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The future competitiveness of the process industry and their providers depends on its ability to deliver high quality and high value products at competitive prices in a sus-tainable fashion, and to adapt quickly to changing customer needs. The transition of process industry due to the mounting digitalization of technical devices and their pro-vided data used in chemical plants proceeds. Though, the detailed characteristics and consequences for the whole chemical and pharmaceutical industry are still unfore-seeable, new potentials arise as well as questions regarding the implementation. As the digitalization gains pace fundamental subjects like the standardization of device interfaces or organization of automation systems must be answered. Still, process in-dustry lack of sufficient system and development concepts with commercial advantage from this trend.
Compared to traditional batch processes, intensified continuous production allows new and difficult to produce compounds with better product uniformity and reduced consumption of raw materials and energy. Flexible (modular) chemical plants can pro-duce various products using the same equipment with short down-times between campaigns, and quick introduction of new products to the market.
Full automation is a prerequisite to realize such benefits of intensified continuous plants. In continuous flow processes, continuous, automated measurements and closed-loop control of the product quality are required. Consequently, the demand for smart sensors, which can monitor key variables like component concentrations in real-time, is increasing. Low-Field NMR spectroscopy presents itself as such an upcoming smart sensor1,2 (as addressed, e.g., in the CONSENS project3).
Systems utilizing such an online NMR analyzer benefits through short development and set-up times when applied to modular production plants starting from a desired chemical reaction3. As an example for such a modular process unit, we present the design and validation of an integrated NMR micro mixer based on computational mod-elling suited for a desired chemical reaction. This method includes a proper design of a continuous reactor, which is optimized through computational fluid dynamics (CFD) for the demands of the NMR sensor as well as for the given reaction conditions. The system was validated with a chemical reaction process.
References:
[1] M. V. Gomez et al., Beilstein J. Org. Chem. 2017, 13, 285-300
[2] K. Meyer et al., Trends Anal. Chem. 2016, 83, 39-52
[3] S. Kern et al., Anal Bioanal Chem. 2018, 410, 3349-3360
The future competitiveness of the process industry and their providers depends on its ability to deliver high quality and high value products at competitive prices in a sustainable fashion, and to adapt quickly to changing customer needs. The transition of process industry due to the mounting digitalization of technical devices and their provided data used in chemical plants proceeds. Though, the detailed characteristics and consequences for the whole chemical and pharmaceutical industry are still unforeseeable, new potentials arise as well as questions regarding the implementation. As the digitalization gains pace fundamental subjects like the standardization of device interfaces or organization of automation systems must be answered. Still, process industry lack of sufficient system and development concepts with commercial advantage from this trend.
Intensified continuous processes are in focus of current research. Compared to traditional batch processes, intensified continuous production allows new and difficult to produce compounds with better product uniformity and reduced consumption of raw materials and energy. Flexible (modular) chemical plants can produce various products using the same equipment with short down-times between campaigns, and quick introduction of new products to the market.
Full automation is a prerequisite to realize such benefits of intensified continuous plants. In continuous flow processes, continuous, automated measurements and closed-loop control of the product quality are required. Consequently, the demand for smart sensors, which can monitor key variables like component concentrations in real-time, is increasing. Low-Field NMR spectroscopy presents itself as such an upcoming smart sensor (as addressed, e.g., in the CONSENS project – http://www.consens-spire.eu/).
Systems utilizing such an online NMR analyzer benefits through short development and set-up times when applied to modular production plants starting from a desired chemical reaction. As an example for such a modular process unit, we present the design and validation of an integrated NMR micro mixer based on computational modelling suited for a desired chemical reaction. This method includes a proper design of a continuous reactor, which is optimized through computational fluid dynamics (CFD) for the demands of the NMR sensor as well as for the given reaction conditions. The system was validated with a chemical reaction process.
Intensified continuous processes are in focus of current research. Compared to traditional batch processes, intensified continuous production allows the synthesis of new and difficult producible compounds with better product uniformity and reduced consumption of raw materials and energy. Flexible (modular) chemical plants can produce various products using the same equipment with short down-times between campaigns, and quick introduction of new products to the market. Consequently, the demand for powerful Process Analytical Technologies, which can monitor key variables like component concentrations in real-time, is increasing. Low-Field NMR spectroscopy presents itself as such an upcoming smart sensor1,2 (as addressed, e.g., in the CONSENS project3,4).
Continuous measurement approaches can usually be differed in On- or In-line which both have advantages and drawbacks. On the one hand On-line measurements are easy to integrate even in existing setups through bypass systems, on the other hand issues like the representativity of the sampling must be considered. In the case of Inline analysis, where the whole fluid stream is analyzed, this issue can be avoided. Nevertheless, homogeneity of the mixture must be assured using NMR spectroscopy.
