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Eingeladener Vortrag
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Aufgrund der extremen Betriebsbedingungen in Geothermieanlagen des Norddeutschen Beckens ist die Werkstoffauswahl für ober- und untertägige Komponenten entscheidend für einen sicheren und zuverlässigen Betrieb. Im Rahmen der Werkstoffqualifizierung wurden mittels klassischer Auslagerung und elektrochemischen Untersuchungen an zwei hochlegierten Stählen deren Einsatzgrenzen für die Förderung von hochsalinarem Aquiferfluid der geothermischen Tiefbohrung in Groß Schönebeck ermittelt. Die Ergebnisse und daraus resultierende Schlussfolgerungen werden hier vorgestellt.
Corrosion resistance of duplex stainless Steel UNS S32101 and super austenitic stainless Steel UNS NO8031 (alloy 31) was investigated in crevice conditions in a corrosive environment (saline brine, T = 60 °C, C02-flow rate 3-5 L/h, normal pressure) using electrochemical and metallographic techniques. Rectangular rubber was used to form a metal/non-metal-crevice configuration.
Potentiodynamic measurements have been carried out in order to determine critical pitting and repassivation potentials. Potentiostatic measurements at different Potentials have been performed and the dependence of pit depth on the potential applied in crevice conditions was investigated. It was shown that the repassivation potential of duplex stainless Steel S32101 coincides with its corrosion potential. Strang pitting corrosion occurred after potentiodynamic measurements with pit depths up to 100 pm. Otherwise, stainless Steel UNS NO8031 shows about 0.5 V difference between the free corrosion potential and the repassivation potential and did not show any signs of pitting corrosion after polarization measurements. Slight rouging effects have been observed. By potentiostatic measurements on duplex stainless Steel S32101 potentials slightly more positive than the corrosion Potentials causing strong pitting corrosion, and pit depths up to 650 pm were measured. Super austenitic stainless Steel UNS NO8031 did not exhibit any signs of pitting corrosion even by applying potentials much more positive than the corrosion potential.
Within the project COORAL (German acronym for ''C02 purity for capture and storage") studies on pipeline steels exposed to circulating supercritical impure C02 have been carried out. For this purpose, a loop consisting of compressors, flow meter and two autoclaves was constructed. In order to simulate the real conditions in pipelines, impurities such as H20, CO, S02, N02 and 02 were added to the C02 stream before compression. Exposure experiments were carried out with Steel specimens placed in the autoclaves. Carbon Steel L360NB, pure iron X20Cr13, X46Cr13, X2CrMnNiN22-5-2 and alloy 31 have been exposed to circulating (flow rate 4 L/min) supercritical impure C02 for one week at 60 °C and 10 MPa Surface analysis and weight loss experiments in order to determine the corrosion products and the corrosion rates showed that the impurities cause corrosion problems. Slight general corrosion by L360NB and soft iron was observed. The initiation of pitting corrosion was observed at the surfaces of the materials X20Cr13, X46Cr13, X2CrMnNiN22-5-2. No visible signs of corrosion have been observed on alloy 31.
Invited Plenary Lecture: Stainless Steels for Use in Alternative Energy Generations Facilities
(2013)
O monitoramento das estruturas de concreto possibilita que o risco de corrosão seja estimado ao longo dos anos de sua utilização. Com o conhecimento desse risco, intervenções de prevenção da corrosão ou de controle da corrosão já estabelecida podem ser programadas e realizadas em períodos adequados. Na prática, o risco de corrosão é avaliado por meio da verificação periódica do estado da armadura e das alterações nas propriedades do concreto. Isso pode ser feito por meio do embutimento no concreto de cobrimento de sensores de aquisição contínua de dados. Há diferentes tipos de sensores de aquisição contínua de dados. Um dos mais conhecidos é o sensor galvânico que consta de um conjunto de barras de aço-carbono, eletricamente isoladas. Com o embutimento do sensor, essas barras ficam posicionadas em diferentes e conhecidas profundidades do concreto de cobrimento da armadura. O risco de corrosão da armadura é monitorado com a periódica medição da corrente galvânica em cada uma das barras do sensor. Essa medição, dentre outras informações do sensor galvânico foram abordadas em artigo anterior. Além do sensor galvânico, destacam-se o sensor de umidade e o de taxa de corrosão, que monitoram parâmetros importantes relacionados ao estabelecimento e evolução de processo corrosivo das armaduras. A seguir esses sensores são apresentados, bem como o sensor de fibra óptica, o qual apresenta algumas vantagens em relação aos demais mencionados, embora ainda seja de uso restrito.
Within the last years the use of geothermal energy as feasible energy source has risen and is going to replace fossil fuel supply more and more. Nevertheless, Service conditions in geothermal facilities are due to the Chemical composition of hydrothermal fluids and temperatures, in many cases, extreme in terms of corrosion. Since the construction of geothermal power plants shall be economical with maximum life Service, materials selection based on preliminary material qualification is essential to guarantee a secure and reliable Operation ofthose facilities.
The materials selection depends on the location of a power plant respectively on the Chemical composition of the produced aquifer fluid. The duplex Steel is often used as allround solution not only for the construction of geothermal power plants, because of its combination of good mechanical and corrosion properties and its lower costs compared to other highly alloyed materials. But there are limits for the use of the duplex-steel 1.4462 regarding its corrosion behavior, with which this contribution deals.
The limitations of suitability of duplex steel 1.4462 in the geothermal fluids of Molasse Basin and Upper Rhine Graben obtained by means of electrochemical measurements and exposure tests are presented below. While 1.4462 in the artificial Molasse Basin Fluid shows an excellent corrosion resistance against pitting and uniform corrosion it presents low corrosion resistance in the artificial Upper Rhine Graben Fluid due to the difference in salinity. Besides it shows a limited corrosion resistance concerning crevice corrosion.