ROLLER FOR INTERNAL PIPE WELDER
20170341189 · 2017-11-30
Inventors
- Gustavo Garza (Houston, TX, US)
- John Pearson (Houston, TX, US)
- Allen Noble (Houston, TX, US)
- Joseph Tullis (Houston, TX, US)
- David Dietlin (Tulsa, OK, US)
- Tony Massey (Tulsa, OK, US)
- Donald Kramp (Tulsa, OK, US)
- Leslie Atwell (Tulsa, OK, US)
- Travis Sapp (Tulsa, OK, US)
- Brian Fulton (Tulsa, OK, US)
- Paul Matthews (Tulsa, OK, US)
- Eric Pameticky (Tulsa, OK, US)
- Dennis Kinney (Tulsa, OK, US)
- David Robb (Tulsa, OK, US)
Cpc classification
B23K37/0282
PERFORMING OPERATIONS; TRANSPORTING
F16L55/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L2101/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E21B29/005
FIXED CONSTRUCTIONS
International classification
B23K37/02
PERFORMING OPERATIONS; TRANSPORTING
B23K31/12
PERFORMING OPERATIONS; TRANSPORTING
F16M11/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Disclosed herein is a rotational roller apparatus for use with a pipeline unit. The pipeline unit is received in a pipeline for welding and/or inspection. The rotational roller is attached to and is able to support at least a portion of the weight of the pipeline unit. The rotational roller unit also includes an extension member and a reduced friction base. The reduced friction base is attached to an end of the extension member so that the rotational roller has a retracted and an extended configuration. In the extended configuration, the reduced friction base contacts an interior of the pipeline and supports at least a portion of the weight of the pipeline unit and thereby allows the unit to be rotated about a longitudinal axis within the pipeline.
Claims
1. A rotational system for rotationally positioning a pipeline unit within a pipeline by reducing a frictional resistance between a pipeline unit and a pipeline within which the pipeline unit is supported, the pipeline unit including a main frame to which its components are secured, the roller system comprising: a low friction member; a extension member including a first portion connected to the main frame and a second portion connected to the low friction member; wherein the first portion selectively extends relative to the second portion to cause at least a portion of the weight of the pipeline unit to be borne by the low friction member; and wherein during rotational positioning, the pipeline unit rotates about a longitudinal axis of the pipeline.
2. The roller system of claim 1, wherein the low friction member is a wheel.
3. The roller system of claim 1, wherein the extension member includes a hydraulic or pneumatic piston and a cylinder.
4. The roller system of claim 1, wherein the wheel frame includes two frame plates positioned on either side longitudinally of the wheel.
5. The roller system of claim 4, wherein a wheel is a plurality of wheels supported by the two frame plates and the plurality of wheels form an arcuate positioning to conform with a pipeline interior.
5. The roller system of claim 1, wherein during rotational positioning, the low friction member travels along a curved interior surface path of the pipeline.
6. The roller system of claim 5, wherein a wheel is a plurality of wheels.
7. The roller system of claim 2, wherein the wheel includes a rotational axis, the axis being generally parallel to a longitudinal center line of the unit.
8. In combination, a pipeline unit and a roller system for supporting the rotational repositioning of the pipeline unit against the weight of the pipeline unit, the pipeline unit including a main frame to which its components are secured, the combination comprising: a pipeline unit; a roller system including: a wheel including an rotational axis, the axis being generally parallel to a longitudinal center line of the unit; a wheel frame supporting the wheel and allowing the wheel to rotate about the axis; a extension member including a first portion connected to the wheel frame and a second member connected to the main frame; wherein the first portion selectively extends relative to the second portion to cause at least a portion of the weight of the pipeline unit to be borne by the wheel.
9. The roller system of claim 8, wherein the extension member includes a piston and a cylinder.
10. The roller system of claim 9, wherein the wheel frame includes two frame plates positioned on either side longitudinally of the wheel.
11. The roller system of claim 10, wherein a wheel is a plurality of wheels supported by the two frame plates.
12. The roller system of claim 11, wherein the plurality of wheels form an arcuate positioning to conform with a pipeline interior.
13. The roller system of claim 11, wherein a wheel is a plurality of wheels.
14. The roller system of claim 9, wherein the extension member is hydraulically or pneumatically driven.
15. The roller system of claim 8, further including a fluid supply and a fluid controller for selectively delivering fluid from the fluid supply to the extension member.
16. The system of claim 2, wherein the extension member is screw driven.
17. The combination of claim 8, wherein the pipeline unit is one of an inspection unit, a welding unit, and a welding and inspection unit.
18. A method of rotationally repositioning a pipeline unit comprising the steps of: providing a roller system for supporting the rotational repositioning of a pipeline unit against the weight of the pipeline unit, the pipeline unit including a main frame to which its components are secured; providing a wheel including an rotational axis, the axis being generally parallel to a longitudinal center line of the unit; providing a wheel frame supporting the wheel and allowing the wheel to rotate about the axis; providing a extension member including a first portion connected to the main frame and a second portion connected to the wheel frame; selectively extending the first portion relative to the second portion to cause at least a portion of the weight of the pipeline unit to be borne by the wheel; applying a rotational force to the pipeline unit until the pipeline unit rotates about the longitudinal centerline.
19. The method of claim 18, further providing the step of providing an opening in the pipeline unit, securing a first end of the elongate member in the opening so that the elongate member extends radially from the pipeline unit, and applying a force to the elongated member to rotate the pipeline unit about the longitudinal centerline.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0004] The present invention in its several aspects and embodiments solves the problems discussed above and significantly advances the technology of pipeline inspection and welding. The present invention can become more fully understood from the detailed description and the accompanying drawings, wherein:
[0005]
[0006]
[0007]
[0008]
[0009]
[0010]
[0011] Throughout this specification and figures like reference numbers identify like elements.
DETAILED DESCRIPTION OF THE INVENTION
[0012] Disclosed herein is a rotational roller system for transferring a portion of the weight of a pipeline unit to a selectively retractable reduced friction member to reduce the energy necessary to rotate the pipeline unit within a pipeline when the reduced friction member is in contact with the pipeline interior.
[0013]
[0014]
[0015]
[0016] Main frame structure 100 includes main frame support members 130A-D. Members 130 include beam side walls 130A, lateral beam connectors 130B, a reaction force beam 130C, and bottom beam member 130D. Side walls 130A support angle support members 120A and 120B to which upper ends of springs 72A and 72B are connected and through which those springs 72A, 72B transfer their retracting forces to wheel frame 70.
[0017]
[0018]
[0019] Reaction force beam 130D provides the reaction force which transfers the load of pipeline unit 10 to rotational roller system 68. Specifically, since reaction force beam 130D is a part of main frame structure 100, when extending member 74 extends, load/weight is transferred from beam 130D of pipeline unit 10 to first portion or cylinder 104 then to piston or second portion 106 then to wheel frame 70 and then to an interior surface of pipeline 200.
[0020] When extending member 74 is actuated via a pneumatic mechanism, an operator simply operates a manual valve that supplies working fluid (e.g., air or another gas) to the system. Specifically, a valved gas/air supply line may supply gas between air tank 65 and the first cylinder portion 104 of the rotational roller system. An operator controls a valve so that gas introduced into cylinder 104 forces piston 106 radially outward toward a pipe interior surface until wheel frame 70 is in contact with the pipe interior surface. Piston 106 extends after contact with the pipe interior surface bearing the load of pipeline unit 10 until pipeline unit 10 is raised about ¼ to about ½ inches off the pipe interior surface. In the off or retract configuration, air pressure from air tank 65 is stopped and the air pressure in the cylinder 104 is allowed to vent to the atmosphere. Biasing members or springs 72 may then return wheel frame 70 to its retracted position. Alternatively, air pressure may also be used to forcibly retract the system.
[0021] When one roller system is used, longitudinal positioning of the roller system 68 on the pipeline unit 10 can be such that the roller system is at or near the center of gravity of pipeline unit 10. That single roller system 68 would then function as fulcrum so that when pipeline unit 10 is balanced on that fulcrum most, if not all, of the weight of pipeline unit 10 is borne by roller system 68. Positioning of the roller system near or in proximity to wheels 60 can also be beneficial as such positioning has the potential to minimize the load borne by wheels 60. As such, less load on wheels 60 means less friction via wheels 60 on pipeline interior to overcome while rotating pipeline unit 10 about the longitudinal axis. As also shown in
[0022] While embodiments have been disclosed here, other related innovative ideas are also contemplated therein. For example, one or multiple rotational roller systems 68 may be used for load transfer. These roller systems 68 may be positioned at various longitudinal position(s) along the length of the pipeline unit 10. Instead of pistons a screw type or other type of linear actuator may be utilized. Furthermore, power for energizing these various types of linear actuators may include AC or DC (e.g., batteries) electric power and electric motors for generating the necessary lifting forces.
[0023] The scope of this disclosure is to be broadly construed. It is intended that this disclosure disclose equivalents, means, systems and methods to achieve the devices, activities and mechanical actions disclosed herein. For each mechanical element, or mechanism, or method, or process disclosed, it is intended that this disclosure also encompass in its disclosure and teaches equivalents, means, systems and methods for practicing the many aspects, mechanisms and devices disclosed herein. Additionally, this disclosure regards a near-weld purge rig and its many aspects, features and elements. Such a near-weld purge rig can be dynamic in its use and operation, this disclosure is intended to encompass the equivalents, means, systems and methods of the use of the tool and its many aspects consistent with the description and spirit of the operations and functions disclosed herein. The claims of this application are likewise to be broadly construed.
[0024] The description of the inventions herein in their many embodiments is merely exemplary in nature and, thus, variations that do not depart from the gist of the invention are intended to be within the scope of the invention. Such variations are not to be regarded as a departure from the spirit and scope of the invention.