PIVOTING AXLE WHEELED MOBILE GANTRY
20170081155 ยท 2017-03-23
Assignee
Inventors
Cpc classification
B66C9/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A mobile gantry for transporting heavy loads includes first, second, and third booms which are supported on the ground by respective wheel sets. The booms are spaced from one another so to present a generally triangular configuration when viewed from above. First, second, and third lift legs telescope to extend and retract the booms, and the lift legs are interconnected to one another and can raise and lower a load. The load can be maintained level by individually adjusting the length of each boom by extending and retracting the lift legs. A pivot axle, attached to each one of the wheel sets, allows each of the wheel sets to pivot about an axis that is at least generally parallel to the ground, thus maintaining a uniform load while the mobile gantry encounters changes in slope or other surface irregularities.
Claims
1. A mobile gantry comprising: a first boom having a first, lower end and a second, upper end opposite the first end; a first wheel supporting the first end of the first boom on the ground; a second boom having a first end and a second end opposite the first end; a second wheel set supporting the second boom on the ground; a third boom having a first end and a second end opposite the first end; a third wheel set supporting the third boom on the ground, wherein the first, second and third booms are offset from one another so as to present a triangular configuration when viewed from above with the third boom being spaced longitudinally from and positioned laterally between the first and second booms; a pivot axle attached to each one of the wheel sets and configured to allow each of the wheel sets to pivot about an axis that extends transversely of the mobile gantry and at least generally parallel to the ground.
2. The mobile gantry according to claim 1, further comprising: a first lift leg attached to the first boom; a second lift leg attached to the second boom; a third lift leg attached to the third boom; and beams interconnecting the first, second, and third lift legs; wherein the first, second, and third lift legs are configured to telescope from a respective end of the first, second, and third booms when in an extended position, and to retract within the respective first, second, and third boom when in a retracted position.
3. The mobile gantry according to claim 2, further comprising a hydraulic cylinder connected to each one of the first, second, and third lift legs and configured to individually and independently extend and retract each one of the lift legs.
4. The mobile gantry according to claim 3, further comprising: a load rigging configured to suspend a load from the first, second, and third beams, and wherein the pivot axles and hydraulic cylinders are configured to independently move such that the load can be maintained horizontally level as the mobile gantry traverses service irregularities.
5. The mobile gantry according to claim 3, further comprising: a load rigging configured to suspend a load from the first, second, and third beams; and wherein the pivot axles and hydraulic cylinders are configured to work together to accommodate a change in both pitch and yaw in the non-planar ground such that the load is maintained horizontally level.
6. The mobile gantry according to claim 2, wherein said first, second, and third lift legs are controllable to extend and retract independently of one another such that the first, second, and third beams may be maintained horizontally level while the mobile gantry traverses over a sloping ground.
7. The mobile gantry according to claim 1, wherein the pivot axles are configured to maintain the first, second, and third booms in a vertical orientation while the mobile gantry traverses over a sloping ground.
8. The mobile gantry according to claim 1, wherein the pivot axle for each one of the wheel sets is located one of above and below a rotational axis of the wheels of the respective wheel set.
9. The mobile gantry according to claim 1, wherein the first and second booms are longitudinally offset from the third boom and the third boom is located laterally between the first and second booms, thereby forming a triangular configuration of the first, second, and third booms when viewed from above.
10. A method of operating a pivoting axle wheeled mobile gantry comprising the steps of: suspending a load from first, second, and third boom of interconnected booms of the gantry, wherein each the first, second, and third booms are supported on the ground by first, second, and third wheel sets, respectively, wherein the first, second, and third booms are offset from one another so as to present a triangular configuration when viewed from above with the third boom being spaced longitudinally from and positioned laterally between the first and second booms; transitioning the gantry from a first ground surface to a second ground surface, wherein a slope of the first ground surface is different than a slope of the second ground surface; and pivoting each wheel set about a respective at least generally horizontal pivot axis while that wheel set about a generally horizontal pivot axis that transitions from the first ground surface to the second ground surface.
11. The method according to claim 10, wherein the pivoting step comprises pivoting each one of the wheel sets independently about a respective pivot axis that extends transversely of the gantry and at least generally in parallel with the ground surface that is being traversed at that moment.
12. The method according to claim 10, further comprising, as the gantry traverses a slope, adjusting the length of at least one of the first, second, and third booms when compared to at least one other of the first, second and third booms so as to maintain the load in a horizontal position.
13. The method according to claim 12, wherein the adjusting is controlled manually.
14. The method according to claim 12, wherein the adjusting is controlled automatically using load inclination or slope as a feedback.
15. The method according to claim 10, further comprising maintaining the first, second, and third booms in a vertical orientation while each one of the wheel sets traverses over a sloping ground.
16. The method according to claim 10, further comprising: driving the gantry across a level ground and onto a sloped ground; pivoting the first, second, and third wheel sets about their respective axes as each wheel set transitions to the sloped ground, thus maintaining a generally consistent contact of the first, second, and third wheel set with the sloped ground; adjusting the length of at least one of the first, second, and third booms when compared to at least one other of the first, second and third booms so as to maintain the load in a horizontal position.
17. A mobile gantry comprising: a first boom having a first end and a second end opposite the first end; a first wheel set attached to the first end of the first boom; a second boom having a first end and a second end opposite the first end; a second wheel set attached to the first end of the second boom; a third boom having a first end and a second end opposite the first end, wherein the first and second booms are longitudinally offset from the third boom and the third boom is located laterally between the first and second booms so as to present a generally isosceles triangular configuration when viewed from above; a third wheel set attached to the first end of the third boom; a first beam joining each one of the first and second booms; a second beam joining the second and third booms; a first lift leg attached to the first boom; a second lift leg attached to the second boom; a third lift leg attached to the third boom; wherein the first, second, and third lift legs are configured to telescope from a respective end of the first, second, and third booms when in an extended position and to retract within the respective first, second, and third booms when in a retracted position, and wherein the first, second, and third lift legs are controllable to extend and retract independently of one another such that the first, second, and third beams may be configured to be maintained horizontally level while the mobile gantry traverses over a sloping ground; a pivot axle attached to each one of the wheel sets configured to allow the wheel sets to pivot about an axis that extends transversely of the mobile gantry and that extends at least generally parallel to the ground; a load beam joining the first and second beams; and a load rigging suspended from the load beam and configured to suspend a load when the lift legs are in an extended position.
18. The mobile gantry according to claim 17, wherein the pivot axle for each one of the wheel sets is located one of above and below a rotational axis of the wheels.
19. The mobile gantry according to claim 18, further comprising an operator platform with a power source and operator controls configured to control the mobile gantry.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Preferred exemplary embodiments of the invention are illustrated in the accompanying drawings in which like reference numerals represent like parts throughout, and in which:
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
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[0026]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0027]
[0028] Referring now to
[0029] The first lift leg 54, second lift leg 56, and third lift leg 58 are all joined together by a first beam 24, a second beam 26, and a third beam 28. Each one of the beams is attached to the tops of two lift legs to form a generally triangular configuration. The first and second beams 24 and 26 each have a rear end attached to the lift leg 54 and a front end attached to a respective one of the lift legs 56 and 58. Each of these beams 24 and 26 includes a rear section that is inclined outwardly and forwardly from the lift leg 54 to the outer edge of the machine, and a front section that extends longitudinally from the rear section to the associated lift leg 56 or 58. A load beam 90 spans the beams 24 and 26 at the rear end of the front end section thereof, for attachment to a load 74. The load 74 may, for example, be a spent nuclear rod storage cask weighing in excess of 100 tons.
[0030] Typically, 20 to 40 fuel rod bundles weighing over ten tons are stored in a cask. The casks can each weigh over one hundred tons and be as large as ten feet wide and twenty feet tall. As a result, the load 74 is massive and requires a large, substantial mobile gantry for material handling.
