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Subspace-based damage detection handling temperature effects and uncertainty in the reference
(2019)
Temperature variation can be a nuisance that perturbs vibration based structural health monitoring (SHM)approaches for civil engineering structures. In this paper, temperature affected vibration data is evaluated within a stochastic damage detection framework, which relies on a null space based residual. Besides two existing temperature rejection approaches – building a reference state from an averaging method or a piecewise method – a new approach is proposed, using model interpolation. In this approach, a general reference model is obtained from data in the reference state at several known reference temperatures. Then, for a particular tested temperature, a local reference model is derived from the general reference model. Thus, a well fitting reference null space for the formulation of a residual is available when new data is tested for damage detection at an arbitrary temperature. Particular attention is paid to the computation of the residual covariance, taking into account the uncertainty related to the null space matrix estimate. This improves the test performance, contrary to prior methods, for local and global damages, resulting in a higher probability of detection (PoD) for the new interpolation approach compared to previous approaches.
The presentation gives an overview of actual research adtivities in the field of flame retardant polymers. Details are selected illuminating the scientific topic beyond the state of the art. Different concepts are illustrated with own results obtained in different Research projects over the last 15 years.
Tuff ist in vielen historischen Objekten in Deutschland verbaut, hat aber wegen seiner Porosität und hygrischen Eigenschaften eine schlechte Verwitterungsresistenz. Ziel des Vorhabens ist die Entwicklung eines gesteinsmehlmodifizierten Schutzsystems auf Kieselsäurebasis (GEMOSK) zur Konservierung verbauter Tuffe. Für die Schutzmittelherstellung wird eine geeignete Mischung aus Kieselsol und feinen Gesteinsmehlen aus Steinbruchrückständen und Tuffabfällen verwendet. Bei erfolgreichem Abschluss des Projektes kann GEMOSK im Denkmalpflegebereich eingesetzt werden. Dadurch werden die Bausubstanz besser erhalten, Tuffsteinressourcen eingespart und Tuffabfälle wiederverwertet.
Bare steel constructions are often integrated in modern buildings. Intumescent coatings are widely used to protect the steel from heating up too quickly in a case of fire. As the functionality of intumescent coatings decreases with the impact of weathering processes, it is important to understand the mechanisms of material degradation to maintain long durability. The weathering-induced degradation behavior of a water-borne intumescent coating was examined, and the weakest points of the formulation were identified by a systematic approach. Resulting from this investigation, adjustments to the formula were made, leading to improved weathering resistance.
Most synthetic polymers have a high fire load, and as a result, they require flame retardants (FRs) to ensure their safe use. Phosphorus plays an important role in flame retardancy and has the potential to replace halogenated variants, which are assumed to be harmful to the environment and health. Among phosphorus-based FRs, there exists a trend towards polymeric, high molar mass molecules with complex molecular architectures. In this project, we synthesized a novel series of so-called phosphorus-based hyperbranched polymeric FRs and investigated their use as multifunctional additives to high-performance polymers, i.e. epoxy resins. By cleverly designing the chemical structure to contain varying amounts of P-O and P-N bonds, new insight into the chemical mechanism of flame retardancy was gained, and by comparing the hyperbranched polymers to their monomeric counterparts, a greater understanding of the role of complex architecture was won. This talk aims at presenting some of these results and proposes chemical mechanisms that illustrate what role these novel hyperbranched flame retardants play in molecular firefighting.
Polymers of intrinsic microporosity (PIMs) have recently emerged as novel materials for a broad range of high-performance applications from gas separation to electronic devices. The very rigid, contorted polymer chains show only limited molecular mobility and therefore pack inefficiently giving rise to intrinsic microporosity with pore sizes generally smaller than 1 nm resulting in BET surface areas larger than 700 m2/g. Using conventional thermal analysis techniques, no glass transition temperature (Tg) of PIMs could be unambiguously detected up to now. Employing fast scanning calorimetry (FSC) based on a one chip sensor, decoupling the time scales responsible for the glass transition and the thermal decomposition is a reliable strategy to overcome this limitation. The FSC device is capable to heat and cool a small sample (ng-range) with ultrafast rates of several ten thousand K/s. Evidence of a glass transition is obtained for a series of PIMs with different chain rigidities. Local small-scale fluctuations are held responsible for the glass transition of highly rigid PIMs rather than segmental motions as in conventional polymers.
Demonstrationsexperimente
(2019)
Korrosionsprüfung
(2019)