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Eingeladener Vortrag
- nein (31)
Each engineering decision is based on a number of more or less accurate information. In assessment of existing structures, additional relevant information collected with on-site inspections facilitate better decisions. However, observed data basically represents the physical characteristic of interest with an uncertainty. This uncertainty is a measure of the inspection quality and can be quantified by expressing the measurement uncertainty. The internationally accepted rules for calculating measurement uncertainty are well established and can be applied straightforwardly in many practical cases. Nevertheless, the calculations require the occasionally time-consuming development of an individually suitable measurement model. This contribution attempts to emphasize proposals for modelling the non-destructive depth measurement of tendons in concrete using the ultrasonic echo technique. The proposed model can serve as guideline for the determination of the quality of the measured information in future comparable inspection scenarios.
CASPAR - FKZ: 19F2178A "Plattform für die beweissichere und rückführbare Datennutzung im Bauwesen"
(2021)
Bestandsunterlagen von älteren Bauwerken sind oft nicht in ausreichendem Umfang verfügbar. Soll jedoch der Zustand von z.B. Gebäude oder Brücken bewertet werden, stellen Bestandsunterlagen die Grundlage dafür dar. Ansonsten muss die Bauweise des Bauwerkes kostenintensiv nachvollzogen und mit nachträglichen Untersuchungsverfahren bewertet werden.
Heute spielt die digitale Planung im Bauwesen eine immer größere Rolle und Bauvorhaben werden in sogenannten BIM Modellen (Building Information Modelling) geplant. Diese Daten müssen langfristig und manipulationssicher gespeichert werden.
In diesem Projekt erarbeiten wir die technologischen Grundlagen, um Daten effizient und sicher zu speichern. Wir erarbeiten eine digitale Schnittstelle, um Daten aus unterschiedlichsten Quellen sicher zusammenzuführen und Informationen semantisch zu verknüpfen. Um den Nachweis für die Nutzbarkeit unserer Technologie zu erbringen, entwickeln wir im Rahmen des beantragten Projekts eine prototypische objektbezogene Datenablage in Form eines Demonstrators, in die digitale Informationen einer realen Brücke überführt werden.
CASPAR - FKZ: 19F2178A "Plattform für die beweissichere und rückführbare Datennutzung im Bauwesen"
(2021)
Bestandsunterlagen von älteren Bauwerken sind oft nicht in ausreichendem Umfang verfügbar. Soll jedoch der Zustand von z.B. Gebäude oder Brücken bewertet werden, stellen Bestandsunterlagen die Grundlage dafür dar. Ansonsten muss die Bauweise des Bauwerkes kostenintensiv nachvollzogen und mit nachträglichen Untersuchungsverfahren bewertet werden.
Heute spielt die digitale Planung im Bauwesen eine immer größere Rolle und Bauvorhaben werden in sogenannten BIM Modellen (Building Information Modelling) geplant. Diese Daten müssen langfristig und manipulationssicher gespeichert werden. In diesem Projekt erarbeiten wir die technologischen Grundlagen, um Daten effizient und sicher zu speichern. Wir erarbeiten eine digitale Schnittstelle, um Daten aus unterschiedlichsten Quellen sicher zusammenzuführen und Informationen semantisch zu verknüpfen. Um den Nachweis für die Nutzbarkeit unserer Technologie zu erbringen, entwickeln wir im Rahmen des beantragten Projekts eine prototypische objektbezogene Datenablage in Form eines Demonstrators, in die digitale Informationen einer realen Brücke überführt werden.
The through-life management of our constantly ageing infrastructure is a basic requirement in order to ensure their structural safety and serviceability. Each structure experiences deterioration processes with time leading to a decrease of structural safety and serviceability. The design of new structures considers the expected deterioration for a defined period, the design service life. However, a frequent survey of structural safety controlling structural condition should be mandatory and a maintenance plan should be an integral part of the design. In addition, many structures have exceeded their design service life already or are very close to it leading to an increasing demand for condition assessment. On the one hand, assumptions made during design are not valid any more due to change of the loads, e.g., increasing traffic loads in terms of number and weights. On the other hand, design codes evolved over time in such a way that existing structures do not comply with today’s standards. In all these cases, the through-life management is an important tool to maintain the accessibility of existing structures with known reliability.
In line with the new Model Code for Concrete Structures, which includes guidance for both – design of new structures and assessment of existing structures, the Task Group 3.3 focused on the compilation of a state-of-the-art guideline for the through-life management of existing concrete structures, including:
Data acquisition by testing and monitoring techniques;
Condition assessment for the evaluation of existing structures;
Performance prediction using advanced methods;
Decision-making procedures to perform a complete assessment of existing structure.
The overall objective of the through-life management is the assessment of the current condition and the estimation of the remaining service life under consideration of all boundary conditions.
With the mandatory introduction of the directive for recalculation of bridges in May 2011 in Germany, the administrations of the federal and state governments have a duty to demonstrate the stability of their bridge inventory. The requisite verification will be realized under consideration of the new increased traffic loads on the construction, in a four-step process. Particularly in older bridges the verification succeeds only using the computational resources of the original structural design. One option these reserves to be considered is the exact determination of the dead weight of the bridge. Since the existing as-built documents of the construction often digress significantly from the real dimensions, there are two options to resolve the issue. In addition to the technically very complicated and relatively expensive method of weighing the construction, the calculation can also be done indirectly through a combined process of hotogrammetric measurement and non-destructive testing. On a practical case study will be demonstrated how the solution of this problem can succeed. For this is done in the first step to scan in detailed the inner topography of a part of the construction by a 3D laser scanner. The results of these tests are compared with the existing stock plans of the building. The aim of this study is to determine the dead weight of structure. Therefore, in the first part of this work sectional plans were extracted of the technical drawing and the point cloud to calculate the area of the interior. Based on the calculated areas in the sectional planes, the volume calculation should take place in the next step.
With the mandatory introduction of the May 2011 directive for reassessment of bridges in Germany, the administrations of the federal and state governments have the duty to prove the stability of their bridge stock. Verification of bridge stability will be realized with consideration of the newly increased traffic loads. Particularly in older bridges, the verification can only be achieved if calculative surplus load capacity of the original structural design is taken into account in the recalculation. One option for considering these reserves is the exact determination of the dead weight of the bridge. Within this case study, it will be demonstrated how the problem can be practically solved.
In order to determine the dead weight of a concrete bridge, its volume has to be calculated. as a first step, a 3D laser scanner is used to record the internal geometry of a hollow box bridge girder. For the determination of the thickness of the concrete member, the non-destructive technique ultrasonic echo is applied. The construction must be segmented in approximately equidistant parts in order to be able to carry out an economic and efficient investigation. The description of the segmentation of the point cloud, carried out in a 2D model, was presented in the first part of the publication. The subject of this presentation is the merging of 2D cross sections into a 3D model, from which the weight of the bridge can be calculated.
With the mandatory introduction of the May 2011 directive for reassessment of bridges in Germany, the administrations of the federal and state governments have the duty to prove the stability of their bridge stock. Verification of bridge stability will be realized with consideration of the newly increased traffic loads. Particularly in older bridges, the verification can only be achieved if calculative surplus load capacity of the original structural design is taken into account in the recalculation. One option for considering these reserves is the exact determination of the dead weight of the bridge. Within this case study, it will be demonstrated how the problem can be practically solved.
In order to determine the dead weight of a concrete bridge, its volume has to be calculated. as a first step, a 3D laser scanner is used to record the internal geometry of a hollow box bridge girder. For the determination of the thickness of the concrete member, the non-destructive technique ultrasonic echo is applied. The construction must be segmented in approximately equidistant parts in order to be able to carry out an economic and efficient investigation. The description of the segmentation of the point cloud, carried out in a 2D model, was presented in the first part of the publication. The subject of this presentation is the merging of 2D cross sections into a 3D model, from which the weight of the bridge can be calculated.