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Typically, the near-eutectic Al-Si alloys consist of highly interconnected three-dimensional network of the eutectic Silicon (Si) and intermetallics embedded into Aluminium (Al) matrix. For further improvement of the mechanical properties of such alloys, often, one single ceramic reinforcement phase, e.g. silicon carbide (SiC) or aluminium oxide (Al2O3) in the form of fibres or particles is added. However, hybrid reinforcements (fibres and particles) can further improve wear resistance and fracture toughness, and additionally, reduce anisotropy of the material. The engineering of metal matrix composites (MMC) for specific application requirements benefits from a comprehensive knowledge of the failure behaviour. Therefore, damage evolution under compression was investigated on:
- pure near-eutectic AlSi12CuMgNi matrix alloy
- type I: matrix reinforced with random-planar oriented Al2O3 short fibres (15 vol.%)
- type II: matrix reinforced with random-planar oriented Al2O3 short fibres (7 vol.%) and additional SiC particles (15 vol.%)
The analysis of damage mechanism was carried out in two rather independent but complementary studies. First, selected sister samples of every material were exposed to quasi-static compression (traverse control). The compression tests were interrupted at different strain levels. Miniature cylinders with a diameter of 1mm were extracted from the pre-strained samples and investigated by synchrotron computed tomography (SX-µCT) with a spatial resolution of about 0.7 µm. For the pure matrix alloy, microcracks are confined to the intermetallic particles and to the eutectic Si, hence no damage was observed in the Aluminium. The composite type II revealed a more effective strain accumulation (less damage) than type I at low plastic strain (up to 5 %), but a more catastrophic damage development due to cracking of the SiC clusters at higher strain levels.
The second approach to study the damage initiation and accumulation in the materials subjected to compressive load was Acoustic Emission (AE) analysis. In this case the in-situ monitoring of the acoustic emission signal was performed during compression tests on specimens with dimension of several mm. For all three material types, AE activity set at 2% strain. Differences in AE behaviour of the three materials was proven based on AE hitrate, signal peak amplitudes as well as weighted peak frequencies (WPF). Future work focuses on combination of AE and SX-µCT aiming for more detailed knowledge on damage mechanism of metal matrix composites.
The successful shift to NDE 4.0 will not only require developing and embracing new technologies associated with the fourth industrial revolution or becoming an integral part of the overall Industry 4.0, but also developing and adopting new ways of working. It is undoubtful that people will remain in charge of the inspections. However, it is arguable if the current “procedure-following” “level I-III” paradigm can withstand the changes that come along NDE 4.0. With the increased autonomy and interconnectedness expected with NDT 4.0, the majority of traditional NDE tasks will no longer be needed. Instead, different skills, such as that of programming and adapting systems, as well as problem solving, will become vital for the inspections. Therefore, we suggest that a new paradigm is needed—one in which inspector roles and, thus, also the requirements will have to be reinvented. We expect the inspectors to be relieved from the tedious and error prone aspects of the current system and to take responsibility for increasingly complex automated systems and work in closer collaboration with other experts. Thus, we propose that the traditional inspector roles will be transformed into that of the system developer, caretaker and problem solver, each requiring a specific set of skills and assuming different responsibilities. In this talk, we will present the new roles and discuss the challenges that may arise with them.
Nanomaterials bring various benefits and have become a part of our daily lives. However, the risks emerging from nanotechnology need to be minimized and controlled at the regulatory level and therefore, there is a need for nanorisk governance. One of the prerequisites for successful nanorisk governance is the availability of high-quality data on nanomaterials and their impact with the human body and the environment. In recent decades, a countless number of publications and studies on nanomaterials and their properties have been produced due to the fast development of nanotechnology. Despite such a vast amount of data and information, there are certain knowledge gaps hindering an efficient nanorisk governance process. Knowing the state of the available data and information is an important requirement for any decision maker in dealing with risks. In the specific case of nanotechnology, where most of the risks are complex, ambiguous, and uncertain in nature, it is essential to obtain complete data and metadata, to fill knowledge gaps, and to transform the available knowledge into functional knowledge. This can become possible using a novel approach developed within the NANORIGO project (Grant agreement No. 814530) – the Knowledge Readiness Level (KaRL). In analogy to NASA’s Technology Readiness Levels (TRLs), we define KaRLs as a categorization system of data, information, and knowledge which enables transformation of data and information into functional knowledge for nanorisk governance. Our approach goes beyond the technical curation of data and metadata and involves quality and completeness filters, regulatory compliance requirements, nanorisk-related tools, and most importantly, human input (inclusion of all stakeholder groups). With the KaRL approach we also address key issues in nanotechnology such as societal and ethical concerns, circular economies and sustainability, the Green Deal, and the traceability of data, knowledge, and decisions. The KaRL approach could be used for nanorisk governance by a nanorisk governance council (NRGC), which is currently under development by three EU projects (NANORIGO, GOV4NANO, and RISKGONE).
Nanomaterials bring various benefits and have become a part of our daily lives. However, the risks emerging from nanotechnology need to be minimized and controlled at the regulatory level and therefore, there is a need for nanorisk governance. One of the prerequisites for successful nanorisk governance is the availability of high-quality data on nanomaterials and their impact with the human body and the environment. In recent decades, a countless number of publications and studies on nanomaterials and their properties have been produced due to the fast development of nanotechnology. Despite such a vast amount of data and information, there are certain knowledge gaps hindering an efficient nanorisk governance process. Knowing the state of the available data and information is an important requirement for any decision maker in dealing with risks. In the specific case of nanotechnology, where most of the risks are complex, ambiguous, and uncertain in nature, it is essential to obtain complete data and metadata, to fill knowledge gaps, and to transform the available knowledge into functional knowledge. This can become possible using a novel approach developed within the NANORIGO project (Grant agreement No. 814530) – the Knowledge Readiness Level (KaRL). In analogy to NASA’s Technology Readiness Levels (TRLs), we define KaRLs as a categorization system of data, information, and knowledge which enables transformation of data and information into functional knowledge for nanorisk governance. Our approach goes beyond the technical curation of data and metadata and involves quality and completeness filters, regulatory compliance requirements, nanorisk-related tools, and most importantly, human input (inclusion of all stakeholder groups). With the KaRL approach we also address key issues in nanotechnology such as societal and ethical concerns, circular economies and sustainability, the Green Deal, and the traceability of data, knowledge, and decisions. The KaRL approach could be used for nanorisk governance by a nanorisk governance council (NRGC), which is currently under development by three EU projects (NANORIGO, GOV4NANO, and RISKGONE).
Das Merkblatt B3 „Elektrochemische Potentialmessungen zur Detektion von Bewehrungsstahlkorrosion“ ist im Jahr 2014 in der dritten überarbeiteten Fassung erschienen. Die erste Ausgabe des Merkblattes stammte aus dem Jahr 1990. Seitdem hat sich die Potentialfeldmessung von einer Messaufgabe für Korrosionsexperten zu einer Standard-Prüfaufgabe bei der Instandsetzung von (Verkehrs-)Bauwerken und der Ausführung von KKS-Systemen entwickelt. Dieser Entwicklung trägt die Überarbeitung des Merkblatts Rechnung: Während in früheren Fassungen die Verfahrensbeschreibung im Vordergrund stand, rückten bei den Überarbeitungen sukzessiv Maßnahmen zur Sicherstellung einer einheitlichen Qualität bei der Durchführung und Auswertung der Messungen in den Vordergrund. Dieser Trend setzt sich auch in der Merkblatt-Fassung von 2014 fort. So wurde die Durchführung der Messungen gegenüber der Vorgängerversion weiter spezifiziert. Zusätzlich wurden erstmals Vorgaben zur grafischen Darstellung der Messergebnisse aufgenommen und zur statistischen Analyse von Potentialfeldmessdaten, wie sie im europäischen Ausland z.T. üblich ist, kritisch Stellung genommen. Eine weitere wesentliche Ergänzung des Merkblatts sind die Hinweise zur Ausschreibung, die in der Fassung von 2014 erstmals aufgenommen wurden und dazu beitragen sollen, bis dato häufige Missverständnisse bei der Definition der Messaufgabe und der Abgrenzung zwischen Grundleistungen und zusätzlichen Leistungen zukünftig zu vermeiden und so eine bessere Vergleichbarkeit von Angeboten und höhere Kostensicherheit für beide Seiten sicherzustellen.
Ein wesentliches Element bei der Qualitätssicherung ist die Qualifikation des Prüfpersonals. Entsprechende Fortbildungsprogramme werden von der Bundesanstalt für Materialprüfung bereits seit mehreren Jahren angeboten und sind ab 2016 auch von anderen Ausrichtern geplant. Auf diese Angebote wird in dem Merkblatt explizit hingewiesen. Eine verpflichtende Teilnahme an einer Fortbildung im Sinne einer Zertifizierung ist in dieser Fassung des Merkblatts nicht vorgesehen, soll jedoch in zukünftige Merkblatt-Fassungen aufgenommen werden.
Die Generierung und Erweiterung von Prozessverständnis ist eine Grundvoraussetzung für die Anwendung moderner Konzepte im Kontext von Industrie 4.0, wie z.B. modularisierter und intensivierter Prozesse und Anlagen. Insbesondere die direkte Anbindung von Methoden der Online-Prozessanalytik ermöglicht tiefgehende Einblicke in die tatsächlich ablaufenden Vorgänge innerhalb chemischer und pharmazeutischer Produktionsschritte und der damit einhergehenden Regelungskonzepte.
Während die industrielle Anwendung der Online-Raman-Spektroskopie bereits erfolgreich gezeigt wurde, ist die Niederfeld-NMR-Spektroskopie als Online-Methode für die Prozessindustrie bislang noch nicht zugänglich. Der hohe Informationsgehalt verbunden mit einem Wegfall des Kalibrationsaufwands macht die NMR-Spektroskopie zu einer vielversprechenden Methode für die moderne Prozessautomation mit äußerst kurzen Rüstzeiten und geringem Validierungsbedarf. Diese Vorteile zahlen sich insbesondere für Multi-Purpose-Anlagen sowie für Prozesse mit stark schwankender Rohstoffqualität aus.
Im Rahmen des EU-Projekts CONSENS wurde ein industrietauglicher NMR-Analysator basierend auf einem kommerziell verfügbaren Laborgerät entwickelt. Dies umfasst neben der Anbindung an den Prozess vor allem die Erfüllung von Randbedingungen wie zuverlässige Automatisierung und Explosionsschutz, sowie die Integration in sowohl klassische als auch moderne Kommunikationsstrukturen.
Das Konzept wurde an zwei Beispielen aus den Bereichen der pharmazeutischen sowie der großtechnischen Prozessindustrie erprobt. Als eine Beispielreaktion wurde ein Teilschritt einer kontinuierlichen pharmazeutischen Synthese gewählt (Kopplung der zwei aromatischen Systeme Anilin und o-Fluornitrobenzol unter Verwendung eines Lithiumorganyls). Die Reaktion stellt hohe Anforderungen an die automatisierte Auswertung der erhaltenen Prozess-Spektren, die mit physikalisch motivierter Analyse der NMR-Spektraldaten gelöst wurde. Daneben wurde die Synthese des technisch relevanten Lösungsmittels Tetrahydrofuran mit dem Teilschritt der katalytischen Hydrierung von 2-Butin-1,4-diol als Beispielreaktion ausgewählt, die über ein Zwischenprodukt verläuft und Konkurrenzreaktionen aufweist. Dieses System bietet die Möglichkeit der Kombination unterschiedlicher spektroskopischer und klassischer Prozessinformationen von beispielsweise Druck-, Temperatur- und Durchfluss-Messstellen für die Entwicklung innovativer Regelungskonzepte.
Online low-field NMR spectroscopy of an industrial lithiation reaction step for process control
(2016)
Online monitoring and process control requires fast and noninvasive analytical methods, which are able to monitor the concentration of reactants in multicomponent mixtures with parts-per-million resolution. Online NMR spectroscopy can meet these demands when flow probes are directly coupled to reactors, since this method features a high linearity between absolute signal area and sample concentration, which makes it an absolute analytical comparison method being independent on the matrix. Due to improved magnet design and field shimming strategies portable and robust instruments have been introduced to the market by several manufacturers during the last few years. First studies with this technology showed promising results to monitor chemical reaction in the laboratory.
Within the project CONSENS, the continuous production of high-value products in small production scale is advanced by introducing benchtop NMR spectroscopy. CONSENS is a research and innovation project on integrated control and sensing for sustainable operation of flexible intensified processes.
This poster will present the first steps of the process integration of a benchtop NMR instrument for a lithiation process and outlines further fields of activity and potential challenges. Hereby, the following issues are going to be addressed: explosion-proof housing for the spectrometer, automation of signal processing (data pretreatment, evaluation and communication to the control system), flow cells and measuring conditions. Furthermore, first online spectra of the lithiation reaction in batch mode were acquired in lab scale. The reaction was performed in a 25 mL glass reactor with thermal jackets for temperature control of the reaction mixture. The Li-HMDS was dosed stepwise by using a glass syringe. First spectra in the proton and fluorine domain were recorded online using a flowrate of 3.5 mL min–1 and a simple 5 mm polytetrafluoroethylene tube (PTFE) as a flow cell.
Monitoring chemical reactions is the key to chemical process control. Today, mainly optical online methods are applied. NMR spectroscopy has a high potential for direct loop process control. Compact NMR instruments based on permanent magnets are robust and relatively inexpensive analysers, which feature advantages like low cost, low maintenance, ease of use, and cryogen-free operation. Instruments for online NMR measurements equipped with a flow-through cell, possessing a good signal-to-noise-ratio, sufficient robustness, and meeting the requirements for integration into industrial plants (i.e., explosion safety and fully automated data analysis) are currently not available off the rack.
Intensified continuous processes are in focus of current research. Flexible (modular) chemical plants can produce different products using the same equipment with short down-times between campaigns and quick introduction of new products to the market. In continuous flow processes online sensor data and tight closed-loop control of the product quality are mandatory. If these are not available, there is a huge risk of producing large amounts of out-of-spec (OOS) products. This is addressed in the European Union’s Research Project CONSENS (Integrated Control and Sensing [3]) by development and integration of smart sensor modules for process monitoring and control within such modular plant setups.
The presented NMR module is provided in an explosion proof housing of 57 x 57 x 85 cm module size and involves a compact 43.5 MHz NMR spectrometer together with an acquisition unit and a programmable logic controller for automated data preparation (phasing, baseline correction) and evaluation. Indirect Hard Modeling (IHM) was selected for data analysis of the low-field NMR spectra. A set-up for monitoring continuous reactions in a thermostated 1/8” tubular reactor using automated syringe pumps was used to validate the IHM models by using high-field NMR spectroscopy as analytical reference method.
Ugly Spectra and Lousy interfaces – Challenges for Compact NMR Spectroscopy in Process Control
(2016)
With the introduction of advanced process analytical technology, the closeness of key process variables to their limits can be directly controlled and the product can be classified or even released in real time.
Compact NMR instruments can make NMR spectroscopy accessible in industrial and harsh environments for process control.
Low field NMR spectroscopy for sustainable and flexible production of high quality chemical products
(2017)
The main development goal of process industries is to advance the continuous production of high-value products that meet high quality demands in flexible intensified continuous plants by introducing novel online sensing equipment and closed-loop control (CONSENS – integrated control and sensing- is funded from the European Union’s Horizon 2020 research and innovation programme). Therefore, we present the field integration of a benchtop NMR instrument into a modular production environment, focussing on suitable equipment for operation in hazardous areas with risk of explosive atmospheres.
We investigated a pharmaceutical reaction step in order to describe challenges for the experimental design, the evaluation of complex NMR spectra and demonstrate automated data analysis tools.