TY - CONF A1 - Klewe, Tim A1 - Völker, Tobias A1 - Landmann, M. A1 - Wilsch, Gerd A1 - Kruschwitz, Sabine T1 - Laser-based sorting of construction and demolition waste for the circular economy N2 - Closed material cycles and unmixed material fractions are required to achieve high recovery and recycling rates in the building industry. The growing diversity of construction and demolition waste is leading to increasing difficulties in separating the individual materials. Manual sorting involves many risks and dangers for the executing staff and is merely based on obvious, visually detectable differences for separation. An automated, sensor-based sorting of these building materials could complement or replace this practice to improve processing speed, recycling rates, sorting quality, and prevailing health conditions. A joint project of partners from industry and research institutions approaches this task by investigating and testing the combination of laser-induced breakdown spectroscopy (LIBS) and visual (VIS)/ near-infrared (NIR) spectroscopy. Joint processing of information (data fusion) is expected to significantly improve the sorting quality of various materials like concrete, main masonry building materials, organic components, etc., and may enable the detection and separation of impurities such as SO3-containing building materials (gypsum, aerated concrete, etc.). Focusing on Berlin as an example, the entire value chain will be analyzed to minimize economic/technological barriers and obstacles at the cluster level and to sustainably increase recovery and recycling rates. First LIBS measurements show promising results in distinguishing various material types. A meaningful validation shall be achieved with further practical samples. Future works will investigate the combination of LIBS and VIS/NIR spectroscopy in a fully automated measurement setup with conveyor belt speeds of 3 m/s. T2 - 6th fib Congress 2022 CY - Oslo, Norway DA - 12.06.2022 KW - LIBS KW - Recycling KW - Construction and demolition waste KW - Sorting PY - 2022 AN - OPUS4-55120 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Wilsch, Gerd A1 - Völker, Tobias A1 - Klewe, Tim A1 - Kruschwitz, Sabine T1 - Laser Induced Breakdown Spectroscopy – A Tool for Imaging the Chemical Composition of Concrete N2 - One of the most common causes of damage is the ingress of harmful ions into the concrete, which can lead to deterioration processes and affect structural performance. Therefore, the increasingly aging infrastructure is regularly inspected to assess durability. Regular chemical analysis can be useful to determine the extent and evolution of ion ingress and to intervene in a timely manner. This could prove more economical than extensive repairs for major damage, particularly for critical infrastructure. In addition to already established elemental analysis techniques in civil engineering such as potentiometric titration or X-ray fluorescence analysis, laser-induced breakdown spectroscopy (LIBS) can provide further important complementary information and benefits. The possibilities of LIBS are demonstrated using the example of a drill core taken from a parking garage. T2 - 6th International Conference on Concrete Repair, Rehabilitation and Retrofitting CY - Kapstadt, South Africa DA - 03.10.2022 KW - LIBS KW - Concrete KW - Chlorine PY - 2022 UR - https://iccrrr2022.org/downloads SP - 126 EP - 127 AN - OPUS4-56062 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Strangfeld, Christoph A1 - Klewe, Tim T1 - Comparison of the Calcium Carbide Method and Darr Drying to Quantify the Amount of Chemically Bound Water in Early Age Concrete N2 - Hydration is the exothermic reaction between anhydrous cement and water, which forms the solid cement matrix of concrete. Being able to evaluate the hydration is of high interest for the use of both conventional and more climate-friendly building materials. The experimental monitoring is based on temperature or moisture measurements. The first needs adiabatic conditions, which can only be achieved in laboratory. The latter is often measured comparing the weight of the material sample before and after oven drying, which is time-consuming. This study investigates the moisture content of two cement-based and two calcium sulphate based mixtures for the first 90 days by using the calcium carbide method and oven drying at 40 °C and 105 °C (Darr method). Thereby, the amount of chemically bound water is determined to derive the degree of hydration. The calcium carbide measurements highly coincide with oven drying at 40 °C. The calcium carbide method is therefore evaluated as a suitable alternative to the time-consuming Darr drying. The prompt results are seen as a remarkable advantage and can be obtained easily in laboratory as well as in the field. KW - Concrete KW - Hydration KW - Material moisture KW - Calcium carbide method KW - Bound water KW - Darr method KW - Oven drying KW - Chemisorption KW - Physisorption PY - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-564519 VL - 15 IS - 23 SP - 1 EP - 16 PB - MDPI AN - OPUS4-56451 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim A1 - Strangfeld, Christoph A1 - Ritzer, Tobias A1 - Kruschwitz, Sabine T1 - Feuchtemessung an Fußböden mit Radar und Neutronensonde – Ein Vergleich von Labor und Praxis N2 - Nach Auftreten eines Feuchteschadens in Fußbodenaufbauten sind sowohl die zeitnahe Feststellung als auch Eingrenzung betroffener Bereiche von besonderer Bedeutung. So können erforderliche Renovierungsmaßnahmen effizient geplant und mögliche Folgeschäden vermieden werden. Zur messtechnischen Beantwortung dieser Fragestellungen werden bereits seit vielen Jahren Neutronensonden eingesetzt, welche allerdings keine Tiefenzuordnung des schadensträchtigen Flüssigwassers zulassen. Hierzu müssen mit hohem zeitlichem und finanziellem Aufwand zerstörende Sondierungsbohrungen vorgenommen werden, welche zukünftig durch den parallelen Einsatz des Radarverfahrens vermieden werden könnten. In systematischen Laborstudien wurden gängige Feuchteschäden an häufig anzutreffenden Fußbodenaufbauten simuliert und deren Einfluss auf das Messsignal untersucht. Hierbei kamen Zementund Anhydritestriche, sowie die Dämmmaterialen Styropor, Styrodur, Glaswolle und Perlite-Schüttung mit variierenden Schichtdicken zum Einsatz, um die vielfältigen Konfigurationen der Praxis abzubilden. Für den gewonnenen Datensatz konnten geeignete Signalmerkmale extrahiert werden, welche mithilfe multivariater Datenauswertung eine Klassifizierung des vorliegenden Schadenfalls zulassen. Zum Ende des Forschungsvorhabens steht besonders die Anwendbarkeit der entwickelten Methoden für die Praxis im Fokus. Hierzu wurden Messungen an realen Schadensfällen durchgeführt und deren Ergebnisse mit den Laboruntersuchungen verglichen. Hierbei stellten sich variierende Schichtdicken, sowie vorkommende Fußbodenheizungen und Armierungsgitter als mögliche Fehlerquellen für eine vollständig automatisierte Auswertung heraus. T2 - 81. Jahrestagung der Deutschen Geophysikalischen Gesellschaft (DGG) CY - Online meeting DA - 01.03.2021 KW - Radar KW - Feuchte KW - Fußboden KW - Neutronensonde PY - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-522227 AN - OPUS4-52222 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim A1 - Strangfeld, Christoph A1 - Ritzer, Tobias A1 - Kruschwitz, Sabine T1 - Classification of moisture damage in layered building floors with GPR and neutron probe N2 - In 2019, 3.1 billion Euro of damage was caused by piped water, accounting for the largest share (53%) of building insurance claims in Germany. In the event of damage, the accurate determination and localization of water ingress is essential to plan for and perform efficient renovations. Neutron probes are already applied successfully on building floors to localize the source of damage and other affected areas. However, additional information about the depth of moisture penetration can only be obtained by the destructive extraction of drilling cores, which is a time- and cost-intensive procedure. With its high sensitivity to water and fast measurement procedure, Ground Penetrating Radar (GPR) can serve as a suitable extension to the neutron probe, enabling more precise characterization of common forms of moisture damage. In this research project, we study the influence of common types of moisture damage in differing floor constructions using GPR and a neutron probe. A measurement setup with interchangeable layers is used to vary the screed material (cement or anhydrite) and insulation material (Styrofoam, Styrodur, glass wool, perlite), as well as the respective layer thickness. Every configuration is measured for the following main cases: 1) dry state; 2) with a damaged insulation layer and 3) a damaged screed layer. The evaluation is focused on the extraction of distinctive signal features for GPR, which can be used to classify the underlying case of damage. Furthermore, possible combinations of these features are investigated using multivariate data analysis and machine learning in order to evaluate the influence of different floor constructions. To validate the developed methods, practical measurements on real damage cases in Germany are carried out and compared to reference data obtained from drilling cores. T2 - EGU 21 General Assembly CY - Online meeting DA - 19.04.2021 KW - Radar KW - Moisture KW - Building floors PY - 2021 AN - OPUS4-52532 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Klewe, Tim A1 - Strangfeld, Christoph A1 - Ritzer, Tobias A1 - Kruschwitz, Sabine T1 - Combining Signal Features of Ground-Penetrating Radar to Classify Moisture Damage in Layered Building Floors N2 - To date, the destructive extraction and analysis of drilling cores is the main possibility to obtain depth information about damaging water ingress in building floors. The time- and costintensive procedure constitutes an additional burden for building insurances that already list piped water damage as their largest item. With its high sensitivity for water, a ground-penetrating radar (GPR) could provide important support to approach this problem in a non-destructive way. In this research, we study the influence of moisture damage on GPR signals at different floor constructions. For this purpose, a modular specimen with interchangeable layers is developed to vary the screed and insulation material, as well as the respective layer thickness. The obtained data set is then used to investigate suitable signal features to classify three scenarios: dry, damaged insulation, and damaged screed. It was found that analyzing statistical distributions of A-scan features inside one B-scan allows for accurate classification on unknown floor constructions. Combining the features with multivariate data analysis and machine learning was the key to achieve satisfying results. The developed method provides a basis for upcoming validations on real damage cases. KW - Radar KW - Material Moisture KW - Non-destructive testing KW - Signal Features KW - Civil Engineering KW - Machine Learning PY - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-533606 VL - 11 IS - 19 SP - 8820 PB - MDPI AN - OPUS4-53360 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim A1 - Völker, Tobias A1 - Götz, J. A1 - Landmann, M. A1 - Wilsch, Gerd A1 - Kruschwitz, Sabine T1 - Sorting of construction and demolition waste by combining LIBS with NIR spectroscopy N2 - In a joint project of partners from industry and research, the automated recycling of construction and demolition waste (CDW) is investigated and tested by combing laser-induced breakdown spectroscopy (LIBS) and near-infrared (NIR) spectroscopy. Joint processing of information (data fusion) is expected to significantly improve the sorting quality of various materials like concrete, main masonry building materials, organic components, etc., and may enable the detection and separation of impurities such as SO3-cotaining building materials (gypsum, aerated concrete, etc.). The project focuses primarily on the Berlin site to analyze the entire value chain, minimize economic/technological barriers and obstacles at the cluster level, and sustainably increase recovery and recycling rates. First measurements with LIBS and NIR spectroscopy show promising results in distinguishing various material types and indicate the potential for a successful combination. In addition, X-ray fluorescence (XRF) spectroscopy is being performed to obtain more information about the quantitative elemental composition of the different building materials. Future work will apply the developed sorting methodology in a fully automated measurement setup with CDW on a conveyor belt. T2 - NDT-CE 2022 CY - Zurich, Switzerland DA - 16.08.2022 KW - LIBS KW - NDT KW - Circular economy KW - Recycling KW - Material classification PY - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-555531 UR - http://www.ndt.net/?id=27220 VL - 2022/09 SP - 1 EP - 9 PB - NDT.net CY - Bad Breisig AN - OPUS4-55553 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim A1 - Völker, Tobias A1 - Götz, Jenny A1 - Landmann, Mirko A1 - Wilsch, Gerd A1 - Kruschwitz, Sabine T1 - Sorting of construction and demolition waste by combining LIBS with NIR spectroscopy N2 - In a joint project of partners from industry and research, the automated recycling of construction and demolition waste (CDW) is investigated and tested by combing laser-induced breakdown spectroscopy (LIBS) and near-infrared (NIR) spectroscopy. Joint processing of information (data fusion) is expected to significantly improve the sorting quality of various materials like concrete, main masonry building materials, organic components, etc., and may enable the detection and separation of impurities such as SO3-cotaining building materials (gypsum, aerated concrete, etc.). The project focuses primarily on the Berlin site to analyze the entire value chain, minimize economic/technological barriers and obstacles at the cluster level, and sustainably increase recovery and recycling rates. First measurements with LIBS and NIR spectroscopy show promising results in distinguishing