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This work presents a first attempt to use ionic liquids as a new coating for planar coulometric sensors. These sensors are used for the measurement of trace humidity in various gases. Usually, the coating of the sensors is tetraphosphorus decaoxide and its hydrolysis products. Instead, a hygroscopic ionic liquid was used as sensor coating in this work. Generated frost point temperatures tf in the gas ranged from -80 °C to -30 °C, which is equivalent to vapour mole fractions xv from 0.5 μmol·mol-1 to 376 μmol·mol-1. In addition to the coulometric sensors, the generated humidity is determined by a precision dew point hygrometer as reference. First results show that it is possible to measure humidity withionic liquid based coulometric sensors.
This work presents a first attempt to use ionic liquids as a new coating for planar coulometric sensors. These sensors are used for the measurement of trace humidity in various gases. Usually, the coating of the sensors is tetraphosphorus decaoxide and its hydrolysis products. Instead, a hygroscopic ionic liquid was used as sensor coating in this work. Generated frost point temperatures tf in the gas ranged from -80 °C to -30 °C, which is equivalent to vapour mole fractions xv from 0.5 μmol·mol-1 to 376 μmol·mol-1. In addition to the coulometric sensors, the generated humidity is determined by a precision dew point hygrometer as reference. First results show that it is possible to measure humidity with ionic liquid based coulometric sensors.
Moisture content and water activity are important parameters for quality characterization of products like bulk materials, powders, granules. Thus, an exact determination is necessarily required in a wide range of industrial applications. Moisture of materials is the content of non-chemically bound water in a solid or liquid. Water activity (aW) is a characteristic/parameter of the non-chemically bound ("free") water in materials and is measured as humidity over a solid/liquid surface at constant temperature (equilibrium moisture content). It is an important parameter to characterize the quality of e. g. pharmaceutical and food products. In our contribution, we present the developed MOISHUM device for staged determination of water activity and moisture content of liquid and solid materials.
Planar coulometric sensors were investigated in humidified synthetic air at various absolute gas pressures, i. e. 2 bar, 5, bar, 10 bar, and 15 bar. Humidified gas flow at adjusted gas pressure was split into two flows, one passed a coulometric sensor and the other one passed a reference hygrometer after decompression. Both signals were recorded and then compared after calculation of resulting frost point temperature. Calculation is based on a calibration function obtained at ambient pressure. Comparison showed that an increasing pressure resulted in a higher derivation between sensor signal (calculated frost point temperature) and reference frost point temperature. At an absolute pressure of 2 bar the differences were minor in consideration of the uncertainty, however at 15 bar the differences were 6.77 K. Nevertheless, it was possible to measure the gas humidity at higher pressure with coulometric trace humidity sensors.
Planar coulometric sensors were investigated in humidified synthetic air at various absolute gas pressures, i. e. 2 bar, 5, bar, 10 bar, and 15 bar. Humidified gas flow at adjusted gas pressure was split into two flows, one passed a coulometric sensor and the other one passed a reference hygrometer after decompression. Both signals were recorded and then compared after calculation of resulting frost point temperature. Calculation is based on a calibration function obtained at ambient pressure. Comparison showed that an increasing pressure resulted in a higher derivation between sensor signal (calculated frost point temperature) and reference frost point temperature. At an absolute pressure of 2 bar the differences were minor in consideration of the uncertainty, however at 15 bar the differences were 6.77 K. Nevertheless, it was possible to measure the gas humidity at higher pressure with coulometric trace humidity sensors.
Especially trace amounts of water vapour in gases can be reliably determined by coulometric trace humidity sensors. The principle of these sensors is based on water vapour absorption in a hygroscopic layer and its subsequent electrolytic decomposition. The calibration of sensors was performed in the humidity range, expressed as frost point temperature, from −30°C to −80°C . This range is equivalent to volume fractions smaller than 376 µL·L−1. Generated humidity was measured with coulometric sensors and a chilled dew point hygrometer that was used as reference. An empirical non-linear function was found between sensor signal and measured reference humidity. This function consists of two parameters with a measurement uncertainty. Both calibration parameters were checked by means of one-way analysis of variance. It showed that gas specific function can be used for humidity measurement in nitrogen, hydrogen, dinitrogen monoxide, compressed and synthetic air. It is possible to determine trace humidity in all tested gases with an expanded uncertainty less than 2.1 K (coverage factor k=2 ) regarding frost point temperature.
Trace humidity was measured by using miniaturized planar coulometric sensors in technical gases such as hydrogen, nitrogen, helium, nitrous oxide, and synthetic air. Frost point temperatures tf in the gases ranged from −60 °C to −30 °C, which is equivalent to a vapour mole fraction xv from 10 μmol mol−1 to 376 μmol mol−1. In addition, the generated humidity was determined by using a precision dew point hygrometer as reference. Nonlinear calibration functions were calculated that correlated electric current (sensor signal) and reference humidity. Parameters of functions were tested with one-way analysis of variances (ANOVA) to prove if all used sensors had a similar behavior in the same gas during experiments. Results of ANOVA confirmed that averaged functions can be applied for trace humidity measurement in nitrogen, helium, nitrous oxide, and synthetic air. The calculated functions were negligibly different for nitrogen, helium, and synthetic air. In humidified nitrous oxide, a minor change of parameters was observed due to lower electrical currents. In total contrast to that, the measured sensor signals were significantly higher in humidified hydrogen and each sensor required its own calibration function. The reason was a recombination effect that favoured multiple measurements of water molecules. Nevertheless, it was possible to measure continuously trace humidity in all tested gases by using coulometric sensors with an expanded uncertainty below 2 K (k = 2).
Die Spurenfeuchte ist eine wichtige Messgröße bei der Qualitätsbeurteilung von technischen und medizinischen Gasen und muss daher zuverlässig gemessen werden. Der Spurenbereich ist definiert durch einen Wasserdampf-Stoffmengenanteil kleiner als 2600 µmol/mol bzw. einer Frostpunkttemperatur kleiner -10 °C. Eine geeignete Methode für die kontinuierliche Spurenfeuchtemessung stellt das Elektrolyseverfahren bzw. coulometrische Messprinzip dar. Bei diesem Prinzip strömt ein feuchtes Gas über eine hygroskopische Phosphorpentoxid-Schicht, welche kontinuierlich Wasserdampf absorbiert. Durch das Anlegen einer Zersetzungsspannung wird das absorbierte Wasser elektrolysiert und der resultierende Elektrolysestrom korreliert zum Feuchtegehalt im Gas. Neben dem Einfluss von unterschiedlichen Gasen auf das Messverfahren, wurde der Einfluss der Druckfeuchte im Druckbereich von 2 bis 15 bar untersucht. Des Weiteren wurde eine neuartige Sensorbeschichtung basierend auf einer ionischen Flüssigkeit getestet und es wurde ein Prototyp für die abgestufte Bestimmung der Wasseraktivität und der Materialfeuchte aufgebaut.
Feuchte, sei es Material- oder Gasfeuchte, ist eine wichtige Messgröße bei der Qualitätsbeurteilung von Kunststoffen, landwirtschaftlichen Erzeugnissen, Energieträgern, Arzneimitteln, industriell und medizinisch verwendeten Gasen. Deswegen gibt es ein Interesse Feuchtemesserfahren hinsichtlich Präzision, Wiederholbarkeit, Rückführbarkeit und Stabilität kontinuierlich zu verbessern. Ein bewährtes Messprinzip für diese Aufgabe wurde bereits 1959 von Keidel entwickelt und basiert auf der Absorption und Elektrolyse von Wasserdampf. Der einfache Aufbau dieses Prinzips besteht aus einem Sensorelement, einer Gleichspannungsquelle, einem Digitalmultimeter und einen geregelten Gasstrom über den Sensor. Nach dem Faraday’schen Gesetz der Elektrolyse korreliert bei dem Messprinzip die Ladungsmenge mit der elektrolysierten Wassermasse. Jedoch bedarf es in der heutigen Zeit einer Validierung der Sensoren, weil durch gezielte Miniaturisierung weniger aktive Fläche vorhanden ist und somit das Faraday’sche Gesetz nicht vollständig anwendbar ist. In dieser Arbeit wurden coulometrische Sensoren mit einer planaren Elektrodenstruktur hinsichtlich der Einflüsse von unterschiedlichen Gasen, der Gastemperatur und dem -druck untersucht. Zusätzlich wurde eine neuartige Sensorbeschichtung basierend auf einer ionischen Flüssigkeit getestet. Des Weiteren wurde ein Messgerät für die abgestufte Bestimmung der Materialfeuchte und Wasseraktivität entwickelt und dessen messtechnischer Einsatz untersucht.