TY - CONF A1 - Dalichow, Dirk A1 - Wilsch, Gerd A1 - Völker, Tobias T1 - Laser Induced Breakdown Spectroscopy for the Chemical Investigation of Concrete—Status of Practical Application N2 - The assessment and maintenance of reinforced concrete structures depends largely on knowledge of the chloride content and chloride ingress. Common methods are the wet chemical analysis of drill dust or powder from ground drill core segments. However, due to the homogenization process, this approach often fails to detect locally elevated chloride levels. A state-of-the-art alternative method is laser-induced breakdown spectroscopy (LIBS), which offers rapid analysis and the possibility of detecting several chemical elements simultaneously. This method is particularly characterized by its ability to measure light elements such as hydrogen, carbon or sodium. The spatial resolution of LIBS is usually 0.25 mm but can be increased to 0.1 mm or less if required. BARG, is the first commercial building materials laboratory in Germany to use LIBS in practice. The current LIBS setup enables rapid, spatial quantification of the chlorine content and at the same time the creation of element maps that visually represent the distribution of essential elements in the concrete. This method can be used to localize areas of elevated chlorine content, particularly in cracks or near reinforcing bars. With the ability to analyze several elements simultaneously, LIBS can determine measurement points associated with the cement phase and, taking into account the water content, relate the measured contents directly to the cement mass. The detailed ingress profiles determined by LIBS provide essential data for the estimation of accurate chlorine diffusion coefficients, which are crucial for probabilistic lifetime predictions. The estimation of the carbon distribution enables the localization of carbonated regions and their effect on the chloride distribution. The possibility of quantitatively determining the sulfur distribution also indicates areas that are affected by a possible sulfate attack. The presentation uses practical examples to demonstrate the possibilities and advantages of the LIBS method. In addition, the newly published leaflet B14 of the German Society for Non-Destructive Testing (DGZfP) will be presented, which describes the use of LIBS for the quantitative determination of chloride content in concrete. T2 - ICCRRR 2024 CY - Cape Town, South Africa DA - 04.11.2024 KW - Concrete KW - Chloride KW - Corrosion KW - Repair KW - Maintenance PY - 2024 DO - https://doi.org/10.1007/978-3-031-75507-1_40 VL - 59 SP - 411 EP - 420 AN - OPUS4-62480 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Dalichow, Dirk T1 - Laser Induced Breakdown Spectroscopy (LIBS) for the chemical investigation of concrete- Status of practical application and regulations in Germany N2 - The assessment and maintenance of reinforced concrete structures depends largely on knowledge of the chloride content and chloride ingress. Common methods are the wet chemical analysis of drill dust or powder from ground drill core segments. However, due to the homogenization process, this approach often fails to detect locally elevated chloride levels. A state-of-the-art alternative method is laser-induced breakdown spectroscopy (LIBS), which offers rapid analysis and the possibility of detecting several chemical elements simultaneously. This method is particularly characterized by its ability to measure light elements such as hydrogen, carbon or sodium. The spatial resolution of LIBS is usually 0.25 mm but can be increased to 0.1 mm or less if required. BARG, is the first commercial building materials laboratory in Germany to use LIBS in practice. The current LIBS setup enables rapid, spatial quantification of the chlorine content and at the same time the creation of element maps that visually represent the distribution of essential elements in the concrete. This method can be used to localize areas of elevated chlorine content, particularly in cracks or near reinforcing bars. With the ability to analyze several elements simultaneously, LIBS can determine measurement points associated with the cement phase and, taking into account the water content, relate the measured contents directly to the cement mass. The detailed ingress profiles determined by LIBS provide essential data for the estimation of accurate chlorine diffusion coefficients, which are crucial for probabilistic lifetime predictions. The estimation of the carbon distribution enables the localization of carbonated regions and their effect on the chloride distribution. The possibility of quantitatively determining the sulfur distribution also indicates areas that are affected by a possible sulfate attack. The presentation uses practical examples to demonstrate the possibilities and advantages of the LIBS method. In addition, the newly published leaflet B14 of the German Society for Non-Destructive Testing (DGZfP) will be presented, which describes the use of LIBS for the quantitative determination of chloride content in concrete. T2 - ICCRRR 2024 CY - Cape Town, South Africa DA - 04.11.2024 KW - Concrete KW - Chloride KW - Corrosion KW - Repair KW - Maintenance PY - 2024 AN - OPUS4-62481 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - de Oliveira Guilherme Buzanich, Ana A1 - Radtke, Martin A1 - Yusenko, Kirill A1 - Stawski, Tomasz A1 - Kulow, Anicó A1 - Cakir, Cafer Tufan A1 - Röder, Bettina A1 - Naese, Christoph A1 - Britzke, Ralf A1 - Sintschuk, Michael A1 - Emmerling, Franziska T1 - BAMline - A real-life sample materials research beamline N2 - With increasing demand and environmental concerns, researchers are exploring new materials that can perform as well or better than traditional materials while reducing environmental impact. The BAMline, a real-life sample materials research beamline, provides unique insights into materials’ electronic and chemical structure at different time and length scales. The beamline specializes in x-ray absorption spectroscopy, x-ray fluorescence spectroscopy, and tomography experiments. This enables real-time optimization of material properties and performance for various applications, such as energy transfer, energy storage, catalysis, and corrosion resistance. This paper gives an overview of the analytical methods and sample environments of the BAMline, which cover non-destructive testing experiments in materials science, chemistry, biology, medicine, and cultural heritage. We also present our own synthesis methods, processes, and equipment developed specifically for the BAMline, and we give examples of synthesized materials and their potential applications. Finally, this article discusses the future perspectives of the BAMline and its potential for further advances in sustainable materials research. KW - Extended X-ray absorption fine structure KW - Energy storage KW - Environmental impacts KW - Nondestructive testing techniques KW - X-ray fluorescence spectroscopy KW - Corrosion KW - Near edge X-ray absorption fine structure spectroscopy KW - X-ray absorption spectroscopy PY - 2023 DO - https://doi.org/10.1063/5.0157194 VL - 158 IS - 24 SP - 1 EP - 22 PB - AIP Publishing AN - OPUS4-57824 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -