TY - JOUR A1 - D'Accardi, E. A1 - Krankenhagen, Rainer A1 - Ulbricht, Alexander A1 - Pelkner, Matthias A1 - Pohl, Rainer A1 - Palumbo, D. A1 - Galietti, U. T1 - Capability to detect and localize typical defects of laser powder bed fusion (L‑PBF) process: an experimental investigation with different non‑destructive techniques N2 - Additive manufacturing (AM) technologies, generally called 3D printing, are widely used because their use provides a high added value in manufacturing complex-shaped components and objects. Defects may occur within the components at different time of manufacturing, and in this regard, non-destructive techniques (NDT) represent a key tool for the quality control of AM components in many industrial fields, such as aerospace, oil and gas, and power industries. In this work, the capability of active thermography and eddy current techniques to detect real imposed defects that are representative of the laser powder bed fusion process has been investigated. A 3D complex shape of defects was revealed by a μCT investigation used as reference results for the other NDT methods. The study was focused on two different types of defects: porosities generated in keyhole mode as well as in lack of fusion mode. Different thermographic and eddy current measurements were carried out on AM samples, providing the capability to detect volumetric irregularly shaped defects using non-destructive methods. KW - Additive Manufacturing KW - Defect detection KW - Thermography KW - Eddy-current testing KW - Micro-computed tomography PY - 2022 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-546680 DO - https://doi.org/10.1007/s40964-022-00297-4 SN - 2363-9512 VL - 7 IS - 6 SP - 1239 EP - 1256 PB - Springer AN - OPUS4-54668 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Pohl, Rainer A1 - Kreutzbruck, Marc A1 - Commandeur, Colin A1 - Pelkner, Matthias T1 - Development of adapted GMR-probes for automated detection of hidden defects in thin steel sheets N2 - Thin steel sheets with a thickness of 0.3 mm and less are the base materials of many everyday life products (cans, batteries, etc.). Potential inhomogeneities such as non-metallic inclusions inside the steel can lead to a rupture of the sheets when it is formed into a product such as a beverage can. Therefore, there is a need to develop automated NDT techniques to detect hidden defects and inclusions in thin sheets during production. For this purpose Tata Steel Europe and BAM, the Federal Institute for Materials Research and Testing (Germany), collaborate in order to develop an automated NDT-system. Defect detection systems have to be robust against external influences, especially when used in an industrial environment. In addition, such a facility has to achieve a high sensitivity and a high spatial resolution in terms of detecting small inclusions in the μm-regime. In a first step, we carried out a feasibility study to determine which testing method is promising for detecting hidden defects and inclusions inside ferrous thin steel sheets. Therefore, two methods were investigated in more detail – magnetic flux leakage testing (MFL) using giant magneto resistance sensor arrays (GMR) as receivers [1,2] and eddy current testing (ET). The capabilities of both methods were tested with 0.2 mm-thick steel samples containing small defects with depths ranging from 5 μm up to 60 μm. Only in case of GMRMFL-testing, we were able to detect parts of the hidden defects with a depth of 10 μm trustworthily with a SNR better than 10 dB. Here, the lift off between sensor and surface was 250 μm. On this basis, we investigated different testing scenarios including velocity tests and different lift offs. In this contribution we present the results of the feasibility study leading to first prototypes of GMR-probes which are now installed as part of a demonstrator inside a production line. T2 - Review of Progress in Quantitative Nondestructive Evaluation CY - Minneapolis, MN, USA DA - 26.07.2015 KW - GMR KW - NDT PY - 2016 DO - https://doi.org/10.1063/1.4940464 VL - 1706 SP - Article Number: 020018 PB - Amer institute physics CY - Melville, New York, USA AN - OPUS4-36100 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - GEN A1 - Pohl, Rainer A1 - Casperson, Ralf A1 - Ehlers, Henrik A1 - Pelkner, Matthias T1 - Elektromagnetische zerstörungsfreie Prüfverfahren N2 - Übersicht über die die im