A system and device for welding training. In one example, a welding training system includes a display configured to show welding features related to a training welding operation. The system also includes a training workpiece having a substantially transparent weld joint configured to be placed adjacent to the display during the training welding operation. The system includes a processing device coupled to the display and configured to provide welding data relating to the training welding operation to the display. The system also includes a training torch comprising an optical sensor. The training torch is coupled to the processing device and configured to provide the processing device with data from the optical sensor corresponding to a position of the training torch relative to the training workpiece.

Patent
   8986013
Priority
Aug 10 2011
Filed
Jul 31 2012
Issued
Mar 24 2015
Expiry
Oct 06 2032
Extension
67 days
Assg.orig
Entity
unknown
0
143
EXPIRED
11. A welding training system comprising:
a training workpiece comprising a substantially transparent weld joint configured to be placed adjacent to a display during a training welding operation such that a portion of the display is visible by looking through the substantially transparent weld joint; and
a training torch comprising a sensor configured to detect data corresponding to a position of the training torch relative to the training workpiece during the training welding operation.
16. A welding training system comprising:
a processing device coupled to a display and configured to provide welding data relating to a training welding operation to the display, wherein the display is configured to show a virtual workpiece; and
a training torch comprising an optical sensor, wherein the training torch is coupled to the processing device and configured to provide the processing device with data from the optical sensor corresponding to a position of the training torch relative to a training workpiece, wherein the training workpiece comprises the virtual workpiece.
1. A welding training system comprising:
a display configured to show welding features related to a training welding operation;
a training workpiece comprising a substantially transparent weld joint configured to be placed adjacent to the display during the training welding operation such that a portion of the display is visible by looking through the substantially transparent weld joint;
a processing device coupled to the display and configured to provide welding data relating to the training welding operation to the display; and
a training torch comprising an optical sensor, wherein the training torch is coupled to the processing device and configured to provide the processing device with data from the optical sensor corresponding to a position of the training torch relative to the training workpiece.
2. The system of claim 1, wherein the display is configured to show a virtual weld bead of the training welding operation behind the substantially transparent weld joint of the training workpiece.
3. The system of claim 1, wherein the display is configured to show a travel speed and/or a torch angle of the training welding operation.
4. The system of claim 1, comprising a stand configured to support the training workpiece.
5. The system of claim 1, wherein the substantially transparent weld joint comprises a pattern configured to be detected by the optical sensor.
6. The system of claim 1, wherein the optical sensor comprises a camera configured to receive image data corresponding to the training workpiece.
7. The system of claim 6, wherein the camera comprises an adjustable lens to change a focal point of the camera.
8. The system of claim 6, wherein the camera is configured to alter a camera focus based on a distance between the camera and the training workpiece.
9. The system of claim 1, wherein the optical sensor is configured to detect image data shown on the display.
10. The system of claim 1, wherein the training torch comprises an optical emitter, and wherein the optical sensor of the training torch is configured to detect emissions from the optical emitter after the emissions reflect off of the training workpiece.
12. The system of claim 11, wherein the sensor comprises a magnetic sensor configured to detect a magnetic field of the training workpiece.
13. The system of claim 11, wherein the sensor comprises a gyroscope configured to detect an orientation of the training torch.
14. The system of claim 13, wherein the display is configured to show the orientation of the training torch during the training welding operation.
15. The system of claim 11, wherein the display is configured to show a virtual weld bead formed during the training welding operation behind the substantially transparent weld joint of the training workpiece.
17. The system of claim 16, wherein the training torch comprises an optical emitter, and wherein the optical sensor of the training torch is configured to detect emissions from the optical emitter after the emissions reflect off of the training workpiece.
18. The system of claim 16, wherein the training torch is configured to detect a weld joint on the virtual workpiece present on the display.

This application is a Non-Provisional Patent Application of U.S. Provisional Patent Application No. 61/521,843 entitled “Tracking Gun for Training,” filed Aug. 10, 2011, which is herein incorporated by reference in its entirety.

The invention relates generally to welding and, more particularly, to a system and device for welding training.