various material types and indicate the potential for a successful combination. In addition, X-ray fluorescence (XRF) spectroscopy is being performed to obtain more information about the quantitative elemental composition of the different building materials. Future work will apply the developed sorting methodology in a fully automated measurement setup with CDW on a conveyor belt. T2 - NDT-CE 2022 - The International Symposium on Nendestructive Testing in Civil Engineering CY - Zurich, Switzerland DA - 16.08.2022 KW - Material classification KW - Circular economy KW - LIBS KW - Recycling PY - 2022 AN - OPUS4-55554 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim A1 - Völker, Tobias A1 - Landmann, Mirko A1 - Wilsch, Gerd A1 - Kruschwitz, Sabine T1 - Laser-based sorting of construction and demolition waste for the circular economy N2 - Closed material cycles and unmixed material fractions are required to achieve high recovery and recycling rates in the building industry. The growing diversity of construction and demolition waste is leading to increasing difficulties in separating the individual materials. Manual sorting involves many risks and dangers for the executing staff and is merely based on obvious, visually detectable differences for separation. An automated, sensor-based sorting of these building materials could complement or replace this practice to improve processing speed, recycling rates, sorting quality, and prevailing health conditions. A joint project of partners from industry and research institutions approaches this task by investigating and testing the combination of laser-induced breakdown spectroscopy (LIBS) and visual (VIS)/ near-infrared (NIR) spectroscopy. Joint processing of information (data fusion) is expected to significantly improve the sorting quality of various materials like concrete, main masonry building materials, organic components, etc., and may enable the detection and separation of impurities such as SO3-containing building materials (gypsum, aerated concrete, etc.). Focusing on Berlin as an example, the entire value chain will be analyzed to minimize economic/technological barriers and obstacles at the cluster level and to sustainably increase recovery and recycling rates. First LIBS measurements show promising results in distinguishing various material types. A meaningful validation shall be achieved with further practical samples. Future works will investigate the combination of LIBS and VIS/NIR spectroscopy in a fully automated measurement setup with conveyor belt speeds of 3 m/s. T2 - 6th fib Congress 2022 CY - Oslo, Norway DA - 12.06.2022 KW - LIBS KW - Data fusion KW - Circular economy KW - Recycling KW - Material classification PY - 2022 SP - 1 EP - 7 AN - OPUS4-55555 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim A1 - Kruschwitz, Sabine A1 - Wöstmann, Jens T1 - Overview of NDT techniques for moisture measurements in building materials N2 - Overview of NDT techniques for moisture measurements in building materials used in department 8 of BAM. T2 - ENBRI Expert Workshop "Hygrothermal testing - a necessity to guarantee durable buildings" CY - Brussels, Belgium DA - 21.09.2022 KW - Moisture KW - Building materials KW - GPR KW - NMR KW - Microwave PY - 2022 AN - OPUS4-55817 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim T1 - Zerstörungsfreie Lokalisierung von Flüssigwasser in Schichtaufbauten - Projektvorstellung N2 - Da derzeit keine zerstörungsfreie Alternative zur Lokalisierung von Leitungswasserschäden in Fußböden existiert, werden in der Regel unter hohem zeitlichen und finanziellen Aufwand Sondierungsbohrungen vorgenommen, um das entnommene Material im Labor thermo-gravimetrisch zu untersuchen. Dabei nehmen Leitungswasserschäden mit rd. 2,6 Milliarden Euro jährlich den deutlich größten Posten bei Gebäudeversicherungen ein. Für derartige Fragestellungen werden seit einigen Jahren Neutronensonden eingesetzt. Mit diesem Verfahren ist es möglich, sich einen Überblick über die Gesamtwassermenge in einem definierten Baustoffvolumen zu verschaffen, jedoch kann flüssiges und chemisch gebundenes Wasser nicht unterschieden werden. Daher werden die Messdaten mit den Ergebnissen der Sondierungsbohrungen kalibriert. So können auch große Flächen wie Industriefußböden in relativ kurzer Zeit größtenteils zerstörungsfrei untersucht werden. Da die integrale Messweise der Neutronensonde allerdings keine Tiefenzuordnung eines gefundenen Feuchteschadens zulässt, muss auch diese Information über die Bohrkerne generiert werden. Die Idee des Projekts ist, durch den parallelen Einsatz des Radarverfahrens in Zukunft auf Sondierungsbohrungen verzichten zu können. Nach der Abgrenzung trockener von feuchten Bereichen über die Neutronensonde, wird das Radarverfahren herangezogen, um typische Schadensfälle zerstörungsfrei zu unterscheiden. In systematischen Laborstudien an modular aufgebauten Referenzprobekörpern untersuchen wir die Nachweisgrenzen und Detektionswahrscheinlichkeiten der beiden Verfahren für verschiedene, häufig anzutreffende Fußbodenaufbauten. Anschließend sollen über Datenfusion und Signalverarbeitung innovative Auswertungsansätze entwickelt werden, welche die Messergebnisse von Neutronensonde und Radar automatisiert zur Gewinnung eines höheren Informationsgehalts und zur Klassifizierung der Schadensfälle kombinieren. Im Rahmen des Projekts wird die erarbeitete Vorgehensweise an real geschädigten Objekten getestet, um die Methode zu etablieren sowie Akzeptanz bei Anwendern und Eigentümern zu schaffen. Könnten durch genauere Schadenseingrenzung die Sanierungskosten um nur 4% gesenkt werden, ergäbe sich in Deutschland eine Kostenreduzierung von ca. 100 Million Euro jährlich. T2 - Bauwerksdiagnose 2018 CY - Berlin, BAM, Germany DA - 15.02.2018 KW - Feuchte KW - ZfP KW - Radar KW - Neutronensonde KW - Fußboden PY - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-446458 AN - OPUS4-44645 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim A1 - Strangfeld, Christoph A1 - Ritzer, Tobias A1 - Kruschwitz, Sabine T1 - Multivariate Auswertung von Radarsignalen zur Bestimmung typischer Feuchteschäden in Fußböden N2 - Leitungswasserschäden nahmen im Jahr 2018 mit rund 2,9 Milliarden Euro den größten Posten bei Gebäudeversicherungen ein und verursachten damit mehr Kosten, als Elementar-, Feuer, Sturm- und Hagelschäden zusammen. Neutronensonden helfen hier bereits bei der horizontalen Eingrenzung eines Feuchteschadens, wobei die vertikale Unterscheidung betroffener Schichten nur durch die zerstörende Entnahme von Bohrkernen vorgenommen werden kann. Der parallele Einsatz des Radarverfahrens soll hier mit seiner hohen Sensitivität für Wasser künftig zu einem erhöhten Informationsgehalt beitragen und eine kostengünstigere Schadensdiagnose und Planung der Reparaturmaßnahmen ermöglichen. In einem laufenden Forschungsvorhaben werden in systematischen Laborstudien gängige Schadensfälle an häufig anzutreffenden Fußbodenaufbauten simuliert und deren Einfluss auf das Radarverfahren untersucht. Die Bewertung der Schadensträchtigkeit