FB 8.4 bearbeiteten elektromagnetischen Prüfverfahren mit den Schwerpunkten bildgebende Wirbelstromprüfung, sensorbasierte Streuflussprüfung, magnetische Materialcharakterisierung und Sondenentwicklung. KW - Wirbelstromprüfung KW - Wirbelstromsenoren KW - GMR-Sensoren KW - Magnetische Materialcharakterisierung PY - 2020 SP - 1 PB - Bundesanstalt für Materialforschung und -prüfung (BAM) CY - Berlin AN - OPUS4-51033 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Casperson, Ralf A1 - Pohl, Rainer T1 - Wirbelstromprüfung am Schrein der Heiligen Drei Könige im Kölner Dom N2 - Die Wirbelstromprüfung ist ein bewährtes Verfahren zur zerstörungsfreien Prüfung elektrisch leitfähiger Objekte im oberflächennahen Bereich. Nach einer Einführung in die Wirkungsweise, Möglichkeiten und Grenzen des Wirbelstromprüfverfahrens wird am Beispiel des Schreins der Heiligen Drei Könige gezeigt, wie sich mit dem Wirbelstromprüfverfahren unterschiedliche Metalllegierungen unter einer Vergoldung zerstörungsfrei identifizieren lassen. Der Schrein der Heiligen Drei Könige wurde um das Jahr 1200 von Nikolaus von Verdun erschaffen, ca. 1750 von Johann Rohr und 1807 von Wilhelm Pollack restauriert. Die Restaurierungsarbeiten wurden jedoch nur unvollständig dokumentiert. Es ist bekannt, dass zu den unterschiedlichen Zeiten unterschiedliche Metalllegierungen als Grundmaterial unter der Vergoldung verwendet wurden. Mit Hilfe von Vergleichsproben aus einer Sammlung der Kölner Dombauverwaltung ließen sich die Akanthus-Prägungen des Schreins den verschiedenen Restaurierungen zuordnen. T2 - 1. Fachseminar Historisches trifft Materialkunde CY - Quedlinburg, Germany DA - 20.02.2024 KW - Zerstörungsfreie Prüfung KW - Wirbelstromprüfung KW - Leitfähigkeitsmessung PY - 2024 AN - OPUS4-59569 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Hetti, M. A1 - Wei, Q. A1 - Casperson, Ralf A1 - Pohl, Rainer A1 - Bartusch, M. A1 - Neu, V. A1 - Pospiech, D. A1 - Voit, B. T1 - Magnetite core-shell nanoparticles in nondestructive flaw detection of polymeric materials N2 - Nondestructive flaw detection in polymeric materials is important but difficult to achieve. In this research, the application of magnetite nanoparticles (MNPs) in nondestructive flaw detection is studied and realized, to the best of our knowledge, for the first time. Superparamagnetic and highly magnetic (up to 63 emu/g) magnetite core-shell nanoparticles are prepared by grafting bromo-end group-functionalized poly(glycidyl methacrylate) (Br-PGMA) onto surface-modified Fe3O4 NPs. These Fe3O4-PGMA NPs are blended into bisphenol A diglycidylether (BADGE) based epoxy to form homogeneously distributed magnetic epoxy nanocomposites (MENCs) after curing. The core Fe3O4 of the Fe3O4-PGMA NPs endows the MENCs with magnetic property, which is crucial for nondestructive flaw detection of the materials, while the shell PGMA promotes colloidal stability and prevents NP aggregation during curing. The eddy current testing (ET) technique is firstly applied to detect flaws in the MENCs. Through the brightness contrast of the ET image, surficial and sub-surficial flaws in MENCs can be detected, even for MENCs with low content of Fe3O4-PGMA NPs (1 wt %). The incorporation of Fe3O4-PGMA NPs can be easily extended to other polymer and polymer-based composite systems and opens a new and very promising pathway toward MNP-based nondestructive flaw detection in polymeric materials. KW - Magnetite nanoparticles KW - Poly(glycidyl methacrylate) KW - Atom transfer radical polymerization KW - Magnetic nanocomposites KW - Nondestructive flaw detection PY - 2016 DO - https://doi.org/10.1021/acsami.6b09934 SN - 1944-8244 SN - 1944-8252 VL - 8 IS - 41 SP - 28208 EP - 28215 PB - American Chemical Society CY - Washington, DC AN - OPUS4-38300 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Pelkner, Matthias A1 - Stegemann, Robert A1 - Sonntag, Nadja A1 - Pohl, Rainer A1 - Kreutzbruck, Marc T1 - Benefits of GMR sensors for high spatial resolution NDT applications N2 - Magneto resistance sensors like GMR (giant magneto resistance) or TMR (tunnel magneto resistance) are widely used in industrial applications, examples are position measurement and read heads of hard disk drives. However, in case of non-destructive testing (NDT) applications these sensors, although their properties are outstanding like high spatial resolution, high field sensitivity, low cost and low energy consumption, never reached a technical transfer to an application beyond sci-entific scope. This paper deals with benefits of GMR/TMR sensors in terms of high spatial resolution testing for different NDT applica-tions. The first example demonstrates the preeminent advantages of MR-elements compared with conventional coils used in eddy current testing (ET). The probe comprises one-wire excitation with an array of MR elements. This led to a better spatial resolution in terms of neighboring defects. The second section concentrates on MFL-testing (magnetic flux leakage) with active field excitation during and before test-ing. The latter illustrated the capability of highly resolved crack detection of a crossed notch. This example is best suited to show the ability of tiny magnetic field sensors for magnetic material characterization of a sample surface. Another example is based on characterization of samples after tensile test. Here, no external field is applied. The magnetization is only changed due to external load and magnetostriction leading to a field signature which GMR sensors can resolve. This gives access to internal changes of the magnetization state of the sample under test. T2 - QNDE 2017 CY - Provo, Utah, USA DA - 16.07.2017 KW - GMR KW - Non-destructive testing KW - Sensor arrays KW - Spatial resolution PY - 2018 SN - 978-0-7354-1644-4 DO - https://doi.org/10.1063/1.5031535 SN - 0094-243X VL - 1949 SP - UNSP 040001, 1 EP - 10 AN - OPUS4-45050 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Casperson, Ralf A1 - Pohl, Rainer A1 - Munzke, Dorit A1 - Becker, Ben A1 - Pelkner, Matthias T1 - Eddy current testing of composite pressure vessels N2 - The use of composite pressure vessels instead of conventional vessels made of steel or aluminum grew strongly over the last decade. The reason for this trend is the tremendous weight saving in case of composite vessels. However, the long-time behavior is not fully understood for filling and discharging cycles and creep strength and their influence on the CFRP coating (carbon fiber reinforced plastics) and the internal liner (steel, aluminum, or plastics). The CFRP ensures the pressure resistance while the inner liner is used as container for liquid or gas. To overcome the missing knowledge of ageing BAM started an internal project to investigate degradation of these material systems. Therefore, applicable testing methods like eddy current testing are needed. Normally, high-frequency eddy current testing (HF-ET, f > 10 MHz) is deployed for CFRP due to its low conductivity of the fiber, which is in the order of 0.01 MS/s, and the capacitive coupling between the fibers. Nevertheless, in some cases conventional ET can be applied. We show a concise summary of studies on the application of conventional ET of composite pressure vessels. T2 - QNDE 2017 CY - Provo, Utah, USA DA - 16.07.2017 KW - Eddy current KW - Composite KW - Pressure vessel PY - 2018 SN - 978-0-7354-1644-4 DO - https://doi.org/10.1063/1.5031622 SN - 0094-243X VL - 1949 SP - UNSP 160004, 1 EP - 8 AN - OPUS4-45051 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Pelkner, Matthias A1 - Commandeur, C. A1 - Erthner, Thomas A1 - Kreutzbruck, Marc A1 - Pohl, Rainer T1 - Detektion verdeckter Defekte in dünnen Stahlblechen mit GMR-Sensoren N2 - Seit einigen Jahren beschäftigt sich eine Gruppe der BAM mit der Entwicklung angepasster GMR-Sensorik (giant magneto resistance, Riesenmagnetwiderstand) für spezielle ZfP-Probleme. Hierbei wurden reichhaltige Erfahrungen auf dem Gebiet der automatisierten Streuflussprüfung mit GMR-Sensoren gesammelt (DACH-Tagung 2012, Graz). Die an der BAM gewonnenen Erkenntnisse veranlassten Europas zweitgrößten Stahlhersteller, Tata Steel Europe, mit der BAM eine Lösung für ein spezielles Prüfproblem zu finden. Ziel ist es, dünne Bleche im Fertigungsprozess auf kleinste Inhomogenitäten automatisiert zu prüfen. In einem ersten Schritt wurden durch die Tata Steel Europe 0,2 Millimeter starke Testbleche hergestellt, in die Fehler von 5-60 Mikrometern Tiefe eingebracht wurden. Anschließend wurden von der BAM vergleichende Prüfungen mit Wirbelstrom und GMR-Streufluss durchgeführt. Nur mit letzterer Methode gelang es, einen Teil der verdeckten Testfehler sicher zu detektieren. In einem zweiten Schritt wurden verschiedene Untersuchungen zur Praxistauglichkeit der Sensorik (Prüfgeschwindigkeit; Sensorabstand etc.) durchgeführt. Die Ergebnisse der verschiedenen Untersuchungen und ein möglicher Weg zum praktischen Einsatz der Sensorik werden vorgestellt. T2 - DGZfP-Jahrestagung 2014 CY - Potsdam, Germany DA - 26.05.2014 KW - GMR KW - Streufluss KW - Zerstörungsfreie Prüfung PY - 2014 UR - http://jt2014.dgzfp.de/portals/jt2014/BB/mo3b2.pdf SN - 978-3-940283-61-0 IS - DGZfP-BB 148 SP - Mo.3.B.2, 1 EP - 10 AN - OPUS4-32229 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Pelkner, Matthias A1 - Pohl, Rainer A1 - Erthner, Thomas A1 - Kreutzbruck, Marc A1 - Commandeur, C. T1 - Detection of hidden defects in thin steel plates using GMR sensor arrays N2 - At BAM, the Federal Institute for Materials Research and Testing, a group of scientists develops NDT-applications based on GMR sensor technology. In particular, the knowledge gained in the field of automated testing systems based on the magnetic flux leakage (MFL) were combined with GMR sensors to achieve high resolution testing of ferromagnetic materials. In cooperation with Europe's second largest steel producer, Tata Steel Europe, BAM is working on solutions for the detection of small inhomogeneities in thin steel plates. The objective is to incorporate an automated testing facility in a production line. Before setting up an automated testing system, a feasibility study was carried out in order to verify the ability of GMR-MFL-testing and eddy current testing (ET) for the detection of hidden defects in thin steel plates. For this purpose, Tata Steel Europe fabricated in a first step test samples of 0.2 mm thick steel plates in which defects of different depth (5 – 60 µm) were introduced. Only in case of GMR-MFL-testing, we were able to detect parts of the hidden defects trustworthily with a SNR better than 10 dB. The lift off between sensor and surface was 250 ìm. On this basis, we investigated different testing scenarios including velocity tests and different lift offs. The achieved results for this special testing problem were presented leading to a practical example for GMR-based testing and paving the way to an automated testing system in a production line. T2 - ECNDT 2014 - 11th European conference on non-destructive testing CY - Prague, Czech Republic DA - 06.10.2014 KW - Magnetic flux leakage KW - GMR KW - Hidden defects PY - 2014 UR - http://www.ndt.net/events/ECNDT2014/app/content/Paper/286_Pelkner.pdf SN - 978-80-214-5018-9 SP - 1 EP - 7 AN - OPUS4-32234 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Pohl, Rainer T1 - GMR-Streufluss-Prüfsystem zur Detektion verdeckter Fehlstellen in Feinblechen T2 - DACH-Jahrestagung 2015 CY - Salzburg, Österreich DA - 2015-05-11 PY - 2015 AN - OPUS4-33269 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Pohl, Rainer T1 - Vereinheitlichung der Software bei der Schienenprüfung mit Wirbelstrom T2 - ZfP im Eisenbahnwesen CY - Wittenberge, Germany DA - 2014-03-18 PY - 2014 AN - OPUS4-30512 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Casperson, Ralf A1 - Pohl, Rainer T1 - Zerstörungsfreie Prüfung mit Wirbelstrom zur Qualitätskontrolle beim Schienenschleifen N2 - In verlegten Eisenbahnschienen entstehen durch Rollkontaktermüdung rissartige Oberflächenschädigungen. Der geschädigte Bereich wird im Rahmen der Schieneninstandhaltung regelmäßig abgetragen, um zu verhindern, dass durch unkontrolliertes Risswachstum schwerwiegende Schienenschäden entstehen. Hierzu werden u. A. Schienenschleifzüge eingesetzt. Früher wurde das Schleifergebnis einer Sichtprüfung unterzogen. Es kommt jedoch vor, dass Risse in der Oberfläche beim Schleifen zugeschmiert oder durch Schleifriefen maskiert werden, so dass diese nicht mehr sichtbar obwohl noch vorhanden sind. An der BAM wurde ein Wirbelstromprüfsystem entwickelt, das sowohl zur Planung als auch der Qualitätskontrolle der Schieneninstandhaltung genutzt wird. Dieses System ist in der Lage, Schädigungen zu detektieren und deren Schädigungstiefe zu bestimmen, selbst dann, wenn optisch keine Schädigung zu erkennen ist. Seit 2013 ist die Qualitätskontrolle mit Wirbelstromprüfsystemen bei der Schienenbearbeitung fest im Regelwerk der DB verankert. T2 - Schleiftagung 2017 CY - Stuttgart, Germany DA - 01.02.2017 KW - Zerstörungsfreie Prüfung KW - Wirbelstromprüfung KW - Schienenschleifen PY - 2017 AN - OPUS4-40379 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -