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- Aushärtung (2)
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- Ultraschall (2)
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- Composite material (1)
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Zusammenfassung
Der Ausgangspunkt für diese Arbeiten ist eine in [1] beschriebene Ultraschall-(US)-Sensorik zur Aushärtungskontrolle. Sie wurde für rieselfähige Formmassen entwickelt [2,3]. Darauf aufbauend ist es das Ziel der vorliegenden Arbeit, die Voraussetzungen für den Einsatz dieser Sensorik beim Harzinjektionsverfahren zu schaffen und ihre Kalibrierung durch rheologische und DSC-Messungen zu ermöglichen.
Der erste Teil des Beitrages beschäftigt sich mit dem technologischen Ablauf des Harzinjektionsverfahren und den Einsatzmöglichkeiten der US-Sensorik bei dieser Technologie. Ergebnisse von Schallgeschwindigkeits- und Dämpfungsmessungen für EP-Harze werden vorgestellt.
Im zweiten Teil wird auf das Kalibrieren der US-Sensorik für den Verarbeiter eingegangen. Es kann mittels der bisherigen Prozessführung oder durch Vergleich mit den Ergebnissen anderer Mess-Verfahren wie Rheometer- oder Differential-Scanning-Calerometry-(DSC)-Messungen erfolgen.
In recent years eure monitoring with ultrasonic methods became more important. An on-line measurement System for industrial applications is presented in this paper. It operates in through-transmission and the measured parameters are the sound velocity and the attenuation of the sound wave. An objective of this paper is to establish the ränge of possible applications for an ultrasonic eure monitoring System.
Einfluss hoher Temperaturen und Drücke auf die Ultraschalleigenschaften eines Komposit-Prüfkopfes
(2004)
The technique normally used to measure Cp during isothermal cure is Temperature Modulated - Dynamic Scanning Calorimetry TM-DSC. It is however not standardised, experimentally complicated and quite time intensive. As will be shown, Cp may also be estimated during isothermal cure just from using dynamic heating experiments on a fully cured sample. Such values are often sufficient for isothermal heat transfer models that otherwise employ a constant Cp value obtained from the fully cured epoxy. Secondly, the results from dynamic heating experiments provide a quick means, in comparison to isothermal TMDSC measurements, of estimating Cp variation during cure as well as providing a good estimate value for Cp towards the end of isothermal cure. As will be shown, such values obtained from a standardised measurement procedure are very helpful in setting up TMDSC experiments that are more sensitive to experimental error influenced by factors such as sample weight and geometry.
The DSC results illustrate that the measured heat capacity Cp for a fully cured epoxy over a temperature range are very similar to values for samples partially cured at corresponding isothermal temperatures, under the prerequisite that vitrification takes place. In such cases the primary influence on Cp is specific measurement temperature and not degree of cure. For isothermal cure temperatures investigated between 150 and 200 °C, the total change of Cp during cure is nearly constant and correlates well with values published by authors on other epoxy based systems. Taking Cp variation as constant, it is possible from just dynamic heating experiments on the cured epoxy to estimate Cp for the uncured epoxy system at specific cure temperatures. The next step would be to estimate the full Cp profile during isothermal cure, however, in such cases, the time to vitrification would also be needed as additional information.
The curing conditions play an important role in the quality assurance of composite products.
Especially as composite materials are widely used in high tech areas so that they are required to fulfil high quality Standards. Some problems which occur during curing, for instance undercuring, can hardly be detected using Standard NDT investigations, mainly because they are manifested only at high temperatures, particularly close to glass-rubber-transition. On-line eure monitoring has the outstanding advantage that it can monitor the material parameters even at the highest temperatures possible.
In recent years eure monitoring with ultrasonic methods has become more populär. In comparison to dielectric methods mechanical parameters are measured directly. The quantities to be measured are the velocity and the attenuation of the sound wave. On this basis the storage and loss modulus can be calculated. Depending on the form of excitation with longitudinal or transversal waves these moduli are referred to as long wave or shear modulus.
Well developed Computer based technology and sensor materials are available in the non-destructive testing (NDT) market. The measuring equipment employed a commercial NDT System, which worked computer-aided. With a special Software the demands of automatic Operation under industrial conditions was accomplished. This measurement equipment was tested on composites. Its structure, performance and some practical results will be presented in the following paper.