrode 3 is installed. As shown in
[0030] Also, the welding tool 2 comprises an adjusting device 4 associated with the electrode 3, in order to move the electrode forward/backward with respect to the main body 20. The adjusting device 4 comprises a wheel 23 having a central axis “C” disposed transversally and, in an embodiment, perpendicularly, to the longitudinal axis “A” of the electrode 3, that is parallel to the axis of the main body 20. Indeed, the main body 20 is provided with a port 25 in which the wheel 24 is inserted.
[0031] In operation, the rim of the wheel 23 is in contact with the electrode 3 so that the electrode 3 can be moved along the longitudinal axis “A” by a rotation of the wheel 23 along the central axis “C”. The adjusting device 4 also comprises a motor 24. Such motor 24 is an electric motor in an embodiment, in further embodiments the motor is an electromagnetic motor, and is installed on the wheel 23 in order to actuate the wheel 23 and through it, the electrode 3.
[0032] When the electrode 3 is consumable, the adjusting device 4 is configured for compensating the variation of distance between the electrode 3 and the weld area due to both the consumption of the electrode and the physiologic tremor of welder hand.
[0033] This double constant adjustment allows for maintaining a substantially constant distance between the electrode 3 and the weld area, allowing favorable arcing conditions and consequently an improved weld quality.
[0034] With particular reference to the SMAW or MIG welding tool 2 of
[0035] Alternatively, in the TIG welding tool 2 of
[0036] Also, in the embodiment of
[0037] The kit 1 comprises a voltage sensor 5 which is configured to detect a welding voltage “Vw” between the electrode 3 and the weld area, that is function of the distance between the end of the electrode facing the work piece and the weld area of the work piece. The voltage sensor 5 is also configured to emit a voltage signal “Vs”, which is representative of a value of the welding voltage “Vw”. Such voltage sensor 5 can be of any type known to the person skilled in the art, and therefore will not be described in detail.
[0038] The kit 1 also comprises a control unit 6. In the following part of the disclosure, the control unit 6 will be described by subdividing it into a plurality of modules. Such subdivision is done for ease of description only, and in no way, should be considered as reflecting the physical structure of the control unit 6 itself. Rather, each module can be implemented as an electronic circuit on a suitable hardware support, as a software routine, subroutine or library or as both. Each module may reside on a local unit or may be distributed over a network. Also, the modules can communicate with each other either via a suitable wired or wireless protocol.
[0039] The control unit 6 comprises a data acquisition module 7, which is configured to acquire the above-mentioned voltage signal “Vw”.
[0040] The control unit 6 also comprises a memory module 16, which is configured to store a target voltage value “Vt”.
[0041] The control unit 6 also comprises an input module 17 configured to set said target voltage value “Vt” in said memory module 16. In a particular embodiment of the invention the input module 17 can be a QR code reader. In this way, the voltage “Vt”, as well as any other parameter related to the welding process, can be read by the input module 17 on a suitably encoded QR code.
[0042] The control unit 6 also comprises a processing module 8, which is configured to output an actuation signal “Sa” function of at least the voltage signal “Vs”. Also, the processing module 8 is configured to retrieve the target voltage value “Vt” and to compare it with the welding voltage value “Vw”. The actuation signal “Sa” is therefore at least in part directly proportional to the result of such comparison. With additional detail, the processing module 8 may be programmed with a PID (Proportional, Integral and Derivative) logic. Therefore, the actuation signal “Sa” may be the sum of a part directly proportional to the difference between “Vw” and Vt”, of a part proportional to the derivative of such difference and of a part proportional to the integral of such difference. Any possible combination can be used, depending on the chosen control strategy. The processing module 8 can also be configured to supply a voltage difference signal “Dv” representing the result of the difference between “Vw” and “Vt”.
[0043] The control unit 6 also comprises an actuation module 14 connected to the adjusting device 4. The actuation module 14 is configured to operate the adjusting device 4 as directed by the actuation signal “Sa”. In particular, the actuation module 14 operates the motor 24 which rotates the wheel 23. Optionally, the welding kit also comprises a welding mask 9. Such welding mask 9 is configured to be worn by a welder during a welding process as a standard safety mask.
[0044] In particular, the welding mask 9 comprises a darkened window 10 from which the welder may observe the welding process without being blinded by the intense light.
[0045] Additionally, the welding mask 9 is provided with a welding velocity sensor 11. The welding velocity sensor 11 is configured to detect a welding velocity “Wa”, and to emit a welding velocity signal “Ws” representing a value of the welding velocity “Wa”.
[0046] According to an embodiment of the invention, the welding velocity sensor 11 comprises a first optical sensor 12a. The first optical sensor 12a is in particular arranged so that, during welding operation it faces the weld area. As shown in
[0047] With more detail, in the embodiment shown in
[0048] With additional detail, the first optical sensor 12a is configured to detect the velocity of the welding pool relative to itself. Also, the reference frame sensor 12b is configured to detect the velocity of the above mentioned fixed reference scene. According to one embodiment, the welding velocity sensor 11 also comprises a velocity computing module 13 which is configured to compute the welding velocity “Wa” as a difference between the velocities detected by the second 12b and the first optical sensor 12a. Alternatively, the first optical sensor 12a and reference frame sensor 12b both transmit the respective velocities to the control unit 6, in particular to the data acquisition module 14.
[0049] The processing module 8 is also configured to compute a velocity difference between the welding velocity “Wa” and a target velocity “Wt” value, said processing unit being configured to emit a velocity difference signal “Dw” representing the result of said velocity difference.
[0050] Optionally, the welding mask 9 comprises a visualization device 15. Such visualization device 15 is arranged to be easily visible by the welder during the welding process. As shown in
[0051] With more detail, the visualization device 15 is configured to acquire the above-mentioned velocity difference signal “Dw”, thus showing a representation of the velocity difference to the welder. Similarly, the visualization device 15 can be configured to acquire the voltage difference signal “Dv” mentioned above and to show a representation of the voltage difference to the welder.
[0052] In an embodiment, the visualization device 15 can be configured to show an operating parameter of the welding process, such as the voltage (V), the current (A), the welding speed (W), respectively between the electrode and the weld area, or their combinations. As shown schematically in
[0053] Referring specifically to
[0054] With additional details, the handling apparatus 18 comprises a main body 27, configured to support the filler rod “R”. The main body 27 is axial-symmetric, in an embodiment, and develops mainly along a longitudinal axis “B”. A handle 28 for the welder is attached to the main body 27. In an embodiment, the handle 28 surrounds the main body 27 of the handling apparatus 18.
[0055] The main body 27 has a central seat 27a in which the filler rod “R” is placed. As shown in
[0056] The feeding device 19 comprises a wheel 30 having a central axis “D” disposed transversally, and, in an embodiment, perpendicularly to the longitudinal axis “B” of the main body 27.
[0057] In operation, the rim of the wheel 30 is in contact with the filler rod “R” so that it can be moved along the longitudinal axis “B” by a rotation of the wheel 30 along the central axis “D”. The feeding device 19 also comprises a motor 31. Such motor 31 is electric, in an embodiment and, in further embodiments the motor is linear electromagnetic, and is installed on the wheel 30 in order to actuate the filler rod “R”.
[0058] In an alternative embodiment, not shown in the drawings, the feeding device 19 comprises an electromagnetic actuation device for the filler rod “R” instead of the wheel 30 and the motor 31.
[0059] If the handling apparatus 18 is used, the processing module 8 may be configured to emit a feeding velocity signal “Sv” to the actuation module 14. The feeding velocity signal “Sv” is, in an embodiment, proportional to a feeding velocity value “Fv”. The actuation module 14 is therefore also configured to operate the feeding device 19 of the handling apparatus 18 as directed by the feeding velocity signal “Sv”.
[0060] Also, as shown in
[0061] With additional detail, the control interface 32 comprises a button 33 placed on the handle 28. Specifically, the button 33 allows the welder to adjust the feeding velocity continuously; however, the button 33 is designed as to give a tactile feedback in the form of “clicks” at predetermined intervals so that the welder can be made aware with a certain precision of the amount that the feeding velocity is being manually increased or decreased.
[0062] This written description uses examples to disclose the invention, including the preferred embodiments, and also to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims