Hydrodemolition system
10781563 ยท 2020-09-22
Assignee
Inventors
- Gerard J. MacNeil (Surrey, CA)
- Jesse MacNeil (Surrey, CA)
- Brett MacNeil (Surrey, CA)
- Gordon MacNeil (Surrey, CA)
- Vernon Bose (Surrey, CA)
Cpc classification
International classification
Abstract
A hydrodemolition rig for an inclined surface comprises a frame, a carriage, and a plurality of wheel assemblies. The wheel assemblies are spaced from one another about the frame, with at least two of the wheel assemblies comprising a wheel and a hydraulic assembly for selectively adjusting the spacing between the wheel and the frame. The carriage is configured to reciprocate within the frame and to carry one or more nozzles for delivering water for hydrodemolition.
Claims
1. A hydrodemolition rig for an inclined surface comprising: a frame; a carriage configured to reciprocate within the frame and to carry one or more nozzles for delivering water to hydrodemolish the surface underlying the frame; and a plurality of wheel assemblies spaced from one another about the frame for supporting the frame on the surface, at least two of the wheel assemblies comprising: a wheel; and a hydraulic assembly for selectively adjusting a spacing between the wheel and the frame, wherein each hydraulic assembly adjusts the spacing between the respective wheel and the frame independently of the other hydraulic assemblies.
2. The hydrodemolition rig of claim 1, wherein the wheel assemblies are located on a periphery of the frame.
3. The hydrodemolition rig of claim 1, wherein the frame comprises: a lower frame; an upper frame; and a track assembly between the lower frame and the upper frame.
4. The hydrodemolition rig of claim 3, wherein the lower frame comprises two spaced side members, wherein each of the hydraulic assemblies is connected to one of the side members.
5. The hydrodemolition rig of claim 4, wherein each of the hydraulic assemblies comprises: an axle attached to the respective wheel of the respective wheel assembly; an arm comprising first and second arm ends, wherein the arm is rotationally connected to the axle proximate to the first arm end, and wherein the arm is pivotably connected to the lower frame proximate to the second arm end; and a hydraulic cylinder comprising first and second cylinder ends, wherein the hydraulic cylinder is pivotably connected to the arm proximate to the first cylinder end, and wherein the hydraulic cylinder is pivotably connected to the lower frame proximate to the second cylinder end.
6. The hydrodemolition rig of claim 5, wherein the lower frame further comprises one or more brackets extending from the side members, and wherein each hydraulic cylinder is pivotably connected to the lower frame proximate to the respective second cylinder end at one of the brackets.
7. The hydrodemolition rig of claim 6, wherein each hydraulic cylinder is adapted to extend or retract independently of other hydraulic cylinders, thereby adjusting a spacing between the frame and the surface proximate to the location with respect to the respective wheel.
8. The hydrodemolition rig of claim 3, wherein the track assembly comprises at least two tracks connected to the lower frame and extending a width of the frame.
9. The hydrodemolition rig of claim 8 wherein the carriage is adapted to move along the tracks.
10. The hydrodemolition rig of claim 9, wherein the upper frame comprises a plurality of upper rollers and wherein the track assembly comprises a plurality of lower rollers.
11. The hydrodemolition rig of claim 10 further comprising a belt forming a closed loop extending around the upper rollers and the lower rollers.
12. The hydrodemolition rig of claim 11, wherein the belt is connected to the carriage.
13. The hydrodemolition rig of claim 3, wherein the upper frame comprises: a plurality of legs extending from one of the lower frame or the track assembly; and an upper platform supported by the legs.
14. The hydrodemolition rig of claim 1 further comprising one or more ballast tanks attached to the frame.
15. A hydrodemolition rig for an inclined surface comprising: one or more nozzle assemblies for delivering water for hydrodemolishing the inclined surface; and a plurality of wheel assemblies at various locations on a periphery of the hydrodemolition rig, wherein each of the wheel assemblies comprises: a wheel for travel along the inclined surface; and a hydraulic assembly connected to the wheel, wherein the hydraulic assembly is adapted to adjust a height of the hydrodemolition rig proximate to the respective location with respect to the wheel; wherein each of the hydraulic assemblies are configured to increase or decrease the height proximate to their respective locations independently of the other hydraulic assemblies.
16. The hydrodemolition rig of claim 15, wherein the one or more nozzle assemblies each comprise one or more nozzles.
17. A method of hydrodemolishing a surface of an inclined wall, the method comprising the steps of: providing on said inclined wall a hydrodemolition rig comprising a frame, at least one nozzle assembly and a plurality of wheel assemblies, each of said wheel assemblies comprising: a wheel; and a hydraulic assembly connected to the wheel and to a location on the frame, wherein the hydraulic assembly is adapted to adjust a height of the frame proximate to said location with respect to the wheel, directing said nozzle assembly to hydrodemolish a portion of said surface underlying said rig; moving said rig transversely about said wall to hydrodemolish a further portion of said surface, wherein said rig straddles a hydrodemolished portion of said surface and an undemolished portion of said surface yet to be treated; adjusting a tilt of the frame to orient the frame substantially parallel to said undemolished portion, by adjusting a height of said frame at at least one of said respective locations by means of said respective hydraulic assembly.
18. The method of claim 17, wherein the step of adjusting, for each of the hydraulic assemblies of the plurality of wheel assemblies, the heights at those respective locations comprises extending or retracting a hydraulic cylinder connected to the wheel and to the frame.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be described by reference to the detailed description of the preferred embodiment and to the drawings thereof in which:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(12) Referring to
(13) According to this embodiment, the trolley 20 will preferably be initially located proximate to one end of the staging platform 14. Using the cable winch system 16, the rig 100 may be moved up and/or down along the incline direction of the wall 12 (along direction A in
(14) After the rig 100 has completely hydrodemolishing the vertical section 22, the rig 100 may be moved transversely along the staging platform 14 (along direction B in
(15) Referring to
(16) Referring to
(17) The track assembly 110 comprises a pair of tracks 120, 122 that preferably extend for the width of the frame 102. The tracks 120, 122 are attached to the lower frame 106, with the track 120 preferably attached to the front cross member 116 and the track 122 preferably attached to a lower support member 128 on the lower frame 106. The tracks 120, 122 support a carriage 146 (see
(18) The upper frame 108 comprises legs 130 extending from either the track assembly 110 or the lower frame 106. The legs 130 support an upper platform 132 that is spaced above the track assembly 110. The upper platform 132 preferably comprises upper cross members 134 extending across a width of the rig 100 and upper support members 136 extending between the upper cross members 134.
(19) The carriage 146 is able to move along the tracks 120, 122 through carriage wheels 182. In doing so, the nozzle assemblies 124 can be moved along a width of the rig 100 to hydrodemolish the surface of the wall 12 underlying the rig 100. Preferably, each of the nozzle assemblies 124 comprises one or more nozzles 174 for directing water from the rig 100 towards the wall 12 for hydrodemolition. All of the nozzle assemblies 124 are connected to a hose 176 that delivers water from a water source to the nozzle assemblies 124. Once the water reaches the nozzle assemblies 124, the water is released from the nozzle assemblies 124 through the nozzles 174.
(20) The water from the nozzles 174 is released for hydrodemolition under pressure. As such, when the water impacts the surface of the wall 12, some of the water may splash back against the underside of the rig 100. In order to shield the interior of the rig 100 from any such splashes, a belt mechanism is preferably provided. Upper rollers 138 are provided on the upper platform 132, proximate to the ends of the upper cross members 134. Lower rollers 140 are similarly provided on the track assembly 110, proximate to the ends of the tracks 120, 122. The locations of the upper and lower rollers 138, 140 generally form the corners of a polygon, when viewed from the front of the rig 100. A belt 142 extends around the upper and lower rollers 138, 140, forming the perimeter of the polygon.
(21) The carriage 146 is preferably attached to the belt 142, such that movement of the carriage 146 along the tracks 120, 122 will cause movement of the belt 142. The belt 142 is able to shield at least a portion of the underside of the rig 100 from any water splashing back from the surface of the wall 12.
(22) Referring again to
(23) Through this arrangement, any extension or retraction of the hydraulic cylinder 160 will cause the arm 152 to pivot with respect to the side members 112, 114, which will in turn result in a general overall upward or downward displacement of the axle 150 and the wheel 105. This results in a tilting of the rig 100 in relation to the underlying surface of the wall 12.
(24) Referring again to
(25) If the rig 100 is not generally parallel to the overall incline of the wall 12, then the water discharged from the nozzles 174 may not impact the surface of the wall 12 at an optimal angle. This can be mitigated by adjusting the tilt of the rig 100 so that its frame remains substantially parallel to the surface of the wall 12 that has not yet been hydrodemolished. This can be achieved by selectively actuating the hydraulic cylinders 160 of the hydraulic assemblies 148 for the appropriate wheels.
(26) For example, in the arrangement shown in
(27) Referring to
(28) In the example above, this may require, for example, that the hydraulic cylinders 160 of the hydraulic assemblies 148 located on side member 112 be extended, thereby raising side member 112. Depending on the degree of tilt of the rig 100, this may also require that the hydraulic cylinders 160 of the hydraulic assemblies 148 located side member 114 be retracted, thereby lowering side member 114, as shown in
(29) The rig 100 may also comprise one or more ballast tanks 172 positioned at locations on the lower frame 106 in order to improve the overall stability of the rig 100 and to prevent the rig 100 from accidentally tipping over.
(30) It will be appreciated that other constructional details may also be varied as required to achieve the objects of the invention.