Method for pre-stressing a steel structure, and steel structure pre-stressed using said method
11326313 · 2022-05-10
Assignee
Inventors
Cpc classification
E04G23/0218
FIXED CONSTRUCTIONS
E04C5/085
FIXED CONSTRUCTIONS
International classification
E01D22/00
FIXED CONSTRUCTIONS
E04G23/02
FIXED CONSTRUCTIONS
E04C5/08
FIXED CONSTRUCTIONS
Abstract
According to the method, at least one carbon fibre-reinforced polymer band is joined to the steel structure at the end regions thereof, capable of transferring tensile forces. Subsequently, at least one lifting element (7) disposed between the carbon fibre-reinforced polymer band (4) and the steel girder (3) to be reinforced in a region between these end anchorages (5), is extended substantially perpendicular to the carbon fibre-reinforced polymer band (4). So, a tensile force stress is generated between the end regions of the carbon fibre-reinforced polymer band (4). Then, a steel girder treated in such a manner includes at least one carbon fibre-reinforced polymer band, which is each joined to the steel structure (1) at the end regions thereof, capable of transferring tensile forces. In the region between these end regions, a lifting element (7) is disposed between the carbon fibre-reinforced polymer band (4) and the steel girder (3) to be reinforced, by means of which the carbon fibre-reinforced polymer band (4) is subjected to tensile stress by lifting away from the steel girder (3). The tensile force is transferred to the steel girder (3) via the anchoring elements (5).
Claims
1. A steel structure having at least one reinforced steel girder, comprising: a steel structure having at least one steel girder configured for bearing loads and bending moments; at least one flat carbon fiber-reinforced polymer (CFRP) band with opposing ends attached mechanically by clamping by friction forces to the at least one steel girder of the steel structure with end anchorages configured to secure the at least one flat CFRP band, no adhesive applied to the at least one steel girder, and the at least one flat CFRP band not being glued on the steel girder by adhesive and having no direct contact with the steel girder; the at least one flat CFRP band being pre-stressed by extending at least one lifting element, disposed between the at least one steel girder and the at least one flat CFRP band and in alignment with attached opposing ends of the at least one flat CFRP band, substantially perpendicular to the at least one flat CFRP band with the end anchorages securing the at least one flat CFRP band; and one or more supports or latches positioned between the at least one steel girder and the at least one flat CFRP band, the one or more supports or latches securing extension of the at least one flat CFRP band resulted from pre-stressing and supporting the at least one CFRP band having a target tensile stress achieved therein after relieving the at least one lifting element; thereby the target tensile stress in the at least one flat CFRP band being transferred to the at least one steel girder and by virtue of a geometry of the at least one flat CFRP band being pre-stressed in a direction perpendicular to the at least one steel girder between the attached opposing ends thereof that are aligned with the at least one lifting element for pre-stressing, wherein no shearing force occurs at locations of the steel girder where the opposing ends of the at least one flat CFRP band are attached, the at least one steel girder in at least a region thereof corresponding to thus pre-stressed at least one flat CFRP band being effectively stabilized and reinforced and having an enhanced capacity of bearing loads and bending moments.
2. The steel structure having at least one reinforced steel girder according to claim 1, wherein the opposing ends of the at least one flat CFRP band are attached by the end anchorages to an underside of the at least one steel girder of the steel structure.
3. The steel structure having at least one reinforced steel girder according to claim 1, wherein the reinforced steel structure comprises multiple said at least one flat CFRP band, and the multiple flat CFRP bands are aligned in parallel.
4. The steel structure having at least one reinforced steel girder according to claim 1, wherein the steel structure is a steel bridge, and the at least one steel girder is the lower-most horizontal steel girder of the steel bridge and bears axle load on the steel bridge.
5. A method of reinforcing at least one steel girder configured for bearing loads and bending moments in a steel structure comprising: attaching opposing ends of at least one flat carbon fiber-reinforced polymer (CFRP) band mechanically by clamping by friction forces to at least one steel girder of a steel structure with end anchorages configured to secure the at least one flat CFRP band, no adhesive applied to the at least one steel girder, and the at least one flat CFRP band not being glued on the steel girder by adhesive and having no direct contact with the steel girder, wherein the at least one steel girder is configured for bearing loads and bending moments in the steel structure; disposing at least one lifting element between the at least one steel girder and the at least one flat CFRP band in a region between and in alignment with attached opposing ends of the at least one flat CFRP band; extending the at least one lifting element substantially perpendicular to the at least one flat CFRP band with the end anchorages securing the at least one flat CFRP band, thereby pre-stressing the at least one flat CFRP band in a direction perpendicular to the at least one steel girder; and securing extension of the at least one flat CFRP band resulted from pre-stressing in the direction perpendicular to the at least one steel girder by one or more supports or latches between the steel girder and the at least one flat CFRP band, thereby the at least one flat CFRP band having a target tensile stress achieved therein being supported by the one or more supports or latches and the target tensile stress in the at least one flat CFRP band being transferred to the at least one steel girder, and by virtue of a geometry of the at least one flat CFRP band being pre-stressed perpendicular to the at least one steel girder between the attached opposing ends thereof that are aligned with the at least one lifting element wherein no shearing force occurs at locations of the steel girder where the opposing ends of the at least one flat CFRP band are attached, the at least one steel girder in at least a region thereof corresponding to thus pre-stressed at least one flat CFRP band being effectively stabilized and reinforced and having an enhanced capacity of bearing loads and bending moments.
6. The method according to claim 5, wherein the one or more supports are mechanical supports.
7. The method according to claim 5, wherein the lifting element is operated hydraulically, pneumatically, electrically or mechanically.
8. The method according to claim 5, wherein said extending the at least one lifting element initially generates a tensile stress in the at least one flat CFRP band greater than the target tensile stress for reinforcing the at least one steel girder, and the target tensile stress is achieved by relieving the at least one lifting element after installing the one or more supports.
9. The method according to claim 5, wherein the opposing ends of the at least one flat CFRP band are attached by the end anchorages to an underside of the at least one steel girder of the steel structure.
10. The method according to claim 5, wherein the method comprises reinforcing the at least one steel girder by multiple of said at least one flat CFRP bands and the multiple flat CFRP bands are aligned in parallel.
11. The method according to claim 5, wherein the steel structure is a steel bridge, and the at least one steel girder is the lower-most horizontal steel girder of the steel bridge and bears axle load on the steel bridge.
12. A method of reinforcing steel girders configured for bearing loads and bending moments in a steel structure comprising: attaching opposing ends of at least one flat carbon fiber-reinforced polymer (CFRP) band mechanically by clamping by friction forces to each of a plurality of steel girders of a steel structure with end anchorages configured to secure the at least one flat CFRP band, no adhesive applied to the plurality of steel girders, and the at least one flat CFRP band not being glued on the plurality of steel girders by adhesive and having no direct contact with the plurality of steel girders, wherein the plurality of steel girders are configured for bearing loads and bending moments in the steel structure; disposing at least one lifting element between each of the plurality of steel girders and respective at least one flat CFRP band in a region between and in alignment with attached opposing ends of the respective at least one flat CFRP band; extending the at least one lifting element substantially perpendicular to respective at least one flat CFRP band with the end anchorages securing the respective at least one flat CFRP band, thereby pre-stressing the respective at least one flat CFRP band in a direction perpendicular to respective steel girder; and securing extension of the respective at least one flat CFRP band resulted from pre-stressing in the direction perpendicular to the respective steel girder by one or more supports or latches between each of the plurality of steel girders and the respective at least one flat CFRP band, thereby the respective at least one flat CFRP band having a target tensile stress achieved therein being supported by the one or more supports or latches and the target tensile stress in the at least one flat CFRP band being transferred to the respective steel girder, and by virtue of a geometry of the respective at least one flat CFRP band being pre-stressed perpendicular to the respective steel girder between the attached opposing ends thereof that are aligned with the at least one lifting element, wherein no shearing force occurs at locations of the respective steel girder where the opposing ends of the respective at least one flat CFRP band are attached, the respective steel girder in at least a region thereof corresponding to thus pre-stressed respective at least one flat CFRP band being effectively stabilized and reinforced and having an enhanced capacity of bearing loads and bending moments.
13. The method according to claim 12, wherein the lifting element is operated hydraulically, pneumatically, electrically or mechanically.
14. The method according to claim 12, wherein said extending the at least one lifting element initially generates a tensile stress in the at least one flat CFRP band greater than the target tensile stress for reinforcing the respective steel girder, and the target tensile stress is achieved by relieving the at least one lifting element after installing the one or more supports.
15. The method according to claim 12, wherein the opposing ends of the at least one flat CFRP band are attached by the end anchorages to an underside of each of the plurality of steel girders of the steel structure.
16. The method according to claim 12, wherein the method comprises reinforcing the respective steel girder by multiple of the at least one flat CFRP bands over a width of the steel structure and the multiple flat CFRP bands are aligned in parallel.
17. The method according to claim 12, wherein the steel structure is a steel bridge, and the plurality of steel girders are the lower-most horizontal steel girders of the steel bridge and bear axle load on the steel bridge.
Description
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(15) By means of such reinforcements, cracks or gaps in steel structures, i.e. in the elements which are tensioned, are closed in some cases. In other cases, a further growth of these cracks and gaps can be prevented, or at least the weakening process can be substantially slowed down, and overall the structures can be definitely reinforced and stabilized, so that the service life thereof is extended, or optionally, the load bearing capacity is enhanced.