Analytische Chemie
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Durch den Einsatz von eingebetteten faseroptischen Sensoren können Bauteile überwacht und frühzeitig Informationen über Materialveränderungen gewonnen werden. Um die Zuverlässigkeit eines solchen Sensors gewährleisten zu können, ist es wichtig, die korrekte Funktion des Sensors im Verbund mit einer Werkstoff-Matrix on-line und in-situ überwachen zu können. Im Rahmen des DFG-Projekts FAMOS² (FAser-basierter Magneto-Optischer SchichtSensor) wurde ein selbstdiagnose-fähiger Schichtsensor entwickelt, welcher mit Hilfe einer magnetostriktiven Aktorschicht validiert werden kann. Durch eine Kombination aus PVD (physical vapour deposition) und ECD (electro-chemical deposition) wird die Aktorschicht auf faseroptischen Sensoren haftfest abgeschieden. Ein äußeres Magnetfeldes dehnt die Aktorschicht und damit auch die Faser reversibel. Diese Dehnung führt zu einer Verschiebung der Bragg-Wellenlänge, welche direkt mit der Stärke des zu messenden Magnetfeldes korreliert. Ein etwa 100 Nanometer dünnes PVD-Schichtsystem aus Chrom und Kupfer dient zunächst als Haftvermittler zwischen Glasfaser und ECD-Schicht. Um eine rotationssymmetrische Schichtabscheidung zu erhalten, erfolgt während der PVD-Beschichtung eine Rotation der Faser. In einem klassischen Watts-Elektrolyten wird dann im zweiten Schritt die eigentliche etwa 30 Mikrometer dicke ECD-Aktorschicht auf die PVD-Schicht abgeschieden. Reine Ni-Schichten werden mit NiFe-Legierungen verglichen.
Die Geometrie der Faser stellt für die Herstellung und Charakterisierung der Schichten auf der einen Seite eine besondere Herausforderung dar, bietet aber zugleich auch neue experimentelle Möglichkeiten. So kann ggf. die Entstehung von Spannungen in der Schicht während der ECD-Abscheidung in-situ verfolgt werden, indem die Wellenlängenverschiebung aufgrund der Dehnung des Bragg-Gitters optisch gemessen wird. Die Anpassung der Beschichtungsverfahren an die Fasergeometrie sowie die Charakterisierung und die Eigenschaften der ECD-Schicht werden diskutiert. Insbesondere wird auf den Elastizitätsmodul der Aktorschicht eingegangen, wobei Werte aus der Nanoindentation und dem 2-Punkt-Biegeversuch mit der beschichteten Faser als Biegebalken verglichen werden.
Circumventing boundary effects while characterizing epoxy/copper interphases using nanoindentation
(2017)
Characterization of the size and mechanical properties of interphases is essential when designing multicomponent materials. When nanoindentation is used to investigate the size and mechanical properties of an interphase, a common challenge is that the indenter or the stress zone formed around it are often restricted by the reinforcement, making it difficult to distinguish the mechanical property variations caused by the interphase itself from those caused by the boundary effect. In this work, a testing system was developed that allows determining the indent affected zone and accounting for it in the interphase measurements of an epoxy/Cu system. Using finite element analysis, we confirmed the validity of the proposed system. Nanoindentation was used to investigate the Interphase between copper and two different epoxy systems; amine-cured and anhydride-cured. Nanoindentation results showed that a copper layer that is only 10 nm thick still exhibits a constriction effect on the indentations in its vicinity. The amine-cured epoxy did not show any sign of interphase existence using the introduced method. However,
a soft interphase with a thickness of ~1.7 μm was measured on theanhydride-cured epoxy. Furthermore, we show that the proposed system can be used to determine the interphase thickness as well as its relative mechanical properties regardless of the indentation depth.
This system can be further used for investigating other polymer/metal interphases to better understand the factors influencing them, thus helping engineer the interphase size and properties to enhance composite performance.
Nowadays the Instrumented Indentation Testing (IIT), in the nano range often named as nano indention, is one of the most commonly used methods to determine the mechanical properties of materials in the micro and nano range. This method is already extensive standardized in DIN EN ISO 14577 part 1-4. In the past, the application of this standard in testing praxis shows that the established values have an excellent precision. On the other side, the trueness as comparability of obtained results with reference values is not so good. To improve accuracy of IIT the use of a variable ε and the consideration of the lateral displacement during indentation became normative requirements during the last revision of ISO 14577.
Starting with the beginning of instrumented indentation testing in 1898 the historical background and the main assumption of the Oliver and Pharr method will be explained and critical discussed. It will be shown how to apply the use of a variable ε and the consideration of the lateral displacement during indentation in the daily testing work to improve accuracy of IIT.
Finally, ongoing standardization projects in the field of IIT will be briefly presented.
The draft of part 5 of ISO 14577 specifies verification and calibration of testing machines for carrying out the measurement of the dynamic material response when an oscillatory force or displacement, with amplitudes small in comparison to the prescribed target values, is imparted to the indenter while the indenter is continuously loaded to a prescribed target load or target depth or while the load or displacement is held constant at a prescribed target value. In case of a material showing plastic-elastic behavior, the measured dynamic response is used for continuous evaluation of the dynamic stiffness of the contact as a function of depth and frequency. Using the dynamic stiffness of the contact a reduced dynamic modulus will be calculated. In case of a material showing visco-elastic behavior from the measured dynamic response also the dynamic contact damping coefficient as function of depth and frequency is evaluated continuously. Using dynamic contact stiffness and dynamic contact damping coefficient reduced lost and storage modulus for visco-elastic materials will be calculated. The main normative requirements of the draft are discussed and their applications are illustrated by examples from daily experimental praxis.
Nowadays the Instrumented Indentation Testing (IIT) is one of the most commonly used methods to determine the mechanical properties of materials in the nano range. This method is already extensive standardized in EN ISO 14577 part 1-4. Because of the great interest of researchers and industries in investigations of time depending material behavior mostly all suppliers of IIT equipment are offering the possibility of dynamic testing. Realizing this development ISO/TC 164/SC3 Hardness Testing has proposed to start the new standardization project “Linear elastic dynamic instrumented indentation testing DIIT”. The development of this standard is accompanied by the first international intercomparing exercise comparing results of dynamic instrumented indentation testing from testing machines using different hardware solutions and different models for data evaluation.
The draft of part 5 of ISO 14577 “Linear elastic dynamic instrumented indentation testing DIIT” specifies verification and calibration of testing machines for carrying out the measurement of the dynamic material response when an oscillatory force or displacement, with amplitudes small in comparison to the prescribed target values, is imparted to the indenter while the indenter is continuously loaded to a prescribed target load or target depth or while the load or displacement is held constant at a prescribed target value. In case of a material showing plastic-elastic behavior, the measured dynamic response is used for continuous evaluation of the dynamic stiffness of the contact as a function of depth and frequency. Using the dynamic stiffness of the contact a reduced dynamic modulus will be calculated. In case of a material showing visco-elastic behavior from the measured dynamic response also the dynamic contact damping coefficient as function of depth and frequency is evaluated continuously. Using dynamic contact stiffness and dynamic contact damping coefficient reduced lost and storage modulus for visco-elastic materials will be calculated.
The main normative requirements of the draft will be presented and discussed in the light of the first results of the intercomparing excise.