zugeführter Wassermengen erfolgt mithilfe von Luftfeuchtesensoren, welche in der Dämmebene platziert sind. Beim Aufbau der Fußbodenstrukturen kommen Zement- und Anhydritestriche, sowie die Dämmmaterialen Styropor, Styrodur, Glaswolle und Perlite-Schüttung mit variierenden Schichtdicken zum Einsatz. Die Robustheit der zu entwickelnden Messmethode gegenüber derartig verschiedenen und in der Praxis häufig unbekannten Schichtstrukturen stellt eine besondere Herausforderung dar und soll durch den Einsatz multivariater Datenauswertung erhöht werden. Diesbezüglich empfehlen bisherige Ergebnisse die Betrachtung der örtlichen Verteilungen qualitativer Signalmerkmale wie Amplituden, Laufzeiten und Frequenzen im Radargramm (B-Scan). Deren Eignung für reale Schadensfälle außerhalb der Laborumgebung wird hierbei stets kritisch hinterfragt und soll weiterführend an Praxiseinsätzen validiert werden. T2 - 80. Jahrestagung der Deutschen Geophysikalischen Gesellschaft CY - Online Meeting DA - 18.05.2020 KW - Radar KW - Feuchte KW - Fußboden KW - Multivariate Datenauswertung PY - 2020 AN - OPUS4-50862 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim T1 - Signalmerkmale des Radarverfahrens zur Klassifizierung von Feuchteschäden in Fußbodenaufbauten N2 - Zur Eingrenzung und Klassifizierung auftretender Feuchteschäden in geschichteten Fußbodenaufbauten wird bereits seit vielen Jahren das Neutronensondenverfahren eingesetzt. Während eine Eingrenzung des Schadens bereits durch die zerstörungsfrei aufgenommenen Messdaten möglich ist, erfordert die Klassifizierung zeit- und kostenintensive Sondierungsbohrungen. Die somit gewonnenen Tiefeninformationen zur Lage des Flüssigwassers tragen maßgeblich zur Planung der erforderlichen Reparaturarbeiten bei, was die Frage nach einer zerstörungsfreien Alternative zur vertikalen Lokalisierung von Feuchte in Fußböden stellt. Das Radarverfahren ist mit seiner hohen Sensitivität für Wasser besonders geeignet und soll künftig zur automatisierten Klassifizierung typischer Schadensfälle beitragen. In einem laufenden Forschungsvorhaben werden in systematischen Laborstudien gängige Schadensfälle an häufig anzutreffenden Fußbodenaufbauten simuliert und deren Einfluss auf die genannten Verfahren untersucht. Hierbei kommen Zement- und Anhydritestriche, sowie unterschiedliche Dämmmaterialen mit variierenden Schichtdicken zum Einsatz. Wesentlicher Bestandteil der Auswertung ist die Extraktion signifikanter Signalmerkmale des Radarverfahrens, welche Rückschlüsse auf den Schadensfall und ggf. die Wassermenge zulassen. Die Robustheit gegenüber unterschiedlichsten Aufbauten mit wechselnden Schichtdicken und Materialien steht hierbei besonders im Fokus. Erste Ergebnisse empfehlen die Betrachtung der örtlichen Verteilung bestimmter Signalmerkmale im Radargramm (B-Scan), um eine Klassifizierung der Schadensfälle vornehmen zu können. T2 - Fachtagung Bauwerksdiagnose 2020 CY - Berlin, Germany DA - 13.02.2020 KW - Radar KW - Feuchte KW - Signalmerkmale KW - Klassifikation PY - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-504143 AN - OPUS4-50414 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim A1 - Strangfeld, Christoph A1 - Ritzer, Tobias A1 - Kruschwitz, Sabine ED - Littmann, K. T1 - Zerstörungsfreie Lokalisierung von Flüssigwasser in Fußböden durch Kombination von Radar und Neutronensonde N2 - Das Neutronensondenverfahren wird bereits seit vielen Jahren erfolgreich zur Eingrenzung und Quantifizierung auftretender Feuchteschäden an Fußböden eingesetzt. Hierzu bedarf es jedoch einer Vielzahl zerstörender Sondierungsbohrungen, welche die gewonnenen Messdaten kalibrieren und eine Tiefenzuordnung des Flüssigwassers zulassen. Dadurch entsteht ein zeitlicher und finanzieller Aufwand, der durch den parallelen Einsatz des elektromagnetischen Radarverfahrens vermieden werden könnte. Mit seiner hohen Sensitivität für Wasser bietet diese Messmethode die Möglichkeit der vertikalen Lokalisierung von Feuchte, was zu einer automatisierten Klassifizierung typischer Schadensfälle beitragen soll. In einem laufenden Forschungsvorhaben werden in systematischen Laborstudien gängige Schadensfälle an häufig anzutreffenden Fußbodenaufbauten simuliert und deren Einfluss auf die genannten Verfahren untersucht. Hierbei kommen Zement- und Anhydritestriche, sowie unterschiedliche Dämmmaterialen mit variierenden Schichtdicken zum Einsatz. Wesentlicher Bestandteil der Auswertung ist die Extraktion signifikanter Signalmerkmale des Radarverfahrens, welche Rückschlüsse auf den Schadensfall und ggf. die Wassermenge zulassen. Weiterführend sollen die Kombinationsmöglichkeiten der verschiedenen Signalmerkmale und der Neutronensondendaten durch Methoden der multivariaten Datenauswertung und des maschinellen Lernens geprüft werden. Die Unabhängigkeit gegenüber wechselnden Schichtdicken und Materialien steht hierbei besonders im Fokus und soll anhand der erzielten Ergebnisse evaluiert werden. T2 - 10. Kolloquium Industrieböden - Fachtagung über stark beanspruchte Bodenkonstruktionen CY - Esslingen, Germany DA - 03.03.2020 KW - Radar KW - Feuchte KW - Neutronensonde PY - 2020 SN - ISBN 978-3-8169-8505-1 (ePDF) SN - ISBN 978-3-8169-3505-6 (Print) SP - 179 EP - 185 PB - Expert Verlag CY - Tübingen AN - OPUS4-50589 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim A1 - Strangfeld, Christoph A1 - Ritzer, Tobias A1 - Kruschwitz, Sabine T1 - Nondestructive determination of moisture damage in layered building floors N2 - In this ongoing research project, we study the influence of moisture damage on Ground Penetrating Radar (GPR) in different floor constructions. For this purpose, a measurement setup with interchangeable layers is developed to vary the screed material (cement or anhydrite) and insulation material (glass wool, perlite, expanded and extruded polystyrene), as well as the respective layer thickness. The evaluation of the 2 GHz common-offset radar measurements is focused on the extraction of distinctive signal features that can be used to classify the underlying case of damage without any further information about the hidden materials or layer thicknesses. In the collected dataset, we analyze the horizontal distribution of A-scan features in corresponding B-scans to detect water in the insulation layer. Furthermore, possible combinations of these features are investigated with the use of multivariate data analysis and machine learning (logistic regression) in order to evaluate the mutual dependencies. In this study, the combination of an amplitude- and frequency-based feature achieved an accuracy of 93.2 % and performed best to detect a damage in floor insulations. T2 - 18th International Conference on Ground Penetrating Radar CY - Meeting was canceled DA - 14.07.2020 KW - Radar KW - Feuchte KW - Moisture KW - Building floors PY - 2020 U6 - https://doi.org/10.1190/gpr2020-045.1 SN - 2159-6832 SP - 164 EP - 167 AN - OPUS4-51575 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Klewe, Tim A1 - Strangfeld, Christoph A1 - Kruschwitz, Sabine T1 - Review of moisture measurements in civil