[0031] The mobile gantry 10 is configured to transport such a load 74 in the form of a nuclear fuel rod cask or a structure of a similar size and mass. The load may be transported by driving the mobile gantry 10 such that the third beam passes over the load 74, and the mobile gantry is stopped with the load beam 90 directly over the load 74. The load rigging 72 may be attached to the load 74. After the load 74 is attached to the load rigging 72, the first lift leg 54, second lift leg 56, and third lift leg 58 may be extended in unison to raise the load 74 off the ground. Once the load 74 is off the ground, the mobile gantry 10 may be driven to transport the load.
[0032] The mobile gantry 10 is controlled from an operator platform 76 at a rear side 94 of the mobile gantry 10. Located on platform 76 are controls 80 and a power source 78. Preferably, the power source 78 is a diesel engine, but any other power source may be used. The operator controls 80 may be manually operated and take the form of, for example, any or all of touch screen controls, analog joysticks/levers, or even remotely controlled. Other controls are provided for operating the lift legs and other components of the mobile gantry 10.
[0033] The mobile gantry 10 may be moved by rolling on wheel sets. A first wheel set 18 supports the first boom 12, a second wheel set 20 supports the second boom 14, and a third wheel set 22 supports the third boom 16. One or more of the wheel sets may independently pivot about a vertical axis to allow the mobile gantry 10 to be steered in any direction. For example, only the center wheel set 18 could pivot, such as is typically the case with a tricycle. Alternatively, each of three wheel sets 18, 20, and 22 could pivot about a respective vertical axis. Each of the wheel sets also is configured to independently pivot about a horizontal axis (assuming the gantry is on a horizontal surface) allowing the mobile gantry 10 to accommodate changes in inclination without overloading a single wheel set. The pivoting action of the wheel sets is not only made possible by the pivot axle 46, but also because there is at least one wheel in front of and behind the pivot axle 46. By having wheels both in front and behind the pivot axle 46 on each wheel set, a uniform load can be distributed on both ends of the wheel set. Each wheel rotates about an axle. Two or more wheels be mounted on each axle, as can appreciated by
[0034] Referring now to
[0035] The pivot axles 46 ensure that the wheel sets maintain a generally uniform load on all wheels as the mobile gantry 10 encounters a change in slope, such as when it transitions from a level ground 30 to a sloping ground 52, as seen in
[0036] In order to maintain the load 74 in a level position despite the fact that the gantry crane 10 is transitioning to or travelling along a slope, each one of the lift legs may be operated independently of the other lift legs to maintain the beams 24, 26, 28, and 90 in a common horizontal plane. The independent adjustment of the lift legs may accommodate an additional 5 of slope, thus permitting a total change in slope in the fore and aft direction of up to 10.
[0037] The operator may control the mobile gantry 10 from the operator's platform to maintain the load 74 horizontally level. Maintaining the load level also will help balance the distribution of weight of the load 74 evenly on all booms.
[0038] Referring now to
[0039]
[0040] Referring now to
[0041] As the mobile gantry 10 transitions from the peak of a slope, the pivot axles 46 of the wheel sets on the front side 92 can pivot about the one horizontal pivot point, while the pivot axle 46 on the rear side 94 can also pivot to allow differential movement. This allows the mobile gantry 10 to traverse over the peak of a slope all while maintaining the entire contact path of the wheel sets on the ground at all times, thus maintaining a uniform load on each one of the wheel sets.
[0042]
[0043]
[0044] Controlling the extension and retraction of the lift legs could be performed manually by an operator using the operator controls. Alternative embodiments may use automation to allow the mobile gantry 10 to self-adjust. For example, an inclinometer may be used to detect an out-of-level condition for the load 74 and/or for each of the booms. The resulting signals may then be used as feedback to control the lift legs and level out booms and beams.
[0045] Although the best mode contemplated by the inventors of carrying out the present invention is disclosed above, practice of the present invention is not limited thereto. It will be manifest that various additions, modifications, and rearrangements of the aspects and features of the present invention may be made in addition to those described above without deviating from the spirit and scope of the underlying inventive concept.
[0046] It is appreciated that many changes and modifications could be made to the invention without departing from the spirit thereof. Some of these changes will become apparent from the appended claims. It is intended that all such changes and/or modifications be incorporated in the appending claims.