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Nine different stainless steel alloys were exposed for 5 years under marine environment and their corrosion behaviour was compared and assessed. The investigation of four different surface finishes for all alloys tested further enabled to consider industry-specific features of the surface finish for the material comparison. The results of the exposure tests yield conclusions regarding the influence of alloy composition, surface finish and exposure duration under marine environment. The three duplex stainless steels revealed excellent corrosion resistance even in case of crevices during the 5 years of exposure under the given exposure conditions. Also the molybdenum-alloyed ferritic steel 1.4521 showed good corrosion resistance comparable to the classical austenitic materials 1.4301 and 1.4404.
Alkali-activated fly ash mortars were studied with regard to durability-relevant transport coefficients and the electrochemical behaviour of embedded carbon steel bars on exposure of the mortars to leaching, carbonation and chloride penetration environments. The transport coefficients differed considerably between different formulations, being lowest for a mortar with BFS addition, but still acceptable for one of the purely fly ash-based mortars. Leaching over a period of ~300 days in de-ionized water did not lead to observable corrosion of the embedded steel, as shown by the electrochemical data and visual inspection of the steel. Exposure to 100 % CO2 atmosphere caused steel depassivation within approx. two weeks; in addition, indications of a deterioration of the mortar were observed. The results are discussed in the context of the different reaction products expected in high- and low-Ca alkali-activated binders, and the alterations caused by leaching and carbonation.
Electrochemical potential mapping according to guideline B3 of DGZfP (German Society for Nondestructive Testing) is a recognized technique for the localization of corroding reinforcing steels. In reinforced concrete structures the measured potentials are not necessarily directly linked to the corrosion likelihood of the reinforcing steel. The measured values may be significantly affected, different from, e.g., stress measurement, by different influences on the potential formation at the phase boundary metal/concrete itself as well as the acquisition procedure. Due to the complexity of influencing factors there is a risk that the results are misinterpreted. Therefore, in a training concept firstly the theoretical basics of the test method should be imparted. Then, frequently occurring practical situations of various influencing factors will be made accessible to the participants by a model object specially designed for this purpose. The aim is to impart profound knowledge concerning the characteristics of potential mapping for detecting corrosion of reinforcing steel in order to apply this technique in practice as reliable and economical test method.
The salinization and contamination of metal surfaces by chloride-containing aerosols is of great importance with regard to corrosion phenomena of damaged coated metal surfaces and stainless steels in the maritime sector and in offshore applications. Detailed questions have to be answered to clarify whether and to what extent salinization of the surface has an influence on the adhesion and durability of coatings in repairing applications and on pitting occurrence on stainless steels under atmospheric conditions. The questions arise which degree of salinization is reached after which period of time and how a defined and reproducible salinization can be simulated in the laboratory for further systematic investigations. The article is dedicated to these questions. Results of a field trial on the Island of Heligoland are presented and a simple procedure for a defined loading of metal surfaces with chlorides at a laboratory scale using a design of experiments (DoE) approach is introduced.
Anhand der hier vorgestellten Untersuchungsergebnisse kann
eine umfassende Einschätzung des Korrosionszustands einer Gabionenkonstruktion aus Drähten mit Zink-Aluminium-Überzug nach 20 Jahren Einsatzzeit in Abhängigkeit von unterschiedlichen Expositionsbedingungen vorgenommen werden. Die festgestellten Massenverluste der Zink-Aluminium-Überzüge waren an den Untersuchungspositionen, insbesondere hinsichtlich der verschiedenen Expositionsbedingungen der Probenentnahmestellen, unterschiedlich ausgeprägt. Gabionendrähte, die im direkten Bodenkontakt standen, wiesen dabei die geringsten Restauflagen auf. Atmosphärisch beanspruchte sowie durch Vlies vor direktem Bodenkontakt geschützte Gabionendrähte zeigten dagegen etwas größere Restauflagen. Über den Drahtumfang wurden bei allen untersuchten Drahtproben stark variierende Schichtdicken festgestellt, was offensichtlich herstellungsbedingte Ursachen hat. Die Untersuchungen an der Gabionenkonstruktion haben gezeigt, dass die Annahme einer mittleren linearen Abtragsrate des metallischen Überzugs von 1 mm/a unter den hier untersuchten Bedingungen ein realistischer Wert ist. An Positionen mit direktem Bodenkontakt kann dieser Wert aber deutlich größer ausfallen, sobald sich die Aggressivität des Bodens erhöht. Eine Rotrostbildung war an den Drahtproben nicht feststellbar.