engineering with ground penetrating radar – Applied methods and signal features N2 - When applying Ground Penetrating Radar (GPR) to assess the moisture content of building materials, different medium properties, dimensions, interfaces and other unknown influences may require specific strategies to achieve useful results. Hence, we present an overview of the various approaches to carry out moisture measurements with GPR in civil engineering (CE). We especially focus on the applied Signal features such as time, amplitude and frequency features and discuss their limitations. Since the majority of publications rely on one single feature when applying moisture measurements, we also hope to encourage the consideration of approaches that combine different signal features for further developments. KW - Ground Penetrating Radar KW - Moisture KW - Civil engineering KW - Signal features PY - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-520684 VL - 278 SP - 122250 PB - Elsevier Ltd. AN - OPUS4-52068 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - GEN A1 - Strangfeld, Christoph A1 - Klewe, Tim ED - Rizzo, P. ED - Milazzo, A. T1 - Hygrometric Moisture Measurements Based on Embedded Sensors to Determine the Mass of Moisture in Porous Building Materials and Layered Structures N2 - Subfloors are layered structures, consisting largely of porous building materials, such as screed. They are often suffering damage from tap water leakage, which is a typical problem in buildings, and which has largely contributed to repair costs of almost 3 billion Euro in 2018 alone in Germany. In this context, especially mould plays a role, which is both destroying the structure and posing severe health risks. To determine the damaging effects of moisture, it is necessary to know the respective processes occurring in building materials, especially to quantify the amount of moisture and its progress in the material. In this study, humidity sensors are used to derive the material moisture experimentally. Capacitive sensors recording the relative humidity are embedded into the screed and in the insulation materials such as expanded polystyrene, extruded polystyrene, perlite and glass wool. For the application in screed, the sensors need to be shielded against the aggressive alkaline materials. To ensure an appropriate exchange with the environment, a permeable membrane is requested. Different membrane materials have been investigated regarding their robustness and their permeability. In the first experimental setup, two humidity sensor arrays with seven individual sensors are embedded in homogeneous screed samples. The measured corresponding relative humidity of the screed is converted to the material moisture based on the approach of Hillerborg. In a second experimental setup, a layered structure of a complete subfloor is built in a box of 0.8 m times 0.8 m. The humidity sensors are positioned in the different insulation materials of various thicknesses. By adding water, leakage damage is simulated and its progress and effect is investigated experimentally. The investigations point at the question if the observed moisture is able to generate damage such as mould. The moisture and corresponding humidity values are discussed. It will be shown that this low-cost hygrometric approach can be used easily for moisture monitoring of screed and insulation materials as well KW - Moisture monitoring KW - Material moisture KW - Building materials KW - Embedded humidity sensors PY - 2021 U6 - https://doi.org/10.1007/978-3-030-64594-6_22 VL - 1 SP - 213 EP - 225 PB - Springer Nature CY - Cham AN - OPUS4-52013 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Ritzer, Tobias A1 - Klewe, Tim A1 - Strangfeld, Christoph A1 - Kruschwitz, Sabine T1 - Radarwellen und Neutronenstrahlung - Die Lösung für den Großschaden? Ergebnisse aus dem Forschungsprojekt zur Feuchtebestimmung von schwimmenden Bodenaufbauten N2 - Die Idee des Dissertationsprojekts ist der parallele Einsatz des Radarverfahrens und der Neutronensonde zur Lokalisierung von Feuchteschäden in Fußbodenaufbauten. Hierbei soll die integrale Messweise der Neutronensonde durch die vertikale Information des Radarsignals ergänzt werden, um zukünftig auf zerstörende Sondierungsbohrungen verzichten zu können. Primäres Ziel ist eine automatisierte und zerstörungsfreie Klassifizierung und Quantifizierung verschiedener Schadensfälle im Fußboden, welche zur Abschätzung und Auswahl des Sanierungsaufwands dienen soll. In systematischen Laborstudien an modular aufgebauten Referenzprobekörpern werden die Nachweisgrenzen der beiden Verfahren für unterschiedliche, häufig anzutreffende Fußbodenaufbauten untersucht. Hierfür wurde ein Satz verschiedenster Estrichprobekörper gefertigt und deren Hydratisierungsprozess gravimetrisch und mit den benannten Feuchtemessverfahren beobachtet. In der laufenden Auswertung konnten bereits signifikante Signalmerkmale der Radarmessungen extrahiert, sowie dessen Korrelation zum Feuchteverlauf der Proben gezeigt werden. Der modulare Aufbau der Fußbodenschichten zur Simulation von gängigen Feuchteschäden folgt im Anschluss. Über Datenfusion und Signalverarbeitung sollen so innovative Auswertungsansätze entwickelt und deren Validität an realen Schadensfällen geprüft werden. T2 - Messekongress Schadenmanagement und Assistance CY - Leipzig, Germany DA - 26.03.2019 KW - Radar KW - Neutronensonde KW - Feuchte KW - Schichtaufbau PY - 2019 AN - OPUS4-47684 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim A1 - Strangfeld, Christoph A1 - Kruschwitz, Sabine T1 - Untersuchung von Signalmerkmalen des Radarverfahrens zur Feuchtemessung an Estrichen N2 - Das elektromagnetische Radarverfahren ist mit seiner starken Sensitivität für Wasser längst eine etablierte Methode zur zerstörungsfreien Feuchtemessung. Besonders bei geophysikalischen Aufgabenstellungen erfreut es sich großer Beliebtheit, doch auch an Baustoffen wird es immer häufiger zur Ortung von schadensträchtigem Wasser eingesetzt. Somit liefert die Literatur bereits zahlreiche Signalmerkmale, welche einen Rückschluss auf die Feuchte des untersuchten Mediums zulassen. Die Eignung dieser Signalmerkmale zur Messung an Estrichen wurde in Laborstudien anhand des Austrocknungsprozesses nach der Herstellung untersucht. Hierbei kamen zement- und anhydritgebundene Estriche unterschiedlicher Schichtdicke zum Einsatz, wobei die Darr- und die Calciumcarbid-Methode als Referenzverfahren dienten. In der Auswertung erwiesen sich besonders die klassischen Merkmale aus dem Zeitbereich (Amplitude, Laufzeit) als robuste Methoden zur Feuchtemessung. Bei kleinen Schichtdicken und niedrigen Feuchtegehalten ist die Auswertung der klassischen Merkmale jedoch fehleranfällig, v.a. weil die (automatisierte) Separierung von direkter und Reflexionswelle nicht mehr eindeutig ist. Dies wirkt sich besonders auf die jeweiligen Frequenzanteile aus, die i.d.R. nicht zu den klassischen Feuchte-Merkmalen gehören. In weiterführenden Untersuchungen soll der Mehrwert durch multivariate Datenauswertung und Ansätze des maschinellen Lernens geprüft werden. Übergeordnetes Ziel ist der Einsatz des Radarverfahrens an geschichteten Fußbodenaufbauten zur automatisierten und zerstörungsfreien Lokalisierung von Feuchteschäden. T2 - 79. Jahrestagung der Deutschen Geophysikalischen Gesellschaft CY - Brunswick, Germany DA - 04.03.2019 KW - Radar KW - Feuchte KW - Fußboden KW - Signalmerkmale PY - 2019 AN - OPUS4-47525 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim T1 - Zerstörungsfreie Lokalisierung von Flüssigwasser in Schichtaufbauten N2 - Die Idee des Dissertationsprojekts ist der parallele Einsatz des Radarverfahrens und der Neutronensonde zur Lokalisierung von Feuchteschäden in Fußbodenaufbauten. Hierbei soll die integrale Messweise der Neutronensonde durch die vertikale Information des Radarsignals ergänzt werden, um zukünftig auf zerstörende Sondierungsbohrungen verzichten zu können. Primäres Ziel ist eine automatisierte und zerstörungsfreie Klassifizierung und Quantifizierung verschiedener Schadensfälle im Fußboden, welche zur Abschätzung und Auswahl des Sanierungsaufwands dienen soll. In systematischen Laborstudien an modular aufgebauten Referenzprobekörpern werden die Nachweisgrenzen der beiden Verfahren für unterschiedliche, häufig anzutreffende Fußbodenaufbauten untersucht. Hierfür wurde ein Satz verschiedenster Estrichprobekörper gefertigt und deren Hydratisierungsprozess gravimetrisch und mit den benannten Feuchtemessverfahren beobachtet. In der laufenden Auswertung konnten bereits signifikante Signalmerkmale der Radarmessungen extrahiert, sowie dessen Korrelation zum Feuchteverlauf der Proben gezeigt werden. Der modulare Aufbau der Fußbodenschichten zur Simulation von gängigen Feuchteschäden folgt im Anschluss. Über Datenfusion und Signalverarbeitung sollen so innovative Auswertungsansätze entwickelt und deren Validität an realen Schadensfällen geprüft werden. T2 - Doktorandenseminar BAM Abt. 8 CY - Berlin, Germany DA - 25.02.2019 KW - Radar KW - Feuchte KW - Fußboden KW - Signalmerkmale KW - Datenfusion KW - Maschinelles Lernen PY - 2019 AN - OPUS4-47526 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim A1 - Völker, Tobias A1 - Landmann, Mirko A1 - Kruschwitz, Sabine T1 - LIBS-ConSort: Sensor-based sorting of construction and demolition waste N2 - In construction and demolition waste (CDW) recycling, the preference to date has been to apply simple but proven techniques to sort and process large quantities of construction rubble in a short time. This contrasts with the increasingly complex composite materials and structures in the mineral building materials industry. An automated, sensor-based sorting of these building materials could complement or replace the practice of manual sorting to improve processing speed, recycling rates, sorting quality, and prevailing health conditions for the executing staff. A joint project of partners from industry and research institutions approaches this task by investigating and testing the combination of laser-induced breakdown spectroscopy (LIBS) with near-infrared (NIR) spectroscopy and visual imaging. Joint processing of information (data fusion) is expected to significantly improve the sorting quality of CDW, and may enable the detection and separation of impurities such as SO3-cotaining building materials (gypsum, aerated concrete, etc.) We present current advances and results about the methodological development combining LIBS with NIR spectroscopy and visual imaging. Here, applying data fusion proves itself beneficial to improve recognition rates. In the future, a laboratory prototype will serve as a fully automated measurement setup to allow real-time classification of CDW on a conveyor belt. T2 - V. International Conference Progress of Recycling in the Built Environment (RILEM VPRE) CY - Weimar, Germany DA - 10.10.2023 KW - NDT KW - Circular economy KW - LIBS KW - Material classification KW - Data fusion PY - 2023 AN - OPUS4-58756 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Wilsch, Gerd A1 - Völker, Tobias A1 - Klewe, Tim A1 - Kruschwitz, Sabine T1 - Laser-induced breakdown spectroscopy to investigate the chemical composition of concrete N2 - Laser-induced breakdown spectroscopy (LIBS) is a spectroscopic method for the analysis of the chemical composition of sample materials. Generally, the measurement of all elements of the periodic table is possible. In particular, light elements such as H, Li, Be, S, C, O, N and halogens can be measured. Calibration with matrix-matching standards allows the quantification of element concentrations. In combination with scanner systems, the two-dimensional element distribution can be determined. Even rough surfaces can be measured by online adjustment of the laser focus. LIBS can also be used on-site with mobile systems. Hand-held systems are available for point measurements. Common applications include the investigation of material deterioration due to the ingress of harmful ions and their interaction in porous building materials. Due to the high spatial resolution of LIBS and the consideration of the heterogeneity of concrete, the determination of precise input parameters for simulation and modelling of the remaining lifetime of a structure is possible. In addition to the identification of materials, it is also possible to assess the composition for example of hardened concrete, which involves the cement or aggregate type used. Other important fields of application are the detection of environmentally hazardous elements or the material classification for sorting heterogeneous material waste streams during dismantling. Non-contact NDT for “difficult to assess” structures as an example application through safety glass or in combination with robotics and automation are also possible. In this work, an overview of LIBS investigations on concrete is given based on exemplary laboratory and on-site applications. T2 - NDE NucCon 2023 CY - Espoo, Finland DA - 25.01.2023 KW - LIBS KW - Concrete KW - Chemical analysis PY - 2023 UR - https://www.aalto.fi/en/nde-nuccon-2023 SP - 351 EP - 359 AN - OPUS4-57303 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim A1 - Völker, Tobias A1 - Landmann, Mirko A1 - Kruschwitz, Sabine T1 - LIBS ConSort: Development of a sensor-based sorting method for constuction and demolition waste N2 - Closed material cycles and unmixed material fractions are required to achieve high recovery and recycling rates in the building industry. In construction and demolition waste (CDW) recycling, the preference to date has been to apply simple but proven techniques to process large quantities of construction rubble in a short time. This is in contrast to the increasingly complex composite materials and structures in the mineral building materials industry. Manual sorting involves many risks and dangers for the executing staff and is merely based on obvious, visually detectable differences for separation. An automated, sensor-based sorting of these building materials could complement or replace this practice to improve processing speed, recycling rates, sorting quality, and prevailing health