This talk shall give a brief summary of current Online and Inline Low-Field NMR approaches. Furthermore, current research results using a tailor-made flow cell for inline analysis are shown pointing out the working range as well as limitations of these method in combination with NMR spectroscopy.
The demand for increasing product diversity in the chemical process industry calls for new production processes that enable greater flexibility. Therefore, plants are needed that produce significant quantities for market supply that can be scaled up to several tons per year. Compared to traditional batch processes, intensified continuous production enables not only flexibility but also the production of compounds that are difficult to produce. Custom-designed small-scale reactors significantly improve heat and mass transfer through micro mixing and can improve safety, e.g. in the case of high grade exothermic or high-pressure reactions, and might play an important role for customized, modular production facilities.1 Combined with optimally designed flow cells, compact NMR instruments currently present promising analytical tools for use in flow chemistry applications.2,3 In recent process monitoring applications, the flow cell and the mixing unit are usually separated parts leading to a severe time delay between mixing and first data acquisition.
In this work, we present a comprehensive workflow for the design of a flow cell−mixer combination based on CFD simulation and other design principles.4 Due to the increasing opportunities in additive manufacturing of ceramics, it was possible to realize an optimized SMX-type mixer with a fully integrated NMR flow cell (cf. Fig. 1).
Validation studies exhibited 1H NMR spectra with a quality comparable to common NMR glass tubes. So far, the mixing performance of the system has been evaluated for different mass flow rates within the intended working range of 5–120 seconds region and compared to ideally mixed samples. Thus, the integrated flow cell−static mixer combination can be used for different purposes such as evaluation of fluid properties, equilibration studies, or reaction monitoring of two instantaneously mixed samples.
The ceramic flow cell was additively manufactured and analyzed through x-ray microtomography revealing surface characteristics due to the manufacturing process (cf. Fig. 2). Furthermore, the working range of the whole system was characterized leading to an operational specification for further applications.
In summary, the role of custom-designed components for modular, chemical production, amongst other essential factors like fast development of reliable evaluation models is discussed.
References
[1] Bornemann-Pfeiffer et al., Chem. Ing. Tech. (2021), 93: 1–10
[2] Kern et al., Anal. Bioanal. Chem. (2018) 410: 3349–3360
[3] Kern et al., Anal. Bioanal. Chem. (2019) 411: 3037–3046
[4] Bornemann et al., Ind. Eng. Chem. Res. (2019), 58: 19562−19570
Modular production involving benchtop NMR Current Application Examples Driven by Digitalization
(2022)
The demand for increasing product diversity in the chemical and pharmaceutical industry calls for new production processes that enable greater flexibility. Therefore, plants are needed which can be adapted to new processes in a fast manner and be scaled up and down easily to volatile market demands. Modular production techniques in combination with advanced process analytical technology (PAT) are considered as a promising solution able to fulfil these requirements.
The success and acceptance of modular concepts in both new and existing plants is dependent of its reliability, easy applicability, and standardization. In recent past, enormous efforts were made to overcome existing barriers in a superordinate level, e.g. DEXPI, ENPRO, or MTP naming just a few. Here, we’d like to present a few, more hands-on, application examples which are shown in Figure 1 aiming to increase process flexibility and applicability.
Modular production involving benchtop NMR Current Application Examples Driven by Digitalization
(2022)
The demand for increasing product diversity in the chemical and pharmaceutical industry calls for new production processes that enable greater flexibility. Therefore, plants are needed which can be adapted to new processes in a fast manner and be scaled up and down easily to volatile market demands. Modular production techniques in combination with advanced process analytical technology (PAT) are considered as a promising solution able to fulfil these requirements.
The success and acceptance of modular concepts in both new and existing plants is dependent of its reliability, easy applicability, and standardization. In recent past, enormous efforts were made to overcome existing barriers in a superordinate level, e.g. DEXPI, ENPRO, or MTP naming just a few. Here, we’d like to present a few, more hands-on, application examples which are shown in Figure 1 aiming to increase process flexibility and applicability.
Modular production involving benchtop NMR Current Application Examples Driven by Digitalization
(2022)
The demand for increasing product diversity in the chemical and pharmaceutical industry calls for new production processes that enable greater flexibility. Therefore, plants are needed which can be adapted to new processes in a fast manner and be scaled up and down easily to volatile market demands. Modular production techniques in combination with advanced process analytical technology (PAT) are considered as a promising solution able to fulfil these requirements.
The success and acceptance of modular concepts in both new and existing plants is dependent of its reliability, easy applicability, and standardization. In recent past, enormous efforts were made to overcome existing barriers in a superordinate level, e.g. DEXPI, ENPRO, or MTP naming just a few. Here, we’d like to present a few, more hands-on, application examples which are shown in Figure 1 aiming to increase process flexibility and applicability.