Scaffold for supporting a working platform for bridges
10662658 · 2020-05-26
Assignee
Inventors
Cpc classification
E04G3/28
FIXED CONSTRUCTIONS
E04G3/34
FIXED CONSTRUCTIONS
International classification
E04G3/28
FIXED CONSTRUCTIONS
Abstract
A scaffolding to be fastened to a bridge or the like deck structure comprises a boom system (2) for supporting the working platforms and the support structures needed for the work and for fastening the boom system of the fastening body (1) to the upper surface of the deck structure. The boom system (2) is connected to the fastening body via a swivel quadrangle (3, 6, 11, 12).
Claims
1. A scaffolding to be fastened to a bridge or a corresponding deck structure, comprising: a boom system for supporting working platforms and support structures needed for work; a fastening body (1) for fastening the boom system to an upper side of the deck structure, the fastening body (1) having an upper swivel point (12) and a lower swivel point (17) located underneath the upper swivel point (12), the boom system comprising a vertical boom (4) and a transverse support beam (5), the vertical boom (4) being provided with an upper swivel point (16) and a lower swivel point (18) located underneath the upper swivel point (16) of the vertical boom (4), a lower end of the vertical boom (4) being provided with the transverse support beam (5) and forming a T-shaped structure at the lower end of the vertical boom (4), one branch of the T-shaped structure being installable to point towards the deck structure (15) with another branch of the T-shaped structure pointing away from the deck structure (15); a swivel quadrangle provided on an upper end of the vertical boom (4), the boom system being connected to the fastening body via the swivel quadrangle; and adjustment means for adjusting a position of the boom system, wherein the swivel quadrangle comprises an upper beam (11) and a lower beam (3), one end of the upper beam (11) being connected to the upper end of the vertical boom (4) at the upper swivel point (16) of the vertical boom (4), the upper beam (11) extending from the upper swivel point (16) of the vertical boom (4) towards and connected to the fastening body (1) at the upper swivel point (12) of the fastening body (1), the lower beam (3) being parallel to the upper beam and located underneath the upper beam (11), a first end of the lower beam (3) being connected to the upper end of the vertical boom (4) at the lower swivel point (18) of the vertical boom (4), the lower beam (3) extending from the lower swivel point (18) of the vertical boom (4) towards and connected to the fastening body (1) at the lower swivel point (17) of the fastening body (1), wherein the lower beam (3) continues to extend away from the vertical boom (4) beyond the lower swivel point (17) of the fastening body (1) with a second end of the lower beam (3) being fastened to the adjustment means for adjusting the position of the boom system, the first end of the lower beam (3) being connected to the vertical boom (4) on a first side of the lower swivel point (17) of the fastening body (1) and the second end of the lower beam (3) being fastened to the adjustment means for adjusting the position of the boom system on an opposite, second side of the lower swivel point (17) of the fastening body (1), and wherein, by the first end of the lower beam being connected to the vertical boom (4) at the lower swivel point (18) of the vertical boom (4), an intermediate part of the lower beam being connected to the fastening body (1) at the lower swivel point (17) of the fastening body and the second end of the lower beam being fastened to the adjustment means for adjusting the position of the boom system, the lower beam forms a lever extending on both sides of the lower swivel point (17) of the fastening body, and wherein the adjustment means comprises at least one actuator arranged at the second end of the lower beam, the at least one actuator being located on the opposite, second side of the lower swivel point (17) of the fastening body (1), the adjustment means being operable for adjusting a position of the second end of the lower beam and a position of the vertical boom connected to the first end of the lower beam.
2. The scaffolding according to claim 1, further comprising lugs that fasten the first end of the lower beam and the one end of the upper beam to the vertical boom, each of the lugs having one row of holes, in which there is a first interval between the holes of each lug, the vertical boom having a row of holes in which an interval between holes of the vertical boom is different from the first interval between the holes of the lugs.
3. The scaffolding according to claim 2, wherein the interval between the holes of the vertical boom is longer than the first interval between the holes of the lugs.
4. The scaffolding according to claim 2, wherein the vertical boom and the transverse support beam are fastened to each other via further lugs located at the lower end of the vertical boom, the further lugs each having a row of holes and the transverse support beam having a row of holes, an interval of the row of holes in the further lugs being different from an interval of the row of holes in the transverse support beam.
5. The scaffolding according to claim 1, wherein the upper and lower swivel points of the fastening body are on a same vertical line and the upper and lower swivel points of the vertical boom are on another same vertical line.
6. The scaffolding according to claim 1, wherein the at least one actuator comprises at least one of the group consisting of a hydraulic jack and a screw jack for adjusting a position of the swivel quadrangle and the boom system connected thereto.
7. The scaffolding according to claim 1, wherein the upper and lower swivel points of the fastening body and the upper and lower swivel points of the vertical boom comprise removable connection members.
8. The scaffolding according to claim 7, wherein the connection members are swivel pins.
9. The scaffolding according to claim 1, wherein the swivel quadrangle is a swivel parallelogram.
10. The scaffolding according to claim 1, wherein the at least one actuator comprises a hydraulic jack located at the second end of the lower beam on the opposite, second side of the lower swivel point (17) of the fastening body (1), the hydraulic jack being operable for adjusting the position of the second end of the lower beam and the position of the vertical boom connected to the first end of the lower beam.
11. The scaffolding according to claim 1, wherein the at least one actuator comprises a screw jack located at the second end of the lower beam on the opposite, second side of the lower swivel point (17) of the fastening body (1), the screw jack being operable for adjusting the position of the second end of the lower beam and the position of the vertical boom connected to the first end of the lower beam.
Description
(1) In the following, the invention is disclosed in more detail by means of reference to the appended drawings.
(2)
(3)
(4)
(5)
(6)
(7) In the following, the downwards direction is the direction towards the upper surface of the deck structure from above it and the upwards direction is a direction opposite to it.
(8) The following is a description of an advantageous method of adjusting the location of the boom system by means of a swivel quadrangle. This invention can be applied with other adjustment methods as well, such as in systems having a number of legs or adjustment means with variable or adjustable length. The structure described in the following is, however, a simple one and it is especially suitable for use with the invention, as will be obvious from the description. Most preferably the used swivel quadrangle is a swivel trapezoid, as in the following examples.
(9) In the embodiment of
(10) The opposite end of the vertical boom 4 is provided with a swivel quadrangle formed by two beams, the upper beam 11 of which is a straight box girder, fastened at its end by swivel point 16 to the end of the vertical beam 4 and extending therefrom towards the fastening unit. A lower parallel beam 3 is located underneath the upper beam 11. Here, the lower beam 3 is a triangular girder comprising a straight lower beam and a triangle formed over the lower beam and consisting of two diagonal beams and a vertical support connecting the apex of the triangle and the lower beam. The advantage of this beam structure is its lightness and good load capacity.
(11) The upper and lower beam 3, 11 are fastened to the fastening body 1 through swivel pins 6 at swivel points 12 and 17 located at a distance from each other so that the upper beam 11 is fastened to the upper part of the fastening body 1 at swivel point 12 and the lower beam 3 is fastened below it at swivel point 17 in the lower part of the fastening body 1. Here, the swivel points 12 and 17 are on the same vertical line, but the movement paths of the boom system can be changed by changing the locations of the swivel points, if necessary. At its opposite end the upper and lower beam 3, 11 are fastened by swivel pins 6 to lugs 13 located at the end of the vertical beam 4, the lugs being also provided with superimposed swivel points 16, 18 located vertically on the same line for the upper beam 11 and the lower beam 3. Thus the swivel points 12, 16, 17 and 18 form, together with the lower and upper beam 3, 11, a swivel quadrangle by means of which the vertical beam 4 and the transverse support beam 5 can be moved in vertical direction. The transverse support beam 5 is fastened by means of swivel pins 6 to lugs 14 located at the lower end of the vertical beam. In this fastening method the transverse support beam 5 is locked in horizontal position and the purpose of the pin fastening is to provide a joint that is easy to assemble.