conditions. A joint project of partners from industry and research institutions approaches this task by investigating and testing the combination of laser-induced breakdown spectroscopy (LIBS) with near-infrared (NIR) spectroscopy and visual imaging. Joint processing of information (data fusion) is expected to significantly improve the sorting quality of various materials like concrete, main masonry building materials, organic components, etc., and may enable the detection and separation of impurities such as SO3-cotaining building materials (gypsum, aerated concrete, etc.) Focusing on Berlin as an example, the entire value chain will be analyzed to minimize economic / technological barriers and obstacles at the cluster level and to sustainably increase recovery and recycling rates. We present current advances and results about the test stand development combining LIBS with NIR spectroscopy and visual imaging. In the future, this laboratory prototype will serve as a fully automated measurement setup to allow real-time classification of CDW on a conveyor belt. T2 - 21. International Conference on Building Materials (Ibausil) CY - Weimar, Germany DA - 13.09.2023 KW - Material classification KW - Data fusion KW - Circular economy KW - LIBS KW - Recycling PY - 2023 AN - OPUS4-58495 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Klewe, Tim A1 - Völker, Tobias A1 - Kruschwitz, Sabine T1 - Methodenentwicklung der sensorgestützten Sortierung von Bau- und Abbruchabfällen N2 - Beim Recycling von Bau- und Abbruchabfällen werden bisher bevorzugt einfache, aber bewährte Techniken eingesetzt, um große Mengen an Bauschutt in kurzer Zeit zu verarbeiten. Dies steht im Gegensatz zu den immer komplexer werdenden Verbundwerkstoffen und Strukturen in der Mineralbaustoffindustrie. Die manuelle Sortierung birgt viele Risiken und Gefahren für das ausführende Personal und basiert lediglich auf offensichtlichen, visuell erkennbaren Unterschieden zur Trennung. Eine automatisierte, sensorgestützte Sortierung dieser Baustoffe könnte diese Praxis ergänzen oder ersetzen, um die Verarbeitungsgeschwindigkeit, die Recyclingquoten, die Sortierqualität und die gesundheitlichen Bedingungen zu verbessern. Ein gemeinsames Projekt von Partnern aus Industrie und Forschungseinrichtungen nähert sich dieser Aufgabe, indem es die Kombination von Laser-induzierter Breakdown-Spektroskopie (LIBS) und VIS/NIR-Spektroskopie untersucht und testet. Durch die gemeinsame Verarbeitung der Informationen soll die Sortierqualität verschiedener Materialien wie Beton, Hauptmauerwerksbaustoffe, organische Bestandteile usw. deutlich verbessert werden. Darüber hinaus könnten Verunreinigungen wie SO3-haltige Baustoffe (Gips, Porenbeton usw.) erkannt und getrennt werden. Wir stellen aktuelle Fortschritte und Ergebnisse der Entwicklung eines Prüfstands vor, der LIBS mit NIR-Spektroskopie und visueller Bildgebung kombiniert. In Zukunft wird dieser Laborprototyp als vollautomatischer Messaufbau dienen, um eine Echtzeitklassifizierung von Bau- und Abbruchabfällen auf einem Förderband zu ermöglichen. T2 - Kolloquium der Leibniz-Sozietät der Wissenschaft zu Berlin E.V. - Die Ernergiewende 2.0, im Fokus: Die Stffwirtschaft CY - Potsdam, Germany DA - 09.08.2023 KW - Circular economy KW - LIBS KW - Construction and demolition waste KW - NIR KW - Material classification PY - 2023 AN - OPUS4-57640 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - GEN A1 - Klewe, Tim A1 - Strangfeld, Christoph A1 - Ritzer, Tobias A1 - Kruschwitz, Sabine T1 - GPR Dataset of Moisture Measurements on Building Floors in Laboratory and On-Site N2 - Related work Laboratory Study: Combining Signal Features of Ground-Penetrating Radar to Classify Moisture Damage in Layered Building Floors https://doi.org/10.3390/app11198820 On-Site Study: TBA Doctoral Thesis: Non-destructive classification of moisture deterioration in layered building floors using ground penetrating radar https://doi.org/10.14279/depositonce-19306 Measurement Parameters The GPR measurements were carried out with the SIR 20 from GSSI and a 2 GHz antenna pair (bandwidth 1 GHz to 3 GHz) in common-offset configuration. Each B-Scan consists of N A-Scans, each including 512 samples of a 11 ns time window. Survey lines were recorded with 250 A-Scans/ meter, which equals a 4 mm spacing between each A-Scan No Gains were applied. Folder Description: Lab_dry, Lab_insulDamage, Lab_screedDamage - each contain 168 Measurements (B-Scans) in .csv on 84 dry floors, floors with insulation damage and screed damage. - each floor setup was measured twice on two orthogonal survey lines, indicated by _Line1_ and _Line2_ in the file name. - the file names encode the building floor setup e.g. CT50XP100 describes a 50 mm cement screed with 100 mm extruded polystyrene below - the material codes are CT: cement screed, CA: anhydrite screed, EP: expanded polystyrene, XP: extruded polystyrene, GW: glass wool, PS: perlites further information can be found in the publication https://doi.org/10.3390/app11198820 OnSite_ - 5 folders containing B-Scans on 5 different practical moisture damages - the building floor setup is encoded according to the lab with an additional measurement point numbering at the start and a damage case annotation at the end of the file name with _dry, _insulationDamage and_screedDamage File Description: B-Scans, Measurement files - no header - dimension: 512 x N data point with N beeing the number of A-Scans including 512 samples of a 11 ns time window. - survey lines were recorded with 250 A-Scans/ meter, which equals a 4 mm spacing between each A-Scan Moisture References - Moist_Reference of On-Site Locations include the columns MeasPoint: Measurement point, wt%Screed: moisture content of screed layer in mass percent; wt%Insul: moisture content of insulation layer in mass percent. References were obtained by drilling cores with 68 mm diameter in the center of each survey line. - Moist_Reference_Screed of Lab data include the columns Screed: Screed material and thickness in mm, wt%Screed moisture content of screed layer in mass percent - Moist Reference_Insul of Lab data include the columns Insulation: Insulation material and thickness in mm, water addition in l: water added to the insulation layer in liters, V%Insulation: water added to the insulation layer in volume percent, RH%: resulting relative humidy in the insulation layer during measurement. These References are only avaible for Lab measurements on insulation damages. KW - GPR KW - Material Moisture KW - Building Floors KW - Laboratory KW - On-Site PY - 2024 U6 - https://doi.org/10.5281/zenodo.10776684 PB - Zenodo CY - Geneva AN - OPUS4-59609 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Klewe, Tim A1 - Völker, Tobias A1 - Landmann, Mirko A1 - Kruschwitz, Sabine T1 - LIBS‐ConSort: Development of a sensor‐based sorting method for construction and demolition waste N2 - AbstractA joint project of partners from industry and research institutions approaches the challenge of construction and demolition waste (CDW) sorting by investigating and