Analytische Chemie
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- 2015 (16) (entfernen)
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- Prozessanalytik (7)
- Process analytical technology (5)
- Quantitative NMR-Spektroskopie (4)
- Reaction monitoring (4)
- qNMR (4)
- Online NMR spectroscopy (3)
- Prozess-Spektroskopie (3)
- Smart Sensors (3)
- Hydroformylation (2)
- Industrie 4.0 (2)
Eingeladener Vortrag
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For absorption processes with fluctuating feed gas compositions it is vital to continuously adjust
the operation point to achieve energy efficiency. In this contribution a Raman-based advanced
process control (APC) is introduced for the absorption of carbon dioxide (CO2) using an aqueous
solution of monoethanolamine (MEA). The APC is based on a Raman spectroscopic analysis of
the composition and CO2 load of the scrubbing liquid and a non-linear model predictive control
(NMPC) to adjust the scrubbing liquid cycle. In addition, an outer real-time optimization loop is
set in place to update the set points for the absorption process depending on the current feed gas composition minimizing the energy consumption of the process. Implementation and testing of the APC have been carried out in a mini-plant at TU Berlin. During a plant operation of more than 160 hours robustness and stability of the APC were shown.
Die Online-medium-resolution-NMR-Spektroskopie wurde als neue Technik zur Überwachung verfahrenstechnischer Prozesse weiterentwickelt. Entlang der Prozesskette wurden an den verschiedenen Elementen der Online-Spektroskopie gearbeitet. Ein temperierbarer und druckfester Bypass erlaubt, die reagierende Mischung bei Reaktionsbedingungen über eine Pumpe in die NMR-Messzelle zu fördern, für die verschiedene Versionen von temperatur-isolierten NMR-Durchflusszellen berechnet, realisiert und mittels MRI hinsichtlich ihrer strömungsdynamischen und NMR-Eigenschaften charakterisiert wurden. Austauschbare Polymerleitungen für robuste, industrielle Anwendungen kamen ebenso zum Einsatz wie maßgeschneiderte Flusszellen zur Reduktion der Verweilzeitverteilung und des Stoffdurchsatzes. Bewertungsverfahren für MR-NMR-Spektrometer und Durchflusszellen auf Basis leicht verfügbarer Flüssigkeiten (wie z. B. Aceton, Ethanol, Wasser) wurden abgeleitet, Mindestspezifikationen für die Anwendbarkeit der MR-NMR im Prozessmonitoring wurden erarbeitet. Auf der Basis des Bypasssystems konnten einige verschiedene chemische Reaktionen im Bereich einiger 10 s zeitaufgelöst gemessen und ihre Kinetik auch im Fall von Nichtgleichgewichtsmagnetisierung und schneller Strömung analysiert werden. Voraussetzung ist eine stabile und automatisierte Datenbearbeitung, die sich nahtlos in den Workflow von der Datenakquisition bis zur Datenanalyse einbindet. Daher war ein weiteres Augenmerk auf die Datenvorbehandlung gelegt. Bekannte Algorithmen wie die automatisierte Phasenkorrektur entlang der „Minimum Entropy“ Methode und der Maximierung des Realteilspektrums wurden zusammen mit neuen Methoden wie dem Softewarelock implementiert und angewandt. Zur Bestimmung der Konzentrationen wurden verschiedene Verfahren wie die direkte Integration, die Spektrenmodellierung mit und ohne Vorkenntnisse sowie statistische Methoden der Chemometrie angewandt und verglichen. Ebenso ließen sich erstmalig quasiparallel akquirierte 1H- und 19F-MR-NMR-Spektren für die Prozesskontrolle mit gutem Ergebnis analysieren. Die erarbeiteten Konzepte und Verfahren sind unabhängig von der Hard- und -Software des MR-NMR Geräts und damit allgemein einsetzbar. Während des Projektverlaufs kamen Benchtop-Laborgeräte von einer wachsenden Zahl an Herstellern auf den Markt, die immer besser den Anforderungen der Spektroskopie gerecht werden. Online-MR-NMR-Spektroskopie erweitert die Prozessanalytik um eine bislang nur im Labor bekannte chemische Sensitivität gegenwärtig mit der Fähigkeit zur Unterscheidung von beispielsweise Aliphaten, Olefinen oder Aromaten (z. B. Hydrierung) oder Strukturänderungen (z. B. Isomerisierung), bei denen klassische Techniken an ihre Grenzen stoßen. Sie stellt nun eine Alternative für die Prozessanalyse dar, insbesondere wenn schnelle, zerstörungsfreie und integral arbeitende Methoden erforderlich sind.
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 spectros-copy 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 com-parison 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.
Derzeit finden gravierende Veränderungen im Umfeld der Informations- und Kommunikationstechnik statt, die eine große Chance für die optimierte Prozessführung und Wertschöpfung mit darauf abgestimmten vernetzt kommunizierenden Sensoren bieten. Diese Art „smarter“ Sensoren stellen Dienste innerhalb eines Netzwerks bereit und nutzen Informationen daraus. Dadurch ergibt sich aktuell die Notwendigkeit, die Anforderungen an Prozess-Sensoren sowie an deren Kommunikationsfähigkeiten detaillierter zu beschreiben – vom einfachen Temperatursensor bis über heute in Entwicklung befindlichen Mess-Systemen hinaus – da diese Technologieentwicklungen rasant voranschreiten. Vernetzte Sensoren sind die Voraussetzung für die Realisierung von Cyber-physischen Produktionssystemen (CPPS) und zukünftiger Automatisierungskonzepte für die Prozessindustrie, wie sie auch durch das Zukunftsprojekt „Industrie 4.0“ adressiert werden.
The Cultivation of “Saccharomyces cerevisiae” for enzyme production was monitored using Near-infrared spectroscopy. An inline NIR optrode was therefore immersed in a 15 L vessel. The calibration was done using a Partial Least Squares (PLS) model with reference measurements of glucose, ammonium, phosphate, ethanol, and optical density. A nonlinear biological process model based on an extended Kalman Filter (EKF) was used to describe the fermentation behavior. It was found that EKF corrects inaccurate PLS predictions.
Hydroformylation represents an important homogeneous catalyzed process, which is widely used within chemical industry. Usually applied with simple alkenes like Propene and Butene aldehydes obtained from alkenes >C6 are relevant intermediates in production of plasticizers, surfactants and polymers. Today the active catalyst species is often based on valuable Rhodium complexes in aqueous solution. This implies the problem of limited water solubility of the reactands, which is acceptable for short chain lengths, but states a problem in case of higher alkenes. Along with that efficient separation and recycling of the catalyst becomes more complicated. There are different approaches tackling this problem, e.g., by using of salt formation in the BASF process or downstream distillation within the Shell process
The Collaborative Research Center InPROMPT aims to establish a novel process concept for the hydroformylation of long-chained olefins, using a rhodium complex as catalyst in the presence of syngas. Recently, the hydroformylation in micro-emulsions, which allows for the efficient recycling of the expensive rhodium catalyst, was found to be feasible. However, the temperature and concentration sensitive multi-phase system demands a continuous observation of the reaction to achieve an operational and economically feasible plant operation. For that purpose, we tested the potential of both NMR and Raman spectroscopy for process control assistance. The lab-scale experiments were supported by sampling for off-line GC-analysis as reference analytics. The results of the NMR experiments will be part of another contribution.
The increasing pollution of terrestrial and aquatic ecosystems with plastic debris, which leads to the accumulation of microscopic plastic particles of still unknown fate, is an upcoming problem of our time. In order to monitor the degree of contamination and to understand the underlying processes of degradation and internalization of plastic debris, analytical methods are urgently needed, which help to identify and quantify microplastics. Currently, expensive collected and purified materials enriched on filters are investigated by (micro) infrared spectroscopy (FTIR). Few studies using micro-Raman spectroscopy have been published as well. In contrast to FTIR, Raman spectroscopy can handle wet samples, but it suffers from interference of fluorescent materials. Both micro-FTIR- and micro-Raman, always include time consuming scanning and mapping procedures followed by the manual inspection and measurement of selected particles.
Due to recent advances in technical developments of NMR instruments such as acquisition electronics and probe design, detection limits of components in liquid mixtures were improved into the lower ppm range (approx. 5–10 ppm amount of substance). This showed that modern NMR equipment is also suitable for the observation of hydrocarbon samples in the expanded fluid phase or gas phase. Since Quantitative NMR spectroscopy (qNMR) is a direct ratio method of analysis without the need of calibration it was used to determine impurities in appropriate liquid and liquefied hydrocarbon isomers up to C6, which are used for preparation of primary gas standards, e.g., natural gas or exhaust gas standards. At the same time it is possible to yield structural information with a minimum of sample preparation. Thus, cross contaminations between different isomers of the observed hydrocarbons and their (NMR-active) impurities can be identified and quantified.
In general, most quantitative organic chemical measurements rely on the availability of highly purified compounds to act as calibration standards. The traceability and providence of these standards is an essential component of any measurement uncertainty budget and provides the final link of the result to the units of measurement, ideally the SI. The more recent increase in the use of qNMR for the direct assessment of chemical purity however can potentially improve the traceability and reduce the uncertainty of the measured chemical purity at a reduced cost and with less material. For example the method has beneficially been used by National Measurement institutes for recent CCQM comparisons including the CCQM–K55 series of purity studies.
Traditional ‘indirect’ methods of purity analysis require that all impurities are identified and quantified, leading to a minimum of 4 individual analytical methods (organic impurities, water, solvents, inorganic residue). These multiple technique approaches measure an array of different chemical impurities normally present in purified organic chemical compounds. As many analytical methodologies have compound-specific response factors, the accuracy and traceability of the purity assessment is dependent on the availability of reference materials of the impurities being available.
qNMR provides the most universally applicable form of direct purity determination without need for reference materials of impurities or the calculation of response factors but only exhibiting suitable NMR properties. The development of CRMs addressing qNMR specific measurement issues will give analysts compounds ideally suited for the analytical method and also provide full characterisation of qNMR related parameters to enable more realistic uncertainty budgets. These materials will give users the tools to exploit qNMR more easily and enable them to speed up analytical method development and reduce the time and financial burden of multiple analytical testing.
Resolving overlapping peaks of multiple components. Relative primary analytical method - Fundamental relationship of qNMR.
Troubleshooting Samples Analytics:
Impurities in products: unexpected & unwanted occurrence, unknown identity, analytical method unclear, often various analytical methods, necessary, short response time important (< 1 d), benefits: allocation of its source within hours safes cost
• Investigations planned, coordinated and documented by TSA team
• Variety of analytical methods available
Online NMR spectroscopy is an excellent tool to study complex reacting multicomponent mixtures and gain process insight and understanding. For online studies under process conditions, flow NMR probes can be used in a wide range of temperature and pressure. This paper compiles the most important aspects towards quantitative process NMR spectroscopy in complex multicomponent mixtures and provides examples. After NMR spectroscopy is introduced as an online method and for technical samples without sample preparation in deuterated solvents, influences of the residence time distribution, pre-magnetization, and cell design are discussed. NMR acquisition and processing parameters as well as data preparation methods are presented and the most practical data analysis strategies are introduced.