(12) The fastening body 1 can comprise fastening plates forming a foot assembly preferably comprising vertically adjustable fastening bolts for fastening the scaffolding to the bridge deck. The fastening bolts can be located in holes bored to the bridge deck and secured by chemical bonding to achieve a strong and reliable fastening.
(13) The swivel quadrangle allows lifting and lowering of the vertical beam 4 and the transverse support beam 5 attached thereto. In this embodiment the actuator is a jack 9 installed on the fastening body 1 between the fastening body 1 and the triangular lower beam 3 of the swivel quadrangle. The jack 9 is arranged at the vertical support located at the apex of the beam triangle whereby a sturdy workplace can be provided for the jack 9. The jack 9 can be a simple screw jack, a hydraulic jack or other corresponding lifting device. As there is no need for continuous adjustment of height position, the jack can be a simple and sturdy apparatus.
(14)
(15) The scaffolding of
(16) The lever can also be formed at the upper beam or both the lower and upper beam. The jacks can be attached to different levers or the same lever according to the chosen configuration.
(17) The scaffolding (fastening body 1) is preferably fastened to the deck of the bridge or other structure by means of threaded bolts 23 at pedestal 20. The fastening to the deck is accomplished by gluing or casting the bolts to blind holes made into the deck. The fastening is made at two pedestals 20 located at a distance from each other and the threaded bolts allow the scaffolding to be lifted up from the deck so that a clearance 24 is formed between the scaffolding and the deck. Thus it is possible to work the surface of the deck and the surface can be cast while the scaffolding is fastened. The fastening body can comprise a spirit level or levels for facilitating the adjustment of its position.
(18) The vertical positioning of the scaffolding to the deck of the bridge or other structure is in this embodiment carried out, in addition to the swivel quadrangle, by changing the locations of the fastening points (swivel points) 16 and 18 between the vertical beam 4 and the swivel quadrangle 12, 16, 17 and 18. The vertical boom 4 comprises superimposed fastening holes 25 at defined intervals. Lugs 26 are provided at the ends of the upper and lower beam 11, 3, the lugs being arranged on both sides of the vertical boom and also having superimposed fastening holes 27, also at defined intervals. The intervals between the fastening holes 25 of the vertical boom are longer than the intervals between the fastening holes 27 of the lugs 26. This provides a large adjustment travel by means of the fastening holes 25 of the vertical boom 4 and a smaller adjustment range by means of the fastening holes 27 of the lugs 26. When this adjustment method is combined with adjustment by the swivel quadrangle, the position of the scaffolding can be set as desired within a very wide range. This allows e.g. easy and accurate positioning of the mould for the edge casting 19 of the bridge.
(19) The adjustment of the location of the support beam 5 in relation to the edge of the bridge or other deck can be accomplished by means of a corresponding hole distribution.
(20) The features of the above-mentioned embodiments can well be combined and corresponding parts can be replaced by other ones for achieving the structure most suitable for each application.
(21) The scaffolding can comprise integrated workbenches and they can have rails or fasteners for moulds, tools, such as water cutters, or handrails. The scaffolding can be fastened to a rail on the bridge deck so that it can be moved parallel with the deck as the work progresses. The fastening parts can have toolboxes for safe storage of tools and other supplies and the scaffolding can be provided with lifting hooks or the like so that it can be moved as a complete system.
(22) The scaffolding according to the invention can be transported to the site as already assembled or disassembled into its main components. The scaffolding is assembled by simply installing swivel pins 6 into their places and by locking them with cotter pins. Thus, in principle no tools are needed for assembling the scaffolding. The scaffolding is easy to disassemble into relatively light parts and to transport to a new site after use. As a number of scaffolding unit are needed for the bridge deck or other corresponding application, easy assembly, disassembly and transportation provides considerable advantages. Instead of swivel pins and cotter pins other corresponding fastening means, such as bolts and nuts, can be used.
(23) It is obvious that the various parts of the above-described example can be replaced by their functional and structural equivalencies within the definitions of the appended claims.