testing the combination of laser‐induced breakdown spectroscopy (LIBS) with near‐infrared (NIR) spectroscopy and visual imaging. Joint processing of information (data fusion) is expected to significantly improve the sorting quality of various materials like concrete, main masonry building materials, organic components, etc., and may enable the detection and separation of impurities such as SO3‐cotaining building materials (gypsum, aerated concrete, etc.)Focusing on Berlin as an example, the entire value chain will be analyzed to minimize economic / technological barriers and obstacles at the cluster level and to sustainably increase recovery and recycling rates.The objective of this paper is to present current progress and results of the test stand development combining LIBS with NIR spectroscopy and visual imaging. In the future, this laboratory prototype will serve as a fully automated measurement setup to allow real‐time classification of CDW on a conveyor belt. T2 - 21st Ibausil - International Conference on Building Materials CY - Weimar, Germany DA - 13.09.2023 KW - NDT KW - Material cassification KW - Recycling KW - LIBS KW - Data fusion KW - Construction and demolition waste KW - Circular economy PY - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-590734 SN - 2509-7075 VL - 6 IS - 6 SP - 973 EP - 976 PB - Ernst & Sohn GmbH AN - OPUS4-59073 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - THES A1 - Klewe, Tim T1 - Non-destructive classification of moisture deterioration in layered building floors using ground penetrating radar N2 - In the event of moisture deterioration, rapid detection and localization is particularly important to prevent further deterioration and costs. For building floors, the layered structure poses a challenging obstacle for most moisture measurement methods. But especially here, layer-specific information on the depth of the water is crucial for efficient and effective repairs. Ground Penetrating Radar (GPR) shows the potential to generate such depth information. Therefore, the present work investigates the suitability of GPR in combination with machine learning methods for the automated classification of the typical deterioration cases (i) dry, (ii) wet insulation, and (iii) wet screed. First, a literature review was conducted to identify the most common methods for detecting moisture in building materials using GPR. Here, it especially became clear that all publications only investigated individual time-, amplitude- or frequency features separately, without combining them. This was seen as a potential aspect for innovation, as the multivariate application of several signal features can help to overcome individual weaknesses and limitations. Preliminary investigations carried out on drying screed samples confirmed the profitable use of multivariate evaluations. In addition to the general suitability and dependencies of various features, first limitations due to possible interference between the direct wave and the reflection wave could be identified. This is particularly evident with thin or dry materials, for which the two-way travel times of the reflected radar signals become shorter. An extensive laboratory experiment was carried out, for which a modular test specimen was designed to enable the variation of the material type and thickness of screed and insulation, as well as the simulation of moisture deteriorations. The data collected revealed clear differences between dry and deteriored structures within measured B-scans. These deviations were to be detected with the newly introduced B-scan features, which evaluate the statistical deviation of A-scan features within a survey line. In this way, deteriorations to unknown floor structures are recognized, regardless of the material parameters present. In a subsequent training and cross-validation process of different classifiers, accuracies of over 88 \% of the 504 recorded measurements (252 different experimental setups) were achieved. For that, the combination of amplitude and frequency features, which covered all relevant reflections of the radar signals, was particularly beneficial. Furthermore, the data set showed only small differences between dry floors and deteriored screeds for the B-scan features, which could be attributed to a homogeneous distribution of the added water in the screeds. The successfully separation of these similar feature distributions raised the suspicion of overfitting, which was examined in more detail by means of a validation with on-site data. For this purpose, investigations were carried out at five different locations in Germany, using the identical measurement method like in the laboratory. By extracting drilling cores, it was possible to determine the deterioration case for each measurement point and thus generate a corresponding reference. However, numerous data had to be sorted out before classification, since disturbances due to underfloor heating, screed reinforcements, steel beams or missing insulation prevented comparability with the laboratory experiments. Validation of the remaining data (72 B-scans) achieved only low accuracy with 53 \% correctly classified deterioration cases. Here, the previously suspected overfitting of the small decision boundary between dry setups and deteriored screeds within the laboratory proved to be a problem. The generally larger deviations within (also dry) on-site B-scans were thus frequently misclassified as screed deterioration. In addition, there were sometimes strongly varying layer thicknesses or changing cases of deterioration within a survey line, which caused additional errors due to the local limitation of the drilling core reference. Nevertheless, individual on-site examples also showed the promising potential of the applied signal features and the GPR method in general, which partly allowed a profound interpretation of the measurements. However, this interpretation still requires the experience of trained personnel and could not be automated using machine learning with the available database. Nevertheless, such experience and knowledge can be enriched by the findings of this work, which provide the basis for further research. Future work should aim at building an open GPR data base of on-site moisture measurements on floors to provide a meaningful basis for applying machine learning. Here, referencing is a crucial point, whose limitations with respect to the moisture present and its distribution can easily reduce the potential of such efforts. The combination of several reference methods might help to overcome such limitations. Similarly, a focus on monitoring approaches can also help to reduce numerous unknown variables in moisture measurements and increase confidence in the detection of different deterioration cases. KW - NDT KW - Moisture measurement KW - Ground penetrating radar KW - Building floor PY - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-591044 SP - 1 EP - 146 PB - Technische Universität Berlin CY - Berlin AN - OPUS4-59104 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -