Realistic basics to rescue existing bridges
Three research projects investigating the shear load resistance of prestressed bridge beams are currently taking place at the Department of Solid Construction of the Technical University of Munich. On the one hand, the researchers want to obtain greater insight into the design of novel beams made out of ultra-high-performance fibre-reinforced concrete. On the other hand, there is an acute need to refine the measurement approaches for calculation of existing bridges. Nicholas Schramm describes the problem: "For many older bridges from the '60s and '70s, we need to adapt the underlying calculation methods and models. Designed for the traffic and loads of the day, today they no longer correspond to the increased requirements. We also know, however, that the static calculations in the '60s were made using simplified calculation approaches, meaning that often there is a lot in reserve, so that the bridges are capable of withstanding far more." In many cases, a considerably higher reliable load level can be confirmed through detailed and well-founded retrospective calculation, thereby avoiding expensive demolition and rebuilding, or the costly restoration of the structure. For this, however, additional realistic data from component testing is necessary. The savings potential is enormous: the federal highways alone in Germany comprise around 39,000 bridges, representing investment assets of around €45 billion. A large proportion of them are more than 50 years old.
Impressive lab tests
Therefore, at TU Munich, sections with obsolete structural development will be replicated and then tested in the new test stand. In the current tests the shear force amounts to around 700 kN, corresponding to around 70 tons, and thereby to a realistic load of, say, a super lorry. The sections are 3.5 m long, with a cross-section height of 80 cm, equating to a total beam length of 12 m. For this, four horizontal and two vertical hydraulic cylinders act with constantly increasing force on the test piece until the structure of the concrete beam ruptures. The combination of all six servo-hydraulically controllable cylinders offers a hitherto unique flexibility. The variable control of the dual-action cylinders allows the concrete element to be tested both for bending and shear force, along two axes if required, and for torsion. With the aid of the hydraulic equipment, cyclic load application and relaxation is also possible, and should expand the examination potential in the field of extended time and fatigue testing in the future. "Our hydraulic cylinders are ideally suited to this, since they can provide constant and precisely-adjustable force through to rupture," Sven Weckwerth declares. These measurements take place during operation, with Liebherr supplying the appropriate position transducer systems. Along with the commonly used strain gauges, lots of high-tech measurement technology is also deployed. One such example is the fibre-optic sensors that are otherwise predominantly used in the automobile industry. These enable the continual measurement of strain, and therefore provide data on load and deformation behaviour.
Since May 2017, prestressed concrete bridge beams have been examined weekly on the test stand at TU Munich. The acquired data enable better comprehension of the realistic load-bearing behaviour of the beams for the future improvement and expansion of the calculation modules. There is certainly a lot of testing to be done: for the coming year, sections with cross-section heights of 1.2 m are already being lined up. These beams would then have a regular length of around 20 m, which would mean considerable extra expense using traditional testing procedures. Tests are also being carried out on ultra-high-performance, fibre-reinforced concrete. This is three to five times stronger than traditional concrete, which means that, in the future, based on the data required, considerably leaner constructions may be produced.