Welding is a process that has increasingly become utilized in various industries and applications. Such processes may be automated in certain contexts, although a large number of applications continue to exist for manual welding operations. In both cases, such welding operations rely on a variety of types of equipment to ensure the supply of welding consumables (e.g., wire feed, shielding gas, etc.) is provided to the weld in appropriate amounts at the desired time.

In preparation for performing manual welding operations, welding operators may be trained using a welding training system. The welding training system may be designed to train welding operators with the proper techniques for performing various welding operations. Certain welding training systems may use virtual reality, augmented reality, or other training methods. As may be appreciated, these training systems may be expensive to acquire and operate. Accordingly, welding training institutions may only acquire a limited number of such training systems. Therefore, welding operators being trained by the welding training institutions may have a limited amount of time for hands-on training using the training systems.

In one embodiment, a welding training system includes a display configured to show welding features related to a training welding operation. The system also includes a training workpiece having a substantially transparent weld joint configured to be placed adjacent to the display during the training welding operation. The system includes a processing device coupled to the display and configured to provide welding data relating to the training welding operation to the display. The system also includes a training torch comprising an optical sensor. The training torch is coupled to the processing device and configured to provide the processing device with data from the optical sensor corresponding to a position of the training torch relative to the training workpiece.

In another embodiment, a welding training system includes a training workpiece having a substantially transparent weld joint configured to be placed adjacent to a display during a training welding operation such that a portion of the display is visible by looking through the substantially transparent weld joint. The system also includes a training torch having a sensor configured to detect data corresponding to a position of the training torch relative to the training workpiece during the training welding operation.

In another embodiment, a welding training system includes a processing device coupled to a display and configured to provide welding data relating to a training welding operation to the display. The system also includes a training torch having an optical sensor. The training torch is coupled to the processing device and configured to provide the processing device with data from the optical sensor corresponding to a position of the training torch relative to a training workpiece.

These and other features, aspects, and advantages of the present invention will become better understood when the following detailed description is read with reference to the accompanying drawings in which like characters represent like parts throughout the drawings, wherein:

FIG. 1 is a block diagram of an embodiment of a welding training system in accordance with aspects of the present disclosure;

FIG. 2 is block diagram of another embodiment of a welding training system in accordance with aspects of the present disclosure;

FIG. 3 is a side view of an embodiment of a training torch in accordance with aspects of the present disclosure; and

FIG. 4 is a perspective view of an embodiment of a training workpiece in accordance with aspects of the present disclosure.

FIG. 1 is a block diagram of an embodiment of a welding training system 10. The welding training system 10 includes a training torch 12 that may be used for training a welding operator in various welding techniques. The welding training system 10 also includes a training workpiece 14 having a substantially transparent weld joint 16. The weld joint 16 may simulate a weld joint formed during a welding operation (e.g., fillet, lap, butt, groove, etc.). The training torch 12 includes an optical sensor 18 (e.g., camera) that may be used to detect image data (e.g., from the training workpiece 14). In certain embodiments, the detected image data may correspond to a location of the training torch 12 relative to the training workpiece 14. For example, a welding operator may direct the training torch 12 toward the weld joint 16 of the training workpiece 14. The optical sensor 18 of the training torch 12 may then detect image data from the weld joint 16 that may be used to determine a position of the training torch 12 relative to the training workpiece 14.

A first wired interface 20 electrically couples the training torch 12 to a processing device 22 having one or more processor(s) 23. After the training torch 12 detects image data, the training torch 12 provides the image data (e.g., data corresponding to the training workpiece 14, data corresponding to a position of the training torch 12 relative to the training workpiece 14) to the processing device 22 for processing. The processing device 22 may use the image data to determine a position of the training torch 12 relative to the training workpiece 14. A second wired interface 24 electrically couples the processing device 22 to a display 26. Accordingly, the processing device 22 may provide welding data to the display 26 for showing images of welding features that correspond to a welding training operation being performed by a welding operator. For example, the display 26 may show a virtual weld bead 28 corresponding to the welding training operation.

As illustrated, the virtual weld bead 28 may be shown on the display 26 behind the weld joint 16 of the training workpiece 14. As may be appreciated, the processing device 22 may use the determined position of the training torch 12 relative to the training workpiece 14, and a corresponding position of the training workpiece 14 relative to the display 26 to determine where to show the virtual weld bead 28. In certain embodiments, the processing device 22 may be configured to account for a refresh rate of the display 26 and/or lighting conditions (e.g., glare) while processing image data detected by the training torch 12. The display 26 may show other parameters relating to the training welding operation in addition to the virtual weld bead 28. For example, the display 26 may show a travel speed 30 and/or a torch angle 32 (e.g., travel angle, work angle, torch orientation, etc.). As illustrated, the training workpiece 14 is placed adjacent to the display 26 (e.g., touching the display, within ⅛ inch of the display, etc.) during a training welding operation.

A stand 34 may be configured for and used to support the training workpiece 14. As may be appreciated, in certain embodiments, the stand 34 may also be used to calibrate the location of the training workpiece 14 relative to the display 26 (e.g., by the stand 34 and the display 26 being placed in a predetermined location in relation to each other). In other embodiments, the location of the training workpiece 14 relative to the display 26 may be manually calibrated (e.g., before a training welding operation is performed). For example, the welding operator may be instructed to touch an end of the training torch 12 to one or more predetermined locations on the training workpiece 14, which may allow the processing device 22 to determine a location of the training workpiece 14 relative to the display 26. During such a calibration, the display 26 may show a configuration pattern to enable the optical sensor 18 of the training torch 12 to detect image data corresponding to a position on the display 26. Using the training torch 12 with the optical sensor 18, the welding training system 10 enables a welding operator to be trained with a minimal amount of specialized training devices. Accordingly, by using the welding training system 10 a welding operator may receive welding training at a lower cost than possible with other welding training systems.

FIG. 2 is block diagram of another embodiment of the welding training system 10. In this embodiment, the training torch 12, the processing device 22, and the display 26 communicate via wireless interfaces 36, 38, and 40. As may be appreciated, in certain embodiments, the welding training system 10 may communicate via a combination of wired and wireless interfaces. Furthermore, in some embodiments, the training torch 12 may provide data to the processing device 22 using a universal serial bus (USB) interface. As illustrated, a virtual workpiece 42 may be used in place of the training workpiece 14. Accordingly, the optical sensor 18 of the training torch 12 may detect image data directly from the display 26. In certain embodiments, the image data may correspond to a location of the training torch 12 relative to the virtual workpiece 42 and/or the display 26. Using the virtual workpiece 42, a welding operator may perform virtual welds on the display 26 by placing the optical sensor 18 of the training torch 12 near the virtual workpiece 42. In certain embodiments, the display 26 may be configured for three-dimensional viewing. In such an embodiment, the welding operator may wear three-dimensional glasses while performing welding training operations. It should be noted that the wireless interfaces 36, 38, and 40 and/or the virtual workpiece 42 may enable welding training to be performed with less interference from cables and other training devices.

FIG. 3 is a side view of an embodiment of a training torch 12 configured to be used in the welding training system 10 of FIG. 1. As previously discussed, the training torch 12 is configured to detect image data using the optical sensor 18. In the present embodiment, the training torch 12 includes a handle 44, a neck 46, and a nozzle 48. Furthermore, the handle 44 includes a trigger 50 for initiating a training welding operation. As illustrated, the handle 44 is coupled to the nozzle 48 via the neck 46. The optical sensor 18 may extend out of a tip 52 of the nozzle 48. Moreover, the optical sensor 18 may include one or more lenses 54 (e.g., adjustable lenses) to change the focal point of the optical sensor 18 (e.g., to obtain clear and focused image data). In certain embodiments, the optical sensor 18 may be configured to alter the focus of the one or more lenses 54 based on a distance between the optical sensor 18 and the training workpiece 14, and/or a distance between the optical sensor 18 and the virtual workpiece 42. Furthermore, the one or more lenses 54 may include a multi-surface lens (e.g., diamond shaped).

The training torch 12 also includes an optical emitter 56 configured to produce emissions. In certain embodiments, the emissions from the optical emitter 56 may reflect off of the training workpiece 14 and/or the virtual workpiece 42. As may be appreciated, the reflected emissions may be detected by the optical sensor 18 of the training torch 12. Moreover, in the illustrated embodiment, the training torch 12 includes a magnetic sensor 58, while in other embodiments, the training torch 12 may not include the magnetic sensor 58. The magnetic sensor 58 may be used in a welding training system 10 having corresponding magnetic devices to be detected by the magnetic sensor 58 (e.g., for determining the position of the training torch 12. For example, in certain embodiments, the training workpiece 14 may produce a magnetic field and the magnetic sensor 58 may be configured to detect the magnetic field of the training workpiece 14. Furthermore, the training torch 12 may include an orientation sensor 60 (e.g., gyroscope) to detect orientation data of the training torch 12 and to provide the orientation data to the processing device 22. It should be noted that in certain embodiments, the training torch 12 may include an electromagnetic sensor, a radio frequency (RF) sensor, and/or any other suitable sensor to aid in determining a position and/or an orientation of the training torch 12 relative to a workpiece (e.g., the training workpiece 14, the virtual workpiece 42).

FIG. 4 is a perspective view of an embodiment of the training workpiece 14 that may be used with the training system 10. The training workpiece 14 includes the substantially transparent weld joint 16, as illustrated. Furthermore, the training workpiece 14 includes a vertical portion 62 and a horizontal portion 64. Moreover, the weld joint 16 is positioned at the intersection of the vertical potion 62 and the horizontal portion 64. In the present embodiment, the weld joint 16 includes a pattern 66 (e.g., shapes, dots, curves, numbers, letters, etc.) configured to be detected by the optical sensor 18 of the training torch 12. For example, the substantially transparent weld joint 16 may include a pattern 66 such that the optical sensor 18 may determine what portion of the training workpiece 14 is being detected based on the detected image data of the pattern 66. The pattern 66 may be imbedded within the weld joint 16 and/or may provide external texture to the weld joint 16.

As may be appreciated, using the systems, devices, and techniques described herein, a low cost welding training system 10 may be provided for training welding operators. The welding training system 10 may allow a greater number of welding operators to be trained and may provide the welding operators with a greater amount of time to use the welding training system 10 (e.g., due to its low cost). Furthermore, as described above, welding operators may receive feedback (e.g., torch angle, travel speed, etc.) while operating the welding training system 10 to improve welding techniques.

While only certain features of the invention have been illustrated and described herein, many modifications and changes will occur to those skilled in the art. It is, therefore, to be understood that the appended claims are intended to cover all such modifications and changes as fall within the true spirit of the invention.

Albrecht, Bruce Patrick

Patent Priority Assignee Title
Patent Priority Assignee Title
2333192,
3867769,
4028522, Apr 29 1975 Martin Marietta Corporation Multi-mode structural weld monitor on a time base
4041615, Aug 03 1976 Small-motion test device
4044377, Apr 28 1976 GTE Laboratories Incorporated Video target locator
4124944, Jul 08 1977 NLC, INC Device for teaching and evaluating a person's skill as a welder
4132014, Jun 20 1977 Welding simulator spot designator system
4144766, May 02 1977 The Babcock & Wilcox Company Apparatus for the in-situ detection and location of flaws in welds
4396945, Aug 19 1981 Solid Photography Inc. Method of sensing the position and orientation of elements in space
4452589, Aug 14 1981 DENISON, JOHN S Arc welding simulator
4591689, Feb 25 1985 CATERPILLAR INC , A CORP OF DE Adaptive welding guidance apparatus
4595368, Jul 29 1985 Instructional apparatus for underwater welding
4595820, Oct 22 1982 The Ohio State University Apparatus and methods for controlling a welding process
4609806, Sep 23 1985 General Electric Company Method and apparatus for determining weld quality in percussion welding
4628176, Sep 19 1984 Kabushiki Kaisha Tetrak Apparatus for setting schedules of a resistance welding machine
4680014, Nov 26 1985 INSTITUTE PROBLEM MODELIROVANIA V ENERGETIKE A Welder's trainer
4689021, Oct 14 1986 INSTITUTE PROBLEM MODELIROVANIYA V ENERGETIKE AN UKR SSR, Spark trainer for welders
4716273, Dec 30 1985 INSTITUTE PROBLEM MODELIROVANIA V ENERGETIKE Electric-arc trainer for welders
4721947, Mar 19 1985 The Welding Institute Welding monitor
4728768, Jun 19 1987 General Electric Company Percussion weld monitoring
4739404, Oct 22 1982 The Ohio State University Apparatus and methods for controlling a welding process
4867685, Sep 24 1987 TRUSTEES OF THE COLLEGE OF AERONAUTICS, 23RD AVENUE AND 86TH STREET, JACKSON HEIGHTS, QUEENS, NEW YORK 11367, A CORP OF NY Audio visual instructional system
4868649, Jun 01 1987 FRAMATOME, TOUR FIAT-1 PLACE DE LA COUPOLE, 92400 COURBEVOIE FRANCE FRENCH BODY CORPORATE Apparatus for the televisual monitoring of an arc welding operation
4881678, Jan 20 1987 FRAMATOME, TOUR FIAT, A FRENCH BODY CORPORATE Process for the remote-controlled semi-automatic welding of two rotationally symmetrical components
4931018, Dec 21 1987 NLC, INC Device for training welders
4937427, Mar 23 1989 NOGEO ASSOCIATES LTD , 33 NORWICH STR , EAST, GUELPH, ONTARIO N1H 2G7, A CORP OF ONTARIO Apparatus and method for automatically welding a T-junction connector to a main pipe
4943702, Jan 06 1983 The Ohio State University Apparatus and methods for controlling a welding process
4996409, Aug 25 1989 INSTITUT PROBLEM MODELIROVANIYA V ENERGETIKE, USSR, KIEV Arc-welding monitor
5061841, Oct 22 1982 The Ohio State University Apparatus and methods for controlling a welding process
5185561, Jul 23 1991 IMMERSION CORPORATION DELAWARE CORPORATION Torque motor as a tactile feedback device in a computer system
5211564, Jul 19 1989 Educational Testing Service Computerized figural response testing system and method
5283418, Feb 27 1992 Siemens Westinghouse Power Corporation Automated rotor welding processes using neural networks
5304774, May 17 1993 Caterpillar, Inc. Method and apparatus for monitoring weld quality
5320538, Sep 23 1992 L-3 Communications Corporation Interactive aircraft training system and method
5343011, Jul 31 1992 MATSUSHITA ELECTRIC INDUSTRIAL CO , LTD Resistance welding monitor
5380978, Jul 12 1991 Method and apparatus for assembly of car bodies and other 3-dimensional objects
5397872, Dec 13 1993 PAR INDUSTRIES INC Weld monitor system
5426732, Apr 17 1992 International Business Machines Corporation Method and apparatus for user control by deriving next states of a process from a current state and by providing a visual presentation of the derived next states
5464957, Jan 27 1993 McDermott Technology, Inc Manual arc welding speed pacer
5514846, May 29 1991 Automatic welder control system
5517420, Oct 22 1993 POWERLASERS, LTD Method and apparatus for real-time control of laser processing of materials
5521843, Jan 30 1992 Fujitsu Limited System for and method of recognizing and tracking target mark
5617335, Jan 30 1992 Fujitsu Limited System for and method of recognizating and tracking target mark
5659479, Oct 22 1993 Powerlasers Ltd. Method and apparatus for real-time control of laser processing of materials
5674415, Jan 22 1996 U Chicago Argonne LLC Method and apparatus for real time weld monitoring
5675229, Sep 21 1994 ABB ROBOTICS, INC Apparatus and method for adjusting robot positioning
5681490, Sep 18 1995 ALLOY BELLOWS & PRECISION WELDING, INC Laser weld quality monitoring system
5708253, Jun 07 1995 P2S, LLC Apparatus and method for computerized interactive control, measurement and documentation of arc welding
5747042, Sep 26 1996 Method for producing carbon dioxide, fungicidal compounds and thermal energy
5823785, Oct 27 1997 Simulator for pipe welding
5832139, Jul 31 1996 Omniplanar, Inc.; Omniplanar, Inc Method and apparatus for determining degrees of freedom of a camera
5856844, Sep 19 1996 Omniplanar, Inc Method and apparatus for determining position and orientation
5999909, May 19 1992 COGNIZANT TRIZETTO SOFTWARE GROUP, INC Methods for establishing certifiable informed consent for a procedure
6018729, Sep 17 1997 Lockheed Martin Energy Research Corporation Neural network control of spot welding
6226395, Apr 22 1996 Method and apparatus for determining the configuration of a workpiece
6242711, Dec 27 1999 Illinois Tool Works Inc Arc welding monitoring system
6290740, Sep 15 1999 DUALDRAW, A LIMITED LIABILITY COMPANY Large size clean air workstation
6329635, Oct 30 1998 U Chicago Argonne LLC Methods for weld monitoring and laser heat treatment monitoring
6371765, Nov 09 1999 Verizon Patent and Licensing Inc Interactive computer-based training system and method
6516300, May 19 1992 COGNIZANT TRIZETTO SOFTWARE GROUP, INC Computer accessible methods for establishing certifiable informed consent for a procedure
6572379, May 03 2001 Lincoln Global, Inc. Self instruction welding kit
6583386, Dec 14 2000 Illinois Tool Works Inc Method and system for weld monitoring and tracking
6614002, Dec 04 2000 Precitec KG Laser machining head
6697761, Sep 19 2000 Olympus Corporation Three-dimensional position/orientation sensing apparatus, information presenting system, and model error detecting system
6710298, Feb 11 2000 Device for metal welding
6728582, Dec 15 2000 Cognex Corporation System and method for determining the position of an object in three dimensions using a machine vision system with two cameras
6768974, Nov 12 1999 Caterpillar Inc Method for determining a model for a welding simulation and model thereof
6839049, Nov 17 2000 Intel Corporation Physically interacting with a processor-based display
6927360, Apr 05 2000 Fronius International GmbH Method for continuously regulating or tracking a position of a welding torch or a welding head
6937329, Jul 06 2000 Aerospatiale Matra CCR Method for detecting and identifying defects in a laser beam weld seam
6977357, Jul 09 2003 Lincoln Global, Inc. Welding wire positioning system
7132623, Mar 27 2002 PRAXAIR TECHNOLOGY, INC Luminescence sensing system for welding
7181413, Apr 18 2001 CAPITAL ANALYTICS, INC Performance-based training assessment
7474760, Apr 21 2000 Trimble AB Contactless measuring of position and orientation
7564005, Feb 06 2003 Doben Limited Resistance welding fastener electrode and monitor and method of using same
7574172, Sep 25 2001 Lincoln Global System and method to facilitate wireless wide area communication in a welding environment
7698094, Nov 06 2006 Canon Kabushiki Kaisha Position and orientation measurement method and apparatus
7789811, Jan 24 2008 Method and apparatus for a mobile training device for simultaneous use by multiple users
7831098, Nov 07 2006 VISUAL MATHEMATICS, LLC System and method for visual searching of objects using lines
7839416, Mar 10 2006 University of Northern Iowa Research Foundation Virtual coatings application system
7845560, Dec 14 2004 SHENZHEN INVENTION DISCOVERY CO , LTD Method and apparatus for determining position and rotational orientation of an object
8019144, Feb 25 2008 Kioxia Corporation Pattern image correcting apparatus, pattern inspection apparatus, and pattern image correcting method
20020114653,
20020153354,
20030172032,
20040069754,
20050006363,
20050127052,
20050135682,
20050197115,
20060136183,
20060173619,
20070188606,
20070278196,
20080038702,
20090005728,
20090057286,
20090109128,
20090161212,
20090173726,
20090230107,
20090231423,
20090249606,
20090298024,
20100048273,
20100062405,
20100062406,
20100201803,
20100207620,
20100224610,
20110000892,
20110006047,
20110091846,
20110114615,
20110117527,
20110183304,
20110290765,
20120189993,
20130189656,
20130189658,
CA2311685,
CA2517874,
CA2549553,
CA2554498,
D614217, Jul 10 2009 Lincoln Global, Inc Simulator welding coupon stand
D615573, Jul 10 2009 Lincoln Global, Inc Welding electrode holder
D631074, Jul 10 2009 Lincoln Global, Inc Welding simulator console
EP19491471,
EP37887296,
EP57915803,
EP1029306,
KR100876425,
SU1354234,
SU1489933,
SU1638145,
WO2004057554,
WO2006034571,
WO2009053829,
WO2009060231,
WO2009092944,
WO2010000003,
WO2010020867,
WO2010020870,
/
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