Eine der wesentlichsten Veränderungen der im Oktober 2015 erschienenen Neufassung der DIN EN 1993-1-4 findet sich im Anhang A „Werkstoffauswahl und Dauerhaftigkeit“. Im Gegensatz zur Vorgängerversion ist dieser Anhang jetzt normativ. Mit Hilfe eines Punktesystems, das die wichtigsten Einwirkungsparameter der relevanten Expositionsbedingungen berücksichtigt, wird eine Korrosionsbeständigkeitsklasse ermittelt, mit deren Hilfe man eine geeignete Legierung auswählen kann. Dieses Verfahren bietet eine zuverlässige Methode für Planer auch ohne spezielle Kenntnisse auf dem Gebiet der Korrosion bzw. der nichtrostenden Stähle. Die Arbeit geht auch auf Unterschiede sowie Gemeinsamkeiten mit der bisher in Deutschland gültigen allgemeinen bauaufsichtlichen Zulassung Z-30.3.6 ein.
Alkali-activated materials such as geopolymers are currently receiving a lot of attention because of their potential to be used as binders for concrete with advantageous engineering properties and reduced manufacturing CO2 emissions. Knowledge of the durability of steel in these concretes and related properties of alkali-activated materials is a prerequisite for their application as building materials, if they are to be used for steel reinforced elements. However, to date only limited data exists on this topic. The present contribution focuses on durability-related transport properties of geopolymer-based mortars (as model systems for concrete). We report results of accelerated carbonation, rapid chloride migration (RCM) and air permeability measurements as well as porosity data for fly ash-based geopolymer mortars, including mixes containing ground granulated blast furnace slag (GGBFS). In addition, we report polarization resistance data and corrosion potential vs. time curves for carbon steel bars embedded in two of the fly ash-based geopolymer mortars and a CEM I-based mortar (as reference).
Despite comparable total porosities, the carbonation depths, the chloride migration coefficients and the air permeabilities of the mortars differed significantly. In general, the addition of GGBFS to the binders improved the performance (decreased transport coefficients); however, this was not found to be true for the air permeability in all cases. This latter effect can be explained by drying damage of the C-(A-)S-H gel in GGBFS-containing binders. On the other hand, low transport coefficients can also be achieved by optimization of the binder formulation without the addition of GGBFS, which is also reflected in the material’s air permeability. Thus, there exists no simple correlation between air permeability (of harshly dried mortars) and durability-related transport coefficients for the studied alkali-activated materials.
The corrosion potential vs. time curves in combination with polarization resistance values reveal that the steel reinforcement in geopolymer mortars assumed a passive state. However, this happened considerably later than for steel in CEM I-based mortars. The free corrosion potential of carbon steel reinforcement in the geopolymer mortars had different values than the free corrosion potential values for the CEM I-based mortar for both the active and the passive state; possible reasons for this behavior are discussed.
Carbon-based conductive coatings are complex composites, consisting of an organic or inorganic binder and conductive carbon components, for application as anodes in impressed current cathodic protection systems of reinforced concrete structures. The electrochemical properties of three coatings at different humidity and in saturated calcium hydroxide solution were studied by electrochemical methods, such as electrochemical impedance measurement, measuring of open circuit potential over time and galvanostatic polarization.
The presented investigations have proved the principal suitability of the KorroPad method to assess the passive layer stability of stainless steels. The electrochemical mode of action could be described in detail and limitations of the applicability have been demonstrated. The influence of different surface finishes has been investigated and verified by known methods for describing corrosion resistances. As a result, the increased corrosion susceptibility of two ground surfaces has been detected, but also the corrosion resistance of further surface finishes could be confirmed.
Für Spannstähle muss im Rahmen der Überwachung die Beständigkeit gegenüber Spannungsrisskorrosion nach DIN EN ISO 15630-3 nachgewiesen werden. Die Stähle werden hierbei entweder einer konzentrierten Ammoniumthiocyanatlösung oder einer verdünnten Lösung, die eher die Verhältnisse in der Baupraxis wiedergibt, ausgesetzt. In den vergangenen Jahren gab es an Spannstäben der Festigkeitsklasse St 950/1050 immer wieder Probleme mit dem Erreichen der erforderlichen Standzeiten in der konzentrierten Lösung. Der Ringversuch sollte nun klären, inwieweit Unsicherheiten hinsichtlich der Zuverlässigkeit und Aussagekraft der Ergebnisse von Spannungsrisskorrosionsprüfungen bestehen. Außerdem sollten die Prüfanweisungen, die Prüfeinrichtungen sowie die Vor-Ort-Inspektion der Prüfstände kritisch beurteilt werden, um eventuell vorhandene versuchstechnische Probleme zu identifizieren und ggf. zu beheben.