Frame mounted hydrodemolition system for treating large inclined wall surfaces
09982446 ยท 2018-05-29
Assignee
Inventors
- Gerard J. MacNeil (Surrey, CA)
- David B. MacNeil (Surrey, CA)
- Gordon MacNeil (Surrey, CA)
- Vernon Bose (Surrey, CA)
- Jesse MacNeil (Surrey, CA)
- Brett MacNeil (Surrey, CA)
Cpc classification
E04G3/30
FIXED CONSTRUCTIONS
International classification
Abstract
A steeply inclined surface is hydrodemolished by providing a staging platform and a rig that includes a base frame defining a planar footprint within the frame. The rig is suspended from the platform by a cable such that frame is coplanar with the surface and the incline of the surface causes the rig to lean against it. Rails are provided on the surface to restrain spurious lateral movement of the rig. The rig is positioned on the surface and nozzles mounted on a trolley within a travelling carriage on the frame travel in two dimensions to hydrodemolish the surface within the footprint. The rig is moved vertically along the rails and laterally along the platform to reposition the rig to work a new section of the surface in conjunction with other rails that are also mounted on the surface.
Claims
1. A method of treating the surface of a vertically inclined wall by hydrodemolition, comprising: providing a hydrodemolition apparatus having a frame extending in a plane and defining a rectangular footprint, a carriage displaceable along side members of said frame, at least one trolley displaceable along said carriage and at least one hydrodemolition nozzle; providing a staging platform above said wall surface; providing at least one rail mounted on the surface of said wall; supporting the weight of said apparatus on said surface by rollers on said frame; suspending said apparatus by cables or chains from a movable support on said platform such that said plane is parallel to a plane of said inclined wall and said frame leans against said at least one rail or said wall under the influence of gravity such that said hydrodemolition apparatus is supported by said at least one rail or said wall, said at least one rail acting to restrain said apparatus from lateral movement; positioning the frame to overlay a first portion of the wall; operating said at least one hydrodemolition nozzle, said at least one trolley and said carriage to treat the entirety of said first portion within said footprint; repositioning the frame to overlay a second portion of the wall by at least one of: raising or lowering said frame in relation to said movable support, moving said movable support along said platform transversely in relation to said wall such that at least a rail other than said at least one rail acts to restrain said apparatus from lateral movement; and, operating said at least one hydrodemolition nozzle to treat the surface of said second portion of the wall.
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
(16) The invention will be described by reference to the preferred embodiment thereof as used in the context of hydrodemolition of the surface of a steeply inclined dam spillway. Such hydrodemolition removes a layer of concrete from the spillway wall prior to reapplying concrete to resurface the spillway.
(17) Referring to
(18) In order to hydrodemolish the spillway wall 12, a suspension staging platform 14 is provided to extend transversely along the width of the spillway above the region of the spillway wall that is to be worked. A hydrodemolition rig 16 is suspended from the staging platform 14 to overlie a portion of the spillway wall to be hydrodemolished.
(19) A rigid rectangular base frame 18 of the hydrodemolition rig 16 lies substantially in a plane so as to define a rectangular two dimensional footprint. The frame 18 is suspended from the staging platform 14 such that the plane of the frame 18 is parallel to the surface of the wall while the weight of the rig and the angle of the spillway combine to cause the suspended rig 16 to lean against the spillway wall as best seen in
(20) The rig 16 includes hydrodemolition nozzles 20, 22, 24 (best seen in
(21) The rig 16 is suspended from the staging platform 14 by means of a cable winch system that is mounted on the staging platform 14 and that is transversely movable along the staging platform. Preferably the winch system consists of two spaced winches 26, 28, each winch having one cable attached to the frame 18 of the rig 16, and both winches being mounted on a common trolley 30. The trolley travels along a trolley track 31 so as to selectively locate the trolley at different transverse positions along the staging platform enabling the displacement of the suspended rig transversely along the width of the wall. The rig 16 is raised or lowered and/or moved transversely across the wall to position the rig to work successive sections of the wall within the footprint of the frame at each rest position of the rig 16.
(22) The vertical displacement of the frame along the wall is guided by spaced parallel rails 32, 34, 36 that have been secured along the surface of the spillway below the staging platform 12 for the purposes of the hydrodemolition operation. The rig is stabilized against spurious lateral movement during the hydrodemolition process by engaging rollers 38, 40, 42, 44 (that are provided on each side member of the frame 18) onto the rails, or alternatively by abutting the rollers against the sides of the rails.
(23) During transverse displacement of the frame, the frame 18 is raised to clear the rails. Suitably oriented extendible and retractable wheels may be provided on the frame to facilitate the translation of the frame 18 sideways along the wall and over the rails.
(24) Referring principally to
(25) Referring to
(26) The carriage 60 is raised or lowered (arrows 62, 64) along the side members 46, 48 by means of chains 78, 80 that extend from sprockets 82, 84, 86, 88 at the top and bottom of the side members. The chains 78, 80 are guided within channels 90 (see
(27) The carriage 60 comprises at least one and preferably two trolleys 100, 102 that are displaceable horizontally along respective sections of the length of the carriage 60 (in the direction of elongation of the carriage). The combination of the vertically displaceable carriage 60 and the transversely displaceable trolleys 100, 102 allows high pressure hydrodemolition nozzles 20, 22, 24 (see
(28) The carriage 60 comprises two spaced walls 104, 106 defining a gap between them to accommodate the travel of trolleys 100, 102 along the length of the carriage 60 in the direction shown by arrow 108. Referring to
(29) Each trolley consists of a tower 120 extending out of the plane in which the frame 18 lies. Pinions 110, 112 at opposed sides of the tower 100 engage racks 109 on the carriage walls 104, 106 while drives 116, 118 actuate the pinions under the control of a controller (not shown) to propel the trolley along the gap in the carriage along direction 108.
(30) A cannon frame 122 is mounted within the tower 120 for selective movement into or out of the plane of the frame (direction 124 in
(31) Nozzle cannon 126 includes three spaced nozzles 20, 22, 24 aligned along the width of the carriage 60 to provide greater coverage of the surface on each pass of the nozzle cannon 126 than would a single nozzle. High pressure water lines 200, 202, 204 feed to the tops of conduits 206, 208, 210 provided on the nozzle cannon 126.
(32) The working of any given section of the wall involves translating the trolleys 100, 102 along the length of the carriage 60 while nozzles 20, 22, 24 mounted on the trolleys hydrodemolish the surface of the wall underlying the carriage. Once the surface of the wall under the length of the carriage has been worked, the carriage is indexed vertically (62, 64) a suitable distance to repeat the operation. The process is repeated until the entire footprint 54 of the frame 18 in that position has been worked to remove a layer of concrete as at 130 in
(33) In the preferred embodiment, each of the two trolleys (each having a nozzle cannon), reciprocates along one half of the length of the carriage to cooperate to work the length of the wall beneath the carriage however it is within the scope of the invention to provide a single trolley that reciprocates the entire length of the carriage 60.
(34) The winches 26, 28 raise and lower the frame to reposition it so that different vertical sections of the spillway can be worked. In one example, the entire frame is placed first on a lowermost section 140 of the spillway for which the surface of the wall is to be hydrodemolished. Once lowermost section 140 is scarified, the winches 26, 28 are used to raise the rig 16 to the next vertical section 142. Once a column of targeted vertical sections 140, 142, 144 have been entirely scarified, retractable wheels on the underside of cross beams 50, 52 are extended to raise the rig 16 off the rails 32, 34 that are mounted on the spillway surface. The winch trolley 30 is then rolled laterally along the staging platform 14 while the wheels on cross beams 50, 52 support the rig 16 as it rolls laterally across the wall 12. The rig 16 is then installed on a new pair of rails 34, 36 that correspond to the position of the new vertical sections 146, 148, 150 of wall to be scarified.
(35) One challenge in implementing such a system and apparatus is to manage the conduits supplying water and hydraulic control for the displacement of the carriage and the tower(s). Referring to
(36) For example, reference numerals 181 and 183 in
(37) The flexible hydraulic and high pressure water supply conduits (for example 220 in the frame-supported raceway of
(38) Side member 48 includes a raceway support 170 extending to the outboard side of side member 48 to receive the raceway 160 when the carriage extends toward cross beam 52. Raceways 180 and 182 for the trolleys 100 and 102 are supported by raceway supports 190, 192 extending on the outboard sides of the carriage 60.
(39) In the foregoing specification, the invention has been described with reference to specific embodiments thereof. However, the scope of the claims should not be limited by the preferred embodiments set forth in the examples, but should be given the broadest interpretation consistent with the description as a whole. The specification and drawings are, accordingly, to be regarded in an illustrative rather than a restrictive sense.
(40) For example, in the event that the portion of the spillway wall that is to be worked does not extend the full width of the spillway 10, the platform 14 need only extend such distance along the width of the spillway that corresponds to the width of the wall to be worked. In the illustrated embodiment, the entire width of the spillway 10 is to be worked and accordingly, in the drawings of the preferred embodiment, the staging platform 14 extends across the entire width of the spillway. Appropriate outriggers and counterweights for the staging platform may also be used.
(41) The number and spacing of rails depends on the size of the rig 16 and the width of the spillway 10 to be worked. The rig 16 may even be guided by a single rail at a time if the connection of the rig to the rail is sufficiently stable to both guide the rig vertically and to keep the rig stable during the hydrodemolition process.
(42) The frame has been described as defining a rectangular footprint. In this disclosure and in the claims, rectangular includes a square shape.
(43) It will be appreciated that other constructional details may also be varied as required to achieve the objects of the invention.